Abstract
Background
Pemphigus vulgaris (PV), a severe mucocutaneous blistering disease, results from autoantibody-mediated destabilization of epidermal cell–cell adhesion. A functional risk variant at the ST18 locus was found to promote epidermal ST18 expression. Increased ST18 expression was found to aggravate the deleterious effect of PV autoantibodies in part through induction of p53-mediated proapoptotic pathways. The voltage-dependent anion channel (VDAC) is a key regulator of mitochondria-mediated apoptosis.
Objectives
To delineate the interplay between ST18 and VDAC in apoptosis regulation, and the therapeutic potential of VDAC inhibitors in PV.
Methods
We used global RNA sequencing (RNAseq) of human keratinocytes to assess ST18-dependent changes in VDAC1, VDAC2, VDAC3 and BCL2 expression. Immunostaining of skin biopsies was used to evaluate VDAC1 in patients with PV. Apoptotic activity was analysed by caspase 3/7 and TUNEL apoptosis assays, while immunoblotting and a luciferase reporter assay assessed Bcl-2 and p53 pathways. The dispase dissociation assay was used to ascertain the effect VDAC inhibition had on acantholysis.
Results
Keratinocytes overexpressing ST18 showed upregulation of VDAC1, VDAC2 and VDAC3, which encode VDAC, and downregulation of BCL2, which encodes the antiapoptotic protein Bcl-2. Of interest, mitochondrial VDAC and p53 antagonize Bcl-2 activity. Patients with PV had dramatically increased epidermal VDAC1 expression. Keratinocytes exposed to AK23, a pathogenic antidesmoglein 3 antibody, and overexpressing ST18, exhibited elevated apoptotic activity. VBIT-12, a VDAC oligomerization inhibitor, robustly attenuated this response and concomitantly led to upregulation of Bcl-2 and to downregulation of p53 transcriptional activity. This suggested that inhibition of VDAC proapoptotic activity may prevent cell–cell disadhesion in PV. Indeed, VBIT-12 was found to efficiently prevent acantholysis due to PV IgG/AK23.
Conclusions
Our findings identify VDAC as a novel factor in the pathogenesis of PV and thus as an innovative and attractive therapeutic target for the treatment of this disease.
Pemphigus vulgaris (PV), a severe mucocutaneous blistering disease, results from autoantibody-mediated destabilization of epidermal cell–cell adhesion. A functional risk variant at the ST18 locus was found to promote epidermal ST18 expression. Increased ST18 expression was found to aggravate the deleterious effect of PV autoantibodies in part through induction of p53-mediated pro-apoptotic pathways. Here we investigated the role of voltage-dependent anion channel (VDAC), which is a key regulator of mitochondria-mediated apoptosis in ST18-mediated PV pathogenesis. Our results suggest that inhibition of VDAC pro-apoptotic activity may prevent cell–cell disadhesion in PV, pointing at VDAC inhibition as an innovative and attractive approach for the treatment of this disease.
What is already known about this topic?
Pemphigus vulgaris (PV), a severe mucocutaneous blistering disease, results from autoantibody-mediated destabilization of epidermal cell–cell adhesion.
Increased ST18 expression aggravates the deleterious effect of PV autoantibodies through induction of p53-mediated proapoptotic pathways.
Previous data have highlighted the mitochondrial apoptotic signals role in the pathogenesis of acantholysis in PV, as well as of other autoimmune diseases.
The mitochondrial voltage-dependent anion channel (VDAC) regulates apoptosis, but its role in PV remains unclear.
What does this study add?
VDAC1, VDAC2 and VDAC3 are upregulated in ST18-overexpressing keratinocytes, with increased epidermal VDAC1 expression in PV skin.
VDAC inhibition using the VDAC oligomerization inhibitor, VBIT-12, reduces apoptosis, increases Bcl-2 and downregulates p53 activity.
VBIT-12 prevents PV IgG/AK23-induced acantholysis, highlighting VDAC as a novel factor in the pathogenesis of PV and thus as an innovative and attractive therapeutic target for the treatment of this disease.
Pemphigus vulgaris (PV) is a chronic autoimmune blistering disease that is most frequently diagnosed in individuals during their fifth to seventh decades of life.1 The use of corticosteroids and systemic immunosuppressants has led to a dramatic reduction in mortality rates to below 10%, with the majority of PV-related deaths being attributed to therapy-associated adverse effects.1–3 This underscores the need for innovative therapeutic strategies.
Circulating autoantibodies primarily directed against the desmosomal proteins desmoglein (Dsg)3 and Dsg1 have traditionally been considered the key factor in PV development.1 However, recent studies exploring PV pathogenesis have highlighted additional mechanisms, such as disrupted cell–cell signalling, apoptosis, the influence of proinflammatory cytokines and the activation of muscarinic receptors in keratinocytes.4–9 Moreover, it is well established that the tendency to develop PV is largely influenced by genetic factors.10 Over the past decade, ST18 has emerged as a key player in the pathogenesis of PV. ST18 encodes a transcription factor that is overexpressed in the skin of patients with PV.11,12 A PV-associated risk variant within the ST18 promoter region (rs17315309) was found to drive ST18 transcription, stimulate PV serum-induced acantholysis and promote the release of key inflammatory molecules, particularly tumour necrosis factor alpha (TNF-α).12–14 Moreover, this effect of ST18 on cell–cell adhesion was found to be partially mediated by extracellular signal-regulated kinase signalling.15 Of note, the rs17315309 risk variant enhances ST18 expression in a p53-dependent manner,13 while depletion of Dsg3 in keratinocytes leads to increased p53 expression and activity.16,17 A recent study14 delineated a self-amplifying pathomechanism wherein ST18 expression accelerates autoantibody-driven Dsg3 membrane downregulation, which then activates p53, further regulating ST18.13,14
Previous data highlighted the role of mitochondrial apoptotic signals in the pathogenesis of acantholysis in PV, as well as of other autoimmune diseases, such as systemic lupus erythematosus (SLE).18–25 The voltage-dependent anion channel (VDAC) promotes the release of proapoptotic proteins from mitochondria.26 Notably, elevated expression of VDAC has also been observed in SLE,27 and inhibiting VDAC oligomerization has been shown to reduce disease severity in a mouse model of SLE.28 The fact that PV serum induces mitochondrial damage20 suggests the possibility of using mitochondria-protective drugs as a therapeutic approach in PV. Here we show that VDAC1 expression is increased in PV skin. Given that ST18 contributes to PV pathogenesis in part by inducing proapoptotic pathways, we aimed at investigating the interplay between ST18 and VDAC in apoptosis regulation, and the therapeutic potential of VDAC inhibitors in PV.
Materials and methods
Cell cultures
For the RNA sequencing (RNAseq) experiments, HaCaT cells were maintained in modified Eagle’s medium supplemented with 10% fetal calf serum, 1% L-glutamine, 1% streptomycin and 1% amphotericin (Biological Industries, Beit-Haemek, Israel) to assess ST18-dependent changes in VDAC1, VDAC2 and VDAC3, and BCL2 expression. For the caspase 3/7 and TUNEL apoptosis assays, the immunoblotting and a luciferase reporter assay to assess Bcl-2 and p53 pathways, and the dispase dissociation assay to test VDAC inhibition effect on acantholysis, normal human epidermal keratinocytes (NHEKs) were obtained from foreskin as previously described.13 The cells were grown in KC Growth Medium (Lonza, Walkersville, MD, USA). For expression studies, NHEKs grown to ∼70% confluence in 12-well plates were transfected with various constructs using Lipofectamine 2000 (Life Technologies, Carlsbad, CA, USA), as described elsewhere.13 Twenty-four hours post-transfection, NHEKs were exposed to the monoclonal antibody AK23 (3.75 μg mL–1; prior to exposure to AK23, Ca2+ concentration was raised to 1.2 mmol L–1) (D219-3; Biozol, Eching, Germany), a monoclonal mouse IgG1 antibody (3.75 μg mL–1) (MAB002; R&D Systems, Minneapolis, MN, USA), VBIT-12 [20 μmol L–1 (31445; Cayman Chemical, Ann Arbor MI, USA)] or dimethyl sulfoxide (DMSO) as a control. For caspase 3/7 assay and TUNEL staining, NHEKs were added at the same time as exposure to recombinant human TNF-α [20 ng mL–1 (300-01A; PeproTech, Cranbury, NJ, USA)] for 24 h.
Monoclonal stable cell line generation
Human wildtype ST18 open reading frame sequence cloned into a FLAG-tagged pCMV6-Entry vector (pCMV6-ST18) was purchased from Origene Technologies Company (Rockville, MD, USA). The empty pCMV6-Entry (EV) was used as a control.13 HaCaT cells were transiently transfected using Lipofectamine 2000 (Invitrogen, Grand Island, NY, USA) with pCMV6-ST18 or EV. The cells were cultured for another 2 weeks with media supplemented with G418. Monoclonal cell lines were generated by the limiting dilution method. Colonies were isolated and propagated. Monoclonal stable cell lines were validated through polymerase chain reaction (PCR) amplification of the expression vector.
RNA sequencing
RNA was extracted using an RNA extraction kit (Roche, Mannheim, Germany). Libraries were prepared using a TrueSeq stranded total RNA LT sample prep kit (Illumina, San Diego, CA, USA). Sequencing was performed as a paired-end read on an Illumina True-Seq platform. Sequencing depth was ∼30 million reads/sample. Raw sequencing data were trimmed using fastp 0.20.029 and aligned to the GRCm38 assembly using STAR 2.6.0c.30 DESeq2 1.30.131 and R 3.6 were used for normalization of count data and for statistical analysis of differential gene expression. Cluster analysis was applied to the differentially expressed genes (DEGs) identified, and volcano maps were created for visualizing the data. Subsequently, Kyoto Encyclopedia of Genes and Genomes (KEGG) functional annotation, as well as functional enrichment analysis, were conducted to elucidate the functional and regulatory associations of the DEGs. Pathway analysis was used to identify genes involved in apoptosis, in part from the KEGG pathway (pathway ID: hsa04210). For quantitative reverse transcription PCR (qRT-PCR), RNA was extracted from cultured cells using an RNA extraction kit (Roche, Mannheim, Germany). cDNA was synthesized and PCR-amplified as described previously.32 Cycling conditions were as follows: 95 °C for 20 s, followed by 95 °C for 3 s and 60 °C for 30 s for 40 cycles. Primers used for the qRT-PCR experiments are listed in Table S1 (see Supporting Information). Each sample was analysed in triplicate. Results were normalized to GAPDH mRNA levels.
Immunohistochemistry studies
After antigen retrieval with 0.01 mol L–1 citrate buffer (pH 6.0; Invitrogen, Carlsbad, CA, USA) in a microwave for 25 min, blocking with hydrogen peroxide for 10 min and protein blocking for 40 min, 5-mm-thick paraffin-embedded sections fixed on Plus glass slides (Menzel Glaser, Braunschweig, Germany) were processed with an automated immunostainer (Benchmark-XT; Ventana Medical System, Tucson, AZ, USA) with rabbit polyclonal anti-VDAC1/Porin antibody [diluted 1:200 (ab15895; Abcam, Cambridge, UK)]. Negative controls consisted of slides processed while omitting the primary antibody. Visualization of the bound primary antibodies was done with the Mouse and Rabbit Specific HRP/AEC Detection IHC Kit (ab93705; Abcam). Sections were then counterstained with Gill haematoxylin, dehydrated and mounted for microscopic examination. Specimens were examined with a Nikon 50I microscope connected to a DS-RI1 digital camera (Nikon, Tokyo, Japan).
Immunofluorescence studies
NHEKs were grown on glass coverslips and fixed with paraformaldehyde 4%. Following permeabilization with Triton/phosphate-buffered saline 0.1%, sections were blocked in bovine serum albumin (BSA) 5% and incubated overnight at 4 °C with primary antibodies: rabbit polyclonal anti-VDAC1/Porin antibody [diluted 1:200; ab15895 (Abcam)] or mouse monoclonal anti-Bcl-2 Antibody (C-2) [diluted 1:50 (sc-7382; Santa Cruz Biotechnology, Santa Cruz, CA, USA)]. Secondary antibody staining was carried out for 1 h at 37 °C using goat antirabbit IgG (H + L) cross-adsorbed secondary antibody, Rhodamine Red™-X [diluted 1:200; #R-6394 (Invitrogen, Carlsbad, CA, USA)] or goat antimouse IgG (H + L) cross-adsorbed secondary antibody, Rhodamine Red-X [diluted 1:200; #R-6393 (Invitrogen, Carlsbad, CA, USA)]. Negative control staining without the primary antibodies is shown in Figure S1 (see Supporting Information). Coverslips were mounted in polyvinyl alcohol. Imaging was done with Leica SP8 confocal microscope (Leica Microsystems, Wetzlar, Germany). Fluorescence intensity was quantified using ImageJ software (National Institutes of Health, Bethesda, MD, USA).
Caspase 3/7 assay
The Caspase-Glo® 3/7 Assay System kit (G8090; Promega, Madison, WI, USA) was conducted according to the manufacturer’s instructions. Briefly, cells were plated in 96-well white-walled, clear-bottom plates (Lonza, Basel, Switzerland). One hundred microlitres of the assay reagent was added to each well. The plate was then incubated for 30–60 min, and luminescence was measured using a Tecan plate reader (Tecan Group, Männedorf, Switzerland).
TUNEL staining
The In Situ Cell Death Detection Kit, TMR red–TUNEL staining kit (12156792910; Roche) for apoptosis detection assay was used according to the instructions provided by the manufacturer. Fluorescence microscopy was done as described in the ‘Immunofluorescence studies’ section. Nuclei double-labelled with TUNEL and 4’,5-diamidino-2-phenylindole were considered indicative of apoptosis.
p53 luciferase reporter assay
NHEKs cultured in a white flat-bottom 96-well microplate were transfected in the presence of Lipofectamine 2000 (Invitrogen, Grand Island, NY, USA) with a luciferase reporter construct containing an artificial p53-responsive promoter (pRGC-luc) as previously described,14 or an empty luciferase pGL2 as a negative control, as well as a Renilla expression vector. Twenty-four hours post-transfection, Ca2+ concentration was increased to 1.2 mmol L–1 and cells were treated with the monoclonal AK23 antibody [3.75 μg mL–1 (D219-3; Biozol)] or a monoclonal mouse IgG1 antibody [3.75 μg mL–1 (MAB002; R&D Systems)] as negative control, as well as VBIT-12 [20 μmol L–1 (31445; Cayman Chemical)] or DMSO as a control. Twenty-four hours later, a dual luciferase assay (Promega) was used to measure luciferase activity, which was normalized to Renilla luciferase activity, using a Tecan Infinite M200 device.
Western blotting
As described elsewhere,14 cells were homogenized in CelLytic MT (Sigma-Aldrich, St. Louis, MO, USA) and a protease inhibitor mix, including 1 mmol L–1 phenylmethanesulfonyl fluoride, and 1 mg mL–1 aprotinin and leupeptin (Sigma-Aldrich). Following centrifugation, at 10 000g for 10 min at 4 °C, proteins were electrophoresed through a gradient Bio-Rad gel (4–20% Criterion™ TGX Stain-Free) and onto a polyvinylidene fluoride membrane (Trans-Blot; Bio-Rad, Hercules, CA, USA). After blocking for 1 h using 1× Tris-buffered saline with Tween-20 (50 mmol L–1 Tris, 150 mmol L–1 NaCl, 0.01% Tween 20) with BSA 5%, blots were incubated overnight at 4 °C with mouse monoclonal anti-Bcl-2 Antibody (C-2) [diluted 1:200 (sc-7382; Santa Cruz Biotechnology)]. The blots were washed five times for 5 min each with 1× Tris-buffered saline, 0.1% Tween 20 with BSA 1.5%. After incubation with horseradish peroxidase (HRP)-conjugated goat antimouse antibody [diluted 1:10 000 (115-035-003; Jackson ImmunoResearch Laboratories, West Grove, PA, USA)], and subsequent washings, proteins were detected using the EZ-ECL chemiluminescence detection kit (Biological Industries, Beit Haemek, Israel). To compare the amount of protein in different samples, we reprobed the blots using a mouse monoclonal anti-α-tubulin antibody [diluted 1:5000 (T9026; Sigma-Aldrich)] and secondary HRP-conjugated goat antimouse antibody [diluted 1:10 000 (115-035-003; Jackson ImmunoResearch Laboratories]. Protein levels were quantified by ImageJ software.
Cytochrome C release assay
Following the manufacturer’s instructions, we isolated the mitochondrial fraction using the Cytochrome C Releasing Apoptosis Assay Kit (ab65311; Abcam).
Dispase-based dissociation assay
The assay was conducted as detailed elsewhere.13 The fragment number was evaluated by two independent evaluators. NHEKs were grown to confluence in six-well plates, followed by exposure to AK23 (3.75 μg mL–1) or IgG1 antibody (3.75 μg mL–1), as well as VBIT-12 or DMSO as a control. NHEKs were additionally treated at the same time with ABT-199 [0.5 μmol L–1; HY15531S (MedChemExpress, Monmouth Junction, NJ, USA)] for 24 h. Prior to exposure to AK23, Ca2+ concentration was raised to 1.2 mmol L–1 .
Statistical analysis
Comparisons of values between two groups were performed with an unpaired or paired Student’s t-test. When more than two groups were evaluated, one-way anova was performed. A value of P < 0.05 was considered statistically significant.
Results
Global RNAseq demonstrates increase in VDAC1, VDAC2 and VDAC3, and decrease in BCL2 expression upon ST18 overexpression
Given that ST18 has been shown to exacerbate PV IgG-induced epidermal intercellular disadhesion, in part by triggering proapoptotic pathways,13,14 we initially compared global gene expression in cells stably overexpressing ST18. We observed significant upregulation of VDAC1, VDAC2 and VDAC3, which encode three subunits of VDAC (Figure 1a, b).33–37 VDAC is a known regulator of mitochondria-mediated apoptosis.28,38 Previous studies have implicated VDAC in PV pathogenesis.21 Additionally, BCL2, which encodes the antiapoptotic protein Bcl-2,39 was significantly downregulated in ST18-overexpressing cells compared with the EV control (Figure 1a, b). Bcl-2 is known to interact with VDAC, which inhibits its antiapoptotic activity40 and is also directly antagonized by p53.41,42 Gene expression changes were validated by qRT-PCR (Figure S2; see Supporting Information). Further pathway analysis, using the KEGG database, revealed that the DEGs in ST18-overexpressing HaCaT cells were predominantly associated with apoptotic signalling pathways and mitochondrial organization (Figure S3; see Supporting Information). This underscores the key role of ST18 in regulating apoptotic processes, possibly involving VDAC.
Figure 1.
Voltage-dependent anion channel 1 (VDAC1) epidermal expression is increased in patients with pemphigus vulgaris (PV) and normal human epidermal keratinocytes (NHEKs) overexpressing ST18. (a) We used global RNA sequencing analysis to identify differentially expressed genes in HaCaT cells stably transfected with an ST18-expressing vector (ST18) vs. empty vector (EV). A volcano plot shows the comparative distribution of upregulated and downregulated genes in cells overexpressing ST18 vs. control. Each point represents a gene, with the x-axis displaying the log2 fold change (|Log2 FC|) and the y-axis showing the –log10 of the P-value. Coloured dots indicate the categories of significance as follows: red dots and blue dots represent significantly upregulated and downregulated genes, respectively (P <0.01 and |Log2 FC| > 1). Genes not differentially expressed are coloured in grey (NS). (b) A heatmap plot of VDAC1, VDAC2, VDAC3 and BCL2 expression in three biological triplicates of each monoclonal HaCaT cell line (overexpressing ST18, right columns, or empty EV, left columns). Differential expression is shown as |Log2 FC|. (c) Immunohistochemistry of VDAC1 in skin biopsy samples obtained from healthy control participants (n = 5) or patients with PV carrying either the rs17315309 wildtype (WT; n = 5) or risk (n = 3) alleles (scale bar = 100 μm). (d) Expression of VDAC1 was quantified by ImageJ software (***P < 0.001 by two-tailed t-test). (e) NHEKs were transfected with an ST18 expression vector (ST18) or with a control EV; 24 h post-transfection, cells were exposed to AK23 with VBIT-12 or dimethyl sulfoxide (DMSO) as a control for 24 h and were then fixed and immunostained for VDAC1 (red signal) and 4’,6-diamidino-2-phenylindole (DAPI; blue signal). (f) Expression of VDAC1 was quantified by ImageJ software. Results represent the mean (SE) of three independent experiments (**P < 0.01 by two-tailed t-test; scale bar = 20 μm). a.u., arbitrary units.
VDAC1 expression is elevated in the skin of patients with PV and downregulated by VBIT-12 in NHEKs overexpressing ST18
To evaluate the clinical relevance of our findings, we performed immunohistochemistry staining for VDAC1 on nonlesional skin biopsies obtained from patients with PV and healthy control participants. Consistent with our RNAseq data, we observed significantly elevated VDAC1 expression in the epidermis of patients with PV, regardless of whether they carried the rs17315309 risk allele or the wildtype allele, as compared with healthy control participants (Figure 1c, d). VDAC2 and VDAC3 expression were not investigated due to lack of a specific antibody.
Next, we investigated the effect of ST18 on epidermal VDAC1 expression and its response to VBIT-12, a VDAC inhibitor, known to inhibit apoptosis and the infiltration of inflammatory cells.43,44 NHEKs were initially transfected with an ST18 expression vector or an EV as a control, followed by exposure to AK23, a pathogenic monoclonal antibody that targets the Dsg3 N-terminus and causes loss of epidermal cell–cell adhesion.45 The cells were treated with either VBIT-12 or DMSO as a control. Immunofluorescence staining revealed that NHEKs overexpressing ST18 showed a marked increase in VDAC1 expression vs. EV (Figure 1e, f). Furthermore, NHEKs overexpressing ST18 exhibited significantly reduced VDAC1 expression upon exposure to VBIT-12, as compared with NHEKs overexpressing ST18 and exposed to DMSO (Figure 1e, f). These results suggest that targeting VDAC with VBIT-12 may mitigate ST18-mediated apoptotic signalling.
VBIT-12 attenuates AK23-induced apoptotic activity in NHEKs overexpressing ST18
Given that the VDAC oligomerization inhibitor VBIT-12 has been proposed as a novel therapeutic option for autoimmune and chronic inflammatory diseases,26,43 we investigated its effect on AK23-induced apoptotic activity in ST18-overexpressing NHEKs. We ascertained apoptosis in cells transfected with either ST18 or EV and subsequently exposed to AK23, followed by treatment with VBIT-12 or DMSO as a control. Caspase 3/7 activity and TUNEL assays demonstrated significantly elevated apoptotic activity in NHEKs overexpressing ST18, compared with EV. Notably, treatment with VBIT-12 robustly attenuated this apoptotic response (Figure 2a–d). We next examined the effect of VBIT-12 on p53 activity using a luciferase reporter system under the regulation of a p53-binding motif, transfected into NHEKs. As shown in Figure 2(e), VBIT-12 significantly reduced AK23-induced p53 transcriptional activity compared with cells treated with DMSO, regardless of ST18 overexpression. Additionally, as Bcl-2 is known to interact with VDAC to inhibit its antiapoptotic function40 and is directly antagonized by p53,41,42 we further explored the effect of VBIT-12 on Bcl-2 expression levels in AK23-exposed ST18-overexpressing NHEKs using immunofluorescence staining, as well as western blotting. Cells overexpressing ST18 and exposed to AK23 exhibited significantly increased expression of the antiapoptotic protein Bcl-2 upon treatment with VBIT-12, as compared with cells treated with DMSO (Figure 3).
Figure 2.
VBIT-12 attenuates AK23-induced apoptotic activity in normal human epidermal keratinocytes (NHEKs) overexpressing ST18. (a) NHEKs were transfected with an ST18-overexpressing vector (ST18) or with a control empty vector (EV); 24 h post-transfection cells were exposed to AK23 with VBIT-12 or dimethyl sulfoxide (DMSO) as a control, and were, at the same time, additionally exposed to recombinant human tumour necrosis factor alpha (20 ng mL–1) for 24 h. Caspase 3/7 activity was measured using the Caspase 3/7 Glo activity assay. Results represent the mean (SE) of three independent experiments (*P < 0.05 by two-tailed t-test). (b) The percentage reduction (%) in caspase 3/7 activation upon exposure to VBIT-12 compared with DMSO, in NHEKs exposed to AK23 and transfected with either an ST18 expression vector (ST18) or with a control EV was calculated. Results represent the mean (SE) of three independent experiments (*P < 0.05 by two-tailed t-test). (c) Representative images of NHEKs that were fixed and immunostained for TUNEL activity (red signal) and 4’,6-diamidino-2-phenylindole (DAPI; blue signal) (scale bar = 10 μm). (d) TUNEL-positive NHEKs nuclei were quantified. Results represent the mean (SE) of three independent experiments (*P < 0.05 by two-tailed t-test). (e) NHEKs were transfected with a luciferase reporter construct under the regulation of a p53 binding site or with a control reporter. Twenty-four hours post-transfection, NHEKs were treated either with AK23 antibody or negative control (NC) antibody and exposed to VBIT-12 or DMSO. Results represent the mean (SE) of three independent experiments (*P < 0.05 by two-tailed t-test). a.u., arbitrary units; RLU, relative light unit.
Figure 3.
VBIT-12 upregulates the antiapoptotic protein Bcl-2 in normal human epidermal keratinocytes (NHEKs) overexpressing ST18 and exposed to AK23. (a) NHEKs were transfected with an ST18 expression vector (ST18) or with a control empty vector (EV); 24 h post-transfection, cells were exposed to AK23 with VBIT-12 or dimethyl sulfoxide (DMSO) as a control for 24 h and were then fixed and immunostained for Bcl-2 (red signal) and 4’,6-diamidino-2-phenylindole (DAPI; blue signal) (left panel); expression of Bcl-2 was quantified by ImageJ software. Results represent the mean (SE) of three independent experiments (*P < 0.01 by two-tailed t-test; scale bar = 20 μm; right panel). (b) Bcl-2 protein expression was also assessed using immunoblotting with anti-Bcl-2 antibody. α-Tubulin served as a loading control (left panel). Protein levels were quantified, and data were normalized to levels observed in ST18-transfected cells treated with AK23 and DMSO. Results represent the mean (SE) of four independent experiments (*P < 0.05 by two-tailed t-test) (right panel). a.u., arbitrary units.
Furthermore, we investigated the release of cytochrome c, a proapoptotic protein released from mitochondria to the cytosol, which accelerates apoptosis.46,47 VDAC plays a role in mediating this release.48 NHEKs overexpressing ST18 and exposed to AK23 and VBIT-12 displayed a modest but statistically significant decrease in cytochrome c release from the mitochondria, as assessed with a Cytochrome C Releasing Apoptosis Assay Kit (Abcam), as compared with cells not exposed to VBIT-12 (Figure S4; see Supporting Information), which may be indicative of mitochondrial dysfunction. ST18 overexpression in the previous experiments was validated by qRT-PCR (Figure S5; see Supporting Information).
VBIT-12 restores cell–cell adhesion stability in AK23-exposed normal human epidermal keratinocytes
Given the role of VDAC in apoptotic signalling and in PV pathogenesis, we investigated whether VBIT-12 could attenuate PV-related intraepidermal acantholysis. Using a dispase-based dissociation assay,45 we assessed intercellular adhesion in cultured NHEKs exposed to AK23 or a negative control antibody, followed by treatment with varying concentrations of VBIT-12 (0–20 μmol L–1) or DMSO as a control. Although not entirely linear, VBIT-12 significantly inhibited AK23-induced acantholysis in a dose-dependent manner (Figure 4a, b), supporting its therapeutic potential. As Bcl-2 interacts with VDAC to inhibit its antiapoptotic function,40 and VBIT-12 has been shown to increase Bcl-2 expression, we further explored the possibility that Bcl-2 may mediate, at least in part, the effect of VBIT-12 on AK23-induced acantholysis. We treated the cells with ABT-199, a potent and selective Bcl-2 inhibitor.49,50 Interestingly, ABT-199 attenuated the inhibitory effect of VBIT-12 to a significant extent (Figure 4c, d), suggesting that the inhibitory effect of VBIT-12 on AK23-induced acantholysis is mediated, at least in part, through Bcl-2, regardless of ST18 overexpression.
Figure 4.
VBIT-12 restores cell–cell adhesion in AK23-exposed normal human epidermal keratinocytes (NHEKs). (a) NHEKs were grown to confluence, followed by exposure to AK23 or a negative control (NC), as well as different concentrations of VBIT-12 or dimethyl sulfoxide (DMSO) as a control. Epidermal sheets were then released from the tissue plates with dispase and subjected to mechanical stress. (b) Cell fragments were counted. Results represent the mean (SE) of three independent experiments (*P < 0.05 by two-tailed t-test). (c) NHEKs were grown to confluence, followed by exposure to AK23 or NC, as well as VBIT-12 or DMSO as a control, in the presence or absence of ABT-199 0.5 μmol L–1 . Epidermal sheets were then released from the tissue plates with dispase and subjected to mechanical stress. (d) Cell fragments were counted. Results represent the mean (SE) of three independent experiments (*P < 0.05, **P < 0.01 by two-tailed t-test).
Discussion
Advances in understanding PV pathogenesis, particularly the role of nonimmunological elements in blister formation, offer promising new directions for the treatment of this challenging disorder.4,51 Genetic and biological evidence have accumulated over the past decade pointing at the pivotal role of ST18 in PV pathogenesis.11,13,15 Here we showed that ST18 induces VDAC expression, a critical regulator of mitochondria-mediated apoptosis.26 As it is established that mitochondrial signalling is involved in apoptosis and PV,19–22 and as mitochondrial dysfunction has been shown to have a role in abnormal epidermal cell adhesion among patients with autoimmune bullous dermatoses,18,23 we attempted to target mitochondria-associated apoptosis as a new therapeutic strategy for PV.
VBIT-12, a potent VDAC1 inhibitor, has been shown to inhibit apoptosis and inflammation, and to preserve mitochondrial function.43,44 Accordingly, we demonstrate here that VBIT-12 downregulates VDAC1 expression (Figure 1e, f) and attenuates AK23-induced apoptotic activity in NHEKs overexpressing ST18 (Figure 2a–d). We also show that VBIT-12 significantly reduces AK23-induced p53 transcriptional activity (Figure 2e), which is required for the induction of apoptosis and ST18 upregulation.14 Interestingly, we have also shown that VBIT-12 dramatically increases the expression of the antiapoptotic protein Bcl-2 (Figure 3). This in line with the fact that Bcl-2 has been shown to interact with VDAC by inhibiting its antiapoptotic function,40 and is antagonized directly by p53.41,42 Moreover, VBIT-12 lead to a significant decrease (Figure S4) in protein cytochrome c46,47 release from the mitochondria, which is mediated by VDAC.48 Of note, the extent of cytochrome c release is strongly correlated with PV severity.52 These findings suggest that VBIT-12 effectively reduces apoptosis by modulating key apoptotic regulators such as p53, Bcl-2 and cytochrome c, suggesting it may have a therapeutic benefit through mitochondrial protection and apoptosis inhibition.
It is also important to emphasize that while the three VDAC isoforms (VDAC1, VDAC2 and VDAC3) identified in mammals share structural and functional features, they also exhibit distinct differences, including unique regulatory roles in cellular functions. Although VDAC1 is typically expressed at significantly higher levels than VDAC2 and VDAC3, we cannot rule out that the effects of VBIT-12 may involve VDAC2 and/or VDAC3.53 Recently, several potential nonimmunosuppressive treatments in PV, targeting distinct apoptotic pathways, were suggested, including soluble Fas ligand,54 caspase-3 signalling pathway inhibitors55 and MyD88 (which is downregulated by thalidomide).56 Accordingly, we demonstrated that VBIT-12 effectively reduces PV-related acantholysis, in part by modulating the Bcl-2-mediated pathway (Figure 4).
However, the present findings are primarily based on in vitro and ex vivo models, and their clinical relevance will require future validation in patients. Additionally, the off-target effects and safety profile of VBIT-12 were not assessed in this study and should be explored in future studies.
Overall, these findings delineate a novel pathomechanism underlying, in part, the detrimental effect of ST18 on cell–cell adhesion and suggesting the possibility of treating PV through VDAC inhibition.
Supplementary Material
Acknowledgements
This study was supported in part by a generous donation of the Ram Family Foundation and grant awards from Israel Ministry of Health, Israel Science Foundation (No.1908/24) and the Khan Foundation. Our deepest gratitude goes to our patients for their support, cooperation and willingness to be part of this study.
Contributor Information
Sari Assaf, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Ofer Sarig, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel.
Rawaa Ishtewy, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Yazeed Zoabi, Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Yarden Feller, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Kiril Malovitski, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Janan Mohamad, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Shir Bergson, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Carmel Bilu, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel.
Varda Shoshan-Barmatz, Division of Biotechnology, Ben-Gurion University of the Negev, Beer Sheva, Israel.
Noam Shomron, Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Dan Vodo, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel.
Liat Samuelov, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Eli Sprecher, Division of Dermatology, Tel Aviv Sourasky Medical Center, Tel Aviv, Israel; Grey Faculty of Medicine and Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Author contributions
Sari Assaf (Data curation [equal], Formal analysis [equal], Investigation [lead], Methodology [equal], Validation [equal], Visualization [lead], Writing—original draft [equal], Writing—review & editing [equal]), Ofer Sarig (Data curation [equal], Formal analysis [equal], Investigation [equal], Methodology [equal], Project administration [lead], Resources [equal], Supervision [equal], Writing—original draft [equal], Writing—review & editing [equal]), Rawaa Ishtewy (Investigation [equal], Methodology [supporting], Validation [equal], Writing—original draft [supporting], Writing—review & editing [equal]), Yazeed Zoabi (Data curation [equal], Formal analysis [equal], Investigation [equal], Methodology [equal], Writing—review & editing [equal]), Yarden Feller (Investigation [supporting], Methodology [supporting], Validation [equal], Writing—review & editing [equal]), Kiril Malovitski (Investigation [equal], Methodology [supporting], Validation [equal], Writing—review & editing [equal]), Janan Mohamad (Investigation [supporting], Methodology [supporting], Validation [equal], Writing—review & editing [equal]), Shir Bergson (Investigation [supporting], Methodology [supporting], Validation [equal], Writing—review & editing [equal]), Carmel Bilu (Investigation [supporting], Methodology [supporting], Validation [supporting], Writing—review & editing [equal]), Varda Shoshan-Barmatz (Formal analysis [equal], Resources [equal], Writing—review & editing [equal]), Noam Shomron (Data curation [supporting], Formal analysis [supporting], Supervision [supporting], Visualization [supporting], Writing—review & editing [equal]), Dan Vodo (Conceptualization [supporting], Investigation [supporting], Methodology [supporting], Visualization [supporting], Writing—original draft [supporting], Writing—review & editing [equal]), Liat Samuelov (Conceptualization [supporting], Funding acquisition [supporting], Project administration [supporting], Resources [supporting], Supervision [supporting], Writing—original draft [supporting], Writing—review & editing [equal]) and Eli Sprecher (Conceptualization [lead], Formal analysis [supporting], Funding acquisition [equal], Project administration [equal], Resources [equal], Supervision [lead], Writing—original draft [lead], Writing—review & editing [lead])
Conflicts of interest
The authors declare no conflicts of interest.
Funding
This research received funding from the Israel Ministry of Health, the Israel Science Foundation, The Khan Foundation and the Ram Family Foundation.
Data availability
The data underlying this article will be shared on reasonable request to the corresponding author.
Ethics statement
The protocol was reviewed and approved by the Institutional Review Board of the Tel Aviv Sourasky Medical Center and by the Ministry of Health (TLV-0537-08-TLV).
Patient consent
Written patient consent for publication was obtained.
Supporting Information
Additional Supporting Information may be found in the online version of this article at the publisher’s website.
References
- 1. Schmidt E, Kasperkiewicz M, Joly P. Pemphigus. Lancet 2019; 394:882–94. [DOI] [PubMed] [Google Scholar]
- 2. Kasperkiewicz M, Ellebrecht CT, Takahashi H et al. Pemphigus. Nat Rev Dis Primers 2017; 3:1–18. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 3. Kridin K. Pemphigus group: overview, epidemiology, mortality, and comorbidities. Immunol Res 2018; 66:255–70. [DOI] [PubMed] [Google Scholar]
- 4. Spindler V, Eming R, Schmidt E et al. Mechanisms causing loss of keratinocyte cohesion in pemphigus. J Invest Dermatol 2018; 138:32–7. [DOI] [PubMed] [Google Scholar]
- 5. Bystryn JC, Grando SA. A novel explanation for acantholysis in pemphigus vulgaris: the basal cell shrinkage hypothesis. J Am Acad Dermatol 2006; 54:513–16. [DOI] [PubMed] [Google Scholar]
- 6. Grando SA. Cholinergic control of epidermal cohesion. Exp Dermatol 2006; 15:265–82. [DOI] [PubMed] [Google Scholar]
- 7. Grando SA. Pemphigus autoimmunity: hypotheses and realities. Autoimmunity 2012; 45:7–35. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 8. Grando SA, Bystryn JC, Chernyavsky AI et al. Apoptolysis: a novel mechanism of skin blistering in pemphigus vulgaris linking the apoptotic pathways to basal cell shrinkage and suprabasal acantholysis. Exp Dermatol 2009; 18:764–70. [DOI] [PubMed] [Google Scholar]
- 9. Ahmed AR, Carrozzo M, Caux F et al. Monopathogenic vs multipathogenic explanations of pemphigus pathophysiology. Exp Dermatol 2016; 25:839–46. [DOI] [PubMed] [Google Scholar]
- 10. Vodo D, Sprecher E. The genetic basis of pemphigus vulgaris. JEADV Clin Pract 2023; 2:203–12. [Google Scholar]
- 11. Sarig O, Bercovici S, Zoller L et al. Population-specific association between a polymorphic variant in ST18, encoding a pro-apoptotic molecule, and pemphigus vulgaris. J Invest Dermatol 2012; 132:1798–805. [DOI] [PubMed] [Google Scholar]
- 12. Assaf S, Malki L, Mayer T et al. ST18 affects cell–cell adhesion in pemphigus vulgaris in a tumour necrosis factor-alpha-dependent fashion. Br J Dermatol 2021; 184:1153–60. [DOI] [PubMed] [Google Scholar]
- 13. Vodo D, Sarig O, Geller S et al. Identification of a functional risk variant for pemphigus vulgaris in the ST18 gene. PLoS Genet 2016; 12:e1006008. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 14. Assaf S, Vodo D, Malovitski K et al. Up-regulation of ST18 in pemphigus vulgaris drives a self-amplifying p53-dependent pathomechanism resulting in decreased desmoglein 3 expression. Sci Rep 2022; 12:5958. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 15. Radeva MY, Walter E, Stach RA et al. ST18 enhances PV-IgG-induced loss of keratinocyte cohesion in parallel to increased ERK activation. Front Immunol 2019; 10:770. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 16. Rehman A, Cai Y, Hünefeld C et al. The pemphigus vulgaris antigen desmoglein-3 suppresses p53 function via the YAP-Hippo pathway. bioRxiv. Available at: 10.1101/399980, 25 August 2018 (preprint). [DOI]
- 17. Rehman A, Cai Y, Hünefeld C et al. The desmosomal cadherin desmoglein-3 acts as a keratinocyte anti-stress protein via suppression of p53. Cell Death Dis 2019; 10:1–14. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 18. Grando SA. The mitochondrion is a common target of disease pathophysiology in pemphigus and pemphigoid. Exp Dermatol 2015; 24:655–6. [DOI] [PubMed] [Google Scholar]
- 19. Hutchison DM, Hosking AM, Hong EM et al. Mitochondrial autoantibodies and the role of apoptosis in pemphigus vulgaris. Antibodies (Basel) 2022; 11:55. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 20. Kalantari-Dehaghi M, Chen Y, Deng W et al. Mechanisms of mitochondrial damage in keratinocytes by pemphigus vulgaris antibodies. J Biol Chem 2013; 288:16916–25. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 21. Chen Y, Chernyavsky A, Webber RJ et al. Critical role of the neonatal Fc receptor (FcRn) in the pathogenic action of antimitochondrial autoantibodies synergizing with anti-desmoglein autoantibodies in pemphigus vulgaris. J Biol Chem 2015; 290:23826–37. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 22. Chernyavsky A, Chen Y, Wang PH et al. Pemphigus vulgaris antibodies target the mitochondrial nicotinic acetylcholine receptors that protect keratinocytes from apoptolysis. Int Immunopharmacol 2015; 29:76–80. [DOI] [PubMed] [Google Scholar]
- 23. Hirose M, Schilf P, Benoit S et al. Polymorphisms in the mitochondrially encoded ATP synthase 8 gene are associated with susceptibility to bullous pemphigoid in the German population. Exp Dermatol 2015; 24:715–17. [DOI] [PubMed] [Google Scholar]
- 24. Caielli S, Athale S, Domic B et al. Oxidized mitochondrial nucleoids released by neutrophils drive type I interferon production in human lupus. J Exp Med 2016; 213:697–713. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 25. Lood C, Blanco LP, Purmalek MM et al. Neutrophil extracellular traps enriched in oxidized mitochondrial DNA are interferogenic and contribute to lupus-like disease. Nat Med 2016; 22:146–53. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 26. Shoshan-Barmatz V, Shteinfer-Kuzmine A, Verma A. VDAC1 at the intersection of cell metabolism, apoptosis, and diseases. Biomolecules 2020; 10:1485. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 27. Fernandez DR, Telarico T, Bonilla E et al. Activation of mammalian target of rapamycin controls the loss of TCRζ in lupus T cells through HRES-1/Rab4-regulated lysosomal degradation. J Immunol 2009; 182:2063–73. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 28. Kim J, Gupta R, Blanco LP et al. VDAC oligomers form mitochondrial pores to release mtDNA fragments and promote lupus-like disease. Science 2019; 366:1531–6. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 29. Chen S, Zhou Y, Chen Y et al. Fastp: an ultra-fast all-in-one FASTQ preprocessor. Bioinformatics 2018; 34:i884–90. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 30. Dobin A, Davis CA, Schlesinger F et al. STAR: ultrafast universal RNA-Seq aligner. Bioinformatics 2013; 29:15–21. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 31. Love MI, Huber W, Anders S. Moderated estimation of fold change and dispersion for RNA-Seq data with DESeq2. Genome Biol 2014; 15:550. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 32. Malki L, Sarig O, Cesarato N et al. Loss-of-function variants in C3ORF52 result in localized autosomal recessive hypotrichosis. Genet Med 2020; 22:1227–34. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 33. Messina A, Reina S, Guarino F et al. VDAC isoforms in mammals. Biochim Biophys Acta 2012; 1818:1466–76. [DOI] [PubMed] [Google Scholar]
- 34. Sampson MJ, Ross L, Decker WK et al. A novel isoform of the mitochondrial outer membrane protein VDAC3 via alternative splicing of a 3-base exon: functional characteristics and subcellular localization. J Biol Chem 1998; 273:30482–6. [DOI] [PubMed] [Google Scholar]
- 35. Sampson MJ, Lovell RS, Davison DB et al. A novel mouse mitochondrial voltage-dependent anion channel gene localizes to chromosome 8. Genomics 1996; 36:192–6. [DOI] [PubMed] [Google Scholar]
- 36. Ha H, Hajek P, Bedwell DM et al. A mitochondrial porin cDNA predicts the existence of multiple human porins. J Biol Chem 1993; 268:12143–9. [PubMed] [Google Scholar]
- 37. Reina S, Checchetto V. Voltage-dependent anion selective channel 3: unraveling structural and functional features of the least known Porin isoform. Front Physiol 2022; 12:784867. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 38. Rosencrans WM, Rajendran M, Bezrukov SM et al. VDAC regulation of mitochondrial calcium flux: from channel biophysics to disease. Cell Calcium 2021; 94:102356. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 39. Warren CFA, Wong-Brown MW, Bowden NA. BCL-2 family isoforms in apoptosis and cancer. Cell Death Dis 2019; 10:177. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 40. Arbel N, Shoshan-Barmatz V. Voltage-dependent anion channel 1-based peptides interact with Bcl-2 to prevent antiapoptotic activity. J Biol Chem 2010; 285:6053–62. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 41. Wei H, Wang H, Wang G et al. Structures of p53/BCL-2 complex suggest a mechanism for p53 to antagonize BCL-2 activity. Nat Commun 2023; 14:4300. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 42. Hemann MT, Lowe SW. The p53–Bcl-2 connection. Cell Death Differ 2006; 13:1256–9. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 43. Verma A, Pittala S, Alhozeel B et al. The role of the mitochondrial protein VDAC1 in inflammatory bowel disease: a potential therapeutic target. Mol Ther 2022; 30:726–44. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 44. Wan H, Hu X-m, Shang L et al. Inhibition of mitochondrial VDAC1 oligomerization alleviates apoptosis and necroptosis of retinal neurons following OGD/R injury. Ann Anat 2023; 247:152049. [DOI] [PubMed] [Google Scholar]
- 45. Ishii K, Harada R, Matsuo I et al. In vitro keratinocyte dissociation assay for evaluation of the pathogenicity of anti-desmoglein 3 IgG autoantibodies in pemphigus vulgaris. J Invest Dermatol 2005; 124:939–46. [DOI] [PubMed] [Google Scholar]
- 46. Elena-Real CA, Díaz-Quintana A, González-Arzola K et al. Cytochrome c speeds up caspase cascade activation by blocking 14-3-3ε-dependent Apaf-1 inhibition. Cell Death Dis 2018; 9:365. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 47. Morris JL, Gillet G, Prudent J et al. Bcl-2 family of proteins in the control of mitochondrial calcium signalling: an old chap with new roles. Int J Mol Sci 2021; 22:3730. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 48. Garrido C, Galluzzi L, Brunet M et al. Mechanisms of cytochrome c release from mitochondria. Cell Death Differ 2006; 13:1423–33. [DOI] [PubMed] [Google Scholar]
- 49. Souers AJ, Leverson JD, Boghaert ER et al. ABT-199, a potent and selective BCL-2 inhibitor, achieves antitumor activity while sparing platelets. Nat Med 2013; 19:202–8. [DOI] [PubMed] [Google Scholar]
- 50. Peirs S, Matthijssens F, Goossens S et al. ABT-199 mediated inhibition of BCL-2 as a novel therapeutic strategy in T-cell acute lymphoblastic leukemia. Blood 2014; 124:3738–47. [DOI] [PubMed] [Google Scholar]
- 51. Egami S, Yamagami J, Amagai M. Autoimmune bullous skin diseases, pemphigus and pemphigoid. J Allergy Clin Immunol 2020; 145:1031–47. [DOI] [PubMed] [Google Scholar]
- 52. Grando SA, Rigas M, Chernyavsky A. Rationale for including intravenous immunoglobulin in the multidrug protocol of curative treatment of pemphigus vulgaris and development of an assay predicting disease relapse. Int Immunopharmacol 2020; 82:106385. [DOI] [PubMed] [Google Scholar]
- 53. Raghavan A, Sheiko T, Graham BH et al. Voltage-dependant anion channels: novel insights into isoform function through genetic models. Biochim Biophys Acta 2012; 1818:1477–85. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 54. Lotti R, Hundt JE, Ludwig RJ et al. Blocking soluble Fas Ligand ameliorates pemphigus: PC111 efficacy in ex-vivo human pemphigus models. Front Immunol 2023; 14:1193032. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 55. Pacheco-Tovar D, Pacheco-Tovar M-G, Saavedra-Alonso S et al. shRNA-targeting caspase-3 inhibits cell detachment induced by pemphigus vulgaris autoantibodies in HaCaT cells. Int J Mol Sci 2024; 25:8864. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 56. Luan C, Lu Z, Chen J et al. Thalidomide alleviates apoptosis, oxidative damage and inflammation induced by pemphigus vulgaris IgG in HaCat cells and neonatal mice through MyD88. Drug Des Devel Ther 2023; 17:2821–39. [DOI] [PMC free article] [PubMed] [Google Scholar]
Associated Data
This section collects any data citations, data availability statements, or supplementary materials included in this article.
Supplementary Materials
Data Availability Statement
The data underlying this article will be shared on reasonable request to the corresponding author.




