Key Points
Questions
What are the treatment outcomes and incidence rates of adverse events associated with in-office angiolytic laser treatment with or without concurrent polypectomy for vocal polyps?
Findings
This cohort study found significant improvements in patient-reported, perceptual, and acoustic parameters in 97 patients treated with in-office 532-nm laser with or without concurrent polypectomy. Patients treated with laser and concurrent polypectomy received less laser energy, had fewer treatment-related adverse events, and less need for multiple treatment sessions than those treated with laser alone.
Meaning
In-office angiolytic laser procedures might be used as an alternative treatment of vocal polyps; concurrent polypectomy allows less laser energy delivery, reduces the need for multiple treatment sessions, and avoids the development of minor postoperative adverse events.
This cohort study examines the outcomes and incidence rates of adverse events associated with in-office angiolytic laser procedures with or without concurrent polypectomy as an alternative treatment for vocal fold polyps.
Abstract
Importance
In-office angiolytic laser procedures have been used successfully as an alternative treatment for vocal fold polyps; little is known in detail about the treatment outcomes and adverse events.
Objective
To examine the outcomes and incidence rates of adverse events associated with in-office angiolytic laser procedures with or without concurrent polypectomy as an alternative treatment for vocal fold polyps.
Design, Setting, and Participants
Retrospective cohort study at a tertiary medical center. We identified 114 consecutive patients with vocal polyps who underwent in-office angiolytic laser treatments between January 1, 2014, and August 31, 2016. After the exclusion of 17 with missing or incomplete data, 97 were enrolled.
Interventions
In-office 532-nm laser procedures with or without concurrent polypectomy.
Main Outcomes and Measures
Between 1 and 2 months after the surgical procedures, we collected the following outcome data: videolaryngostroboscopy, perceptual rating of voice quality, acoustic analysis, maximal phonation time, and subjective rating of voice quality using a visual analogue scale and 10-item voice handicap index.
Results
This study enrolled 97 patients (mean [SD] age, 45.6 [11.3] years; 48 [49%] male). The mean duration of symptoms was 10.1 months (range, 1-60 months). Twenty-nine patients (30%) had angiolytic laser procedures only, while 68 (70%) received laser with concurrent polypectomy. Both treatment modalities offered significant improvements. Only 1 patient (1%) receiving angiolytic laser with concurrent polypectomy underwent another treatment session, so this group had significantly less need for multiple treatments than those receiving laser treatment alone (6 [21%]; effect size, −1.57; 95% CI, −2.77 to −0.36). We identified 8 adverse events (8% of the cases): vocal fold edema (n = 5), vocal hematoma (n = 2), and vocal ulceration (n = 1). Patients treated with laser plus concurrent polypectomy had significantly fewer adverse events than those treated with angiolytic laser alone (2 [3%] vs 6 [21%]; effect size, 1.20; 95% CI, 0.26 to 2.13).
Conclusions and Relevance
In-office angiolytic laser procedures can be an effective alternative treatment for vocal polyps, although with possible need for multiple treatment sessions and occasional occurrence of minor postoperative adverse events. Concurrent polypectomy following laser coagulation allows less laser energy delivery and reduces the risk of postoperative adverse events and the need for additional treatment sessions.
Introduction
Vocal fold polyps are a common laryngeal disease usually presenting as an exophytic mass with polypoid/gelatinous content over the striking edge of the vocal folds.(pp95-116) Previous studies have found common etiologies to be voice overuse, misuse, or abuse, cigarette smoking, and gastroesophageal reflux disease. Treatment usually begins with voice therapy and/or phonatory habit modification, with success rates ranging between 30% and 40%. When conservative management fails to restore satisfactory voice quality, microlaryngoscopic surgery is often used to remove the vocal polyps.(pp99-107) However, microlaryngoscopic surgery may be inapplicable because of patients’ personal preferences, difficulties associated with suspension laryngoscope use (eg, trismus, retrognathia, prominent incisors), or underlying comorbidity that causes higher risk under general anesthesia. Thus, there is a need for a safe and effective surgical alternative treatment for this disease.
Recent advancements in endoscopic and laser technologies have led to new office-based laryngeal procedures, one being the angiolytic laser. Different from the carbon dioxide laser, which is characterized by its shallow penetration depth and water as the primary chromophore, the optical properties of the angiolytic laser (wavelength, 532-585 nm) make possible selective energy absorption by oxyhemoglobin deep within the targeted lesion through photoangiolysis or photocoagulation. Clinically, the angiolytic laser may be used to treat a myriad of laryngeal disorders, including recurrent respiratory papillomatosis, dysplasia, Reinke edema, vascular lesions, and vocal polyps. However, its use to treat vocal polyps in office settings might be limited by the surgeon’s experience and technique. In occasional circumstances, polyps might not involute completely following laser procedures, which necessitates additional treatment sessions. Concurrent polypectomy following angiolytic laser procedures may facilitate more rapid and discrete disease resolution than that offered by angiolytic laser alone. One subsequent study investigating 50 age-, sex-, and lesion size–matched patients with vocal polyps found no significant difference in outcomes between those receiving in-office angiolytic laser with concurrent polypectomy and those receiving microlaryngoscopic surgery.
Although there are cumulative reports of success at using in-office angiolytic laser procedures as an alternative treatment for vocal polyps, there is insufficient knowledge about voice outcomes, total laser energy delivered, and therapeutic end points (eg, coagulation vs ablation of lesions). Most importantly, there are only a few investigations of the adverse events associated with in-office angiolytic laser treatment. Therefore, we performed this comprehensive retrospective study investigating treatment outcomes and adverse events in patients with vocal polyps treated with in-office angiolytic laser procedures with or without concurrent polypectomy.
Methods
Study Population
We retrospectively reviewed 114 consecutive patients with vocal fold polyps for which they had received in-office angiolytic laser treatment at a tertiary medical center from January 2014 to August 2016. The diagnosis of vocal fold polyps was made by videolaryngostroboscopy (Model 9400, KayPentax). The size of vocal polyps was measured by circling the targeted lesion in still images captured from videolaryngostroboscopy examinations (ImageJ software, National Institutes of Health), divided by the length of the vocal fold in full abduction position. Vocal polyps were further categorized by gross appearance into hemorrhagic and nonhemorrhagic types.(pp255-264) Patients made their own decision after receiving an explanation of the pros and cons of office-based laser procedures and microlaryngoscopic surgery. Seventeen patients (11 men and 6 women; mean age, 45.9 years [range, 22-77 years], 9 hemorrhagic polyps and 8 nonhemorrhagic polyps) were excluded because of loss of follow-up (n = 12) or incomplete medical records (n = 5). The protocol for this study was approved by the Research Ethics Review Committee of Far Eastern Memorial Hospital. Informed consent was waived because of the retrospective study design.
In-Office Angiolytic Laser Procedures
All angiolytic laser procedures were performed under local anesthesia in office settings. The nasal cavities were anesthetized using cotton pledgets containing 1:10 000 epinephrine and 2% lidocaine hydrochloride. The larynx was anesthetized using a transnasal flexible laryngoscope (VNL-1590 STi, KayPentax) that dripped 2% lidocaine (5 mL) repeatedly as patients vocalized a sustained “ee” sound (ie, laryngeal gargle). Once adequate anesthesia had been achieved (absence of laryngeal reflex when endoscopic tip was pressed directly against the vocal folds), a 400-nm laser fiber was passed through the working channel of the flexible laryngoscope. A 532-nm surgical laser system (IDAS/532 Surgical Laser System) was used with parameters set at power of 6 to 8 W, pulse width of 21 to 50 ms, and repetition rate of 2 Hz. Total energy delivered and tissue effects according to the proposed classification system of the potassium titanyl phosphate (KTP) laser were recorded at the end of each laser procedure.
Hemorrhagic polyps were mostly treated in a noncontact manner to coagulate or ablate the targeted lesion corresponding to the treatment classification of KTP 1 or 2 effect. If present, surrounding varices were managed simultaneously (ie, KTP V effect). For nonhemorrhagic polyps with smooth and glazing surfaces, we preferred contact mode to facilitate laser energy absorption by the vocal polyps (ie, KTP 3 or 4 effects). Concurrent polypectomy was performed by using an endoscopic cup forceps (Pentax KW-1806) through the flexible working channel. After precise alignment of the forceps and the free edge of vocal fold, coagulated polyps were removed under direct visual guidance (Figure 1). The decision to perform concurrent polypectomy following laser procedures was based on the intraoperative situation, including (1) when a longer operative time was required to achieve complete vaporization of the vocal polyp, (2) when a vessel wall ruptured with extraluminal blood extravasation obscuring visualization and further laser delivery might cause unwanted collateral thermal injury, or (3) when pedunculated polyps with prominent stalks were found connected to the vocal folds. The total laser energy delivered (Joules) per procedure was recorded after the completion of treatment. Patients’ tolerance for the laser procedure was recorded on a 4-point Likert scale, in which 0 = no discomfort, 1 = minimal discomfort, 2 = much discomfort, and 3 = severe discomfort. All patients were instructed to rest their voices for 3 days postoperatively.
Figure 1. Clinical Photographs of Angiolytic Laser Coagulation With Concurrent Polypectomy.
A, Hemorrhagic vocal polyp in a man in his 50s (arrowhead). B, Coagulation of vocal polyp using 532-nm laser in the office (arrowheads), with C, concurrent polypectomy. D, Follow-up endoscopic examination 2 months later.
Outcome Assessment
Treatment outcomes were assessed between 1 and 2 months after the laser procedures. For patients receiving multiple treatment sessions, treatment outcomes were evaluated following the last procedure received. Outcome parameters included (1) videolaryngostroboscopy to evaluate lesion resolution, mucosal wave recovery, and occurrence of adverse events; (2) perceptual rating of voice quality using GRB (grade, roughness, breathiness) rated 0 = normal, 1 = mildly deviated, 2 = moderately deviated, or 3 = severely deviated, based on senior surgeon (C.-T. W.) and speech pathologist (F.-C. L.) consensus; (3) acoustic measurements (MDVP, Model 4500, Kay Elematrics Corp); (4) maximal phonation time; and (5) subjective rating of voice quality as reported by the patient using a visual analogue scale ranging from 0 (worst) to 10 (best) and a 10-item voice handicap index (VHI-10). Adverse events associated with the particular procedures were all counted into analysis regardless of their occurrence following the first or subsequent laser treatments.
Statistical Analysis
Patients were characterized descriptively with results reported as mean and standard deviation. Categorical variables were reported as frequencies and percentages. The differences between categorical variables were tested using Pearson χ2 tests and those of continuous variables using the t test or the Mann-Whitney U test. Paired t tests or Wilcoxon signed rank tests were used to evaluate the interval changes between pretreatment and posttreatment measurements. Effect sizes and their corresponding 95% confidence intervals were provided to examine clinical significance. All statistical operations were performed using the SPSS, version 22 (SPSS Inc), and R, version 3.3.1, software (R Foundation).
Results
Demographic Features
Ninety-seven patients (48 men, 49 women; mean age, 45.6 years [range, 24-76 years]) received in-office 532-nm laser procedures for vocal polyps. The mean reported duration of symptoms was 10.1 months (range, 1-60 months). We found no significant differences in age, sex, polyp types (ie, hemorrhagic vs nonhomographic polyp), and lesion size between patients receiving angiolytic laser alone and those who underwent concurrent polypectomy (Table 1). Further comparisons of demographic characteristics showed older age in patients with hemorrhagic polyps than those with nonhemorrhagic polyps (eTable 1 in the Supplement).
Table 1. Comparison of Patients Undergoing 532-nm Laser Procedures With or Without Concurrent Polypectomy.
| Characteristic | Laser Only (n = 29) | Laser With Polypectomy (n = 68) | Effect Size (95% CI) |
|---|---|---|---|
| Age, mean (SD), y | 43.8 (10.6) | 46.4 (11.5) | −0.23 (−0.67 to 0.21) |
| Sex, No. (%) | |||
| Male | 11 (38) | 37 (54) | −0.37 (−0.87 to 0.13) |
| Female | 18 (62) | 31 (46) | |
| Type of polyp, No. (%) | |||
| Nonhemorrhagic | 16 (55) | 41 (60) | −0.12 (−0.61 to 0.38) |
| Hemorrhagic | 13 (45) | 27 (40) | |
| Lesion size, mean (SD), pixels | 4.76 (3.50) | 4.23 (2.88) | 0.17 (−0.26 to 0.61) |
| Operative time, mean (SD), min | 12.5 (3.40) | 12.2 (3.90) | 0.08 (−0.36 to 0.51) |
| Laser energy, mean (SD), J | 69.4 (54.6) | 37.9 (18.8) | 0.94 (0.48 to 1.38) |
| Laser effects, No. (%) | |||
| KTP 1 | 3 (10) | 18 (27) | 0.99 (0.53 to 1.45) |
| KTP 2 | 7 (25) | 37 (54) | |
| KTP 3 | 14 (48) | 11 (16) | |
| KTP 4 | 5 (17) | 2 (3) | |
| Tolerance, No. (%) | |||
| No/minimal discomfort | 13 (45) | 35 (51) | −0.15 (−0.64 to 0.34) |
| Much/severe discomfort | 16 (55) | 33 (49) | |
| Treatment sessions, No. (%) | |||
| Single | 23 (79) | 67 (99) | −1.57 (−2.77 to −0.36) |
| Multiple | 6 (21) | 1 (1) | |
| Videolaryngostroboscopy, No. (%) | |||
| Complete recovery | 21 (72) | 64 (94) | −1.00 (−1.72 to −0.27) |
| Incompletea | 8 (28) | 4 (6) | |
| Adverse events, No. (%) | |||
| Presence | 6 (21) | 2 (3) | 1.20 (0.26 to 2.13) |
| Absence | 23 (79) | 66 (97) |
Abbreviation: KTP, potassium titanyl phosphate.
Presence of residual polyps or abnormal mucosal wave.
Laser Parameters and Procedures
The mean operative time, laryngeal anesthesia included, was 12.3 minutes (range, 6-25 minutes). The mean laser energy delivery of the initial procedures was 47.9 J (range, 9.1-184.4 J). Patients receiving laser alone had significantly higher KTP laser effects (KTP 3 and KTP 4) than those receiving laser with concurrent polypectomy (19 of 29 [66%] vs 13 of 68 [19%] (Table 1). Sixty-eight (70%) of the patients received concurrent polypectomies with the angiolytic laser procedures. Excluding the time for laryngeal anesthesia, the mean (SD) duration of laser use prior to polypectomy was 2.4 (1.0) minutes, significantly shorter than that for the nonpolypectomy group (3.3 [1.9] minutes; effect size, 0.69; 95% CI, 0.24-1.13). Reasons for performing concurrent polypectomy were prolonged operative time (n = 26), vessel ruptured with blood extravasation (n = 17), and pedunculated polyps (n = 25). Comparing these 2 groups, we found that the performance of concurrent polypectomy did not lengthen the overall duration of treatment or increase intraprocedural discomfort. The mean (SD) laser energy delivered in the initial procedures was significantly lower in patients receiving concurrent polypectomy than in those receiving laser alone (37.9 [18.8] J vs 69.4 [54.6] J; effect size, 0.94; 95% CI, 0.48-1.38) (Table 1). There was no statistically significant difference of laser parameters between hemorrhagic and nonhemorrhagic polyps (eTable 1 in the Supplement).
Voice Outcomes
Treatment outcomes were measured a mean (SD) of 35.8 (18.7) and 34.7 (15.7) days after treatment for patients receiving laser alone and concurrent polypectomy, respectively (effect size, 0.07; 95% CI, −0.37 to 0.50). Videolaryngostroboscopy identified 12 patients with incomplete recovery (ie, residual polyp and/or abnormal mucosal wave), more commonly seen in those treated with laser procedures alone (8 of 29 [28%] vs 4 of 68 [6%]) (Table 1). Only 1 of the 68 patients (1%) who received laser with concurrent polypectomy required multiple treatment sessions, a rate significantly lower than that found in the laser treatment alone group, in which 6 of the 29 patients (21%) needed additional treatment (effect size, −1.57; 95% CI, −2.77 to −0.36) (Table 1). Laser parameters and voice outcomes of patients receiving multiple procedures are provided in eTable 2 in the Supplement.
There was no significant difference in presurgical voice assessments between those receiving angiolytic laser only and those receiving laser and concurrent polypectomy (Table 2). The 29 patients receiving angiolytic laser alone were found to have significant mean (SD) improvements in visual analogue scale (from 2.96 [1.55] to 6.75 [2.38] points; effect size, −1.78; 95% CI, −2.57 to −0.98), VHI-10 (from 24.8 [9.45] to 11.3 [10.8] points; effect size, 1.34; 95% CI, 0.72 to 1.96), and perceptual voice quality (summation of GRB scores, from 4.31 [1.63] to 1.71 [1.83] points; effect size, 1.48; 95% CI, 0.95 to 2.01) (Table 2). Similarly, the 68 patients treated with angiolytic laser and concurrent polypectomy were found to have significant improvements in patient-reported perceptual, acoustic measurements, including visual analogue scale, VHI-10, maximal phonation time, GRB scale summation, and acoustic analysis including jitter, shimmer, and noise to harmonic ratio. Comparison of the postoperative measurements showed nonsignificant differences between the 2 treatment groups, except for longer mean (SD) postoperative maximal phonation time in patients receiving laser with polypectomy than in those receiving laser alone (13.8 [5.41] vs 11.1 [4.41] seconds; effect size, −0.53; 95% CI, −1.00 to −0.04).
Table 2. Comparison of Preoperative and Postoperative Measurements Among Patients Receiving 532-nm Laser Procedures With or Without Concurrent Polypectomy.
| Outcome Parameters | Mean (SD) | Effect Size (95% CI) | |
|---|---|---|---|
| Preoperative | Postoperative | ||
| Laser only | (n = 29) | (n = 26) | |
| Patient reported | |||
| VAS | 2.96 (1.55) | 6.75 (2.38) | −1.78 (−2.57 to −0.98) |
| VHI-10 | 24.80 (9.45) | 11.30 (10.80) | 1.34 (0.72 to 1.96) |
| Perceptual and acoustic | |||
| MPT | 9.52 (4.63) | 11.10 (4.41) | −0.60 (−1.07 to −0.13) |
| GRB_sum | 4.31 (1.63) | 1.71 (1.83) | 1.48 (0.95 to 2.01) |
| Shimmer | 5.39 (3.85) | 4.93 (2.86) | 0.18 (−0.25 to 0.60) |
| Jitter | 1.87 (1.01) | 2.15 (1.49) | −0.15 (−0.57 to 0.27) |
| NHR | 0.15 (0.07) | 0.16 (0.05) | −0.02 (−0.36 to 0.32) |
| Laser + polypectomy | (n = 68) | (n = 64) | |
| Patient reported | |||
| VAS | 3.18 (1.50) | 7.59 (1.59) | −2.80 (−3.57 to −2.03) |
| VHI-10 | 21.20 (7.70) | 8.35 (7.56) | 1.73 (1.32 to 2.14) |
| Perceptual and acoustic | |||
| MPT | 10.30 (5.13) | 13.80 (5.41) | −0.62 (−0.89 to −0.35) |
| GRB_sum | 4.50 (1.54) | 1.17 (1.28) | 2.35 (1.83 to 2.88) |
| Shimmer | 6.18 (4.56) | 4.29 (2.15) | 0.50 (0.15 to 0.84) |
| Jitter | 2.52 (2.27) | 1.76 (1.22) | 0.39 (0.08 to 0.70) |
| NHR | 0.18 (0.14) | 0.14 (0.04) | 0.35 (−0.01 to 0.71) |
Abbreviations: GRB_sum, summation of grade, roughness, breathiness; MPT, maximal phonation time; NHR, noise to harmonic ratio; VAS, visual analogue scale; VHI-10, 10-item voice handicap index.
Adverse Events
Adverse events were identified in 8 (8%) patients in this series (Table 3), and 7 events developed after the initial laser procedure. The only patient developing vocal fold edema after the second procedure received 26.8 J in the first session and 120.1 J in the second session (eTable 2 in the Supplement). Patients receiving concurrent polypectomy had significantly fewer adverse events postoperatively, compared with those receiving angiolytic laser alone (2 [3%] vs 6 [21%]; effect size, 1.20; 95% CI, 0.26-2.13) (Table 1). Vocal fold edema was the most common adverse event (n = 5 [5%]). Four of these 5 patients had transient dysphonia and recovered their voices within 1 month; only 1 patient required additional medication to relieve symptoms (Table 3). We reviewed the intraoperative recording videos to identify the possible causes of these adverse events and found that the causes could be related to inadequate surgical technique (ie, misfiring of laser onto normal tissue or excessive laser energy delivery) in 3 patients, overtreatment of collateral varices in 1 patient, and continual smoking with inadequate control of laryngopharyngeal reflux in 1 patient (Table 3). In 2 cases (2%) with postoperative vocal fold submucosal hematoma (Figure 2A and B), they experienced prolonged recovery (1.0-1.5 months) of voice quality. Concurrent polypectomy was not performed in patient 7 because of higher discomfort level. Ulceration of the vocal fold was identified in 1 patient (1%) (Figure 2C and D), which might be a result of excessive laser energy delivery. There was no significant difference in risk for postoperative adverse events between patients with hemorrhagic and nonhemorrhagic polyps (eTable 1 in the Supplement).
Table 3. Details for Patients With Adverse Events Following 532-nm Laser Procedures for Vocal Polyps.
| Patient No./Sex/Age, y | Type of Polyp | Adverse Events | Consequences | Treatment | Laser Effect | Laser Settings | Reason |
|---|---|---|---|---|---|---|---|
| 1/M/30s | Hemorrhagic | Edemaa | Transient hoarseness for 0.5 mo | Laser only | KTP 2 | 7 W 21 ms 120.1 Ja | Surgical technique |
| 2/F/30s | Hemorrhagic | Edema | Dysphonia requiring additional medication | Laser + polypectomy | KTP 2 | 7 W 35 ms 49.7 J | Varices |
| 3/M/30s | Hemorrhagic | Edema | Transient hoarseness for 1 mo | Laser only | KTP 3 | 8 W 50 ms 180.8 J | Surgical technique |
| 4/F/60s | Hemorrhagic | Hematoma | Transient hoarseness for 1 mo | Laser + polypectomy | KTP 2 | 7 W 24 ms 29.7 J | Swallow motion |
| 5/F/30s | Nonhemorrhagic | Ulcer | Transient hoarseness for 1.5 mo | Laser only | KTP 3 | 8 W 50 ms 134.4 J | Surgical technique |
| 6/M/40s | Nonhemorrhagic | Edema | No active discomfort | Laser only | KTP 4 | 7 W 35 ms 141.6 J | Smoking, LPR |
| 7/F/50s | Hemorrhagic | Hematoma | Vocal fatigue for 1.5 mo | Laser only | KTP 2 | 7 W 35 ms 31.1 J | Rupture of polyp |
| 8/F/40s | Hemorrhagic | Edema | Lowered phonation pitch for 1 mo | Laser only | KTP 3 | 7 W 35 ms 116.6 J | Surgical technique |
Abbreviations: KTP, potassium titanyl phosphate; LPR, laryngopharyngeal reflux.
Adverse event was noted after the second procedure. Listed laser parameters are from the second procedure.
Figure 2. Adverse Events of In-Office Angiolytic Laser Procedures.
A, Office angiolytic laser procedure for hemorrhagic vocal polyp (arrowhead) in a woman in her 50s. B, Rupture of polyp with resultant vocal fold hemorrhage (arrowheads). C, Ablation of vocal polyp using angiolytic laser (arrowhead) in a woman in her 30s. D, Ulceration of vocal fold was noted during the follow-up visit (arrowheads).
Discussion
An increasing number of studies have investigated the clinical utility of angiolytic lasers in treating various laryngeal disease conditions. Hsiung et al first applied the KTP laser to treat microvascular lesions in the operating room using a continuous mode of energy delivery. Although Hirano et al subsequently showed promising results in treating vocal ectasia and vocal varices, the authors did not advocate using it for free-blood–enriched lesions such as hemorrhagic polyps out of concern over risk of thermal injury. By shifting the mode of the angiolytic laser from continuous to pulsed, subsequent investigations have demonstrated that vocal polyps can also be treated successfully and safely in the office setting. Although standard microsurgery under general anesthesia might avoid discomfort associated with an in-office laser procedure, in-office laser treatment may alternatively reduce the risks and adverse effects associated with general anesthesia and suspension laryngoscopy. More importantly, in-office procedures significantly reduced lost work days and medical expenditures for that population. Sridharan et al found significant improvement in VHI-10 and acoustic parameters when using the KTP laser to treat 10 hemorrhagic and 21 nonhemorrhagic polyps. A more recent retrospective study by Del Signore et al reported that 90% of 116 vocal polyps were treated successfully using either KTP or pulsed-dye lasers. Also incorporating vocal habit modification and vocal hygiene education as part of a treatment program, Mizuta et al reported that the in-office KTP laser was as effective as direct microlaryngoscopic surgery, as we, too, had found previously.
Although many investigations have found the in-office angiolytic laser to be a promising alternative treatment option for vocal polyps, controversies remained regarding optimal procedural end points (eg, coagulation vs vaporization of the polyp). In cases of lesion coagulation without complete vaporization, it may not be easy to ensure lesion regression weeks after surgery. As a result, patients occasionally encountered insufficient resolution of the vocal polyp or incomplete recovery of voice quality and required additional treatment sessions. One retrospective study by Mizuta et al reported that 15% (3 of 20 patients) of their study population underwent another in-office laser procedure to achieve complete involution of vocal polyps. Similarly, another study by Del Signore et al found that 11% of the 144 vocal varices or polyps ultimately required additional treatments.
Another limitation of in-office angiolytic laser procedures is the inherent limited working time after local anesthesia to the larynx. If the laryngeal lesions require longer operative time or if the patients are more susceptible to throat discomfort, surgeons may not have enough time to complete treatment. In 1 multicenter prospective study by Young et al, procedures requiring longer treatment duration were associated with significantly higher postoperative discomfort and lower success rates. Likewise, Mouadeb et al reported that 13 of 117 pulsed-dye laser procedures (11%) ultimately called for early termination, especially in patients with large polyps or increased patient-reported intraprocedural discomfort.
To address these disadvantages of in-office angiolytic laser treatment, we proposed a refined technique incorporating concurrent polypectomy following 532-nm laser coagulation of vocal polyps. Pulsing the angiolytic laser made this possible by condensing the fibrinoid content within the polyp and creating a cleavage plane separating the targeted lesion from the underlying superficial lamina propria, which allows easy and immediate removal of the coagulated polyp (Figure 1). In the present series, we found that concurrent polypectomy offered 2 additional advantages. First, because concurrent polypectomy removes the vocal polyps directly, the likelihood of retreatment of residual lesions is significantly reduced (1 of 68 [1%] vs 6 of 29 [21%] (Table 1). Second, laser energy and tissue effect in those receiving concurrent polypectomy was significantly decreased compared with those receiving angiolytic laser treatment alone (Table 1). The reduced energy delivery and tissue effects (coagulation without direct contact) could avoid overheating of the delicate microstructures surrounding the polyps and subsequent development of postoperative adverse events.
In this study, 8 patients had minor postoperative adverse events and all recovered by 0.5 to 1.5 months postoperatively (Table 3). Similar to Del Signore et al, we found posttreatment vocal edema to be the most common. Analyzing the contributing factors, we found half of adverse events (n = 4) to be related to inadequate surgical technique. All these patients received higher-than-average laser energy and laser effects ranging from KTP type 2 to KTP type 4 (Table 3). In addition, among the 7 patients requiring multiple treatments, adverse events tended to occur after exposure to excessive laser energy instead of repeated procedures (eTable 2 in the Supplement). The management of concomitant vocal varices remained controversial because varices were vulnerable to blood extravasation and susceptible to thermal injury (Table 3). A recent retrospective study by Tang et al investigating 513 professional vocalists found that the incidence of hemorrhage in the presence of varix was quite low (3.3 cases/1000 person-months). Accordingly, we proposed that excessive laser firing onto the surrounding normal tissues when the laryngeal target moved with each breath could be potentially dangerous. Surgeons should consider delivering the minimally required laser energy when performing in-office laser procedures. Meanwhile, adequate maintenance of vocal hygiene and control of laryngopharyngeal reflux postoperatively shall always be provided by the voice care team to achieve the best treatment outcomes.
Limitations
This study has some limitations. One limitation is the retrospective study design. Although we did not find demographic differences between the patients receiving concurrent polypectomy and those not receiving it, some minor difference might have been undiscovered because the treatment modalities were not randomly allocated. Furthermore, posttreatment voice outcomes were measured between 1 and 2 months in this study. Wound remodeling processes may persist in the second month postoperatively and affect the assessment of treatment results. Another limitation was that 17 patients (15%) were excluded from the study because of inadequate follow-up or incomplete medical records. Similar to other reports, the details of operation (eg, fiber position and fiber-to-tissue distance) might differ slightly depending on each clinical scenario and surgeon’s preference. In addition, limited by the maximal power output (8 W) of our laser module, we had to increase the pulse width to achieve adequate tissue effect. Future study is warranted to investigate how different laser settings (eg, higher wattage or lower pulse width) will affect the treatment outcomes of in-office laser procedures. Other factors, including surgical experience and patient cooperation, could also possibly confound the final interpretation of treatment outcomes.
Conclusions
This study demonstrated significant improvements following in-office angiolytic laser procedures for vocal polyps with or without concurrent polypectomy. It was not uncommon for patients to need multiple treatment sessions and encounter minor postoperative adverse events. Conservative laser energy delivery might be the crux of in-office laser procedures to avoid treatment-associated complications. Compared with direct vaporization of the polyp, concurrent polypectomy following laser coagulation allows less laser energy delivery and reduces the risks of postoperative adverse events. Immediate removal of the cauterized polyp reduces the likelihood of residual lesion and therefore the need for additional treatment sessions.
eTable 1. Comparison of demographic features, laser parameters, and treatment outcomes between hemorrhagic and non-hemorrhagic polyps
eTable 2. Laser settings and voice outcomes in the seven cases receiving multiple procedures
References
- 1.Rubin JS, Sataloff RT, Korovin GS. Diagnosis and Treatment of Voice Disorders. 4th ed San Diego, CA: Plural Publishing; 2014. [Google Scholar]
- 2.Behrman A, Sulica L, He T. Factors predicting patient perception of dysphonia caused by benign vocal fold lesions. Laryngoscope. 2004;114(10):1693-1700. [DOI] [PubMed] [Google Scholar]
- 3.Byeon H. Relationships among smoking, organic, and functional voice disorders in Korean general population. J Voice. 2015;29(3):312-316. [DOI] [PubMed] [Google Scholar]
- 4.Chung JH, Tae K, Lee YS, et al. The significance of laryngopharyngeal reflux in benign vocal mucosal lesions. Otolaryngol Head Neck Surg. 2009;141(3):369-373. [DOI] [PubMed] [Google Scholar]
- 5.Lee YS, Lee DH, Jeong GE, et al. Treatment efficacy of voice therapy for vocal fold polyps and factors predictive of its efficacy. J Voice. 2017;31(1):120.e9-120.e13. [DOI] [PubMed] [Google Scholar]
- 6.Garrett CG, Francis DO. Is surgery necessary for all vocal fold polyps? Laryngoscope. 2014;124(2):363-364. [DOI] [PubMed] [Google Scholar]
- 7.Rosen CA, Simpson CB. Operative Techniques in Laryngology. Berlin, Germany: Springer; 2008. [Google Scholar]
- 8.Zeitels SM, Burns JA. Office-based laryngeal laser surgery with local anesthesia. Curr Opin Otolaryngol Head Neck Surg. 2007;15(3):141-147. [DOI] [PubMed] [Google Scholar]
- 9.Hu HC, Lin SY, Hung YT, Chang SY. Feasibility and associated limitations of office-based laryngeal surgery using carbon dioxide lasers. JAMA Otolaryngol Head Neck Surg. 2017;143(5):485-491. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 10.Remacle M, Ricci-Maccarini A, Matar N, et al. Reliability and efficacy of a new CO2 laser hollow fiber: a prospective study of 39 patients. Eur Arch Otorhinolaryngol. 2012;269(3):917-921. [DOI] [PubMed] [Google Scholar]
- 11.Zeitels SM, Akst LM, Burns JA, Hillman RE, Broadhurst MS, Anderson RR. Office-based 532-nm pulsed KTP laser treatment of glottal papillomatosis and dysplasia. Ann Otol Rhinol Laryngol. 2006;115(9):679-685. [DOI] [PubMed] [Google Scholar]
- 12.Young VN, Mallur PS, Wong AW, et al. Analysis of potassium titanyl phosphate laser settings and voice outcomes in the treatment of Reinke’s edema. Ann Otol Rhinol Laryngol. 2015;124(3):216-220. [DOI] [PubMed] [Google Scholar]
- 13.Zeitels SM, Akst LM, Bums JA, Hillman RE, Broadhurst MS, Anderson RR. Pulsed angiolytic laser treatment of ectasias and varices in singers. Ann Otol Rhinol Laryngol. 2006;115(8):571-580. [DOI] [PubMed] [Google Scholar]
- 14.Mallur PS, Tajudeen BA, Aaronson N, Branski RC, Amin MR. Quantification of benign lesion regression as a function of 532-nm pulsed potassium titanyl phosphate laser parameter selection. Laryngoscope. 2011;121(3):590-595. [DOI] [PubMed] [Google Scholar]
- 15.Sridharan S, Achlatis S, Ruiz R, et al. Patient-based outcomes of in-office KTP ablation of vocal fold polyps. Laryngoscope. 2014;124(5):1176-1179. [DOI] [PubMed] [Google Scholar]
- 16.Mizuta M, Hiwatashi N, Kobayashi T, Kaneko M, Tateya I, Hirano S. Comparison of vocal outcomes after angiolytic laser surgery and microflap surgery for vocal polyps. Auris Nasus Larynx. 2015;42(6):453-457. [DOI] [PubMed] [Google Scholar]
- 17.Del Signore AG, Shah RN, Gupta N, Altman KW, Woo P. Complications and failures of office-based endoscopic angiolytic laser surgery treatment. J Voice. 2016;30(6):744-750. [DOI] [PubMed] [Google Scholar]
- 18.Wang CT, Huang TW, Liao LJ, Lo WC, Lai MS, Cheng PW. Office-based potassium titanyl phosphate laser-assisted endoscopic vocal polypectomy. JAMA Otolaryngol Head Neck Surg. 2013;139(6):610-616. [DOI] [PubMed] [Google Scholar]
- 19.Wang CT, Liao LJ, Huang TW, Lo WC, Cheng PW. Comparison of treatment outcomes of transnasal vocal fold polypectomy versus microlaryngoscopic surgery. Laryngoscope. 2015;125(5):1155-1160. [DOI] [PubMed] [Google Scholar]
- 20.Mouadeb DA, Belafsky PC. In-office laryngeal surgery with the 585nm pulsed dye laser (PDL). Otolaryngol Head Neck Surg. 2007;137(3):477-481. [DOI] [PubMed] [Google Scholar]
- 21.Koszewski IJ, Hoffman MR, Young WG, Lai YT, Dailey SH. Office-based photoangiolytic laser treatment of Reinke’s edema: safety and voice outcomes. Otolaryngol Head Neck Surg. 2015;152(6):1075-1081. [DOI] [PubMed] [Google Scholar]
- 22.Woo P. Stroboscopy. San Diego, CA: Plural Publishing; 2009. [Google Scholar]
- 23.Mortensen M, Woo P. Office steroid injections of the larynx. Laryngoscope. 2006;116(10):1735-1739. [DOI] [PubMed] [Google Scholar]
- 24.Mallur PS, Johns MM III, Amin MR, Rosen CA. Proposed classification system for reporting 532-nm pulsed potassium titanyl phosphate laser treatment effects on vocal fold lesions. Laryngoscope. 2014;124(5):1170-1175. [DOI] [PubMed] [Google Scholar]
- 25.Lam PK, Chan KM, Ho WK, Kwong E, Yiu EM, Wei WI. Cross-cultural adaptation and validation of the Chinese Voice Handicap Index-10. Laryngoscope. 2006;116(7):1192-1198. [DOI] [PubMed] [Google Scholar]
- 26.Hsiung MW, Kang BH, Su WF, Pai L, Wang HW. Clearing microvascular lesions of the true vocal fold with the KTP/532 laser. Ann Otol Rhinol Laryngol. 2003;112(6):534-539. [DOI] [PubMed] [Google Scholar]
- 27.Hirano S, Yamashita M, Kitamura M, Takagita S. Photocoagulation of microvascular and hemorrhagic lesions of the vocal fold with the KTP laser. Ann Otol Rhinol Laryngol. 2006;115(4):253-259. [DOI] [PubMed] [Google Scholar]
- 28.Ivey CM, Woo P, Altman KW, Shapshay SM. Office pulsed dye laser treatment for benign laryngeal vascular polyps: a preliminary study. Ann Otol Rhinol Laryngol. 2008;117(5):353-358. [DOI] [PubMed] [Google Scholar]
- 29.Young VN, Smith LJ, Sulica L, Krishna P, Rosen CA. Patient tolerance of awake, in-office laryngeal procedures: a multi-institutional perspective. Laryngoscope. 2012;122(2):315-321. [DOI] [PubMed] [Google Scholar]
- 30.Mallur PS, Branski RC, Amin MR. 532-nanometer potassium titanyl phosphate (KTP) laser-induced expression of selective matrix metalloproteinases (MMP) in the rat larynx. Laryngoscope. 2011;121(2):320-324. [DOI] [PubMed] [Google Scholar]
- 31.Tang CG, Askin G, Christos PJ, Sulica L. Vocal fold varices and risk of hemorrhage. Laryngoscope. 2016;126(5):1163-1168. [DOI] [PubMed] [Google Scholar]
Associated Data
This section collects any data citations, data availability statements, or supplementary materials included in this article.
Supplementary Materials
eTable 1. Comparison of demographic features, laser parameters, and treatment outcomes between hemorrhagic and non-hemorrhagic polyps
eTable 2. Laser settings and voice outcomes in the seven cases receiving multiple procedures


