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. 2023 Apr 3;11:1323. Originally published 2022 Nov 15. [Version 2] doi: 10.12688/f1000research.127234.2

Different levels of circadian (de)synchrony ­– where does it hurt?

Ankita AS Galinde 1, Faheem Al-Mughales 1,2, Henrik Oster 1, Isabel Heyde 1,a
PMCID: PMC10130703  PMID: 37125019

Version Changes

Revised. Amendments from Version 1

In the revised version of the manuscript, we have addressed all comments. Specifically we attempted to (1) indicate specific model and tissue used of cited studies as this influences described circadian parameters, (2) elaborate on possible approaches to clarify knowledge gaps, (3) discuss other risk factors for development of mentioned diseases other than circadian disruption, (4) elaborate on effects of diet composition and time of food intake on circadian rhythms and physiology and discuss time-restricted food intake as potential therapeutic approach, (5) discuss behavioral changes and possible coping strategies in shift worker and outline the mixed literature on associations between shift work and numerous diseases, (6) elaborate on the relationship of aging and circadian (de)synchrony as well as on effects of social jetlag as a population-wide chronic desynchronised state, (7) change figure 2 to clarify the term inter-tissue desynchrony and show the different possibilities of misaligned zeitgebers. We hope all these changes and edits will contribute to the clarity and readability of the manuscript.

Abstract

A network of cellular timers ensures the maintenance of homeostasis by temporal modulation of physiological processes across the day. These so-called circadian clocks are synchronized to geophysical time by external time cues (or zeitgebers). In modern societies, natural environmental cycles are disrupted by artificial lighting, around-the-clock availability of food or shift work. Such contradictory zeitgeber input promotes chronodisruption, i.e., the perturbation of internal circadian rhythms, resulting in adverse health outcomes. While this phenomenon is well described, it is still poorly understood at which level of organization perturbed rhythms impact on health and wellbeing. In this review, we discuss different levels of chronodisruption and what is known about their health effects. We summarize the results of disrupted phase coherence between external and internal time vs. misalignment of tissue clocks amongst each other, i.e., internal desynchrony. Last, phase incoherence can also occur at the tissue level itself. Here, alterations in phase coordination can emerge between cellular clocks of the same tissue or between different clock genes within the single cell. A better understanding of the mechanisms of circadian misalignment and its effects on physiology will help to find effective tools to prevent or treat disorders arising from modern-day chronodisruptive environments.

Keywords: Chronodisruption, circadian misalignment, coupling, inter-tissue desynchrony, intra-tissue desynchrony, phase incoherence, shiftwork

Introduction

Mammals possess a ubiquitously expressed circadian clock system with a master pacemaker located in suprachiasmatic nucleus (SCN), in the hypothalamus, driving physiological and behavioral rhythms. Such rhythms can be observed in, e.g., hormonal release, eating patterns, sleep behavior and body temperature ( Moore and Eichler, 1972; Ralph et al., 1990; Sawaki et al., 1984; Stephan and Zucker, 1972). Functional clocks have been found in the SCN but also numerous other tissues including liver, kidney, and adipose tissues ( Aschoff, 1965; Aschoff et al., 1967; Balsalobre et al., 1998; Lamia et al., 2008; Yamazaki et al., 2000; Yoo et al., 2004). All circadian clocks share three common properties. First, circadian oscillators are self-sustained, i.e., they are capable of driving ~24-hour circadian rhythms in transcription and translation. Second, they preserve the same kinetics over a broad range of temperatures ( Barrett and Takahashi, 1995; Menaker and Wisner, 1983; Pittendrigh, 1954; Reyes et al., 2008). Third, circadian oscillators can be synchronized (or entrained) by environmental cues, so called zeitgebers (German for ‘time giver’) such as light and food ( Balsalobre et al., 1998; Yoo et al., 2004). Photic zeitgeber input synchronizes the SCN that in turn aligns the central nervous system (CNS) and peripheral-tissue clocks with each other and with external time via humoral and neural signals. Together, these give rise to rhythmic circadian output ( Figure 1). Single circadian oscillators have distinct period (cycle length), and it is thought that they must be synchronized to the 24-hour light/dark (LD) cycle to provide coherent rhythmic control over physiological processes such as maintaining temporal separation of chemically incompatible processes ( Honma et al., 1998; Liu et al., 2007; Nagoshi et al., 2004; Welsh et al., 1995). Modern lifestyles are often characterized by deregulated food intake rhythms, lack of exercise, disrupted sleep/wake patterns, and nocturnal light exposure. Such mismatch of zeitgeber signals is believed to lead to disruptions in the phase coherence between internal and external time and between different tissue clocks in a state termed chronodisruption ( Erren and Reiter, 2009, 2013; Kiehn et al., 2017).

Figure 1. Organization of the circadian system in mammals.

Figure 1.

The primary zeitgeber, light, entrains the master pacemaker, the suprachiasmatic nucleus (SCN), with geophysical time. The SCN synchronizes subordinated central nervous system (CNS) and peripheral tissue clocks by humoral and neural signals and the temporal coordination of food intake, body temperature, and rest/activity cycles. Outputs of peripheral tissues feedback to clocks in the brain and stabilize circadian synchrony. Integration of external signals, collective output of tissue clocks, and rhythmic humoral and neural signals generates physiological and behavioral circadian rhythms. Figure created with BioRender.com

The circadian clock system regulates energy homeostasis, and dysregulation of circadian clock-metabolism crosstalk can seriously impact overall metabolic health ( Reinke and Asher, 2019). For example, eating at a biologically inappropriate phase results in impaired glucose tolerance and transient insulin resistance in a laboratory study ( Scheer et al., 2009). Nighttime eaters gain more weight compared to non-nighttime eaters ( Gluck et al., 2008). Increased light at night (LAN) exposure is associated with a higher incidence of obesity and metabolic syndrome ( McFadden et al., 2014). Possibly, this may be provoked by light-mediated resetting of the SCN circadian clock and inhibition of melatonin release ( Boivin et al., 1996; Zeitzer et al., 2000). Mice exposed to dim light at night have blunted rhythms of essential clock genes at both mRNA and protein levels in the SCN. Changes are also observed in feeding behavior in those mice ( Fonken et al., 2013; Shuboni & Yan, 2010). Melatonin is crucial for insulin biosynthesis, secretion, and action, as well as for regulating the rhythm of leptin. Hence, the disruption of its nocturnal production as observed due to exposure to illumination at night may underlie obesity and metabolic dysfunction ( Chakir et al., 2015; Cipolla-Neto et al., 2014). In modern societies roughly 21% of employees work outside the regular working hours or in shifts, which has been associated with various adverse health outcomes ( Karatsoreos et al., 2011; Parent-Thirion et al., 2016; Streng et al., 2022). Shift work is believed to affect the alignment of an individual’s behavioral cycle with both external and endogenous rhythms resulting in a loss of phase coherence of circadian and diurnal rhythms or between two or more circadian rhythms ( Boudreau et al., 2013; Skene et al., 2018). Numerous epidemiological studies have demonstrated a higher incidence of various disorders in shift workers – from impaired mental health to metabolic syndrome, obesity, cardiovascular disease, autoimmune disorders, and cancer ( Chellappa et al., 2020; Davis et al., 2001; de Bacquer et al., 2009; di Lorenzo et al., 2003; Ellingsen et al., 2007; Karlsson et al., 2001; Kawachi et al., 1995; Li et al., 2022; Magrini et al., 2006; Schernhammer et al., 2003). It is worth mentioning that shift work can affect sleep quality, leading to shorter sleep duration, sleep disturbances, and daytime dysfunction. Some individuals may cope with sleep-related issues by increasing their alcohol consumption and tobacco use which in turn may further contribute to the development of various diseases ( Bae et al., 2017; Jung et al., 2022; Lim et al., 2020; Thach et al., 2020). Of note, some published studies have not found an association between shift work and the likelihood of developing cardiovascular disease, cancer, type 2 diabetes mellitus or depression ( Barul et al., 2019; Behrens et al., 2021; Bøggild et al., 1999; Vetter et al., 2018). Circadian misalignment can also be caused by travelling across several time zones leaving us with sleep problems, fatigue, cognitive impairments, and gastrointestinal issues summarized as jetlag disorder. During jetlag, the body’s internal time is misaligned to local geophysical time, and the circadian clock network needs some time to entrain to the new time zone ( Diekman and Bose, 2018; Kiessling et al., 2010; McGuckin et al., 2014; Roach and Sargent, 2019; Wright et al., 1983). Another form of chronic circadian misalignment is known as social jetlag, which is characterized by an ongoing discrepancy of an individual's sleep/wake cycle between workdays and free days. Importantly, several health consequences, including mood disorders, cardiac disease, obesity, metabolic syndrome, and type 2 diabetes mellitus, have been strongly linked to social jetlag ( Gamboa Madeira et al., 2021; Islam et al., 2020; Koopman et al., 2017; Roenneberg et al., 2012).

Levels of organization of the mammalian circadian clock system

The SCN constitutes a network of interconnected neural clocks with distinct periods in vitro ( Honma et al., 2004; Welsh et al., 1995). However, a robust circadian output is observed probably arising from strong inter-cellular coupling within the SCN. Non-SCN tissue clocks show fast dampening of circadian oscillations in vitro likely due to weak inter-cellular coupling and the high dependence on systemic signals to keep synchrony ( Yoo et al., 2004). Coupling can be observed on different levels such as systemic (inter-tissue) and intra-tissue which can be further subdivided into inter-cellular and molecular coupling. All contribute to the generation or maintenance of coherent rhythms in behavior and physiology.

The SCN synchronizes the clock network via numerous signals. Vice versa, rhythmic signals from the periphery feedback to the SCN to stabilize and fine-tune the clock system. This type of crosstalk occurring between different tissue clocks is known as systemic coupling ( Pilorz et al., 2020). The autonomic nervous system and the endocrine system are important routes utilized by SCN to deliver humoral and neural signals to peripheral tissues. Thereby, the SCN regulates changes in the blood supply, kidney filtration rates, hormone secretion, sensitivity for hormones, and insulin sensitivity in a time-dependent manner ( Buijs et al., 1999, 1993; Cailotto et al., 2005; Cui et al., 2001; Dai et al., 1997; Deering and Coote, 2000; Kalsbeek et al., 1993; Kalsbeek and Strubbe, 1998; Vujovic et al., 2015). The best studied circadian hormones are glucocorticoids and melatonin, and both act as systemic synchronizing signals ( Cheifetz, 1971; de Kloet and Sarabdjitsingh, 2008; Klemcke et al., 1989; Lincoln et al., 1982; Oster et al., 2006; Perlow et al., 1981; Redman et al., 1983). On the other hand, systemic signals derived from peripheral tissues reach the SCN for a proper synchronization of physiological rhythms ( Balsalobre et al., 2000; Buijs et al., 1999; Gerber et al., 2013; Guo et al., 2005; Oster et al., 2006; Redman et al., 1983). For this reason, various hormone receptors are present in the SCN modulating and fine-tuning internal circadian timing. Intriguingly, the hepatokine fibroblast growth factor 21 (FGF21), a starvation signal secreted from the liver into the blood stream, can affect the SCN, thereby modulating several physiological functions ( Bookout et al., 2013). Another example, leptin, an adipocyte derived peptide, conveys the metabolic state of peripheral tissues to the SCN. Interestingly, leptin receptor deficient rats show disrupted circadian rhythms of food intake ( Li et al., 2012). The stomach-derived peptide hormone ghrelin can modulate food anticipatory activity through its action on the mediobasal hypothalamus (MBH) ( Merkestein et al., 2014; Wang et al., 2018). Thus, systemic coupling mechanisms are crucial to efficiently synchronize circadian rhythms across the entire body.

On tissue level, one can discriminate between inter-cellular and molecular coupling. For inter-cellular coupling, single cells within a tissue communicate with each other using various signaling mechanisms, thereby, creating internal synchrony across the organ. Coupling between different cells of the same tissue is best described for the SCN. Here, gap junctions, paracrine signals, chemical synapses, and electrical signaling are used to keep SCN cell rhythms synchronized and aligned with each other ( Maywood et al., 2011; Rash et al., 2007; Yamaguchi et al., 2003). Tetrodotoxin-mediated inhibition of neurotransmission results in reduced amplitudes of circadian clock gene expression ( Yamaguchi et al., 2003). Strong inter-cellular coupling in the SCN results in robust rhythms which can also compensate genetic clock disruption for which peripheral tissues are much more sensitive ( Liu et al., 2007). In line with this, SCN explants show circadian oscillations for weeks whereas circadian oscillations diminish in peripheral tissue explants after some days suggesting much weaker inter-cellular coupling ( Yoo et al., 2004). Hepatocyte clocks in SCN ablated mice show fast and stable entrainment to daytime feeding highlighting how the feeding rhythm synchronizes peripheral tissue clocks, including those in the liver ( Saini et al., 2013). Despite this, it remains elusive whether the synchronized circadian oscillations in liver arise through the integration of systemic signals or by coupling on the tissue level. Hepatocyte cell culture experiments suggest that there is weak coupling between the cells since desynchronization over time is slower than in a simulation of a model where no coupling is assumed. Coupling in the periphery is weak and locally more restricted compared to what is shown for the SCN ( Guenthner et al., 2014), and the underlying mechanisms are largely unknown.

Molecular coupling within a rhythmic cell is established through interlocked transcriptional- translational feedback loops (TTFLs) regulating rhythmic transcription and post-translational modifications controlling the stability of clock proteins ( Buhr and Takahashi, 2013). Within each rhythmic cell, the components of the molecular clock have a normal phase distribution. In the SCN of mice, the new transcriptional cycle of the molecular clock starts once brain and muscle ARNT like protein 1 (BMAL1): circadian locomotor output cycles kaput (CLOCK) heterodimers bind to E-box promotor elements in period1–3 ( Per1–3) and cryptochrome1/2 ( Cry1/2) genes inducing their transcription in the morning ( Kume et al., 1999; Shearman et al., 1997). Later, towards the night, PER and CRY heterodimers are translocated to the nucleus where they repress their own transcription by inhibiting binding of BMAL1:CLOCK to E-boxes ( King et al., 1997; Konopka and Benzer, 1971; Reddy et al., 1984; van der Horst et al., 1999; Zheng et al., 1999). Beside the E-box elements, other response elements such as D-boxes and retinoic acid receptor-related orphan receptors elements ( ROREs) are modulating and stabilizing circadian oscillations ( Akashi and Takumi, 2005; Mitsui et al., 2001; Nakajima et al., 2004; Ohno et al., 2007; Preitner et al., 2002; Sato et al., 2004; Ueda et al., 2002; Yamaguchi et al., 2000). D-boxes are bound among others by the transcriptional repressor nuclear factor interleukin-3-regulated protein (NFIL3, also known as E4BP4) and the transcriptional activator D-box binding protein (DBP) modulating the expression of, e.g., Per1–3, repressive reverse-erythroblastosis virus α/β ( Rev-Erbα/β), and activating retinoic acid receptor-related orphan receptors ( Rorα/β/γ) ( Mitsui et al., 2001; Ohno et al., 2007; Ripperger and Schibler, 2006; Yamaguchi et al., 2000). Repressing REV-ERB α/β and activating RORα/β/γ proteins compete for binding to ROREs modulating the expression of Bmal1, Clock and Cry1 ( Guillaumond et al., 2005; Nakajima et al., 2004; Preitner et al., 2002; Sato et al., 2004; Ueda et al., 2002). The interlocked feedback-loops result in ~24- hour oscillation of gene expression and repression. Importantly, such oscillations are further stabilized and fine-tuned by chromatin remodeling, post-transcriptional, and post-translational modifications impacting the stability of distinct clock mRNAs/proteins ( Doi et al., 2006; Duong and Weitz, 2014; Gallego and Virshup, 2007; Grimaldi et al., 2007; Nakahata et al., 2008; Grimaldi et al., 2009; Kojima et al., 2011; Preußner et al., 2014). Together, these lead to a stable phase relationship/coherence between the different genes. In general, expression of Bmal1 is almost anti-phasic to the expression of Per2, Nr1d2 and Cry2 (10–12 h), whereas expression of Nr1d1 is only phase-delayed by 6–10 h. Interestingly, the peak expression of Bmal1 and Cry1 differs only between 2–4 h ( Mure et al., 2018). Of note, the phase relationship of the clock genes to each other is tissue- and species-specific ( Harbour et al., 2014; Korenčič et al., 2014; Mure et al., 2018; Pett et al., 2018; Yeung et al., 2018). Moreover, there is a stable phase relationship of single-tissue clocks to each other. In general, non-SCN tissues are phase-delayed compared to the SCN. Adrenal gland clocks show a small phase delay compared to those in the liver, whereas liver, adipose tissue, and muscle are similarly phased ( Korenčič et al., 2014; Mure et al., 2018; Yang et al., 2006). Using the human genotype-tissue expression (GTEx) data, most recent studies suggest differences in the phase relationship over the circadian and seasonal cycle as well as a sex-and age-dependency between tissues ( Talamanca et al., 2023; Wucher et al., 2023). The GTEx data set is currently the best multiple tissue-spanning data set available. However, samples in these studies were collected from hospitalised patients after the death which strongly suggests that the patients lacked the circadian synchronous (healthy) state due to the diseased conditions and imposed clinical environment.

Since all tissue clocks contribute to generate coherent circadian rhythms, the phase coherence within the cell, between the cells and among the tissues is potentially important to maintain homeostasis. Genetic mutations or knockouts (KO) of circadian clock genes lead to the development of various diseases ranging from sleep disorders to cardiovascular, mental, and metabolic deteriorations ( Dibner and Schibler, 2015; Kiehn et al., 2017; Valenzuela et al., 2016). In recent years, evidence has been accumulated on the physiological relevance of distinct tissue clocks. Liver-specific Bmal1 KO results in abolished rhythms in glucose regulatory genes creating problems in the maintenance of blood glucose levels especially during fasting periods ( Lamia et al., 2008). Elevated levels of blood lipids were observed in mice with hepatocyte-specific ablation of REV-ERBα/β ( Bugge et al., 2012; Cho et al., 2012) . Skeletal muscle clock regulates glucose metabolism. Mice lacking a functional muscle clock show defective insulin-stimulated glucose uptake attributed to impaired glucose transporter 4 (GLUT4) translocation to plasma membrane ( Dyar et al., 2014; Harfmann et al., 2016). In adipose tissue, circadian clocks regulate several metabolic processes in a time-of-day dependent manner. Adipocyte-specific Bmal1 KO results in obesity and increased rest-phase food intake probably related to altered fatty acid signaling to the hypothalamus ( Paschos et al., 2012). In heart, genetic ablation of Bmal1 results in perturbed systolic function and abnormal glucose utilization ( Young et al., 2014). Lastly, adrenal cortex-specific Bmal1 KO mice display dampened glucocorticoid and locomotor activity rhythms ( Dumbell et al., 2016; Son et al., 2008). Of note, local tissue clocks are not sufficient to drive the local transcriptome independently ( Koronowski et al., 2019). Altogether, these studies emphasize the importance of specific tissue clocks, but they also show that coherence among different tissue rhythms is important to maintain whole body homeostasis.

From a circadian-resonant to a chronodisrupted health state

Circadian clocks throughout our body integrate external and internal rhythmic signals to drive coordinated rhythmic physiological and behavioral outputs. When these inputs are appropriately aligned, the body is in a resonant or synchronous state which enhances resilience to pathogenic insults and thus, stabilize health and wellbeing. However, when zeitgeber input is perturbed, e.g., the occurrence of temporal stimuli is temporally shifted or the duration is altered, chronodisruption may emerge. With regard to different zeitgebers, the LD cycle is considered as the most potent zeitgeber for entraining circadian and seasonal rhythms in most species. In real life, a misalignment of geophysical time and circadian rhythms is observed after rapidly crossing different time zones. This provokes jetlag disorder with disrupted sleep/wake cycles, fatigue and cognitive impairments until the internal clock system is entrained to the new geophysical time. While for the general population jetlag occurs only once in a while, which has little persisting health effects, long-distance flight personnel experiences repeated jetlag which may cause long-term impairments. Most people in modern societies, on the other hand, are exposed to artificial light during natural dark periods. Increasingly more people are experiencing LAN during work in shifts (reviewed in detailed by Touitou et al., 2017). Shift workers commonly have inefficient and poor quality sleep causing fatigue ( Paech et al., 2010). Moreover, forced activity and sleep deprivation in the normal rest phase strongly impacts the immune system ( Irwin et al., 2006), and shift workers are more likely to develop chronic medical conditions like cardiovascular diseases ( Ha and Park, 2005), metabolic syndrome ( Cheng et al., 2021), psychological disorders (reviewed by Cheng & Drake, 2018) and others. Simulations of shift work and abnormal LD cycles in laboratory settings are used to investigate the mechanisms of chronodisruption and will be described in detail in the next sections. Usually feeding and social behavior are also almost exclusively scheduled during active phases of the circadian cycle. They serve as potent entraining stimuli to some CNS and peripheral tissue clocks. Availability of food round-the clock and energy requirement during shift work leads to mistimed food intake in humans that manifests into various chronic metabolic diseases including obesity and type-2 diabetes. Tissues clocks that are strongly influenced by feeding signals, e.g. liver or kidney, can be uncoupled from the SCN inducing disturbance in inter-tissue synchrony ( Damiola et al., 2000; Hara et al., 2001; Stokkan et al., 2001).

All of the above described real-life situations result in chronodisruption which promotes metabolic impairments but also increases the prevalence for major depression, cardiovascular disease, autoimmune disorders, and certain cancers ( Davis et al., 2001; de Bacquer et al., 2009; di Lorenzo et al., 2003; Ellingsen et al., 2007; Erren and Reiter, 2009, 2013; Karlsson et al., 2001; Kawachi et al., 1995; Li et al., 2022; Magrini et al., 2006; Schernhammer et al., 2003). It is important to note that other factors like gender, daily lifestyle, socio-economic status, levels of stress, environmental conditions or daily exposure to certain pollutants and many others probably contribute to the development of many of the above mentioned diseases ( Almetwally et al., 2020; Kautzky-Willer et al., 2016; Loef & Walach, 2012; O’Connor et al., 2021; Radkiewicz et al., 2017; Regitz-Zagrosek et al., 2006; Wang & Geng, 2019). Furthermore, a bi-directional relationship between ageing and a circadian-resonant state is known. Ageing leads to downhill changes in physiology and body homeostasis gradually weakening the circadian system. And in turn a weakened circadian system promotes the age-related morbidities (reviewed in Duffy et al., 2015; Verma et al., 2023; Xu & Li, 2022). Studies are therefore, in demand to test and state the cause-and-effect relationship between the disease and the risk factors. Laboratory studies are usually well controlled, and results can refine our understanding of the cause-and-effect relationship. Fortunately, in the past decade an increasing number of studies investigate the effects in women. However, the participants are young (<50 years old) and healthy in most laboratory studies. More studies including all kind of humankind are needed to disentangle the relevance and cause-and-consequence relationship of circadian disruption are needed.

Although the concept of chronodisruption as a risk factor is established, its pathogenic mechanism remains largely elusive. Chronodisruption can occur at different levels, i.e., (1) a mismatch of external time and internal circadian rhythms ( external-internal desynchrony), (2) phase incoherence between different tissue clocks ( inter-tissue desynchrony), (3) phase incoherence within a tissue clock ( intra-tissue desynchrony) which can further be divided into (3a) phase incoherence among different cells of the same tissue ( inter-cell desynchrony) and, (3b) phase incoherence at the molecular level ( molecular desynchrony) ( Figure 2). In the following sections we will describe these different levels of desynchrony and outline what is known about their physiological consequences. Experimental studies referred to in this review are conducted in adult subjects or animals, unless otherwise specifically stated.

Figure 2. Different levels of circadian desynchrony.

Figure 2.

Misaligned zeitgebers like artificial lighting conditions, mistimed food intake, or activity in the rest phase create dissonance between the internal circadian timing system and geophysical time – a state somewhat vaguely termed as chronodisruption. Desynchrony of circadian rhythms can occur at various levels – from misalignment of internal and external time (as during jetlag) to alterations in the coordination of different clock gene expression rhythms at the cellular level. It is still poorly understood how the different levels of circadian desynchrony contribute to the adverse health effects of chronodisruption. Figure created with BioRender.com

Desynchrony between external and internal rhythms

Misalignment between zeitgebers and internal circadian rhythms evokes chronodisruption ( Figure 2). This state is often caused or enhanced by perturbed zeitgebers such as phase-shifted LD cycles, activity in the inactive phase (shift work), or mistimed food intake, all of which have been suggested to promote metabolic and psychological ailments.

Mismatch between geophysical time and internal biological timing, as observed in jetlag conditions, causes physiological behaviors like sleep, hunger and defecation to occur according to internal timing at non-regular times of the day. However, people in aviation industries who are exposed to repeated jetlag report chronic sleep-inefficiency associated physiological (reviewed in Arendt and Marks, 1982) and cognitive health problems ( Cho et al., 2000). Simulated chronic jetlag conditions induce obesity in mice ( Oike et al., 2015). However, body weight gain is observed only in advanced but not in delayed LD cycles ( Casiraghi et al., 2016). Chronic jetlag retains oscillations but induces phase shifts in clock gene expression rhythms in SCN and liver of mice ( Iwamoto et al., 2014). In laboratory settings, rodents are exposed to non-24-hour LD cycles (T-cycles) to investigate the mechanisms of entrainment. Chronic exposure to short T-cycles (4 h light: 4 h darkness (4:4 LD)) — but not long T-cycles (18:18 LD) — decreases life span. Interestingly, clock deficient mice show no differences in mortality rates under long and short T-cycles. The authors suggest that the combination of specific LD cycles and perturbations of the circadian clock network results in impaired homeostatic regulation impacting longevity ( Park et al., 2012). In mice, T-cycles, both 11.25:11.25 LD and 13.5:13.5 LD, reduce energy efficiency evidenced by higher food intake despite no body weight gain. Animals increase their food consumption during the light phase. Thereby, mice predominantly utilize carbohydrates to fuel the body which hints to an impaired metabolic homeostasis ( West et al., 2017). Under 11:11 LD cycles, rats show dyslipidemia and lowered expression levels of proteins critical for insulin signaling as well as increased levels of enzymes involved in gluconeogenesis in liver indicating metabolic disruptions induced by forced desynchrony ( de Oliveira et al., 2019). Non-24-hour LD cycles result in abolished rhythmicity in heart rate and blood pressure ( Molcan and Zeman, 2017; West et al., 2017). In humans, circadian misalignment evokes an overall increase in blood pressure ( Morris et al., 2016; Scheer et al., 2009). Of note, the loss of rhythmic LD cycles as experienced during LAN or constant light (LL) conditions also impacts circadian outputs such as food intake patterns, energy expenditure and corticosterone rhythms promoting elevated body weight, metabolic impairments and depressive-like behavior ( Coomans et al., 2013; Fonken et al., 2012, 2010; Tapia-Osorio et al., 2013).

Shift workers are forced to be active during their normal rest phase. Such work regimes are often accompanied by food consumption at inappropriate times. Thus, shift workers are simultaneously exposed to various chronodisrupters such as LAN, mistimed food intake and mistimed behavioral rhythms. Such employees show dampened cortisol and testosterone rhythms ( Touitou et al., 1990). Furthermore, shift workers exhibit higher triglyceride and lower HDL (high density lipoprotein) cholesterol levels and higher abdominal obesity than regular day-time workers ( Karlsson et al., 2003). Night shift work can be simulated in rodents by forced activity in the normal resting phase. This shifts activity and food intake into the resting phase. Consequently, daily blood glucose rhythms are abolished, triglyceride rhythms are reversed, and corticosterone levels are transiently increased ( Salgado-Delgado et al., 2008). In laboratory studies, shift work can be simulated by imposed 28-hour days in humans. In such conditions, sleep and food intake patterns are 12 h out of phase from the habitual times within a few days. On these (misaligned) days, participants exhibit completely reversed cortisol rhythms and increased arterial pressure. In addition, they show impaired metabolic homeostasis with increased blood glucose despite increased insulin levels compared to the circadian aligned baseline day ( Scheer et al., 2009). Interestingly, daytime-restricted food consumption prevents the dissociation of body temperature rhythms, a measure of the central clock, and peripheral glucose rhythms. In turn, this prevents detrimental outcomes in glucose tolerance especially in the biological morning in the 28-hour shift work protocol ( Chellappa et al., 2021). The studies show that already short-term chronodisruption generates adverse metabolic and cardiovascular effects. In addition to metabolic and psychological repercussions, far more detrimental effects of chronodisruption induced by shift work are carcinogenesis and malignancy. Numerous studies have shown cancer as a consequence of such a work regime ( Davis et al., 2001; Mazzoccoli et al., 2011; Schernhammer et al., 2003; Viswanathan et al., 2007). However, a recent meta-analysis shows overall no significant association between the two ( Dun et al., 2020). The meta-analysis considers factors like geophysical region, time and gender differences to compare data between different cohorts; however, factors like type of shift work, food intake habits and general health condition of the individual may also play a role in the cancerogenic effects of shift work. Not only shift workers, but even larger parts of the working force face discrepancy in their behavioral cycles between workdays and free days imposing social jetlag. This regular shift in sleep/wake phasing likely represents a condition of chronic circadian misalignment. Magnitude of social jetlag varies over population in terms of chronotype and geographical location preferences ( Roenneberg et al., 2007). The risk of being social jetlagged further increases in places where standard (or local) time largely deviates from solar time (rewieved in Roenneberg et al., 2019). Owing to the present technologically advanced society, social jetlag is highly correlated with people using light emitting smartphones before bedtime ( Hena & Garmy, 2020; Šmotek et al., 2020). People who experience social jetlag experience high sleep debt leading to chronic sleep deprivation and poor sleep quality ( Juda et al., 2013; Sűdy et al., 2019). This is especially stronger in humans with a late chronotype ( Wittmann et al., 2006). This holds true also for young school children. Due to poor sleep quality, social jetlagged people tend to be fatigued more often and have poor alertness with overall poor performance in school or workplace than people with healthy sleep quality ( Haraszti et al., 2014; Moon et al., 2017; Yong et al., 2016). Chronic sleep deprivation in social jetlagged people can further impinge into mental health issues (reviewed in ( Henderson et al., 2019)). People with strong social jetlag show higher cortisol levels and increased resting heart rates ( Rutters et al., 2014). Social jetlag is also associated with increased body mass index and metabolic syndrome ( Roenneberg et al., 2012; Parsons et al., 2015). Studies in mid-aged people showed that social jetlag is associated with altered metabolic risk factors such as, high levels of total cholesterol, triglycerides and fasting glucose and low levels of HDL cholesterol ( Mota et al., 2017; Wong et al., 2015). Unhealthy obese subjects show elevated levels of the inflammatory marker C-reactive protein and the obesity-related biomarker glycated hemoglobin with increased social jetlag ( Parsons et al., 2015). Overall these studies show that circadian misalignment in face of social jetlag is pervasive in every-day life at a population level and has significant mental and metabolic health effects. Food intake, being an important zeitgeber especially for peripheral tissue clocks, disturbs internal resonance of rhythms when occurring at the wrong time-of-day. On the long-term, this may result in obesity and other metabolic disorders. Daytime restricted feeding in nocturnal mice uncouples the liver clock from the SCN ( Damiola et al., 2000; Hara et al., 2001; Stokkan et al., 2001). Food intake only during the light phase, in mice, also phase-shifts the acrophase of genes involved in lipid homeostasis and bile acid metabolism which may cause adverse metabolic outcomes ( Cui et al., 2022). High-caloric food is shown to disrupt daily food intake patterns and rhythms in clock as well as metabolism related genes. Such disruption can be prevented when the high-caloric diet is only available during the night in nocturnal mice. This intervention also reduces metabolic diseases like hepatic steatosis and hypercholesterolemia observed in ad libitum fed mice ( Chaix et al., 2014).

In modern societies, several zeitgebers are misaligned to each other and to the endogenous circadian clock. When mice are subjected to a combined 14:14 LD with a 12:12 fasting/feeding (FF) protocol they become dynamically exposed to aligned and misaligned zeitgeber conditions. Surprisingly, mice transiently show weight gain and impaired glucose tolerance on the day of aligned zeitgeber input (i.e., when feeding coincides with the dark phase) compared to the day of misaligned zeitgeber input (feeding during the light phase). Such zeitgeber misalignment further evokes a change in the phasing of different tissue clocks ( Heyde & Oster, 2019). In conclusion, misalignment between internal and external rhythms is associated with alterations in metabolic and psychological states and may promote obesity, diabetes, cardiovascular diseases, depression, anxiety, and cancer.

Inter-tissue desynchrony

Desynchrony caused due to external-internal misalignment can impinge further than just the systemic level by inducing phase incoherence between different tissue clocks and circadian tissue outputs. Tissues differ in their susceptibility to external and hormonal signals from each other. Thus, they adapt to changed input rhythms at a different pace inducing misalignment between tissue clocks and rhythms – a state termed as inter-tissue desynchrony.

Circadian homeostasis is maintained by communication and synchronization between and among central and peripheral clocks. Ablation of the SCN eliminates diurnal variation in clock gene expression in peripheral tissues including liver, kidney, heart, skeletal muscle, and spleen. Parabiosis of SCN-lesioned and intact animals re-induces day-night variation in SCN-lesioned mice in liver and kidney but not in heart, skeletal muscle and spleen. This emphasizes the differential dependence on blood-borne signals of distinct tissue clocks ( Guo et al., 2005). However, recent studies, in mice, observed that in LD the SCN clock is dispensable for clock network synchronization but becomes necessary under constant darkness (DD) conditions. Animals with an ablated SCN clock show internal desynchrony, i.e., phase incoherence between different tissue clocks, within a few days under DD conditions ( Husse et al., 2011; Izumo et al., 2014; Kolbe et al., 2019; van der Vinne et al., 2018). However, effects of internal desynchrony on body weight seem to be dependent on the Cre driver line used ( Kolbe et al., 2019; van der Vinne et al., 2018). Of note, internal desynchrony and weight gain are prevented by maintaining the mice on time-restricted feeding schedules under DD conditions highlighting the importance of food intake timing for peripheral clock synchronization ( Kolbe et al., 2019).

Many studies use constant light (LL) or repeated jetlag conditions to investigate the effects of abnormal light cycles on different tissue clocks. LL conditions not only weaken the central clock but also disrupt phase alignment between different tissues. Mice subjected to LL show immediate dampening in the amplitude of SCN rhythms ( Coomans et al., 2013). LL housing maintains rhythmic PER2 oscillations in liver and kidney but distinctly reduces amplitude and broadly distributes phases of its rhythm. In submandibular gland, this rhythm is lost in a significantly higher number of animals ( Hamaguchi et al., 2015). On transcriptional level, the liver and colon of adult male rats, display abolished diurnal expression of clock genes ( Polidarová et al., 2011). In addition, to clock outputs, LL conditions eliminate rhythmicity of numerous genes involved in lipid metabolism in liver and white adipose tissue (WAT) in mice. Decreases in amplitude and average levels of gene expression are more pronounced in the liver compared to WAT, indicating higher sensitivity of metabolic and clock gene transcription in the liver to constant light conditions ( Yamamuro et al., 2020). In jetlag experiments, distinct tissue clock genes of mice display differences in entrainment speed to the shifted LD schedule. Here, the misalignment is temporary and is resolved when tissue clocks re-align with the new LD cycle. SCN and adrenal rapidly adapt to the changed lighting schedule whereas liver and kidney re-entrain at a slower pace, with the pancreas clock being the slowest ( Kiessling et al., 2010). PER1 oscillations in the arcuate nucleus quickly entrain upon a phase-delaying jetlag whereas the paraventricular nucleus (PVN) and pineal gland are faster to re-entrain upon a phase-advancing jetlag in in vitro studies ( Abe et al., 2002). These studies indicate that it is likely that jetlag induces internal desynchronization not only between central and peripheral clocks but also between clocks in different parts of the central nervous systems. The sleep/wake cycle is one of the behavioral outputs driven by the SCN. Two weeks of timed-sleep restriction, mimicking human night shift work, have only moderate effects on the levels of clock gene expression in the SCN but markedly change expression levels and phasing in the liver. Moreover, circadian liver transcriptome data show pronounced changes especially in glucose metabolism related genes which results in impaired performance in gluconeogenesis and increased glycogen storage in the beginning of the dark phase. Time-restricted feeding to the normal active phase can prevent the effects of time-restricted sleeping on hepatic clock gene expression and metabolic outcomes ( Barclay et al., 2012).

Peripheral clocks show tissue-specific pace in feeding-induced phase resetting. Upon daytime restricted feeding, phases of the clocks in liver, kidney, heart, lungs and pancreas in mice are transiently misaligned to each other. However, all these tissues entrain to the new feeding schedule within a week ( Damiola et al., 2000; Hara et al., 2001; Opperhuizen et al., 2016; Stokkan et al., 2001). The dorsomedial hypothalamus of rats also entrains to daytime restricted feeding ( Verwey and Amir, 2011). The SCN clock, however, stays aligned to the LD cycle ( Damiola et al., 2000; Hara et al., 2001; Opperhuizen et al., 2016; Stokkan et al., 2001). In contrast, clock gene rhythms are abolished in lateral hypothalamus, skeletal muscle and arcuate nucleus in rats fed during the light period ( Opperhuizen et al., 2016; Wang et al., 2017). The studies show that feeding time has differential effects on SCN and non-SCN CNS as well as peripheral clocks, thus, weakening inter-tissue phase coherence — which likely interferes with the maintenance of metabolic homeostasis.

In addition to the mistiming of food intake, changes in diet composition can induce internal desynchrony. High-fat diet (HFD) feeding is known to disrupt behavioral and physiological rhythms, but the mechanisms are still not fully understood. It is likely that internal desynchronization of circadian rhythms plays an important role. Long-term HFD feeding in mice alters clock gene expression rhythms in liver and adipose tissue ( Kohsaka et al., 2007; Yamamuro et al., 2020). Minimal effects on clock gene rhythms were observed in MBH, a center which controls hunger and satiety, and the medial prefrontal cortex, a region involved in cognitive functions ( Kohsaka et al., 2007; Tognini et al., 2020). Of note, HFD reduces the total number of oscillating genes, significantly advances the acrophase and dampens the amplitude of rhythmic genes, but not clock genes, in the SCN demonstrating that the SCN is susceptible to food signals ( Tognini et al., 2020). The liver clock is not only susceptible to feeding time but also to food composition. In vitro studies confirm a high susceptibility of the liver clock to food-related signals whereas other tissue clocks such as lung, pituitary and arcuate complex are less receptive ( Pendergast et al., 2013). Food related signals which modulate clock resetting include insulin ( Chaves et al., 2014; Crosby et al., 2019; Sato et al., 2014; Sun et al., 2015; Tahara et al., 2011), oxyntomodulin ( Jorgensen et al., 2007; Landgraf et al., 2015), and many others (reviewed in Reinke and Asher, 2019). Additionally, glucose, amino acids and other metabolites can also phase-shift or entrain circadian clocks (reviewed in Froy, 2007). As such, it can be speculated that re-entrainment of a distinct tissue clock is dependent on its susceptibility to clock modulators. Altogether, the timing of food intake and food composition can rapidly lead to inter-tissue phase incoherences which might be transient or permanent.

Under diverging zeitgeber input (14:14 LD cycle combined with a 12:12 FF cycle) in mice, liver and epididymal WAT clocks align with the FF schedule whereas adrenal and SCN tissue clocks are highly impacted by the extended LD cycle. Thus, animals suffer from internal desynchrony between distinct tissue clocks and circadian output. Interestingly, mice do not gain weight but show circulating body weight changes dependent on the transient state of zeitgeber (mis)alignment ( Heyde & Oster, 2019). Such internal desynchrony is already observed after four days of 14:14 LD/12:12 FF conditions and is less pronounced when feeding is restricted to the dark phase under 14:14 LD conditions ( Heyde & Oster, 2022).

Taken together, changes in the external environment or (forced) changes in the behavioral cycle result in phase incoherences between different oscillators which may cause disruption of rhythmic output eventually resulting in metabolic impairments. However, more studies investigating the effect of phase incoherences between certain tissues for e.g. studies comparing clock gene expression and protein levels in SCN, extra-SCN CNS regions and peripheral tissues under perturbed zeitgeber inputs and enforced activity are needed to fully elucidate the physiological consequences.

Intra-tissue desynchrony

Tissues contain numerous cell types with each cell containing an autonomous molecular clock. Synchronized cells give rise to overt circadian rhythms on the tissue level. Cells integrate several signals to produce coherent rhythms. Phase incoherencies among clocks of different cells within a tissue cause inter-cell desynchrony. Moreover, at the single-cell level the phasing of distinct clock gene rhythms to each other can be disrupted giving rise to molecular desynchrony ( Figure 2). Current standard techniques face limitations in distinguishing between cellular and molecular levels of chronodisruption. Thus, in this section we describe both levels together as intra-tissue desynchrony.

With regards to desynchrony caused between different cells the best-studied tissue is the SCN. The SCN consists of two major regions with light responsive neurons in the ventrolateral and light unresponsive ones in the dorsomedial part ( Van den Pol, 1980). Abrupt delaying or advancing of LD rhythms rapidly causes incoherence of synchronous rhythms of clock genes between the two SCN regions. In rats, clock genes in the ventrolateral SCN are quick to show large shifts compared to the dorsomedial region which shifts slower and takes a longer time to resynchronize to the new lighting schedule ( Nagano et al., 2003). Shifts in lighting conditions also disrupt phase relation, i.e., peak phase differences between dorsal and ventral parts of the SCN. After a phase-delaying shift in the LD cycle, peak phase differences between the regions increase but return to pre-phase shift conditions within three days. In contrast, a phase-advancing shift in the LD cycle leads to reversed phase relations between the regions and the pre-shift state is reached only after six days ( Nakamura et al., 2005). A recent study on mice with imposed delays in the LD cycle investigated Per2 expression at a single-cell level throughout the SCN. The ventral part contains about 40% fast phase-shifting and 60% slow phase-shifting neurons while the dorsal SCN almost exclusively comprises slow-shifting neurons ( van Beurden et al., 2022).

As mentioned above, phase incoherence can also occur at the level of the molecular clock work itself. In the SCN of mice, Per1 and Per2 rhythms more rapidly react to LD shift advances compared to Cry1 whereas all three genes react rapidly to LD delays ( Reddy et al., 2002). Similar transient dissociation is observed between Per1 and Bmal1 rhythms in mice exposed to a single light pulse during DD conditions. Per1 is instantaneously phase-delayed together with activity onset while Bmal1 shifts more gradually in parallel with activity offset ( Ono et al., 2017).

Desynchrony within clock gene expression is also observed in peripheral tissue clocks. HFD attenuates amplitude of clock gene profiles in MBH, adipose and liver tissue. Mice studies show that in the MBH, although Per2 and Bmal1 show robust rhythms, Clock RNA expression is completely abolished. In contrast, Clock is diurnally rhythmic in both fat and liver but with altered amplitude. Additionally, Bmal1 is attenuated throughout the 24-hour day, but Per2 shows decreased amplitudes only in the dark phase ( Kohsaka et al., 2007). Notably, not only incoherence in phasing of clock genes but also differences in amplitude of their rhythm may contribute to desynchrony. However, it has to be investigated whether changes in amplitude result from impaired clock gene expression on a single-cell level or broader averaging over phase-distributed cells. Amplitude dampening of clock gene rhythms in different tissues may also be an effect of attenuated feeding rhythms ( Kohsaka et al., 2007). Notably, mice, fed a HFD restricted to the active phase, show no dampening in daily feeding rhythms, an improved glucose tolerance, decreased adiposity as well as insulin and leptin resistance and lower inflammation than mice fed HFD ad libitum. These mice also show no attenuation in diurnal expression of circadian oscillators ( Hatori et al., 2012; Sherman et al., 2012). Unhealthy diet composition, i.e., high-fat or high-carbohydrate, adversely affects metabolism and physiology which can be prevented by nighttime restricted feeding ( Chaix et al., 2014). Recent studies show that time of food intake and diet composition impact clock and metabolism-related gene expression in a tissue-specific manner ( de Goede et al., 2018; Reznick et al., 2013).

Differential pace of entrainment is observed for distinct clock genes upon jetlag conditions. In the SCN, somatosensory cortex, and adrenals of mice, Per1 and Per2 rapidly entrain to the new LD schedule whereas entrainment of Dbp and Nr1d1 is slower. Interestingly, in the liver, Per1 and Dbp re-entrainment is slower compared to Per2 expression rhythms. Bmal1 shows the slowest pace of entrainment in all tissues. Of note, in the pancreas, Nr1d1 is quickly re-adjusted while Per1 and Per2 are slower ( Kiessling et al., 2010) . Period genes are rapidly induced by light in the SCN. Per1 is almost induced with the same kinetics as c-fos (within 15–30 min) compared to Per2 (60 min) claiming Per1 as an immediate early gene ( Albrecht et al., 1997; Shigeyoshi et al., 1997). Per2 reacts slower and takes longer to stably entrain upon a 6-hour LD cycle phase shift ( Reddy et al., 2002). Thus, it cannot be excluded that the gene- and tissue-specific differences in re-entrainment are partly due to the different characteristics of the clock genes. Under dual-zeitgeber intervention conditions, a higher degree of phase incoherence between clock genes is observed under LD-28/FF-28 compared to LD-28/FF-24 conditions in liver, adrenal, and epididymal WAT of mice ( Heyde & Oster, 2022). It is plausible that clock genes also vary in speed of resetting upon different cues like feeding and feeding-mediated signals. After 24 hr of fasting, for example, only Per2, Dec1, and Cry1 were expressed within 1-4 hrs of resumed feeding while other clock genes showed no effects until 8 hrs ( Oike et al., 2011).

Exploring circadian characteristics at the single-cell level within a tissue is technically challenging and not thoroughly studied yet. In contrast, more evidence on phase incoherence between different clock genes within a tissue is arising. Both levels of intra-tissue desynchrony might impinge on the circadian output of the tissue affecting health, but more studies are needed to elucidate the specific impact.

Therapeutic approaches and future directions

Circadian clock network coordination is disrupted by alterations in zeitgeber input rhythms. Numerous studies show that such perturbation may result in metabolic, mental, and cardiovascular impairments. It is important to consider that these ailments arise from circadian misalignment which occurs at different levels of organization. However, causality has yet to be proven. Disruption of circadian rhythms usually emerge due to misalignment between external time cues and internal time. Such misalignment promotes internal desynchrony between distinct tissue clocks. Although inter-tissue desynchrony is an established concept, experimental evidence is still sparse and, therefore, the physiological outcomes are not well understood. It can be speculated that desynchrony between cellular clocks of the same tissue contributes to dampening of circadian tissue output, which consequently impacts homeostasis. Again, so far this has not been proven directly. Finally, it remains elusive whether such perturbed circadian output is caused by impaired rhythmic transcription and translation at the cellular level or by phase incoherence between cells within the tissue.

It will be important to understand the mechanisms and effects of internal desynchrony at different levels to develop targeted therapeutic approaches that can prevent chronodisruption-associated diseases. Differentiating the physiological impact of desynchrony on each level may be technically challenging and good experimental paradigms dissecting the different forms of desynchrony are still sparse. As one example, the development of transgenic mice harboring luciferase reporters coupled to a clock gene promotor enabled researchers to investigate effects of zeitgeber intervention in real-time in freely moving animals ( Ono et al., 2015; Saini et al., 2013; Yamaguchi et al., 2016). Recently, fluorescent clock-reporters were used to track circadian oscillation in SCN neuronal sub-populations in vivo ( Mei et al., 2018). However, so far it is not possible to study changes on single-cell levels in vivo. In vitro, this is overcome by introducing two reporters. Here, one fluorescent clock-reporter gives information on the phase of the clock while the second fluorescent reporter is used to track single cells ( Manella et al., 2021). Future developments in this direction might enable us to study the impact of zeitgeber input on single cells in vivo and may help in understanding the physiological effects. Chimeric animals, having fast clocks, i.e. shorter period than 24 h, in almost all tissues but 24-hour clocks in distinct tissues, may be useful to study the consequences of misalignment between tissues ( Maywood et al., 2021).

Furthermore, tissue-specific clock KO mice show impairments in metabolism and physiology ( Dyar et al., 2014; Lamia et al., 2008; Paschos et al., 2012). However, in these studies it was not addressed whether these animals suffer from inter-tissue desynchrony and if so whether metabolic impairments may be promoted by this. Furthermore, our established dual-zeitgeber desynchrony paradigms may be useful to study the effects of multi-tissue misalignment on physiological and behavioral outcome ( Heyde & Oster, 2019, 2022). The advantage of animal over human studies is the accessibility to various tissues to study tissue misalignment. However, translation might not be trivial as animals such as rodents differ in the metabolic rate and might be less prone to develop certain ailments compared to humans. In humans, internal phase can be determined by sampling a limited number of samplings of blood, urine or saliva measuring melatonin, cortisol or a set of genes (reviewed in Dijk & Duffy, 2020). However, these measures are representing the phase of the SCN only. We lack biomarkers for robustly and specifically determining phases of peripheral tissues in a non-invasive, time-saving and non-expensive manner to study inter-tissue (de)synchrony and its consequences among all genders, ages, ethnicities and lifestyles. With the help of such biomarkers, one could investigate to which extent internal desynchrony promotes adverse health effects.

To date, therapeutical approaches to increase internal synchrony are limited and not targeted but instead impact clocks throughout the body which may not in all cases be beneficial. Future studies should investigate whether modulation or weakening of distinct tissue clocks may be beneficial under chronodisruptive zeitgeber conditions. First findings suggest that weakening of the SCN clock or intra-tissue coupling might be beneficial for re-entrainment to shifted LD cycles; however, whole-body homeostasis was not studied ( An et al., 2013; Yamaguchi et al., 2013; Pilorz et al., 2014). Bright-light therapy, affecting the SCN clock, reduces the misalignment of geophysical time and internal rhythms. It is shown to improve circadian rhythms and poor sleep quality in elderly, Alzheimer patients and people with major depression ( Yamadera et al., 2000; Terman et al., 2001; Neikrug et al., 2012; Lam et al., 2016; Rubiño et al., 2020). Humoral signals impact on specific tissue clocks. However, we know too little about how the different tissue clocks are synchronized. Melatonin increases sleep quality and can entrain blind people to a 24-hour day ( Hack et al., 2003; Redman, 1997; Sack et al., 2000). Melatonin-mediated effects were attributed to the inhibiting and phase-shifting effect on SCN activity, but recently its effects on peripheral clock gene expression were shown ( Jung-Hynes et al., 2010; Torres-Farfan et al., 2006). Timed administration of melatonin might be beneficial to treat shift work-associated sleep disorders, but it is unknown how the circadian clock system is affected ( Carriedo-Diez et al., 2022). One of the best studied hormones affecting tissue clocks are glucocorticoids. Glucocorticoid receptors are expressed in almost all tissues. While most tissue clocks can be reset by glucocorticoids, the SCN clock is unresponsive due to low receptor expression ( Rosenfeld et al., 1988; Reddy et al., 2007; Kiessling et al., 2010; Balsalobre et al., 2000). Glucocorticoids also regulate the expression of genes involved in glucose and lipid regulatory pathways in liver and adipose tissue, thereby controlling the maintenance of energy homeostasis ( Guia et al., 2014). Time of food consumption has a strong synchronizing effect especially on peripheral tissue clocks. In humans, time-restricted eating was exploited for its beneficial effect on whole body homeostasis in healthy adults and participants with metabolic syndrome (reviewed in Manoogian et al., 2022; Świątkiewicz et al., 2021). In general, eating-intervention decreases body weight – possibly due to decreased energy intake – and in several studies ameliorates metabolism. Time-restricted food intake to the normal active phase obviates body weight gain and metabolic impairments in rats under simulated night shift work ( Salgado-Delgado et al., 2010). Recent studies show that time-restricted eating to normal active phase prevent some metabolic impairments in healthy adults under chronodisruptive laboratory settings and shift worker in real life conditions ( Chellappa et al., 2021; Grant et al., 2017; Manoogian, Zadourian, et al., 2022). Together, time-restricted eating may be a powerful tool to prevent adverse metabolic outcomes. Energy state-related hormones such as insulin, leptin, glucagon, ghrelin, and adiponectin are capable to impact clocks but mainly control energy homeostasis ( Martinez-Merlos et al., 2004; Prosser and Bergeron, 2003; Sun et al., 2015; Tahara et al., 2011; Tsang et al., 2020; Yannielli et al., 2007). Rhythmic administration of adiponectin rescues diurnal variation in gene expression in the MBH and leads to body weight reduction ( Tsang et al., 2020). These findings indicate that hormones may be useful to synchronize clocks and clock output in a tissue-specific manner which in turn ameliorates health outcomes. However, caution must be taken since most hormonal receptors are expressed in numerous tissues and, thus, it is impossible to target specific tissue clocks which in turn, may lead to undesirable side effects. Additionally, it is important to note that not all tissues are susceptible to food-related signals but might be impacted by other zeitgebers. Moreover, recent findings demonstrate that non-circadian signals alter tissue transcriptome rhythms without affecting the local clock. For example, elevated thyroid hormone levels result in dampened or abolished rhythms in glucose and lipid metabolism related genes in the liver but have no effect on clock gene expression ( de Assis et al., 2022).

Furthermore, despite exploring the potential use of hormones to improve internal synchrony, the efficacy of synthetic clock modulators gained attention in recent years. One of such, a REV-ERB agonist, may be useful to target metabolic impairments but it will also affect clocks throughout the body and side effects are not yet examined ( Solt et al., 2012). The ROR agonist nobiletin enhances circadian rhythm amplitude and improves energy homeostasis preventing metabolic syndrome in diet-challenged mice ( He et al., 2016). There are many more small-molecule modulators of the circadian clock and the therapeutic efficacy of such is proven or under investigation (reviewed in Ribeiro et al., 2021). To date, the clock machinery is assumed to be the same in all tissues, but there is evidence indicating that it is regulated in a tissue-specific manner ( Mure et al., 2018). Global administration of small-molecule modulators of the circadian clock may have a differential effect on intra-tissue synchrony in which it will be beneficial for one tissue clock while worsening the phase relationship for another.

Last but not least, timing of treatment impacts success of therapy ( Albuquerque et al., 2021; Montaigne et al., 2018; Ohdo, 2010). Therefore, understanding the complex mechanisms of clock network (de)synchronization, its consequences and how this can be manipulated may also have relevance for medical practice.

Funding Statement

This work was supported by a grant of the German Research Foundation (DFG; RTG-1957) to HO and a fellowship of the German Academic Exchange Service (DAAD) to FA.

The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.

[version 2; peer review: 2 approved]

Data availability

No data are associated with this article.

References

  1. Abe M, Herzog ED, Yamazaki S, et al. : Circadian Rhythms in Isolated Brain Regions. J. Neurosci. 2002;22:350–356. 10.1523/JNEUROSCI.22-01-00350.2002 [DOI] [PMC free article] [PubMed] [Google Scholar]
  2. Akashi M, Takumi T: The orphan nuclear receptor RORα regulates circadian transcription of the mammalian core-clock Bmal1. Nat. Struct. Mol. Biol. 2005;12:441–448. 10.1038/nsmb925 [DOI] [PubMed] [Google Scholar]
  3. Albrecht U, Sun ZS, Eichele G, et al. : A Differential Response of Two Putative Mammalian Circadian Regulators, mper1and mper2, to Light. Cell. 1997;91(7):1055–1064. 10.1016/S0092-8674(00)80495-X [DOI] [PubMed] [Google Scholar]
  4. Albuquerque T, Neves AR, Quintela T, et al. : Exploring the link between chronobiology and drug delivery: Effects on cancer therapy. J. Mol. Med. 2021;99(10):1349–1371. 10.1007/s00109-021-02106-x [DOI] [PubMed] [Google Scholar]
  5. Almetwally AA, Bin-Jumah M, Allam AA: Ambient air pollution and its influence on human health and welfare: An overview. Environ. Sci. Pollut. Res. 2020;27(20):24815–24830. 10.1007/s11356-020-09042-2 [DOI] [PubMed] [Google Scholar]
  6. An S, Harang R, Meeker K, et al. : A neuropeptide speeds circadian entrainment by reducing intercellular synchrony. Proc. Natl. Acad. Sci. U. S. A. 2013;110:E4355–E4361. 10.1073/pnas.1307088110 [DOI] [PMC free article] [PubMed] [Google Scholar]
  7. Arendt J, Marks V: Physiological changes underlying jet lag. Br. Med. J. (Clin. Res. Ed.). 1982;284:144–146. 10.1136/bmj.284.6310.144 [DOI] [PMC free article] [PubMed] [Google Scholar]
  8. Aschoff J: Circadian Rhythms in Man: A self-sustained oscillator with an inherent frequency underlies human 24-hour periodicity. Science. 1965;148:1427–1432. 10.1126/science.148.3676.1427 [DOI] [PubMed] [Google Scholar]
  9. Aschoff J, Gerecke U, Wever R: DESYNCHRONIZATION OF HUMAN CIRCADIAN RHYTHMS. Jpn. J. Physiol. 1967;17:450–457. 10.2170/jjphysiol.17.450 [DOI] [PubMed] [Google Scholar]
  10. Bae M-J, Song Y-M, Shin J-Y, et al. : The Association Between Shift Work and Health Behavior: Findings from the Korean National Health and Nutrition Examination Survey. Korean J. Fam. Med. 2017;38(2):86–92. 10.4082/kjfm.2017.38.2.86 [DOI] [PMC free article] [PubMed] [Google Scholar]
  11. Balsalobre A, Brown SA, Marcacci L, et al. : Resetting of circadian time in peripheral tissues by glucocorticoid signaling. Science. 2000;289:2344–2347. 10.1126/science.289.5488.2344 [DOI] [PubMed] [Google Scholar]
  12. Balsalobre A, Damiola F, Schibler U: A Serum Shock Induces Circadian Gene Expression in Mammalian Tissue Culture Cells. Cell. 1998;93:929–937. 10.1016/S0092-8674(00)81199-X [DOI] [PubMed] [Google Scholar]
  13. Barclay JL, Husse J, Bode B, et al. : Circadian Desynchrony Promotes Metabolic Disruption in a Mouse Model of Shiftwork. PLoS One. 2012;7:e37150. 10.1371/journal.pone.0037150 [DOI] [PMC free article] [PubMed] [Google Scholar]
  14. Barrett R, Takahashi J: Temperature compensation and temperature entrainment of the chick pineal cell circadian clock. J. Neurosci. 1995;15:5681–5692. 10.1523/JNEUROSCI.15-08-05681.1995 [DOI] [PMC free article] [PubMed] [Google Scholar]
  15. Barul C, Richard H, Parent M-E: Night-Shift Work and Risk of Prostate Cancer: Results From a Canadian Case-Control Study, the Prostate Cancer and Environment Study. Am. J. Epidemiol. 2019;188(10):1801–1811. 10.1093/aje/kwz167 [DOI] [PMC free article] [PubMed] [Google Scholar]
  16. Behrens T, Burek K, Rabstein S, et al. : Impact of shift work on the risk of depression. Chronobiol. Int. 2021;38(12):1761–1775. 10.1080/07420528.2021.1962903 [DOI] [PubMed] [Google Scholar]
  17. Boivin DB, Duffy JF, Kronauer RE, et al. : Dose-response relationships for resetting of human circadian clock by light. Nature. 1996;379:540–542. 10.1038/379540a0 [DOI] [PubMed] [Google Scholar]
  18. Bøggild H, Suadicani P, Hein HO, et al. : Shift work, social class, and ischaemic heart disease in middle aged and elderly men; a 22 year follow up in the Copenhagen Male Study. Occup. Environ. Med. 1999;56(9):640–645. 10.1136/oem.56.9.640 [DOI] [PMC free article] [PubMed] [Google Scholar]
  19. Bookout AL, Groot MHM, Owen BM, et al. : FGF21 regulates metabolism and circadian behavior by acting on the nervous system. Nat. Med. 2013;19:1147–1152. 10.1038/nm.3249 [DOI] [PMC free article] [PubMed] [Google Scholar]
  20. Boudreau P, Dumont GA, Boivin DB: Circadian adaptation to night shift work influences sleep, performance, mood and the autonomic modulation of the heart. PLoS One. 2013;8:e70813. 10.1371/journal.pone.0070813 [DOI] [PMC free article] [PubMed] [Google Scholar]
  21. Bugge A, Feng D, Everett LJ, et al. : Rev-erbα and Rev-erbβ coordinately protect the circadian clock and normal metabolic function. Genes Dev. 2012;26:657–667. 10.1101/gad.186858.112 [DOI] [PMC free article] [PubMed] [Google Scholar]
  22. Buhr ED, Takahashi JS, et al. : Molecular components of the Mammalian circadian clock. Handb. Exp. Pharmacol. 2013;217:3–27. 10.1007/978-3-642-25950-0_1 [DOI] [PMC free article] [PubMed] [Google Scholar]
  23. Buijs RM, Markman M, Nunes-Cardoso B, et al. : Projections of the suprachiasmatic nucleus to stress-related areas in the rat hypothalamus: a light and electron microscopic study. J. Comp. Neurol. 1993;335:42–54. 10.1002/cne.903350104 [DOI] [PubMed] [Google Scholar]
  24. Buijs RM, Wortel J, Van Heerikhuize JJ, et al. : Anatomical and functional demonstration of a multisynaptic suprachiasmatic nucleus adrenal (cortex) pathway. Eur. J. Neurosci. 1999;11:1535–1544. 10.1046/j.1460-9568.1999.00575.x [DOI] [PubMed] [Google Scholar]
  25. Cailotto C, La Fleur SE, Van Heijningen C, et al. : The suprachiasmatic nucleus controls the daily variation of plasma glucose via the autonomic output to the liver: are the clock genes involved? Eur. J. Neurosci. 2005;22:2531–2540. 10.1111/j.1460-9568.2005.04439.x [DOI] [PubMed] [Google Scholar]
  26. Carriedo-Diez B, Tosoratto-Venturi JL, Cantón-Manzano C, et al. : The Effects of the Exogenous Melatonin on Shift Work Sleep Disorder in Health Personnel: A Systematic Review. Int. J. Environ. Res. Public Health. 2022;19:10199. 10.3390/ijerph191610199 [DOI] [PMC free article] [PubMed] [Google Scholar]
  27. Casiraghi LP, Alzamendi A, Giovambattista A, et al. : Effects of chronic forced circadian desynchronization on body weight and metabolism in male mice. Physiol. Rep. 2016;4:e12743. 10.14814/phy2.12743 [DOI] [PMC free article] [PubMed] [Google Scholar]
  28. Chaix A, Zarrinpar A, Miu P, et al. : Time-Restricted Feeding Is a Preventative and Therapeutic Intervention against Diverse Nutritional Challenges. Cell Metab. 2014;20:991–1005. 10.1016/j.cmet.2014.11.001 [DOI] [PMC free article] [PubMed] [Google Scholar]
  29. Chakir I, Dumont S, Pévet P, et al. : Pineal melatonin is a circadian time-giver for leptin rhythm in Syrian hamsters. Front. Neurosci. 2015;9:190. 10.3389/fnins.2015.00190 [DOI] [PMC free article] [PubMed] [Google Scholar]
  30. Chaves I, Horst GTJ, Schellevis R, et al. : Insulin-FOXO3 Signaling Modulates Circadian Rhythms via Regulation of Clock Transcription. Curr. Biol. 2014;24:1248–1255. 10.1016/j.cub.2014.04.018 [DOI] [PubMed] [Google Scholar]
  31. Cheifetz PN: The daily rhythm of the secretion of corticotrophin and corticosterone in rats and mice. J. Endocrinol. 1971;49:xi–xii. [PubMed] [Google Scholar]
  32. Chellappa SL, Morris CJ, Scheer FAJL: Circadian misalignment increases mood vulnerability in simulated shift work. Sci. Rep. 2020;10:18614. 10.1038/s41598-020-75245-9 [DOI] [PMC free article] [PubMed] [Google Scholar]
  33. Chellappa SL, Qian J, Vujovic N, et al. : Daytime eating prevents internal circadian misalignment and glucose intolerance in night work. Sci. Adv. 2021;7:eabg9910. 10.1126/sciadv.abg9910 [DOI] [PMC free article] [PubMed] [Google Scholar]
  34. Cheng P, Drake CL: Psychological Impact of Shift Work. Curr. Sleep Medicine Rep. 2018;4:104–109. 10.1007/s40675-018-0114-7 [DOI] [PMC free article] [PubMed] [Google Scholar]
  35. Cheng W-J, Liu C-S, Hu K-C, et al. : Night shift work and the risk of metabolic syndrome: Findings from an 8-year hospital cohort. PLoS One. 2021;16:e0261349. 10.1371/journal.pone.0261349 [DOI] [PMC free article] [PubMed] [Google Scholar]
  36. Cho H, Zhao X, Hatori M, et al. : Regulation of circadian behaviour and metabolism by REV-ERB-α and REV-ERB-β. Nature. 2012;485:123–127. 10.1038/nature11048 [DOI] [PMC free article] [PubMed] [Google Scholar]
  37. Cho K, Ennaceur A, Cole JC, et al. : Chronic Jet Lag Produces Cognitive Deficits. J. Neurosci. 2000;20:RC66–RC66. 10.1523/JNEUROSCI.20-06-j0005.2000 [DOI] [PMC free article] [PubMed] [Google Scholar]
  38. Cipolla-Neto J, Amaral FG, Afeche SC, et al. : Melatonin, energy metabolism, and obesity: A review. J. Pineal Res. 2014;56(4):371–381. 10.1111/jpi.12137 [DOI] [PubMed] [Google Scholar]
  39. Coomans CP, Berg SAA, Houben T, et al. : Detrimental effects of constant light exposure and high-fat diet on circadian energy metabolism and insulin sensitivity. FASEB J. 2013;27:1721–1732. 10.1096/fj.12-210898 [DOI] [PubMed] [Google Scholar]
  40. Crosby P, Hamnett R, Putker M, et al. : Insulin/IGF-1 Drives PERIOD Synthesis to Entrain Circadian Rhythms with Feeding Time. Cell. 2019;177:896–909.e20. 10.1016/j.cell.2019.02.017 [DOI] [PMC free article] [PubMed] [Google Scholar]
  41. Cui LN, Coderre E, Renaud LP: Glutamate and GABA mediate suprachiasmatic nucleus inputs to spinal-projecting paraventricular neurons. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2001;281:R1283–R1289. 10.1152/ajpregu.2001.281.4.R1283 [DOI] [PubMed] [Google Scholar]
  42. Cui Y, Li S, Yin Y, et al. : Daytime restricted feeding promotes circadian desynchrony and metabolic disruption with changes in bile acids profiles and gut microbiota in C57BL/6 Male Mice. J. Nutr. Biochem. 2022;109:109121. 10.1016/j.jnutbio.2022.109121 [DOI] [PubMed] [Google Scholar]
  43. Dai J, Swaab DF, Buijs RM: Distribution of vasopressin and vasoactive intestinal polypeptide (VIP) fibers in the human hypothalamus with special emphasis on suprachiasmatic nucleus efferent projections. J. Comp. Neurol. 1997;383:397–414. [DOI] [PubMed] [Google Scholar]
  44. Damiola F, Le Minh N, Preitner N, et al. : Restricted feeding uncouples circadian oscillators in peripheral tissues from the central pacemaker in the suprachiasmatic nucleus. Genes Dev. 2000;14:2950–2961. 10.1101/gad.183500 [DOI] [PMC free article] [PubMed] [Google Scholar]
  45. Davis S, Mirick DK, Stevens RG: Night Shift Work, Light at Night, and Risk of Breast Cancer. JNCI J. Natl. Cancer Inst. 2001;93:1557–1562. 10.1093/jnci/93.20.1557 [DOI] [PubMed] [Google Scholar]
  46. Assis LVM, Harder L, Lacerda JT, et al. : Rewiring of liver diurnal transcriptome rhythms by triiodothyronine (T3) supplementation. elife. 2022;11:e79405. 10.7554/eLife.79405 [DOI] [PMC free article] [PubMed] [Google Scholar]
  47. Bacquer D, Van Risseghem M, Clays E, et al. : Rotating shift work and the metabolic syndrome: a prospective study. Int. J. Epidemiol. 2009;38:848–854. 10.1093/ije/dyn360 [DOI] [PubMed] [Google Scholar]
  48. Goede P, Sen S, Oosterman JE, et al. : Differential effects of diet composition and timing of feeding behavior on rat brown adipose tissue and skeletal muscle peripheral clocks. Neurobiol. Sleep Circadian Rhythm. 2018;4:24–33. 10.1016/j.nbscr.2017.09.002 [DOI] [PMC free article] [PubMed] [Google Scholar]
  49. Kloet ER, Sarabdjitsingh RA: Everything has rhythm: focus on glucocorticoid pulsatility. Endocrinology. 2008;149:3241–3243. 10.1210/en.2008-0471 [DOI] [PubMed] [Google Scholar]
  50. Oliveira IGB, Junior MDF, Lopes PR, et al. : Forced internal desynchrony induces cardiometabolic alterations in adult rats. J. Endocrinol. 2019;242:25–36. 10.1530/JOE-19-0026 [DOI] [PubMed] [Google Scholar]
  51. Deering J, Coote JH: Paraventricular Neurones Elicit a Volume Expansion-Like Change of Activity in Sympathetic Nerves to the Heart and Kidney in the Rabbit. Exp. Physiol. 2000;85:177–186. 10.1111/j.1469-445X.2000.01953.x [DOI] [PubMed] [Google Scholar]
  52. Lorenzo L, De Pergola G, Zocchetti C, et al. : Effect of shift work on body mass index: results of a study performed in 319 glucose-tolerant men working in a Southern Italian industry. Int. J. Obes. 2003;27:1353–1358. 10.1038/sj.ijo.0802419 [DOI] [PubMed] [Google Scholar]
  53. Dibner C, Schibler U: Circadian timing of metabolism in animal models and humans. J. Intern. Med. 2015;277:513–527. 10.1111/joim.12347 [DOI] [PubMed] [Google Scholar]
  54. Diekman CO, Bose A: Reentrainment of the circadian pacemaker during jet lag: East-west asymmetry and the effects of north-south travel. J. Theor. Biol. 2018;437:261–285. 10.1016/j.jtbi.2017.10.002 [DOI] [PubMed] [Google Scholar]
  55. Dijk D-J, Duffy JF: Novel Approaches for Assessing Circadian Rhythmicity in Humans: A Review. J. Biol. Rhythms. 2020;35(5):421–438. 10.1177/0748730420940483 [DOI] [PMC free article] [PubMed] [Google Scholar]
  56. Doi M, Hirayama J, Sassone-Corsi P: Circadian regulator CLOCK is a histone acetyltransferase. Cell. 2006;125:497–508. 10.1016/j.cell.2006.03.033 [DOI] [PubMed] [Google Scholar]
  57. Dumbell R, Leliavski A, Matveeva O, et al. : Dissociation of Molecular and Endocrine Circadian Rhythms in Male Mice Lacking Bmal1 in the Adrenal Cortex. Endocrinology. 2016;157:4222–4233. 10.1210/en.2016-1330 [DOI] [PubMed] [Google Scholar]
  58. Duffy JF, Zitting K-M, Chinoy ED: Aging and Circadian Rhythms. Sleep Med. Clin. 2015;10(4):423–434. 10.1016/j.jsmc.2015.08.002 [DOI] [PMC free article] [PubMed] [Google Scholar]
  59. Dun A, Zhao X, Jin X, et al. : Association Between Night-Shift Work and Cancer Risk: Updated Systematic Review and Meta-Analysis. Front. Oncol. 2020;10:1006. 10.3389/fonc.2020.01006 [DOI] [PMC free article] [PubMed] [Google Scholar]
  60. Duong HA, Weitz CJ: Temporal orchestration of repressive chromatin modifiers by circadian clock Period complexes. Nat. Struct. Mol. Biol. 2014;21:126–132. 10.1038/nsmb.2746 [DOI] [PMC free article] [PubMed] [Google Scholar]
  61. Dyar KA, Ciciliot S, Wright LE, et al. : Muscle insulin sensitivity and glucose metabolism are controlled by the intrinsic muscle clock. Mol. Metab. 2014;3(1):29–41. 10.1016/j.molmet.2013.10.005 [DOI] [PMC free article] [PubMed] [Google Scholar]
  62. Ellingsen T, Bener A, Gehani AA: Study of shift work and risk of coronary events. J. R. Soc. Promot. Heal. 2007;127:265–267. 10.1177/1466424007083702 [DOI] [PubMed] [Google Scholar]
  63. Erren TC, Reiter RJ: Revisiting chronodisruption: when the physiological nexus between internal and external times splits in humans. Naturwissenschaften. 2013;100:291–298. 10.1007/s00114-013-1026-5 [DOI] [PubMed] [Google Scholar]
  64. Erren TC, Reiter RJ: Defining chronodisruption. J. Pineal Res. 2009;46:245–247. 10.1111/j.1600-079X.2009.00665.x [DOI] [PubMed] [Google Scholar]
  65. Fonken LK, Aubrecht TG, Meléndez-Fernández OH, et al. : Dim light at night disrupts molecular circadian rhythms and increases body weight. J. Biol. Rhythms. 2013;28(4):262–271. 10.1177/0748730413493862 [DOI] [PMC free article] [PubMed] [Google Scholar]
  66. Fonken LK, Kitsmiller E, Smale L, et al. : Dim Nighttime Light Impairs Cognition and Provokes Depressive-Like Responses in a Diurnal Rodent. J. Biol. Rhythm. 2012;27:319–327. 10.1177/0748730412448324 [DOI] [PubMed] [Google Scholar]
  67. Fonken LK, Workman JL, Walton JC, et al. : Light at night increases body mass by shifting the time of food intake. Proc. Natl. Acad. Sci. U.S.A. 2010;107:18664–18669. 10.1073/pnas.1008734107 [DOI] [PMC free article] [PubMed] [Google Scholar]
  68. Froy O: The relationship between nutrition and circadian rhythms in mammals. Front. Neuroendocrinol. 2007;28:61–71. 10.1016/j.yfrne.2007.03.001 [DOI] [PubMed] [Google Scholar]
  69. Gallego M, Virshup DM: Post-translational modifications regulate the ticking of the circadian clock. Nat. Rev. Mol. Cell Biol. 2007;8:139–148. 10.1038/nrm2106 [DOI] [PubMed] [Google Scholar]
  70. Gamboa Madeira S, Reis C, Paiva T, et al. : Social jetlag, a novel predictor for high cardiovascular risk in blue-collar workers following permanent atypical work schedules. J. Sleep Res. 2021;30(6): e13380. 10.1111/jsr.13380 [DOI] [PMC free article] [PubMed] [Google Scholar]
  71. Gerber A, Esnault C, Aubert G, et al. : Blood-borne circadian signal stimulates daily oscillations in actin dynamics and SRF activity. Cell. 2013;152:492–503. 10.1016/j.cell.2012.12.027 [DOI] [PubMed] [Google Scholar]
  72. Gluck ME, Venti CA, Salbe AD, et al. : Nighttime eating: commonly observed and related to weight gain in an inpatient food intake study. Am. J. Clin. Nutr. 2008;88:900–905. 10.1093/ajcn/88.4.900 [DOI] [PMC free article] [PubMed] [Google Scholar]
  73. Grant CL, Coates AM, Dorrian J, et al. : Timing of food intake during simulated night shift impacts glucose metabolism: A controlled study. Chronobiol. Int. 2017;34(8):1003–1013. 10.1080/07420528.2017.1335318 [DOI] [PubMed] [Google Scholar]
  74. Grimaldi B, Nakahata Y, Kaluzova M, et al. : Chromatin remodeling, metabolism and circadian clocks: the interplay of CLOCK and SIRT1. Int. J. Biochem. Cell Biol. 2009;41:81–86. 10.1016/j.biocel.2008.08.035 [DOI] [PubMed] [Google Scholar]
  75. Grimaldi B, Nakahata Y, Sahar S, et al. : Chromatin remodeling and circadian control: master regulator CLOCK is an enzyme. Cold Spring Harb. Symp. Quant. Biol. 2007;72:105–112. 10.1101/sqb.2007.72.049 [DOI] [PubMed] [Google Scholar]
  76. Guenthner CJ, Luitje ME, Pyle LA, et al. : Circadian rhythms of Per2::Luc in individual primary mouse hepatocytes and cultures. PLoS One. 2014;9:e87573. 10.1371/journal.pone.0087573 [DOI] [PMC free article] [PubMed] [Google Scholar]
  77. Guia RM, Rose AJ, Herzig S: Glucocorticoid hormones and energy homeostasis. Horm. Mol. Biol. Clin. Invest. 2014;19:117–128. 10.1515/hmbci-2014-0021 [DOI] [PubMed] [Google Scholar]
  78. Guillaumond F, Dardente H, Giguère V, et al. : Differential control of Bmal1 circadian transcription by REV-ERB and ROR nuclear receptors. J. Biol. Rhythm. 2005;20:391–403. 10.1177/0748730405277232 [DOI] [PubMed] [Google Scholar]
  79. Guo H, Brewer JM, Champhekar A, et al. : Differential control of peripheral circadian rhythms by suprachiasmatic-dependent neural signals. Proc. Natl. Acad. Sci. U. S. A. 2005;102:3111–3116. 10.1073/pnas.0409734102 [DOI] [PMC free article] [PubMed] [Google Scholar]
  80. Ha M, Park J: Shiftwork and Metabolic Risk Factors of Cardiovascular Disease. Jrnl Occup. Health. 2005;47:89–95. 10.1539/joh.47.89 [DOI] [PubMed] [Google Scholar]
  81. Hack LM, Lockley SW, Arendt J, et al. : The effects of low-dose 0.5-mg melatonin on the free-running circadian rhythms of blind subjects. J. Biol. Rhythm. 2003;18:420–429. 10.1177/0748730403256796 [DOI] [PubMed] [Google Scholar]
  82. Hamaguchi Y, Tahara Y, Hitosugi M, et al. : Impairment of Circadian Rhythms in Peripheral Clocks by Constant Light Is Partially Reversed by Scheduled Feeding or Exercise. J. Biol. Rhythm. 2015;30:533–542. 10.1177/0748730415609727 [DOI] [PubMed] [Google Scholar]
  83. Hara R, Wan K, Wakamatsu H, et al. : Restricted feeding entrains liver clock without participation of the suprachiasmatic nucleus. Genes Cells. 2001;6:269–278. 10.1046/j.1365-2443.2001.00419.x [DOI] [PubMed] [Google Scholar]
  84. Haraszti RÁ, Ella K, Gyöngyösi N, et al. : Social jetlag negatively correlates with academic performance in undergraduates. Chronobiol. Int. 2014;31(5):603–612. 10.3109/07420528.2013.879164 [DOI] [PubMed] [Google Scholar]
  85. Harbour VL, Weigl Y, Robinson B, et al. : Phase Differences in Expression of Circadian Clock Genes in the Central Nucleus of the Amygdala, Dentate Gyrus, and Suprachiasmatic Nucleus in the Rat. PLoS One. 2014;9:e103309. 10.1371/journal.pone.0103309 [DOI] [PMC free article] [PubMed] [Google Scholar]
  86. Harfmann BD, Schroder EA, Kachman MT, et al. : Muscle-specific loss of Bmal1 leads to disrupted tissue glucose metabolism and systemic glucose homeostasis. Skelet. Muscle. 2016;6:12. 10.1186/s13395-016-0082-x [DOI] [PMC free article] [PubMed] [Google Scholar]
  87. Hatori M, Vollmers C, Zarrinpar A, et al. : Time-Restricted Feeding without Reducing Caloric Intake Prevents Metabolic Diseases in Mice Fed a High-Fat Diet. Cell Metab. 2012;15(6):848–860. 10.1016/j.cmet.2012.04.019 [DOI] [PMC free article] [PubMed] [Google Scholar]
  88. He B, Nohara K, Park N, et al. : The Small Molecule Nobiletin Targets the Molecular Oscillator to Enhance Circadian Rhythms and Protect against Metabolic Syndrome. Cell Metab. 2016;23:610–621. 10.1016/j.cmet.2016.03.007 [DOI] [PMC free article] [PubMed] [Google Scholar]
  89. Hena M, Garmy P: Social Jetlag and Its Association With Screen Time and Nighttime Texting Among Adolescents in Sweden: A Cross-Sectional Study. Front. Neurosci. 2020;14:122. 10.3389/fnins.2020.00122 [DOI] [PMC free article] [PubMed] [Google Scholar]
  90. Henderson SEM, Brady EM, Robertson N: Associations between social jetlag and mental health in young people: A systematic review. Chronobiol. Int. 2019;36(10):1316–1333. 10.1080/07420528.2019.1636813 [DOI] [PubMed] [Google Scholar]
  91. Heyde I, Oster H: Differentiating external zeitgeber impact on peripheral circadian clock resetting. Sci. Rep. 2019;9:20114. 10.1038/s41598-019-56323-z [DOI] [PMC free article] [PubMed] [Google Scholar]
  92. Heyde I, Oster H: Induction of internal circadian desynchrony by misaligning zeitgebers. Sci. Rep. 2022;12:1601. 10.1038/s41598-022-05624-x [DOI] [PMC free article] [PubMed] [Google Scholar]
  93. Honma S, Nakamura W, Shirakawa T, et al. : Diversity in the circadian periods of single neurons of the rat suprachiasmatic nucleus depends on nuclear structure and intrinsic period. Neurosci. Lett. 2004;358:173–176. 10.1016/j.neulet.2004.01.022 [DOI] [PubMed] [Google Scholar]
  94. Honma S, Shirakawa T, Katsuno Y, et al. : Circadian periods of single suprachiasmatic neurons in rats. Neurosci. Lett. 1998;250:157–160. 10.1016/s0304-3940(98)00464-9 [DOI] [PubMed] [Google Scholar]
  95. Husse J, Zhou X, Shostak A, et al. : Synaptotagmin 10-Cre, a Driver to Disrupt Clock Genes in the SCN. J. Biol. Rhythm. 2011;26:379–389. 10.1177/0748730411415363 [DOI] [PubMed] [Google Scholar]
  96. Irwin MR, Wang M, Campomayor CO, et al. : Sleep deprivation and activation of morning levels of cellular and genomic markers of inflammation. Arch. Intern. Med. 2006;166:1756–1762. 10.1001/archinte.166.16.1756 [DOI] [PubMed] [Google Scholar]
  97. Islam Z, Hu H, Akter S, et al. : Social jetlag is associated with an increased likelihood of having depressive symptoms among the Japanese working population: The Furukawa Nutrition and Health Study. Sleep. 2020;43(1):zsz204. 10.1093/sleep/zsz204 [DOI] [PMC free article] [PubMed] [Google Scholar]
  98. Iwamoto A, Kawai M, Furuse M, et al. : Effects of chronic jet lag on the central and peripheral circadian clocks in CBA/N mice. Chronobiol. Int. 2014;31:189–198. 10.3109/07420528.2013.837478 [DOI] [PubMed] [Google Scholar]
  99. Izumo M, Pejchal M, Schook AC, et al. : Differential effects of light and feeding on circadian organization of peripheral clocks in a forebrain Bmal1 mutant. elife. 2014;3:e04617. 10.7554/eLife.04617 [DOI] [PMC free article] [PubMed] [Google Scholar]
  100. Jorgensen R, Kubale V, Vrecl M, et al. : Oxyntomodulin Differentially Affects Glucagon-Like Peptide-1 Receptor β-Arrestin Recruitment and Signaling through Gα. J. Pharmacol. Exp. Ther. 2007;322:148–154. 10.1124/jpet.107.120006 [DOI] [PubMed] [Google Scholar]
  101. Juda M, Vetter C, Roenneberg T: Chronotype Modulates Sleep Duration, Sleep Quality, and Social Jet Lag in Shift-Workers. J. Biol. Rhythms. 2013;28(2):141–151. 10.1177/0748730412475042 [DOI] [PubMed] [Google Scholar]
  102. Jung-Hynes B, Huang W, Reiter RJ, et al. : Melatonin resynchronizes dysregulated circadian rhythm circuitry in human prostate cancer cells. J. Pineal Res. 2010;49:60–68. 10.1111/j.1600-079X.2010.00767.x [DOI] [PMC free article] [PubMed] [Google Scholar]
  103. Jung S, Lee S-Y, Lee W: The Effect of Change of Working Schedule on Health Behaviors: Evidence from the Korea Labor and Income Panel Study (2005-2019). J. Clin. Med. 2022;11(6):1725. 10.3390/jcm11061725 [DOI] [PMC free article] [PubMed] [Google Scholar]
  104. Kalsbeek A, Strubbe JH: Circadian control of insulin secretion is independent of the temporal distribution of feeding. Physiol. Behav. 1998;63:553–560. 10.1016/s0031-9384(97)00493-9 [DOI] [PubMed] [Google Scholar]
  105. Kalsbeek A, Teclemariam-Mesbah R, Pévet P: Efferent projections of the suprachiasmatic nucleus in the golden hamster (Mesocricetus auratus). J. Comp. Neurol. 1993;332:293–314. 10.1002/cne.903320304 [DOI] [PubMed] [Google Scholar]
  106. Karatsoreos IN, Bhagat S, Bloss EB, et al. : Disruption of circadian clocks has ramifications for metabolism, brain, and behavior. Proc. Natl. Acad. Sci. U. S. A. 2011;108:1657–1662. 10.1073/pnas.1018375108 [DOI] [PMC free article] [PubMed] [Google Scholar]
  107. Karlsson B, Knutsson A, Lindahl B: Is there an association between shift work and having a metabolic syndrome? Results from a population based study of 27 485 people. Occup. Environ. Med. 2001;58:747–752. 10.1136/oem.58.11.747 [DOI] [PMC free article] [PubMed] [Google Scholar]
  108. Karlsson BH, Knutsson AK, Lindahl BO, et al. : Metabolic disturbances in male workers with rotating three-shift work. Results of the WOLF study. Int. Arch. Occup. Environ. Health. 2003;76:424–430. 10.1007/s00420-003-0440-y [DOI] [PubMed] [Google Scholar]
  109. Kautzky-Willer A, Harreiter J, Pacini G: Sex and Gender Differences in Risk, Pathophysiology and Complications of Type 2 Diabetes Mellitus. Endocr. Rev. 2016;37(3):278–316. 10.1210/er.2015-1137 [DOI] [PMC free article] [PubMed] [Google Scholar]
  110. Kawachi I, Colditz GA, Stampfer MJ, et al. : Prospective study of shift work and risk of coronary heart disease in women. Circulation. 1995;92:3178–3182. 10.1161/01.cir.92.11.3178 [DOI] [PubMed] [Google Scholar]
  111. Kiehn J-T, Tsang AH, Heyde I, et al. : Circadian Rhythms in Adipose Tissue Physiology. Compr. Physiol. 2017;7:383–427. 10.1002/cphy.c160017 [DOI] [PubMed] [Google Scholar]
  112. Kiessling S, Eichele G, Oster H: Adrenal glucocorticoids have a key role in circadian resynchronization in a mouse model of jet lag. J. Clin. Invest. 2010;120:2600–2609. 10.1172/JCI41192 [DOI] [PMC free article] [PubMed] [Google Scholar]
  113. King DP, Zhao Y, Sangoram AM, et al. : Positional cloning of the mouse circadian clock gene. Cell. 1997;89:641–653. 10.1016/s0092-8674(00)80245-7 [DOI] [PMC free article] [PubMed] [Google Scholar]
  114. Klemcke HG, Nienaber JA, Hahn GL: Plasma adrenocorticotropic hormone and cortisol in pigs: effects of time of day on basal and stressor-altered concentrations. Proc. Soc. Exp. Biol. Med. 1989;190:42–53. 10.3181/00379727-190-42828 [DOI] [PubMed] [Google Scholar]
  115. Kohsaka A, Laposky AD, Ramsey KM, et al. : High-fat diet disrupts behavioral and molecular circadian rhythms in mice. Cell Metab. 2007;6:414–421. 10.1016/j.cmet.2007.09.006 [DOI] [PubMed] [Google Scholar]
  116. Kojima S, Shingle DL, Green CB: Post-transcriptional control of circadian rhythms. J. Cell Sci. 2011;124:311–320. 10.1242/jcs.065771 [DOI] [PMC free article] [PubMed] [Google Scholar]
  117. Kolbe I, Leinweber B, Brandenburger M, et al. : Circadian clock network desynchrony promotes weight gain and alters glucose homeostasis in mice. Mol. Metab. 2019;30:140–151. 10.1016/j.molmet.2019.09.012 [DOI] [PMC free article] [PubMed] [Google Scholar]
  118. Konopka RJ, Benzer S: Clock mutants of Drosophila melanogaster. Proc. Natl. Acad. Sci. U. S. A. 1971;68:2112–2116. 10.1073/pnas.68.9.2112 [DOI] [PMC free article] [PubMed] [Google Scholar]
  119. Koopman ADM, Rauh SP, van’t Riet E, et al. : The Association between Social Jetlag, the Metabolic Syndrome, and Type 2 Diabetes Mellitus in the General Population: The New Hoorn Study. J. Biol. Rhythms. 2017;32(4):359–368. 10.1177/0748730417713572 [DOI] [PMC free article] [PubMed] [Google Scholar]
  120. Korenčič A, Košir R, Bordyugov G, et al. : Timing of circadian genes in mammalian tissues. Sci. Rep. 2014;4:5782. 10.1038/srep05782 [DOI] [PMC free article] [PubMed] [Google Scholar]
  121. Koronowski KB, Kinouchi K, Welz P-S, et al. : Defining the Independence of the Liver Circadian Clock. Cell. 2019;177:1448–1462.e14. 10.1016/j.cell.2019.04.025 [DOI] [PMC free article] [PubMed] [Google Scholar]
  122. Kume K, Zylka MJ, Sriram S, et al. : mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop. Cell. 1999;98:193–205. 10.1016/s0092-8674(00)81014-4 [DOI] [PubMed] [Google Scholar]
  123. Lam RW, Levitt AJ, Levitan RD, et al. : Efficacy of Bright Light Treatment, Fluoxetine, and the Combination in Patients With Nonseasonal Major Depressive Disorder: A Randomized Clinical Trial. JAMA Psychiat. 2016;73:56–63. 10.1001/jamapsychiatry.2015.2235 [DOI] [PubMed] [Google Scholar]
  124. Lamia KA, Storch K-F, Weitz CJ: Physiological significance of a peripheral tissue circadian clock. Proc. Natl. Acad. Sci. U.S.A. 2008;105:15172–15177. 10.1073/pnas.0806717105 [DOI] [PMC free article] [PubMed] [Google Scholar]
  125. Landgraf D, Tsang AH, Leliavski A, et al. : Oxyntomodulin regulates resetting of the liver circadian clock by food. elife. 2015;4:e06253. 10.7554/eLife.06253 [DOI] [PMC free article] [PubMed] [Google Scholar]
  126. Li A-J, Wiater MF, Oostrom MT, et al. : Leptin-sensitive neurons in the arcuate nuclei contribute to endogenous feeding rhythms. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2012;302:R1313–R1326. 10.1152/ajpregu.00086.2012 [DOI] [PMC free article] [PubMed] [Google Scholar]
  127. Li Y, Wang Y, Lv X, et al. : Effects of Factors Related to Shift Work on Depression and Anxiety in Nurses. Front. Public Health. 2022;10:926988. 10.3389/fpubh.2022.926988 [DOI] [PMC free article] [PubMed] [Google Scholar]
  128. Lim YC, Hoe VCW, Darus A, et al. : Association between night-shift work, sleep quality and health-related quality of life: A cross-sectional study among manufacturing workers in a middle-income setting. BMJ Open. 2020;10(9): e034455. 10.1136/bmjopen-2019-034455 [DOI] [PMC free article] [PubMed] [Google Scholar]
  129. Lincoln GA, Almeida OF, Klandorf H, et al. : Hourly fluctuations in the blood levels of melatonin, prolactin, luteinizing hormone, follicle-stimulating hormone, testosterone, tri-iodothyronine, thyroxine and cortisol in rams under artificial photoperiods, and the effects of cranial sympathectomy. J. Endocrinol. 1982;92:237–250. 10.1677/joe.0.0920237 [DOI] [PubMed] [Google Scholar]
  130. Liu AC, Welsh DK, Ko CH, et al. : Intercellular coupling confers robustness against mutations in the SCN circadian clock network. Cell. 2007;129:605–616. 10.1016/j.cell.2007.02.047 [DOI] [PMC free article] [PubMed] [Google Scholar]
  131. Loef M, Walach H: The combined effects of healthy lifestyle behaviors on all cause mortality: A systematic review and meta-analysis. Prev. Med. 2012;55(3):163–170. 10.1016/j.ypmed.2012.06.017 [DOI] [PubMed] [Google Scholar]
  132. Magrini A, Pietroiusti A, Coppeta L, et al. : Shift work and autoimmune thyroid disorders. Int. J. Immunopathol. Pharmacol. 2006;19:31–36. [PubMed] [Google Scholar]
  133. Manella G, Aizik D, Aviram R, et al. : Circa-SCOPE: high-throughput live single-cell imaging method for analysis of circadian clock resetting. Nat. Commun. 2021;12:5903. 10.1038/s41467-021-26210-1 [DOI] [PMC free article] [PubMed] [Google Scholar]
  134. Manoogian ENC, Chow LS, Taub PR, Laferrère B, Panda S: Time-restricted Eating for the Prevention and Management of Metabolic Diseases. Endocr. Rev. 2022;43(2):405–436. 10.1210/endrev/bnab027 [DOI] [PMC free article] [PubMed] [Google Scholar]
  135. Manoogian ENC, Zadourian A, Lo HC, et al. : Feasibility of time-restricted eating and impacts on cardiometabolic health in 24-h shift workers: The Healthy Heroes randomized control trial. Cell Metab. 2022;34(10):1442–1456.e7. 10.1016/j.cmet.2022.08.018 [DOI] [PMC free article] [PubMed] [Google Scholar]
  136. Martinez-Merlos MT, Angeles-Castellanos M, Diaz-Munoz M, et al. : Dissociation between adipose tissue signals, behavior and the food-entrained oscillator. J. Endocrinol. 2004;181:53–63. 10.1677/joe.0.1810053 [DOI] [PubMed] [Google Scholar]
  137. Maywood ES, Chesham JE, O’Brien JA, et al. : A diversity of paracrine signals sustains molecular circadian cycling in suprachiasmatic nucleus circuits. Proc. Natl. Acad. Sci. U. S. A. 2011;108:14306–14311. 10.1073/pnas.1101767108 [DOI] [PMC free article] [PubMed] [Google Scholar]
  138. Maywood ES, Chesham JE, Winsky-Sommerer R, et al. : Circadian Chimeric Mice Reveal an Interplay Between the Suprachiasmatic Nucleus and Local Brain Clocks in the Control of Sleep and Memory. Front. Neurosci. 2021;15: 639281. 10.3389/fnins.2021.639281 [DOI] [PMC free article] [PubMed] [Google Scholar]
  139. Mazzoccoli G, Tarquini R, Durfort T, et al. : Chronodisruption in lung cancer and possible therapeutic approaches. Biomed. Pharmacother. 2011;65:500–508. 10.1016/j.biopha.2011.06.004 [DOI] [PubMed] [Google Scholar]
  140. McFadden E, Jones ME, Schoemaker MJ, et al. : The relationship between obesity and exposure to light at night: cross-sectional analyses of over 100,000 women in the Breakthrough Generations Study. Am. J. Epidemiol. 2014;180:245–250. 10.1093/aje/kwu117 [DOI] [PubMed] [Google Scholar]
  141. McGuckin TA, Sinclair WH, Sealey RM, et al. : The effects of air travel on performance measures of elite Australian rugby league players. Eur. J. Sport Sci. 2014;14:S116–S122. 10.1080/17461391.2011.654270 [DOI] [PubMed] [Google Scholar]
  142. Mei L, Fan Y, Lv X, et al. : Long-term in vivo recording of circadian rhythms in brains of freely moving mice. Proc. Natl. Acad. Sci. U. S. A. 2018;115:4276–4281. 10.1073/pnas.1717735115 [DOI] [PMC free article] [PubMed] [Google Scholar]
  143. Menaker M, Wisner S: Temperature-compensated circadian clock in the pineal of Anolis. Proc. Natl. Acad. Sci. U. S. A. 1983;80:6119–6121. 10.1073/pnas.80.19.6119 [DOI] [PMC free article] [PubMed] [Google Scholar]
  144. Merkestein M, Gestel MA, Zwaal EM, et al. : GHS-R1a signaling in the DMH and VMH contributes to food anticipatory activity. Int. J. Obes. 2014;38:610–618. 10.1038/ijo.2013.131 [DOI] [PubMed] [Google Scholar]
  145. Mitsui S, Yamaguchi S, Matsuo T, et al. : Antagonistic role of E4BP4 and PAR proteins in the circadian oscillatory mechanism. Genes Dev. 2001;15:995–1006. 10.1101/gad.873501 [DOI] [PMC free article] [PubMed] [Google Scholar]
  146. Molcan L, Zeman M: Shifts in the light-dark cycle increase unpredictability of the cardiovascular system. Auton. Neurosci. 2017;206:51–59. 10.1016/j.autneu.2017.07.006 [DOI] [PubMed] [Google Scholar]
  147. Montaigne D, Marechal X, Modine T, et al. : Daytime variation of perioperative myocardial injury in cardiac surgery and its prevention by Rev-Erbα antagonism: A single-centre propensity-matched cohort study and a randomised study. Lancet (London, England). 2018;391(10115):59–69. 10.1016/S0140-6736(17)32132-3 [DOI] [PubMed] [Google Scholar]
  148. Moon HJ, Yoo S, Cho YW: The effect of chronotype and social jetlag on sleep, mental health, quality of life, and academic performance of medical students. J. Neurol. Sci. 2017;381:296. 10.1016/j.jns.2017.08.841 28991701 [DOI] [Google Scholar]
  149. Moore RY, Eichler VB: Loss of a circadian adrenal corticosterone rhythm following suprachiasmatic lesions in the rat. Brain Res. 1972;42:201–206. 10.1016/0006-8993(72)90054-6 [DOI] [PubMed] [Google Scholar]
  150. Morris CJ, Purvis TE, Hu K, et al. : Circadian misalignment increases cardiovascular disease risk factors in humans. PNAS. 2016;113:E1402–E1411. 10.1073/pnas.1516953113 [DOI] [PMC free article] [PubMed] [Google Scholar]
  151. Mota MC, Silva CM, Balieiro LCT, et al. : Social jetlag and metabolic control in non-communicable chronic diseases: A study addressing different obesity statuses. Sci. Rep. 2017;7(1):6358. 10.1038/s41598-017-06723-w [DOI] [PMC free article] [PubMed] [Google Scholar]
  152. Mure LS, Le HD, Benegiamo G, et al. : Diurnal transcriptome atlas of a primate across major neural and peripheral tissues. Science. 2018;359:eaao0318. 10.1126/science.aao0318 [DOI] [PMC free article] [PubMed] [Google Scholar]
  153. Nagano M, Adachi A, Nakahama K, et al. : An Abrupt Shift in the Day/Night Cycle Causes Desynchrony in the Mammalian Circadian Center. J. Neurosci. 2003;23:6141–6151. 10.1523/JNEUROSCI.23-14-06141.2003 [DOI] [PMC free article] [PubMed] [Google Scholar]
  154. Nagoshi E, Saini C, Bauer C, et al. : Circadian gene expression in individual fibroblasts: cell-autonomous and self-sustained oscillators pass time to daughter cells. Cell. 2004;119:693–705. 10.1016/j.cell.2004.11.015 [DOI] [PubMed] [Google Scholar]
  155. Nakahata Y, Kaluzova M, Grimaldi B, et al. : The NAD+-Dependent Deacetylase SIRT1 Modulates CLOCK-Mediated Chromatin Remodeling and Circadian Control. Cell. 2008;134:329–340. 10.1016/j.cell.2008.07.002 [DOI] [PMC free article] [PubMed] [Google Scholar]
  156. Nakajima Y, Ikeda M, Kimura T, et al. : Bidirectional role of orphan nuclear receptor RORalpha in clock gene transcriptions demonstrated by a novel reporter assay system. FEBS Lett. 2004;565:122–126. 10.1016/j.febslet.2004.03.083 [DOI] [PubMed] [Google Scholar]
  157. Nakamura W, Yamazaki S, Takasu NN, et al. : Differential response of Period 1 expression within the suprachiasmatic nucleus. J. Neurosci. 2005;25:5481–5487. 10.1523/JNEUROSCI.0889-05.2005 [DOI] [PMC free article] [PubMed] [Google Scholar]
  158. Neikrug AB, Rissling M, Trofimenko V, et al. : Bright Light Therapy Protects Women from Circadian Rhythm Desynchronization During Chemotherapy for Breast Cancer. Behav. Sleep Med. 2012;10:202–216. 10.1080/15402002.2011.634940 [DOI] [PubMed] [Google Scholar]
  159. O’Connor DB, Thayer JF, Vedhara K: Stress and Health: A Review of Psychobiological Processes. Annu. Rev. Psychol. 2021;72(1):663–688. 10.1146/annurev-psych-062520-122331 [DOI] [PubMed] [Google Scholar]
  160. Ohdo S: Chronotherapeutic strategy: Rhythm monitoring, manipulation and disruption. Adv. Drug Deliv. Rev. 2010;62(9–10):859–875. 10.1016/j.addr.2010.01.006 [DOI] [PubMed] [Google Scholar]
  161. Ohno T, Onishi Y, Ishida N: A novel E4BP4 element drives circadian expression of mPeriod2. Nucleic Acids Res. 2007;35:648–655. 10.1093/nar/gkl868 [DOI] [PMC free article] [PubMed] [Google Scholar]
  162. Oike H, Nagai K, Fukushima T, et al. : Feeding cues and injected nutrients induce acute expression of multiple clock genes in the mouse liver. PLoS One. 2011;6(8): e23709. 10.1371/journal.pone.0023709 [DOI] [PMC free article] [PubMed] [Google Scholar]
  163. Oike H, Sakurai M, Ippoushi K, et al. : Time-fixed feeding prevents obesity induced by chronic advances of light/dark cycles in mouse models of jet-lag/shift work. Biochem. Biophys. Res. Commun. 2015;465:556–561. 10.1016/j.bbrc.2015.08.059 [DOI] [PubMed] [Google Scholar]
  164. Ono D, Honma K, Honma S: Circadian and ultradian rhythms of clock gene expression in the suprachiasmatic nucleus of freely moving mice. Sci. Rep. 2015;5:12310. 10.1038/srep12310 [DOI] [PMC free article] [PubMed] [Google Scholar]
  165. Ono D, Honma S, Nakajima Y, et al. : Dissociation of Per1 and Bmal1 circadian rhythms in the suprachiasmatic nucleus in parallel with behavioral outputs. Proc. Natl. Acad. Sci. U.S.A. 2017;114:E3699–E3708. 10.1073/pnas.1613374114 [DOI] [PMC free article] [PubMed] [Google Scholar]
  166. Opperhuizen A-L, Wang D, Foppen E, et al. : Feeding during the resting phase causes profound changes in physiology and desynchronization between liver and muscle rhythms of rats. Eur. J. Neurosci. 2016;44:2795–2806. 10.1111/ejn.13377 [DOI] [PubMed] [Google Scholar]
  167. Oster H, Damerow S, Kiessling S, et al. : The circadian rhythm of glucocorticoids is regulated by a gating mechanism residing in the adrenal cortical clock. Cell Metab. 2006;4:163–173. 10.1016/j.cmet.2006.07.002 [DOI] [PubMed] [Google Scholar]
  168. Paech GM, Jay SM, Lamond N, et al. : The effects of different roster schedules on sleep in miners. Appl. Ergon. 2010;41:600–606. 10.1016/j.apergo.2009.12.017 [DOI] [PubMed] [Google Scholar]
  169. Parent-Thirion A, Biletta I, Cabrita J, et al. : Sixth European working conditions survey–overview report. 2016.
  170. Park N, Cheon S, Son GH, et al. : Chronic circadian disturbance by a shortened light-dark cycle increases mortality. Neurobiol. Aging. 2012;33:1122.e11–1122.e22. 10.1016/j.neurobiolaging.2011.11.005 [DOI] [PubMed] [Google Scholar]
  171. Parsons MJ, Moffitt TE, Gregory AM, et al. : Social jetlag, obesity and metabolic disorder: investigation in a cohort study. Int. J. Obes. 2015;39:842–848. 10.1038/ijo.2014.201 [DOI] [PMC free article] [PubMed] [Google Scholar]
  172. Paschos GK, Ibrahim S, Song W-L, et al. : Obesity in mice with adipocyte-specific deletion of clock component Arntl. Nat. Med. 2012;18:1768–1777. 10.1038/nm.2979 [DOI] [PMC free article] [PubMed] [Google Scholar]
  173. Pendergast JS, Branecky KL, Yang W, et al. : High-fat diet acutely affects circadian organisation and eating behavior. Eur. J. Neurosci. 2013;37:1350–1356. 10.1111/ejn.12133 [DOI] [PMC free article] [PubMed] [Google Scholar]
  174. Perlow MJ, Reppert SM, Boyar RM, et al. : Daily rhythms in cortisol and melatonin in primate cerebrospinal fluid. Effects of constant light and dark. Neuroendocrinology. 1981;32:193–196. 10.1159/000123157 [DOI] [PubMed] [Google Scholar]
  175. Pett JP, Kondoff M, Bordyugov G, et al. : Co-existing feedback loops generate tissue-specific circadian rhythms. Life Sci. Alliance. 2018;1:e201800078. 10.26508/lsa.201800078 [DOI] [PMC free article] [PubMed] [Google Scholar]
  176. Pilorz V, Astiz M, Heinen KO, et al. : The Concept of Coupling in the Mammalian Circadian Clock Network. J. Mol. Biol. 2020;432:3618–3638. 10.1016/j.jmb.2019.12.037 [DOI] [PubMed] [Google Scholar]
  177. Pilorz V, Cunningham PS, Jackson A, et al. : A Novel Mechanism Controlling Resetting Speed of the Circadian Clock to Environmental Stimuli. Curr. Biol. 2014;24:766–773. 10.1016/j.cub.2014.02.027 [DOI] [PMC free article] [PubMed] [Google Scholar]
  178. Pittendrigh CS: ON TEMPERATURE INDEPENDENCE IN THE CLOCK SYSTEM CONTROLLING EMERGENCE TIME IN DROSOPHILA. Proc. Natl. Acad. Sci. U. S. A. 1954;40:1018–1029. 10.1073/pnas.40.10.1018 [DOI] [PMC free article] [PubMed] [Google Scholar]
  179. Polidarová L, Sládek M, Soták M, et al. : Hepatic, Duodenal, and Colonic Circadian Clocks Differ in their Persistence under Conditions of Constant Light and in their Entrainment by Restricted Feeding. Chronobiol. Int. 2011;28:204–215. 10.3109/07420528.2010.548615 [DOI] [PubMed] [Google Scholar]
  180. Preitner N, Damiola F, Lopez-Molina L, et al. : The orphan nuclear receptor REV-ERBalpha controls circadian transcription within the positive limb of the mammalian circadian oscillator. Cell. 2002;110:251–260. 10.1016/s0092-8674(02)00825-5 [DOI] [PubMed] [Google Scholar]
  181. Preußner M, Wilhelmi I, Schultz A-S, et al. : Rhythmic U2af26 alternative splicing controls PERIOD1 stability and the circadian clock in mice. Mol. Cell. 2014;54:651–662. 10.1016/j.molcel.2014.04.015 [DOI] [PubMed] [Google Scholar]
  182. Prosser RA, Bergeron HE: Leptin phase-advances the rat suprachiasmatic circadian clock in vitro. Neurosci. Lett. 2003;336:139–142. 10.1016/s0304-3940(02)01234-x [DOI] [PubMed] [Google Scholar]
  183. Radkiewicz C, Johansson ALV, Dickman PW, et al. : Sex differences in cancer risk and survival: A Swedish cohort study. Eur. J. Cancer (Oxford, England: 1990). 2017;84:130–140. 10.1016/j.ejca.2017.07.013 [DOI] [PubMed] [Google Scholar]
  184. Ralph MR, Foster RG, Davis FC, et al. : Transplanted Suprachiasmatic Nucleus Determines Circadian Period. Science. 1990;247:975–978. 10.1126/science.2305266 [DOI] [PubMed] [Google Scholar]
  185. Rash JE, Olson CO, Pouliot WA, et al. : Connexin36 vs. connexin32, “miniature” neuronal gap junctions, and limited electrotonic coupling in rodent suprachiasmatic nucleus. Neuroscience. 2007;149:350–371. 10.1016/j.neuroscience.2007.06.052 [DOI] [PMC free article] [PubMed] [Google Scholar]
  186. Reddy AB, Field MD, Maywood ES, et al. : Differential Resynchronisation of Circadian Clock Gene Expression within the Suprachiasmatic Nuclei of Mice Subjected to Experimental Jet Lag. J. Neurosci. 2002;22(17):7326–7330. 10.1523/JNEUROSCI.22-17-07326.2002 [DOI] [PMC free article] [PubMed] [Google Scholar]
  187. Reddy AB, Maywood ES, Karp NA, et al. : Glucocorticoid signaling synchronizes the liver circadian transcriptome. Hepatology. 2007;45:1478–1488. 10.1002/hep.21571 [DOI] [PubMed] [Google Scholar]
  188. Reddy P, Zehring WA, Wheeler DA, et al. : Molecular analysis of the period locus in Drosophila melanogaster and identification of a transcript involved in biological rhythms. Cell. 1984;38:701–710. 10.1016/0092-8674(84)90265-4 [DOI] [PubMed] [Google Scholar]
  189. Redman J, Armstrong S, Ng KT: Free-running activity rhythms in the rat: entrainment by melatonin. Science. 1983;219:1089–1091. 10.1126/science.6823571 [DOI] [PubMed] [Google Scholar]
  190. Redman JR: Circadian Entrainment and Phase Shifting in Mammals with Melatonin. J. Biol. Rhythm. 1997;12:581–587. 10.1177/074873049701200613 [DOI] [PubMed] [Google Scholar]
  191. Reinke H, Asher G: Crosstalk between metabolism and circadian clocks. Nat. Rev. Mol. Cell Biol. 2019;20:227–241. 10.1038/s41580-018-0096-9 [DOI] [PubMed] [Google Scholar]
  192. Regitz-Zagrosek V, Lehmkuhl E, Weickert MO: Gender differences in the metabolic syndrome and their role for cardiovascular disease. Clin. Res. Cardiol. 2006;95(3):136–147. 10.1007/s00392-006-0351-5 [DOI] [PubMed] [Google Scholar]
  193. Reyes BA, Pendergast JS, Yamazaki S: Mammalian peripheral circadian oscillators are temperature compensated. J. Biol. Rhythm. 2008;23:95–98. 10.1177/0748730407311855 [DOI] [PMC free article] [PubMed] [Google Scholar]
  194. Reznick J, Preston E, Wilks DL, et al. : Altered feeding differentially regulates circadian rhythms and energy metabolism in liver and muscle of rats. Biochim. Biophys. Acta. Mol. Basis Dis. 2013;1832(1): Article 1. 10.1016/j.bbadis.2012.08.010 [DOI] [PubMed] [Google Scholar]
  195. Ribeiro RFN, Cavadas C, Silva MMC: Small-molecule modulators of the circadian clock: Pharmacological potentials in circadian-related diseases. Drug Discov. Today. 2021;26:1620–1641. 10.1016/j.drudis.2021.03.015 [DOI] [PubMed] [Google Scholar]
  196. Ripperger JA, Schibler U: Rhythmic CLOCK-BMAL1 binding to multiple E-box motifs drives circadian Dbp transcription and chromatin transitions. Nat. Genet. 2006;38:369–374. 10.1038/ng1738 [DOI] [PubMed] [Google Scholar]
  197. Roenneberg T, Allebrandt KV, Merrow M, et al. : Social jetlag and obesity. Curr. Biol. 2012;22(10):939–943. 10.1016/j.cub.2012.03.038 [DOI] [PubMed] [Google Scholar]
  198. Roenneberg T, Kumar CJ, Merrow M: The human circadian clock entrains to sun time. Curr. Biol. 2007;17(2):R44–R45. 10.1016/j.cub.2006.12.011 [DOI] [PubMed] [Google Scholar]
  199. Roenneberg T, Winnebeck EC, Klerman EB: Daylight Saving Time and Artificial Time Zones—A Battle Between Biological and Social Times. Front. Physiol. 2019;10:944. 10.3389/fphys.2019.00944 [DOI] [PMC free article] [PubMed] [Google Scholar]
  200. Roach GD, Sargent C: Interventions to Minimize Jet Lag After Westward and Eastward Flight. Front. Physiol. 2019;10:927. 10.3389/fphys.2019.00927 [DOI] [PMC free article] [PubMed] [Google Scholar]
  201. Roenneberg T, Allebrandt KV, Merrow M, et al. : Social Jetlag and Obesity. Curr. Biol. 2012;22:939–943. 10.1016/j.cub.2012.03.038 [DOI] [PubMed] [Google Scholar]
  202. Rosenfeld P, Van Eekelen JAM, Levine S, et al. : Ontogeny of the Type 2 glucocorticoid receptor in discrete rat brain regions: an immunocytochemical study. Dev. Brain Res. 1988;42:119–127. 10.1016/0165-3806(88)90207-6 [DOI] [PubMed] [Google Scholar]
  203. Rubiño JA, Gamundí A, Akaarir M, et al. : Bright Light Therapy and Circadian Cycles in Institutionalized Elders. Front. Neurosci. 2020;14:359. 10.3389/fnins.2020.00359 [DOI] [PMC free article] [PubMed] [Google Scholar]
  204. Rutters F, Lemmens SG, Adam TC, et al. : Is Social Jetlag Associated with an Adverse Endocrine, Behavioral, and Cardiovascular Risk Profile? J. Biol. Rhythm. 2014;29:377–383. 10.1177/0748730414550199 [DOI] [PubMed] [Google Scholar]
  205. Sack RL, Brandes RW, Kendall AR, et al. : Entrainment of Free-Running Circadian Rhythms by Melatonin in Blind People. N. Engl. J. Med. 2000;343:1070–1077. 10.1056/NEJM200010123431503 [DOI] [PubMed] [Google Scholar]
  206. Saini C, Liani A, Curie T, et al. : Real-time recording of circadian liver gene expression in freely moving mice reveals the phase-setting behavior of hepatocyte clocks. Genes Dev. 2013;27:1526–1536. 10.1101/gad.221374.113 [DOI] [PMC free article] [PubMed] [Google Scholar]
  207. Salgado-Delgado R, Ángeles-Castellanos M, Buijs MR, et al. : Internal desynchronization in a model of night-work by forced activity in rats. Neuroscience. 2008;154:922–931. 10.1016/j.neuroscience.2008.03.066 [DOI] [PubMed] [Google Scholar]
  208. Salgado-Delgado R, Angeles-Castellanos M, Saderi N, et al. : Food Intake during the Normal Activity Phase Prevents Obesity and Circadian Desynchrony in a Rat Model of Night Work. Endocrinology. 2010;151(3):Article 3. 10.1210/en.2009-0864 [DOI] [PubMed] [Google Scholar]
  209. Sato M, Murakami M, Node K, et al. : The role of the endocrine system in feeding-induced tissue-specific circadian entrainment. Cell Rep. 2014;8:393–401. 10.1016/j.celrep.2014.06.015 [DOI] [PubMed] [Google Scholar]
  210. Sato TK, Panda S, Miraglia LJ, et al. : A functional genomics strategy reveals Rora as a component of the mammalian circadian clock. Neuron. 2004;43:527–537. 10.1016/j.neuron.2004.07.018 [DOI] [PubMed] [Google Scholar]
  211. Sawaki Y, Nihonmatsu I, Kawamura H: Transplantation of the neonatal suprachiasmatic nuclei into rats with complete bilateral suprachiasmatic lesions. Neurosci. Res. 1984;1:67–72. 10.1016/0168-0102(84)90031-2 [DOI] [PubMed] [Google Scholar]
  212. Scheer FAJL, Hilton MF, Mantzoros CS, et al. : Adverse metabolic and cardiovascular consequences of circadian misalignment. Proc. Natl. Acad. Sci. U.S.A. 2009;106:4453–4458. 10.1073/pnas.0808180106 [DOI] [PMC free article] [PubMed] [Google Scholar]
  213. Schernhammer ES, Laden F, Speizer FE, et al. : Night-Shift Work and Risk of Colorectal Cancer in the Nurses’ Health Study. JNCI J. Natl. Cancer Inst. 2003;95:825–828. 10.1093/jnci/95.11.825 [DOI] [PubMed] [Google Scholar]
  214. Sherman H, Genzer Y, Cohen R, et al. : Timed high-fat diet resets circadian metabolism and prevents obesity. FASEB J. 2012;26(8):3493–3502. 10.1096/fj.12-208868 [DOI] [PubMed] [Google Scholar]
  215. Shearman LP, Zylka MJ, Weaver DR, et al. : Two period homologs: circadian expression and photic regulation in the suprachiasmatic nuclei. Neuron. 1997;19:1261–1269. 10.1016/s0896-6273(00)80417-1 [DOI] [PubMed] [Google Scholar]
  216. Shigeyoshi Y, Taguchi K, Yamamoto S, et al. : Light-Induced Resetting of a Mammalian Circadian Clock Is Associated with Rapid Induction of the mPer1 Transcript. Cell. 1997;91(7):Article 7. 10.1016/S0092-8674(00)80494-8 [DOI] [PubMed] [Google Scholar]
  217. Shuboni D, Yan L: Nighttime dim light exposure alters the responses of the circadian system. Neuroscience. 2010;170(4):1172–1178. 10.1016/j.neuroscience.2010.08.009 [DOI] [PubMed] [Google Scholar]
  218. Skene DJ, Skornyakov E, Chowdhury NR, et al. : Separation of circadian- and behavior-driven metabolite rhythms in humans provides a window on peripheral oscillators and metabolism. Proc. Natl. Acad. Sci. U. S. A. 2018;115:7825–7830. 10.1073/pnas.1801183115 [DOI] [PMC free article] [PubMed] [Google Scholar]
  219. Šmotek M, Fárková E, Manková D, et al. : Evening and night exposure to screens of media devices and its association with subjectively perceived sleep: Should “light hygiene” be given more attention? Sleep Health. 2020;6(4):498–505. 10.1016/j.sleh.2019.11.007 [DOI] [PubMed] [Google Scholar]
  220. Solt LA, Wang Y, Banerjee S, et al. : Regulation of circadian behaviour and metabolism by synthetic REV-ERB agonists. Nature. 2012;485:62–68. 10.1038/nature11030 [DOI] [PMC free article] [PubMed] [Google Scholar]
  221. Son GH, Chung S, Choe HK, et al. : Adrenal peripheral clock controls the autonomous circadian rhythm of glucocorticoid by causing rhythmic steroid production. Proc. Natl. Acad. Sci. 2008;105:20970–20975. 10.1073/pnas.0806962106 [DOI] [PMC free article] [PubMed] [Google Scholar]
  222. Stephan FK, Zucker I: Circadian Rhythms in Drinking Behavior and Locomotor Activity of Rats Are Eliminated by Hypothalamic Lesions. Proc. Natl. Acad. Sci. U.S.A. 1972;69:1583–1586. 10.1073/pnas.69.6.1583 [DOI] [PMC free article] [PubMed] [Google Scholar]
  223. Stokkan KA, Yamazaki S, Tei H, et al. : Entrainment of the circadian clock in the liver by feeding. Science. 2001;291:490–493. 10.1126/science.291.5503.490 [DOI] [PubMed] [Google Scholar]
  224. Streng AA, Loef B, Dollé MET, et al. : Night shift work characteristics are associated with several elevated metabolic risk factors and immune cell counts in a cross-sectional study. Sci. Rep. 2022;12:2022. 10.1038/s41598-022-06122-w [DOI] [PMC free article] [PubMed] [Google Scholar]
  225. Sűdy ÁR, Ella K, Bódizs R, Káldi K: Association of Social Jetlag With Sleep Quality and Autonomic Cardiac Control During Sleep in Young Healthy Men. Front. Neurosci. 2019;13:950. 10.3389/fnins.2019.00950 [DOI] [PMC free article] [PubMed] [Google Scholar]
  226. Sun X, Dang F, Zhang D, et al. : Glucagon-CREB/CRTC2 Signaling Cascade Regulates Hepatic BMAL1 Protein. J. Biol. Chem. 2015;290:2189–2197. 10.1074/jbc.M114.612358 [DOI] [PMC free article] [PubMed] [Google Scholar]
  227. Świątkiewicz I, Woźniak A, Taub PR: Time-Restricted Eating and Metabolic Syndrome: Current Status and Future Perspectives. Nutrients. 2021;13(1):221. 10.3390/nu13010221 [DOI] [PMC free article] [PubMed] [Google Scholar]
  228. Tahara Y, Otsuka M, Fuse Y, et al. : Refeeding after Fasting Elicits Insulin-Dependent Regulation of Per2 and Rev-erbα with Shifts in the Liver Clock. J. Biol. Rhythm. 2011;26:230–240. 10.1177/0748730411405958 [DOI] [PubMed] [Google Scholar]
  229. Talamanca L, Gobet C, Naef F: Sex-dimorphic and age-dependent organization of 24-hour gene expression rhythms in humans. Science. 2023;379(6631):478–483. 10.1126/science.add0846 [DOI] [PubMed] [Google Scholar]
  230. Tapia-Osorio A, Salgado-Delgado R, Angeles-Castellanos M, et al. : Disruption of circadian rhythms due to chronic constant light leads to depressive and anxiety-like behaviors in the rat. Behav. Brain Res. 2013;252:1–9. 10.1016/j.bbr.2013.05.028 [DOI] [PubMed] [Google Scholar]
  231. Terman JS, Terman M, Lo ES, et al. : Circadian time of morning light administration and therapeutic response in winter depression. Arch. Gen. Psychiatry. 2001;58:69–75. 10.1001/archpsyc.58.1.69 [DOI] [PubMed] [Google Scholar]
  232. Thach T-Q, Mahirah D, Dunleavy G, et al. : Association between shift work and poor sleep quality in an Asian multi-ethnic working population: A cross-sectional study. PLoS One. 2020;15(3): e0229693. 10.1371/journal.pone.0229693 [DOI] [PMC free article] [PubMed] [Google Scholar]
  233. Tognini P, Samad M, Kinouchi K, et al. : Reshaping circadian metabolism in the suprachiasmatic nucleus and prefrontal cortex by nutritional challenge. Proc. Natl. Acad. Sci. U.S.A. 2020;117:29904–29913. 10.1073/pnas.2016589117 [DOI] [PMC free article] [PubMed] [Google Scholar]
  234. Torres-Farfan C, Serón-Ferré M, Dinet V, et al. : Immunocytochemical demonstration of day/night changes of clock gene protein levels in the murine adrenal gland: differences between melatonin-proficient (C3H) and melatonin-deficient (C57BL) mice. J. Pineal Res. 2006;40:64–70. 10.1111/j.1600-079X.2005.00279.x [DOI] [PubMed] [Google Scholar]
  235. Touitou Y, Motohashi Y, Reinberg A, et al. : Effect of shift work on the night-time secretory patterns of melatonin, prolactin, cortisol and testosterone. Eur. J. Appl. Physiol. 1990;60:288–292. 10.1007/BF00379398 [DOI] [PubMed] [Google Scholar]
  236. Touitou Y, Reinberg A, Touitou D: Association between light at night, melatonin secretion, sleep deprivation, and the internal clock: Health impacts and mechanisms of circadian disruption. Life Sci. 2017;173:94–106. 10.1016/j.lfs.2017.02.008 [DOI] [PubMed] [Google Scholar]
  237. Tsang AH, Koch CE, Kiehn J-T, et al. : An adipokine feedback regulating diurnal food intake rhythms in mice. elife. 2020;9:e55388. 10.7554/eLife.55388 [DOI] [PMC free article] [PubMed] [Google Scholar]
  238. Ueda HR, Chen W, Adachi A, et al. : A transcription factor response element for gene expression during circadian night. Nature. 2002;418:534–539. 10.1038/nature00906 [DOI] [PubMed] [Google Scholar]
  239. Valenzuela FJ, Vera J, Venegas C, et al. : Evidences of Polymorphism Associated with Circadian System and Risk of Pathologies: A Review of the Literature. Int. J. Endocrinol. 2016;2016:2746909–2746912. 10.1155/2016/2746909 [DOI] [PMC free article] [PubMed] [Google Scholar]
  240. Beurden AW, Schoonderwoerd RA, Tersteeg MMH, et al. : Single cell model for re-entrainment to a shifted light cycle. FASEB J. 2022;36:e22518. 10.1096/fj.202200478R [DOI] [PMC free article] [PubMed] [Google Scholar]
  241. Van den Pol AN: The hypothalamic suprachiasmatic nucleus of rat: intrinsic anatomy. J. Comp. Neurol. 1980;191:661–702. 10.1002/cne.901910410 [DOI] [PubMed] [Google Scholar]
  242. Horst GT, Muijtjens M, Kobayashi K, et al. : Mammalian Cry1 and Cry2 are essential for maintenance of circadian rhythms. Nature. 1999;398:627–630. 10.1038/19323 [DOI] [PubMed] [Google Scholar]
  243. Vinne V, Swoap SJ, Vajtay TJ, et al. : Desynchrony between brain and peripheral clocks caused by CK1δ/ε disruption in GABA neurons does not lead to adverse metabolic outcomes. Proc. Natl. Acad. Sci. U. S. A. 2018;115:E2437–E2446. 10.1073/pnas.1712324115 [DOI] [PMC free article] [PubMed] [Google Scholar]
  244. Verma AK, Singh S, Rizvi SI: Aging, circadian disruption and neurodegeneration: Interesting interplay. Exp. Gerontol. 2023;172: 112076. 10.1016/j.exger.2022.112076 [DOI] [PubMed] [Google Scholar]
  245. Verwey M, Amir S: Nucleus-specific effects of meal duration on daily profiles of Period1 and Period2 protein expression in rats housed under restricted feeding. Neuroscience. 2011;192:304–311. 10.1016/j.neuroscience.2011.07.016 [DOI] [PubMed] [Google Scholar]
  246. Vetter C, Dashti HS, Lane JM, et al. : Night Shift Work, Genetic Risk, and Type 2 Diabetes in the UK Biobank. Diabetes Care. 2018;41(4):762–769. 10.2337/dc17-1933 [DOI] [PMC free article] [PubMed] [Google Scholar]
  247. Viswanathan AN, Hankinson SE, Schernhammer ES: Night Shift Work and the Risk of Endometrial Cancer. Cancer Res. 2007;67:10618–10622. 10.1158/0008-5472.CAN-07-2485 [DOI] [PubMed] [Google Scholar]
  248. Vujovic N, Gooley JJ, Jhou TC, et al. : Projections from the subparaventricular zone define four channels of output from the circadian timing system. J. Comp. Neurol. 2015;523:2714–2737. 10.1002/cne.23812 [DOI] [PMC free article] [PubMed] [Google Scholar]
  249. Wang D, Opperhuizen A-L, Reznick J, et al. : Effects of feeding time on daily rhythms of neuropeptide and clock gene expression in the rat hypothalamus. Brain Res. 2017;1671:93–101. 10.1016/j.brainres.2017.07.006 [DOI] [PubMed] [Google Scholar]
  250. Wang J, Geng L: Effects of Socioeconomic Status on Physical and Psychological Health: Lifestyle as a Mediator. Int. J. Environ. Res. Public Health. 2019;16(2):281. 10.3390/ijerph16020281 [DOI] [PMC free article] [PubMed] [Google Scholar]
  251. Wang Q, Yin Y, Zhang W: Ghrelin Restores the Disruption of the Circadian Clock in Steatotic Liver. Int. J. Mol. Sci. 2018;19:3134. 10.3390/ijms19103134 [DOI] [PMC free article] [PubMed] [Google Scholar]
  252. Welsh DK, Logothetis DE, Meister M, et al. : Individual neurons dissociated from rat suprachiasmatic nucleus express independently phased circadian firing rhythms. Neuron. 1995;14:697–706. 10.1016/0896-6273(95)90214-7 [DOI] [PubMed] [Google Scholar]
  253. West AC, Smith L, Ray DW, et al. : Misalignment with the external light environment drives metabolic and cardiac dysfunction. Nat. Commun. 2017;8:417. 10.1038/s41467-017-00462-2 [DOI] [PMC free article] [PubMed] [Google Scholar]
  254. Wittmann M, Dinich J, Merrow M, et al. : Social Jetlag: Misalignment of Biological and Social Time. Chronobiol. Int. 2006;23(1–2):497–509. 10.1080/07420520500545979 [DOI] [PubMed] [Google Scholar]
  255. Wright JE, Vogel JA, Sampson JB, et al. : Effects of travel across time zones (jet-lag) on exercise capacity and performance. Aviat. Space Environ. Med. 1983;54:132–137. [PubMed] [Google Scholar]
  256. Wong PM, Hasler BP, Kamarck TW, et al. : Social Jetlag, Chronotype, and Cardiometabolic Risk. J. Clin. Endocrinol. Metab. 2015;100(12):4612–4620. 10.1210/jc.2015-2923 [DOI] [PMC free article] [PubMed] [Google Scholar]
  257. Wucher V, Sodaei R, Amador R, et al. : Day-night and seasonal variation of human gene expression across tissues. PLoS Biol. 2023;21(2): e3001986. 10.1371/journal.pbio.3001986 [DOI] [PMC free article] [PubMed] [Google Scholar]
  258. Xu W, Li X: Special Issue: Circadian Rhythms and Age Related Disorder: How Does Aging Impact Mammalian Circadian Organization? Adv. Biol. 2022: 2200219. 10.1002/adbi.202200219 [DOI] [PubMed] [Google Scholar]
  259. Yamadera H, Ito T, Suzuki H, et al. : Effects of bright light on cognitive and sleep-wake (circadian) rhythm disturbances in Alzheimer-type dementia. Psychiatry Clin. Neurosci. 2000;54:352–353. 10.1046/j.1440-1819.2000.00711.x [DOI] [PubMed] [Google Scholar]
  260. Yamaguchi S, Isejima H, Matsuo T, et al. : Synchronization of cellular clocks in the suprachiasmatic nucleus. Science. 2003;302:1408–1412. 10.1126/science.1089287 [DOI] [PubMed] [Google Scholar]
  261. Yamaguchi S, Mitsui S, Yan L, et al. : Role of DBP in the circadian oscillatory mechanism. Mol. Cell Biol. 2000;20:4773–4781. 10.1128/MCB.20.13.4773-4781.2000 [DOI] [PMC free article] [PubMed] [Google Scholar]
  262. Yamaguchi Y, Okada K, Mizuno T, et al. : Real-Time Recording of Circadian Per1 and Per2 Expression in the Suprachiasmatic Nucleus of Freely Moving Rats. J. Biol. Rhythm. 2016;31:108–111. 10.1177/0748730415621412 [DOI] [PubMed] [Google Scholar]
  263. Yamaguchi Y, Suzuki T, Mizoro Y, et al. : Mice Genetically Deficient in Vasopressin V1a and V1b Receptors Are Resistant to Jet Lag. Science. 2013;342:85–90. 10.1126/science.1238599 [DOI] [PubMed] [Google Scholar]
  264. Yamamuro D, Takahashi M, Nagashima S, et al. : Peripheral circadian rhythms in the liver and white adipose tissue of mice are attenuated by constant light and restored by time-restricted feeding. PLoS One. 2020;15:e0234439. 10.1371/journal.pone.0234439 [DOI] [PMC free article] [PubMed] [Google Scholar]
  265. Yamazaki S, Numano R, Abe M, et al. : Resetting central and peripheral circadian oscillators in transgenic rats. Science. 2000;288:682–685. 10.1126/science.288.5466.682 [DOI] [PubMed] [Google Scholar]
  266. Yang X, Downes M, Yu RT, et al. : Nuclear Receptor Expression Links the Circadian Clock to Metabolism. Cell. 2006;126:801–810. 10.1016/j.cell.2006.06.050 [DOI] [PubMed] [Google Scholar]
  267. Yannielli PC, Molyneux PC, Harrington ME, et al. : Ghrelin Effects on the Circadian System of Mice. J. Neurosci. 2007;27:2890–2895. 10.1523/JNEUROSCI.3913-06.2007 [DOI] [PMC free article] [PubMed] [Google Scholar]
  268. Yeung J, Mermet J, Jouffe C, et al. : Transcription factor activity rhythms and tissue-specific chromatin interactions explain circadian gene expression across organs. Genome Res. 2018;28:182–191. 10.1101/gr.222430.117 [DOI] [PMC free article] [PubMed] [Google Scholar]
  269. Yong M, Fischer D, Germann C, et al. : Are chronotype, social jetlag and sleep duration associated with health measured by Work Ability Index? Chronobiol. Int. 2016;33(6):721–729. 10.3109/07420528.2016.1167728 [DOI] [PubMed] [Google Scholar]
  270. Yoo S-H, Yamazaki S, Lowrey PL, et al. : PERIOD2::LUCIFERASE real-time reporting of circadian dynamics reveals persistent circadian oscillations in mouse peripheral tissues. Proc. Natl. Acad. Sci. U.S.A. 2004;101:5339–5346. 10.1073/pnas.0308709101 [DOI] [PMC free article] [PubMed] [Google Scholar]
  271. Young ME, Brewer RA, Peliciari-Garcia RA, et al. : Cardiomyocyte-specific BMAL1 plays critical roles in metabolism, signaling, and maintenance of contractile function of the heart. J. Biol. Rhythm. 2014;29:257–276. 10.1177/0748730414543141 [DOI] [PMC free article] [PubMed] [Google Scholar]
  272. Zeitzer JM, Dijk DJ, Kronauer R, et al. : Sensitivity of the human circadian pacemaker to nocturnal light: melatonin phase resetting and suppression. J. Physiol. 2000;526(Pt 3):695–702. 10.1111/j.1469-7793.2000.00695.x [DOI] [PMC free article] [PubMed] [Google Scholar]
  273. Zheng B, Larkin DW, Albrecht U, et al. : The mPer2 gene encodes a functional component of the mammalian circadian clock. Nature. 1999;400:169–173. 10.1038/22118 [DOI] [PubMed] [Google Scholar]
F1000Res. 2023 Apr 25. doi: 10.5256/f1000research.145648.r168565

Reviewer response for version 2

Frank AJL Scheer 1,2

The authors have addressed the feedback satisfactorily.

Is the review written in accessible language?

Yes

Are all factual statements correct and adequately supported by citations?

Yes

Are the conclusions drawn appropriate in the context of the current research literature?

Yes

Is the topic of the review discussed comprehensively in the context of the current literature?

Yes

Reviewer Expertise:

Chronobiology

I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard.

F1000Res. 2023 Apr 14. doi: 10.5256/f1000research.145648.r168566

Reviewer response for version 2

Andrew N Coogan 1

The authors have now made appropriate revisions in response to my comments, and I am pleased to endorse the revised manuscript.

Is the review written in accessible language?

Yes

Are all factual statements correct and adequately supported by citations?

Yes

Are the conclusions drawn appropriate in the context of the current research literature?

Yes

Is the topic of the review discussed comprehensively in the context of the current literature?

Yes

Reviewer Expertise:

Chronobiology

I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard.

F1000Res. 2023 Feb 23. doi: 10.5256/f1000research.139716.r161398

Reviewer response for version 1

Andrew N Coogan 1

This is a nicely written and timely review of the literature on circadian desynchrony, its mechanisms and its impacts on health. It provides a multi-level framework through which circadian desynchrony may be considered, and as such represents a very useful addition to the literature for researchers in chronobiology and adjacent areas.

I have only minor comments and suggestions that could be considered for an update of the manuscript.

  1. I would suggest adding a brief discussion of the very recently published studies on multi-tissue rhythms in humans (Wucher et al. (2023) 1 and Talamanca et al. (2023) 2 ). I appreciate that these papers have been published since the posting of the current version, but they are so pertinent to the concept of the review that an update might be warranted.

  2. In general, whilst discussing the epidemiological evidence concerning shift work as a risk factor for various chronic diseases, I would note that the literature is more mixed than presented, and that findings of associations between shift work and various chronic health outcomes tend to be far from ubiquitous. I would also note that the exposure to shift work probably consists of elements other than circadian desynchrony/light-at-night exposure (such as shorter sleep duration, poorer sleep quality, increased alcohol and nicotine use as coping mechanisms, poorer diet quality). I think it would be helpful as such to contextualize the discussion of shift work and circadian desynchrony a little more.

  3. I suggest that healthy physiological aging is a "condition" that may also warrant attention with reference to circadian desynchrony. There are a number of studies demonstrating that circadian desynchrony appears to be associated with "healthy" aging. Further, as many of the chronic conditions discussed in relation to desynchrony are age-related, it is important to consider circadian changes in the pre-morbid state. As such, when discussing evidence from disease models for desynchrony, I would find it useful if mention was made of the ages of the animals examined.

  4. For Figure 2 and its associated discussion, I would find it useful if the " misaligned zeitgebers" were indicated as both misaligned with reference to each other (e.g. meal timing from light/dark cycles), and also misaligned with the internal circadian phases. I think this is implicit in the discussion, but suggest that it would be helpful to make these considerations explicit.

  5. My preference would be for the consideration of social jetlag to be given more prominence, given its near ubiquitous nature at the population level as an everyday circadian desynchrony. I think it would also be helpful for the reader if indications of the non-trivial magnitude of social jetlag could be indicated in the manuscript. 

Is the review written in accessible language?

Yes

Are all factual statements correct and adequately supported by citations?

Yes

Are the conclusions drawn appropriate in the context of the current research literature?

Yes

Is the topic of the review discussed comprehensively in the context of the current literature?

Yes

Reviewer Expertise:

Chronobiology

I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard, however I have significant reservations, as outlined above.

References

  • 1. : Day-night and seasonal variation of human gene expression across tissues. PLoS Biol .2023;21(2) : 10.1371/journal.pbio.3001986 e3001986 10.1371/journal.pbio.3001986 [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 2. : Sex-dimorphic and age-dependent organization of 24-hour gene expression rhythms in humans. Science .2023;379(6631) : 10.1126/science.add0846 478-483 10.1126/science.add0846 [DOI] [PubMed] [Google Scholar]
F1000Res. 2023 Mar 15.
Isabel Heyde 1

This is a nicely written and timely review of the literature on circadian desynchrony, its mechanisms and its impacts on health. It provides a multi-level framework through which circadian desynchrony may be considered, and as such represents a very useful addition to the literature for researchers in chronobiology and adjacent areas.

I have only minor comments and suggestions that could be considered for an update of the manuscript.

Comment: I would suggest adding a brief discussion of the very recently published studies on multi-tissue rhythms in humans (Wucher et al. (2023) 1 and Talamanca et al. (2023) 2 ). I appreciate that these papers have been published since the posting of the current version, but they are so pertinent to the concept of the review that an update might be warranted.

Response: We agree that these references serve as important recent additions to the field. We included these in the organization of the mammalian circadian clock system in the sections where we are highlighting the phase relationship between tissues and genes. However, we feel the need to point out the limitation of the study design while acknowledging the fact that the GTEx data set is so far the best data set available. The main limitation we find with this data set is that data were obtained from hospitalised patients which indirectly points out that there might be a high possibility of the patients being in a chronodisrupted health condition.

Comment: In general, whilst discussing the epidemiological evidence concerning shift work as a risk factor for various chronic diseases, I would note that the literature is more mixed than presented, and that findings of associations between shift work and various chronic health outcomes tend to be far from ubiquitous. I would also note that the exposure to shift work probably consists of elements other than circadian desynchrony/light-at-night exposure (such as shorter sleep duration, poorer sleep quality, increased alcohol and nicotine use as coping mechanisms, poorer diet quality). I think it would be helpful as such to contextualize the discussion of shift work and circadian desynchrony a little more.

Response: We added studies showing that shift work does not necessarily increase the risk for distinct diseases. Furthermore, we explained that the exposure to shift work does not only include circadian desynchrony/light-at-night exposure but also has a negative impact on the sleep quality and related coping mechanisms.

Comment: I suggest that healthy physiological aging is a "condition" that may also warrant attention with reference to circadian desynchrony. There are a number of studies demonstrating that circadian desynchrony appears to be associated with "healthy" aging. Further, as many of the chronic conditions discussed in relation to desynchrony are age-related, it is important to consider circadian changes in the pre-morbid state. As such, when discussing evidence from disease models for desynchrony, I would find it useful if mention was made of the ages of the animals examined.

Response: We thank the reviewer for  this  comment. We agree and briefly discuss the relationship between aging and circadian desynchrony and highlight the point that considering age of experimental animals should be given more importance. We do not explicitly mention the age of experimental subjects in every referred study. However, we do make a statement, before starting the main subject chapters, mentioning that all the cited studies were conducted in young adults of the respective model if not stated otherwise.

Comment: For Figure 2 and its associated discussion, I would find it useful if the " misaligned zeitgebers" were indicated as both misaligned with reference to each other (e.g. meal timing from light/dark cycles), and also misaligned with the internal circadian phases. I think this is implicit in the discussion, but suggest that it would be helpful to make these considerations explicit.

Response: We agree that this is an important point that was missed in the figure representation and have now corrected the figure by displaying different panels for both types of " misaligned zeitgebers”.

Comment: My preference would be for the consideration of social jetlag to be given more prominence, given its near ubiquitous nature at the population level as an everyday circadian desynchrony. I think it would also be helpful for the reader if indications of the non-trivial magnitude of social jetlag could be indicated in the manuscript. 

Response: Impact of social jetlag in everyday life was not given prominence in the original manuscript. We agree that this is a very valuable addition and now introduce the social jetlag concept in the introduction as well as discuss its effects at the population level in the following chapters.

F1000Res. 2022 Dec 19. doi: 10.5256/f1000research.139716.r155847

Reviewer response for version 1

Frank AJL Scheer 1,2

Editorial Note from F1000Research – 25th April 2023: This peer review report was updated at the reviewer's request to add a Conflict of Interest statement in order to ensure full transparency.

This is a timely, comprehensive, and well-written review on circadian misalignment at different organismal levels and health consequences, with a primary review of animal experimental work supplemented with human work. The claims are well supported by references to original work. My comments are mostly minor.

  • While this is done in many cases, it is important to specify the model and tissue. This is especially important because statements about timing of peaks and troughs may be opposite between nocturnal vs. diurnal mammals, and between SCN vs. extra-SCN oscillators. For example, statements such as " circadian locomotor output cycles kaput (CLOCK) heterodimers bind to E-box promotor elements in period1–3 (Per1–3) and cryptochrome1/2 (Cry1/2) genes inducing their transcription in the morning" need to indicate the model and tissue. Please do this throughout the manuscript.

  • Figure 2, consider moving " Inter-tissue desynchrony" label to be with the third panel that is showing inter-tissue misalignment. Do you need the label “ Intra-tissue desynchrony”? This seems to refer to the same concept as “ Cellular desynchrony”, i.e., misalignment between cells in the same tissue. Consider using the same terminology throughout the manuscript, and the term "inter-cell" to clarify that it is distinct from the intra-cellular/molecular misalignment.

  • For future directions, it will be helpful for the readers to lay out what type of studies and approaches will be most valuable to clarify the knowledge gaps. This is also true for the statement on page 9, “ However, more studies investigating the effect of phase incoherencesare needed…”.

  • Introduction, first paragraph, replace " period length" with "period" and consider adding "(cycle length)" after "period".

  • Introduction, second paragraph, do the authors mean "prevalence" instead of " incidence"?

  • Introduction, second paragraph, “ Possibly, this may be provoked by light-mediated resetting of the SCN…”, clarify the rationale why SCN resetting, or melatonin suppression, would increase the risk for obesity or metabolic syndrome.

  • Introduction, second paragraph, “ Shift work is believed to affect…”, the phase coherence doesn't need to be between two or more circadian rhythms but could also be between a circadian and a diurnal rhythm such as between the melatonin rhythm and the sleep/wake cycle or light/dark cycle.

  • Page 4, “ However, hepatocyte clocks in SCN ablated mice…”, why would this show that peripheral tissue clocks are coupled? An alternative explanation could be that the feeding rhythm itself synchronizes hepatocytes, such that they are aligned even if they are not coupled among each other. Even though this alternative is recognized in the subsequent sentence, it will be helpful to acknowledge this in the first statement.

  • Page 4, “ Within each rhythmic cell, the molecular clock has a normal phase distribution”, consider rephrasing that “…the components of the molecular clock have a phase distribution.”

  • Page 6, “ All of the above described real-life situations result in chronodisruption which promotes metabolic impairments but also increases the prevalence for major depression, cardiovascular disease, autoimmune disorders, and certain cancers”, most of these cited studies are observational studies where other factors may also be involved, besides chronodisruption, that cause the increased disease risk, such as differences in socioeconomic status and lifestyle which will be important to acknowledge and that therefore experimental studies are needed to directly test cause-and-effect relationships with risk factors.

  • Page 9, “ Whereas all three genes react rapidly to LD delays”, this sentence is incomplete.

  • Page 9, bottom of the page, when discussing the effects of HFD, consider discussing whether the blunting of the feeding rhythm (which may be due to non-circadian factors, such as different dynamics of metabolism and saturation by fat vs. carbohydrates) may be the cause of the blunted clock gene rhythms, e.g., in adipose tissue and liver.

  • Page 10, when discussing intra-cellular misalignment, please discuss to what degree the different speeds of re-entrainment following a shift between different clock genes may be due to specific clock genes acting as immediate early genes in response to the specific zeitgeber(s), which may also show transient changes in their levels in acute response to the zeitgeber.

  • Page 10, as part of therapeutic approaches and future directions, you may want to briefly discuss timing of behavior as a therapeutic approach, e.g., food timing with promising experimental human studies including those addressing misalignment. You may also want to briefly mention the broader relevance for the timing of therapy/treatment, such as for surgery (Montaigne et. al. (2018) 1 ).

  • Page 10, “ It will be important to understand the mechanisms…”, this paragraph describes approaches to follow cell-specific molecular rhythms under various conditions. Consider discussing experimental approaches to test whether misalignment between tissues contributes to negative health consequences.

Is the review written in accessible language?

Yes

Are all factual statements correct and adequately supported by citations?

Yes

Are the conclusions drawn appropriate in the context of the current research literature?

Yes

Is the topic of the review discussed comprehensively in the context of the current literature?

Yes

Reviewer Expertise:

Chronobiology

I confirm that I have read this submission and believe that I have an appropriate level of expertise to confirm that it is of an acceptable scientific standard, however I have significant reservations, as outlined above.

References

  • 1. : Daytime variation of perioperative myocardial injury in cardiac surgery and its prevention by Rev-Erbα antagonism: a single-centre propensity-matched cohort study and a randomised study. Lancet .2018;391(10115) : 10.1016/S0140-6736(17)32132-3 59-69 10.1016/S0140-6736(17)32132-3 [DOI] [PubMed] [Google Scholar]
F1000Res. 2023 Mar 15.
Isabel Heyde 1

This is a timely, comprehensive, and well-written review on circadian misalignment at different organismal levels and health consequences, with a primary review of animal experimental work supplemented with human work. The claims are well supported by references to original work. My comments are mostly minor.

Comment: While this is done in many cases, it is important to specify the model and tissue. This is especially important because statements about timing of peaks and troughs may be opposite between nocturnal vs. diurnal mammals, and between SCN vs. extra-SCN oscillators. For example, statements such as " circadian locomotor output cycles kaput (CLOCK) heterodimers bind to E-box promotor elements in period1–3 (Per1–3) and cryptochrome1/2 (Cry1/2) genes inducing their transcription in the morning" need to indicate the model and tissue. Please do this throughout the manuscript.

Response: We thank the reviewer for this comment and agree that experimental model and tissue type will largely influence circadian parameters of clock genes and have therefore indicated specific model and tissue where needed.

Comment: Figure 2, consider moving " Inter-tissue desynchrony" label to be with the third panel that is showing inter-tissue misalignment. Do you need the label “ Intra-tissue desynchrony”? This seems to refer to the same concept as “ Cellular desynchrony”, i.e., misalignment between cells in the same tissue. Consider using the same terminology throughout the manuscript, and the term "inter-cell" to clarify that it is distinct from the intra-cellular/molecular misalignment.

Response: We have relabelled " Inter-tissue desynchrony" for third panel in Figure 2 as suggested. With regard to “ Intra-tissue desynchrony”, we prefer to keep the label as well as the corresponding reference in the text since we want to emphasize that inter-cell and molecular desynchrony both can be grouped under this umbrella term.  We changed “ Cellular desynchrony” to "Inter-cell desynchrony" to avoid confusion.

Comment: For future directions, it will be helpful for the readers to lay out what type of studies and approaches will be most valuable to clarify the knowledge gaps. This is also true for the statement on page 9, “ However, more studies investigating the effect of phase incoherencesare needed…”.

Response: We now elaborate on these in the last paragraph of the inter-tissue synchrony chapter and provide more detailed ideas for future directions. Please also see our response to the last comment for more details.

Comment: Introduction, first paragraph, replace " period length" with "period" and consider adding "(cycle length)" after "period". Introduction, second paragraph, do the authors mean "prevalence" instead of " incidence"?

Response: We thank the reviewer for these comments and changed the text accordingly. We changed the phrase from 'period length' to 'period (cycle length)' in the text. The cited studies investigated the associations between shift work/circadian disruption and the health outcome and, thereby, explored the 'incidence' so we replaced the word 'prevalence'.

Comment: Introduction, second paragraph, “ Possibly, this may be provoked by light-mediated resetting of the SCN…”, clarify the rationale why SCN resetting, or melatonin suppression, would increase the risk for obesity or metabolic syndrome.

Response: We added some more information. Briefly, LAN dampens clock gene rhythms in the SCN and may shift food intake patterns. Furthermore, we highlighted the role of melatonin in insulin biosynthesis and the regulation of leptin rhythms.

Comment: Introduction, second paragraph, “ Shift work is believed to affect…”, the phase coherence doesn't need to be between two or more circadian rhythms but could also be between a circadian and a diurnal rhythm such as between the melatonin rhythm and the sleep/wake cycle or light/dark cycle.

Response: We thank the reviewer for this thoughtful comment. Indeed, phase coherence can be disturbed between two or more circadian rhythms but, as pointed out, also between circadian and diurnal rhythms. We added this in the revised manuscript.

Comment: Page 4, “ However, hepatocyte clocks in SCN ablated mice…”, why would this show that peripheral tissue clocks are coupled? An alternative explanation could be that the feeding rhythm itself synchronizes hepatocytes, such that they are aligned even if they are not coupled among each other. Even though this alternative is recognized in the subsequent sentence, it will be helpful to acknowledge this in the first statement.

Response: We completely agree that the aligned circadian oscillations in hepatocytes do not necessarily imply the presence of a coupling mechanism. The feeding rhythm plays a major role. Therefore, we have rephrased the text to make this clear. However, the study of Guenther et al. suggests that there is a weak coupling in peripheral oscillators so it cannot be ruled out that coupling contributes to the results observed by Saini et al..

  

Comment: Page 4, “ Within each rhythmic cell, the molecular clock has a normal phase distribution”, consider rephrasing that “…the components of the molecular clock have a phase distribution.”

Response: We thank the reviewer for this  valuable comment. We rephrased this sentence. 

Comment: Page 6, “ All of the above described real-life situations result in chronodisruption which promotes metabolic impairments but also increases the prevalence for major depression, cardiovascular disease, autoimmune disorders, and certain cancers”, most of these cited studies are observational studies where other factors may also be involved, besides chronodisruption, that cause the increased disease risk, such as differences in socioeconomic status and lifestyle which will be important to acknowledge and that therefore experimental studies are needed to directly test cause-and-effect relationships with risk factors.

Response: We agree that many other factors may promote the development of the listed diseases which were not mentioned in the original manuscript. Therefore, we included them in a brief explanation.

 

Comment: Page 9, “ Whereas all three genes react rapidly to LD delays”, this sentence is incomplete.

Response: Thank you for pointing this out. We corrected this in the revised version.

Comment: Page 9, bottom of the page, when discussing the effects of HFD, consider discussing whether the blunting of the feeding rhythm (which may be due to non-circadian factors, such as different dynamics of metabolism and saturation by fat vs. carbohydrates) may be the cause of the blunted clock gene rhythms, e.g., in adipose tissue and liver.

Response: We agree that dampening of clock genes may be an effect of overall dampening of feeding rhythms and have included this speculation as a brief statement.

 

Comment: Page 10, when discussing intra-cellular misalignment, please discuss to what degree the different speeds of re-entrainment following a shift between different clock genes may be due to specific clock genes acting as immediate early genes in response to the specific zeitgeber(s), which may also show transient changes in their levels in acute response to the zeitgeber.

Response: We briefly discuss the re-entrainment speed of particular clock genes upon photic stimulation in the SCN and point out that this may partly explain the different speeds in re-entrainment seen in distinct tissues.

Comment: Page 10, as part of therapeutic approaches and future directions, you may want to briefly discuss timing of behavior as a therapeutic approach, e.g., food timing with promising experimental human studies including those addressing misalignment. You may also want to briefly mention the broader relevance for the timing of therapy/treatment, such as for surgery (Montaigne et. al. (2018) 1 ).

Response: We agree that time-restricted eating is an important tool to modulate the clock and improve metabolism and, therefore, added some information on the potential of time-of-eating as a therapeutic approach.

Comment: Page 10, “ It will be important to understand the mechanisms…”, this paragraph describes approaches to follow cell-specific molecular rhythms under various conditions. Consider discussing experimental approaches to test whether misalignment between tissues contributes to negative health consequences.

Response: We discuss the use of chimeric mice inheriting slow and normal (24-hour) clocks in distinct tissues. Furthermore, it is not known yet whether tissue-specific clock KO mice suffer from inter-tissue desynchrony which may promote/evoke the observed phenotypes. Established forced desynchrony paradigms may be useful to study the effects of inter-tissue desynchrony on health in mice. Unfortunately, in humans we so far are lacking good biomarkers for peripheral tissue clocks. We point out the need for those in the paragraph and the necessity to study desynchrony in different genders, ages, ethnicities and lifestyles to evaluate the effect on health.

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