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SYSTEMATIC REVIEW article

Front. Endocrinol., 25 October 2021
Sec. Thyroid Endocrinology

The Ability of Near-Infrared Autofluorescence to Protect Parathyroid Gland Function During Thyroid Surgery: A Meta-Analysis

  • 1Department of Thyroid and Breast Surgery, Chengdu Third People’s Hospital, Chengdu, China
  • 2College of Preclinical Medicine, North Sichuan Medical College, Nanchong, China

Objective: We conducted this meta-analysis to assess the ability of near-infrared autofluorescence to protect parathyroid gland function during thyroid surgery.

Method: A systematic literature search was conducted using PubMed, Embase, and the Cochrane Library electronic databases for studies published up to February 2021. The reference lists of the retrieved articles were also reviewed. Two authors independently assessed methodological quality and extracted the data. A random-effects model was used to calculate the overall pooled variable and the weighted mean deviation. Publication bias in these studies was evaluated using the Egger’s and Begg’s tests.

Result: Seven studies involving 1,480 patients were included in the analysis. Compared with patients in the naked eye group, the pooled relative risk of inadvertent parathyroid gland resection and parathyroid gland autotransplantation for the patients in the near-infrared autofluorescence group was 0.48 (95% CI, 0.26–0.9, p = 0.023) and 0.39 (95% CI, 0.09–1.68, p = 0.208), respectively. The pooled relative risk of hypocalcemia at 1 day postoperatively and at 6 months postoperatively for the patients in the near-infrared autofluorescence group was 0.49 (95% CI, 0.34–0.71, p < 0.001) and 0.34 (95% CI, 0.06–2.03, p = 0.238) compared with patients in the naked eye group.

Conclusion: Near-infrared autofluorescence is significantly associated with a reduced risk of inadvertent parathyroid gland resection and hypocalcemia at 1 day postoperatively.

Introduction

Thyroidectomy with or without lymph node dissection is the primary therapeutic method for thyroid neoplasms (1, 2). Hypoparathyroidism is a frequent complication after thyroid surgery, occurring in 33.7%–49% of patients and remains permanent in 6%–19.4% of patients (35). Postoperative hypoparathyroidism is the result of parathyroid gland (PG) damage, devascularization, and inadvertent resection. This complication can lead to poor experience, prolonged hospitalization, and increased costs (6, 7). Permanent hypoparathyroidism requires long-time substitutive treatment, impairs immune function, and thus lowers quality of life (810).

Although some strategies have been proposed to prevent postoperative hypoparathyroidism, such as meticulous capsule dissection, preservation of the inferior thyroid vein, and classification of PG for functional protection, PG identification is crucial during thyroid surgery (1114). Several tracers were reported to assist in identifying the PG, but they have some disadvantages, such as lack of direct evidence and limitation of instrument and/or invasiveness, and surgeon-dependent identification is still pivotal after using them (11, 15, 16).

In recent years, near-infrared autofluorescence (NIRAF) has been introduced to identify PG during surgery (1719). Several studies investigated the ability of NIRAF to protect PG function and confirmed that it helped to reduce the number of inadvertently resected PGs and the incidence of postoperative transient hypocalcemia (14, 20). However, DiMarco et al. (21) reported that the method did not significantly reduce PG in postoperative specimens, and Papavramidis et al. (22) suggested that the method did not reduce the incidence of postoperative hypoparathyroidism and hypocalcemia. Due to the disagreement over the protective ability, we conducted a meta-analysis to assess the ability of NIRAF to protect PG function.

Methods

Literature Search

The initial search criteria were defined in terms of populations, interventions, comparators, outcomes, and study designs (PICOS) as follows: P, patients who underwent thyroid surgery; I, near-infrared autofluorescence of parathyroid gland; C, white light or naked eyes; O, the number of identified parathyroid, the incidence of inadvertently resected parathyroid gland, the incidence of parathyroid gland autotransplantation, and the incidence of postoperative hypoparathyroidism or hypocalcemia after total thyroidectomy; and S, no restrictions. Because only few studies were obtained in preliminary research, we made the research strategy according to the interventions.

Two investigators independently conducted a search using PubMed, Embase, and the Cochrane Library electronic databases for studies published up to February 28, 2021. The search algorithm was [(near-infrared) AND (parathyroid)] for PubMed. The following search terms were used in all fields as a search strategy for Embase: (1) parathyroid glands, parathyroid gland, parathyroid, parathyroids; (2) (spectroscopy, near-infrared), near-infrared spectroscopy, near infrared spectroscopy; near infrared, near-infrared. For Cochrane Library electronic databases, the search strategy was the following terms by searching Medical Subject Headings and free word in all field: (1) parathyroid glands, parathyroid gland, parathyroid, parathyroids; (2) (spectroscopy, near-infrared), near infrared spectroscopy, near infrared spectroscopies, near infra-red spectroscopy, near infra-red spectroscopies, near infrared, near infra-red. No restrictions were imposed. In addition, we reviewed the reference lists of the retrieved papers and recent reviews.

Study Selection

The first screening of each paper was performed based on the title and abstract, and the full text was then reviewed. Studies were considered eligible if they met all the following criteria (1): the exposure of interest included NIRAF (2); the outcome of interest was the number of identified PG, the incidence of inadvertently resected PG or PG autotransplantation, and/or the incidence of hypoparathyroidism and/or hypocalcemia; and (3) relative risk (RR) and the corresponding 95% confidence interval (CI) (or data to calculate these values) were reported. Studies were excluded based on the following criteria: (1) conference abstract, review, case report, commentary, discussion, and letter; (2) those in which the fluorescence originated from tracer or if angiography was used; (3) those in which the trial was not conducted in humans; (4) those which were published in non-English languages; and (5) those from which data could not be collected adequately.

Data Extraction and Quality Assessment

Data were extracted by two reviewers (BW and C-RZ) using a predefined data extraction form. Data were collected as follows: first author, publication date, type of study, country of origin, study sites and institutes, measurement instrument and method, research period, sample size, disease (the reason for surgery) and surgical method, the number of cases and controls, the number and/or the mean number and the standard deviation (SD) of identified PG, incidence of inadvertently resected PG and/or PG autotransplantation, evaluation indexes of hypoparathyroidism and hypocalcemia, and the incidence of hypoparathyroidism or hypocalcemia after surgery. The quality of randomized controlled trials was assessed using the critical appraisal skills program (CASP) checklist (23). The quality of cohort studies and case–control studies was assessed using the Newcastle–Ottawa Scale (NOS), and studies with an NOS score >5 were considered high-quality studies (24). The quality of non-randomized studies was assessed using the methodological index for non-randomized studies (MINORS) (25). BW and C-RZ independently conducted the study selection, data extraction, and quality assessment. All disagreements in these processes were discussed and resolved by consensus.

Statistical Analysis

Stata version 14.0 (Stata Corp LP, College Station, TX, USA) was used to calculate the pooled relative risk (RR), pooled odds ratio (OR), and weighted mean deviation (WMD) with a random-effects model (DerSimonian–Laird). Heterogeneity was quantified using the I2 test. p< 0.1 and I2 > 50% for heterogeneity were considered significant differences. Potential publication bias was assessed using the Begg rank correlation test (26) and the Egger linear regression test (27). p < 0.05 was considered statistically significant in all tests.

Results

Literature Search

The study selection process is illustrated in Figure 1. A total of 214 potentially relevant records were identified by searching the abovementioned databases, and two other records were added by reviewing the reference lists of the retrieved papers. One hundred twenty-two records were retained after duplicates were removed. After screening the titles and abstracts, 84 studies were excluded according to the exclusion criteria. The remaining 38 studies were assessed via full-text screening, and 31 studies were further excluded. Finally, seven independent studies were included in the meta-analysis (14, 2022, 2830).

FIGURE 1
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Figure 1 Flow chart of study selection.

Study Characteristics

Table 1 shows the basic information of the seven eligible studies (14, 2022, 2830). All of the studies were published in recent 4 years and were prospective studies. Of the seven studies, three were randomized control trials, one was a prospective cohort study, one was a prospective matched case–control study, one was a historical controlled study, and one was a before–after study in the same patient. Four, one, and two studies were conducted in Europe, the United States, and Argentina, respectively. One study that used both NIRAF and angiography and consisted of thyroid disease and primary hyperparathyroidism was also included because of the detailed information of the surgical process and the outcome of interest, which was the number of identified PGs (28). According to these studies, two types of instruments based on the NIRAF were used to identify PGs, and a total of 1,480 patients were included in the analysis. The outcome of interest varied across studies, including the number of identified PGs, the incidence of inadvertently resected PG and/or PG autotransplantation, and the incidence of hypoparathyroidism or hypocalcemia. According to the CASP lists, NOS, and MINORs, all of the included studies demonstrated relatively high quality.

TABLE 1
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Table 1 The characteristics of included studies.

The Ability of NIRAF in Protecting PG

Five studies explored the relationship between NIRAF and the number of identified PGs (14, 20, 2830). The WMD was 0.42 (95% CI, −0.09–0.93, p = 0.107, Figure 2A), while the heterogeneity was significant (I2 = 95.9%, p < 0.001, Figure 2A). The publication bias, as measured by Begg’s and Egger’s tests, did not appear to be significant (p = 0.221, p = 0.205). We classified the participants according to whether the number of identified PGs was more than 2. The pooled OR was 1.92 (95% CI, 0.78–4.71, p = 0.153, Figure 2B), and the heterogeneity was still significant (I2 = 89.2%, p < 0.001, Figure 2B). The publication bias was not significant (Begg, p = 0.462; Egger, p = 0.988).

FIGURE 2
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Figure 2 The relationship between near-infrared autofluorescence and the number of identified PG. (A) the weighted mean deviation of the number of identified parathyroid between near-infrared autofluorescence group and naked eye group. (B) the odds ratio (patients with three or more identified parathyroid glands vs. patients with two or less identified parathyroid glands) between near-infrared autofluorescence group and naked eye group. The shaded areas represent the weight of the relevant study in pooling the results; the error bars represent the 95% confidence interval.

Figure 3A shows the results of the pooled RR for the risk of inadvertently resected PG. Five studies (14, 21, 22, 29, 30) were included in the analysis. The RRs for the relationship between NIRAF and inadvertently resected PG varied from 0.15 to 1.18 across the studies, while the pooled RR was 0.48 (95% CI, 0.26–0.9, p = 0.023). The heterogeneity was moderate ((I2 = 57.2%, p = 0.053), and the publication bias was not significant (Begg, p = 0.221; Egger, p = 0.219). Figure 3B presents the pooled RR related to NIRAF and PG autotransplantation. NIRAF was not associated with the incidence of PG autotransplantation (RR = 0.39; 95% CI, 0.09–1.68, p = 0.208; Begg, p = 0.296; Egger, p = 0.521).

FIGURE 3
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Figure 3 The relative risk for inadvertent parathyroid gland resection and autotransplantation. (A) Inadvertent parathyroid gland resection. (B) parathyroid gland autotransplantation. The shaded areas represent the weight of the relevant study in pooling the results; the error bars represent the 95% confidence interval.

The results presented in Figure 4 combined the RRs for the risk of hypocalcemia after total thyroidectomy. Six (14, 2022, 29, 30) and four (14, 21, 29, 30) studies were used to generate the results of association between NIRAF and hypocalcemia at 1 day postoperatively and 6 months postoperatively, respectively. The incidence of hypocalcemia at 1 day postoperatively was lower in the NIRAF group than that in the naked eye group (RR = 0.49; 95% CI, 0.34–0.71, p < 0.001, Figure 4A), and no heterogeneity or publication bias was observed (I2 = 0%, p = 0.507, Figure 4A; Begg, p = 0.26; Egger, p = 0.375). However, compared with that in the naked eye group, the incidence of severe hypocalcemia, with which patients required calcium and vitamin D supplementation, at 1 day postoperatively, was not significantly different in the NIRAF group (RR = 1.07; 95% CI, 0.69–1.64, p = 0.765; I2 = 0%, p = 0.776, Figure 4B; Begg, p = 0.296; Egger, p = 0.299). There was also no significant difference in the incidence of hypocalcemia at 6 months postoperatively between the NIRAF group and the naked eye group (RR = 0.34; 95% CI, 0.06–2.03, p = 0.238; I2 = 0%, p = 0.864, Figure 4C; Begg, p > 0.99; Egger, p = 0.282).

FIGURE 4
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Figure 4 The relative risk for postoperative hypocalcemia. (A) Hypocalcemia at 1 day postoperatively. (B) Severe hypocalcemia at 1 day postoperatively. (C) hypocalcemia at 6 months postoperatively. The shaded areas represent the weight of the relevant study in pooling the results; the error bars represent the 95% confidence interval; the arrow indicate that the lower limits of the 95% confidence interval exceed the figure scale.

Discussion

The present meta-analysis demonstrated that NIRAF might help to identify PG and reduce PG autotransplantation and could assist in decreasing the incidence of inadvertently resected PG, thus lowering the incidence of hypocalcemia at 1 day postoperatively. However, NIRAF was not significantly associated with severe hypocalcemia at 1 day postoperatively and hypocalcemia at 6 months postoperatively.

PG identification is the first step in protecting the PG during thyroid surgery (31). Almost all of the present PG protection strategies are based on PG identification (11, 12, 15). Benmiloud et al. indicated that NIRAF helps to identify PGs (29). However, Dip et al. suggested that there was no significant difference in the number of identified PGs between the NIRAF group and the naked eye group (20). The reason for the different results might be due to the difference in the NIRAF use time. The former used NIRAF before dissection of the thyroid, while the latter used NIRAF after dissecting the thyroid. It is well known that thyroid dissection can reveal PG to the naked eye. This meta-analysis did not find that NIRAF was associated with an increased number of identified PGs, which might be attributed to the extensive experience of the chief surgeons who were all professional senior endocrine surgeons and identified almost all PGs. In other words, NIRAF was able to provide similar help in identifying PG as experienced endocrine surgeons, which would assist young surgeons in achieving thyroid surgery with a low incidence of hypoparathyroidism.

Inadvertently resected PG is a risk factor for postoperative transient and permanent hypoparathyroidism (32, 33). Therefore, it is important for PG function protection to identify them before resecting the specimens and find them out in the intraoperative specimens. According to this meta-analysis, NIRAF was associated with a lower incidence of inadvertently resected PG, which is consistent with the majority of studies (14, 22, 30). This phenomenon might be explained by the fact that NIRAF helped to identify more PGs, although the difference was not statistically significant.

PG autotransplantation is the exclusive method to protect the function of PGs, which cannot be preserved in site (11). Although the relationship between PG autotransplantation and permanent hypoparathyroidism is controversial, it is the consensus that PG autotransplantaton increases the incidence of postoperative transient hypoparathyroidism (7, 34, 35). This meta-analysis did not show a significant association between NIRAF and PG autotransplantation. Because the location and blood supply of PG, surgery method and surgical skill are also important influencing factors in preserving PG in site, besides PG identification. The small number of studies might be another reason for this result.

The incidence of postoperative hypocalcemia reflects the protective effect of the PG. Therefore, it is the primary evaluation index of protective ability. In the included studies, the incidence of hypocalcemia at 1 day postoperatively varied from 3.3% to 21.7%, which is consistent with previous reports (35). The meta-analysis demonstrated that NIRAF was associated with a decrease in the incidence of hypocalcemia at 1 day postoperatively. Less PGs were inadvertently resected in the NIRAF group, which might be responsible for this result. Another reason might be that NIRAF helped surgeons discover PGs earlier and thus added the probability of reducing PG damage. Several studies have confirmed that 36.9%–61.6% of PGs were identified by the NIRAF instrument before the surgeon saw them with the naked eye (14, 20, 30). However, the severe hypocalcemia at 1 day postoperatively was not associated with NIRAF according to the meta-analysis. Owing to the rich experience of the surgeons in these studies, the incidence of severe hypocalcemia at 1 day postoperatively might not be further decreased by using the NIRAF instrument.

In terms of hypocalcemia at 6 months postoperatively, the meta-analysis showed no effect of NIRAF. During the included studies, the maximal incidence of hypocalcemia at 6 months postoperatively and the largest sample size of the study was 1.69% and 300 patients, respectively. One study even showed that hypocalcemia did not occur at 6 months postoperatively in both the NIRAF and naked eye groups (21). The low incidence and small sample size of the study might not be sufficient to determine the difference brought by NIRAF. The experience and endeavor of the surgeons to prevent permanent hypocalcemia might also play a role in narrowing the difference. Su et al. suggested that the fourth PG did not significantly influence the overall PG function regardless of whether it was preserved in site, autotransplanted, or inadvertently resected, when three PGs were preserved in site (7).

Although there was no heterogeneity among the studies regarding the relationship between NIRAF and postoperative hypocalcemia, substantial heterogeneity was observed among the studies with respect to the relationship between NIRAF and PG identification, autotransplantation, and inadvertent resection. Heterogeneity was a major problem affecting the reliability of the pooled effect size in the meta-analysis. The following factors might have influenced the heterogeneity: (1) the reference standard consisted of experience and pathology in almost all the studies, which would be affected by subjectivity and thus could not be maintained completely consistent; (2) despite being professional thyroid surgeons, surgeons in different studies might still have differences in the ability to identify PG and the skills to preserve PG in site; (3) the surgical methods were not completely consistent; (4) measurement instruments and methods were not completely uniform; (5) the characteristics of the populations varied in different studies; (6) the confounding factors were different across these studies; and (7) the types of these studies were different, and thus, the quality of each study was not completely consistent.

This meta-analysis has several limitations. First, because the included studies consisted of a before–after study in the same patient, a historical controlled study, cohort studies, case–control studies, and randomized controlled trials, bias was inevitable. Second, the index related to serum parathyroid hormone, which is the direct indicator of the overall PG function, such as the incidence of hypoparathyroidism, the difference in serum parathyroid hormone levels before and after surgery, and the degree of decline in serum parathyroid hormone levels after surgery, was not collected and analyzed in these studies. Third, the heterogeneity was significant in the studies that explored the relationship between NIRAF and PG identification, autotransplantation, and inadvertent resection. Finally, although seven independent studies were included in this meta-analysis, the sample size was still limited, and the number of studies was smaller when a specific outcome analysis was performed.

Conclusion

This meta-analysis demonstrates that NIRAF is significantly associated with a reduced risk of inadvertent parathyroid gland resection and hypocalcemia at 1 day postoperatively. The association between NIRAF and PG autotransplantation or hypocalcemia at 6 months postoperatively was not significant. Considering the limited number of studies, more studies are needed to explore the protective ability of NIRAF. Moreover, because serum parathyroid hormone is the direct indicator of PG function, future research should also report the effects on the indexes related to serum parathyroid hormone from NIRAF.

Data Availability Statement

The original contributions presented in the study are included in the article/supplementary material. Further inquiries can be directed to the corresponding author.

Author Contributions

Study conception and design: BW, C-RZ, HL, X-MY, and JW. Acquisition of data: BW and C-RZ. Analysis and interpretation of data: BW, C-RZ, and HL. Drafting of manuscript: BW and C-RZ. Critical revision: BW, C-RZ, HL, X-MY, and JW. Final approval of the version to be submitted: BW, C-RZ, HL, X-MY, and JW. All authors contributed to the article and approved the submitted version.

Funding

BW was supported by a non-profit fund from China Health Promotion Foundation. JW was supported by a grant from Scientific Research Fund of the Department of Science and Technology of Chengdu City (2015-HM01-00376-SF) and Science and Technology Program of Science & Technology Department of Sichuan Province (2015JY0190). The funding bodies had no role in the conception of the study, in the collection, analysis, and interpretation of data, in writing the manuscript, and in the approval of the publication.

Conflict of Interest

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Publisher’s Note

All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.

References

1. Wells SA Jr, Asa SL, Dralle H, Elisei R, Evans DB, Gagel RF, et al. Revised American Thyroid Association Guidelines for the Management of Medullary Thyroid Carcinoma. Thyroid (2015) 25(6):567–610. doi: 10.1089/thy.2014.0335

PubMed Abstract | CrossRef Full Text | Google Scholar

2. Haugen BR, Alexander EK, Bible KC, Doherty GM, Mandel SJ, Nikiforov YE, et al. 2015 American Thyroid Association Management Guidelines for Adult Patients With Thyroid Nodules and Differentiated Thyroid Cancer: The American Thyroid Association Guidelines Task Force on Thyroid Nodules and Differentiated Thyroid Cancer. Thyroid (2016) 26(1):1–133. doi: 10.1089/thy.2015.0020

PubMed Abstract | CrossRef Full Text | Google Scholar

3. Calvo Espino P, Rivera Bautista JA, Artes Caselles M, Serrano Gonzalez J, Garcia Pavia A, Garcia-Oria MJ, et al. Serum Levels of Intact Parathyroid Hormone on the First Day After Total Thyroidectomy as Predictor of Permanent Hypoparathyroidism. Endocrinol Diabetes Nutr (2019) 66(3):195–201. doi: 10.1016/j.endinu.2018.08.006

CrossRef Full Text | Google Scholar

4. Boute P, Merlin J, Biet A, Cuvelier P, Strunski V, Page C. Morbidity of Central Compartment Dissection for Differentiated Thyroid Carcinoma of the Follicular Epithelium. Eur Ann Otorhinolaryngol Head Neck Dis (2013) 130(5):245–9. doi: 10.1016/j.anorl.2012.10.004

PubMed Abstract | CrossRef Full Text | Google Scholar

5. Viola D, Materazzi G, Valerio L, Molinaro E, Agate L, Faviana P, et al. Prophylactic Central Compartment Lymph Node Dissection in Papillary Thyroid Carcinoma: Clinical Implications Derived From the First Prospective Randomized Controlled Single Institution Study. J Clin Endocrinol Metab (2015) 100(4):1316–24. doi: 10.1210/jc.2014-3825

PubMed Abstract | CrossRef Full Text | Google Scholar

6. Testini M, Gurrado A, Lissidini G, Nacchiero M. Hypoparathyroidism After Total Thyroidectomy. Minerva Chir (2007) 62(5):409–15.

PubMed Abstract | Google Scholar

7. Su A, Gong Y, Wu W, Gong R, Li Z, Zhu J. Effect of Autotransplantation of a Parathyroid Gland on Hypoparathyroidism After Total Thyroidectomy. Endocr Connect (2018) 7(2):286–94. doi: 10.1530/EC-17-0313

PubMed Abstract | CrossRef Full Text | Google Scholar

8. Puliani G, Hasenmajer V, Sciarra F, Barbagallo F, Sbardella E, Pofi R, et al. Impaired Immune Function in Patients With Chronic Postsurgical Hypoparathyroidism: Results of the EMPATHY Study. J Clin Endocrinol Metab (2021) 106(5):e2215–27. doi: 10.1210/clinem/dgab038

PubMed Abstract | CrossRef Full Text | Google Scholar

9. Stack BC Jr, Bimston DN, Bodenner DL, Brett EM, Dralle H, Orloff LA, et al. American Association of Clinical Endocrinologists and American College of Endocrinology Disease State Clinical Review: Postoperative Hypoparathyroidism–Definitions and Management. Endocr Pract (2015) 21(6):674–85. doi: 10.4158/EP14462.DSC

PubMed Abstract | CrossRef Full Text | Google Scholar

10. Almquist M, Ivarsson K, Nordenstrom E, Bergenfelz A. Mortality in Patients With Permanent Hypoparathyroidism After Total Thyroidectomy. Br J Surg (2018) 105(10):1313–8. doi: 10.1002/bjs.10843

PubMed Abstract | CrossRef Full Text | Google Scholar

11. Zhu J, Tian W, Xu Z, Jiang K, Sun H, Wang P, et al. Expert Consensus Statement on Parathyroid Protection in Thyroidectomy. Ann Transl Med (2015) 3(16):230. doi: 10.3978/j.issn.2305-5839.2015.08.20

PubMed Abstract | CrossRef Full Text | Google Scholar

12. Wang JB, Wu K, Shi LH, Sun YY, Li FB, Xie L. In Situ Preservation of the Inferior Parathyroid Gland During Central Neck Dissection for Papillary Thyroid Carcinoma. Br J Surg (2017) 104(11):1514–22. doi: 10.1002/bjs.10581

PubMed Abstract | CrossRef Full Text | Google Scholar

13. Cui Q, Li Z, Kong D, Wang K, Wu G. A Prospective Cohort Study of Novel Functional Types of Parathyroid Glands in Thyroidectomy: In Situ Preservation or Auto-Transplantation? Med (Baltimore) (2016) 95(52):e5810. doi: 10.1097/MD.0000000000005810

CrossRef Full Text | Google Scholar

14. Benmiloud F, Godiris-Petit G, Gras R, Gillot JC, Turrin N, Penaranda G, et al. Association of Autofluorescence-Based Detection of the Parathyroid Glands During Total Thyroidectomy With Postoperative Hypocalcemia Risk: Results of the PARAFLUO Multicenter Randomized Clinical Trial. JAMA Surg (2020) 155(2):106–12. doi: 10.1001/jamasurg.2019.4613

PubMed Abstract | CrossRef Full Text | Google Scholar

15. Pasta V, Monteleone F, Del Vecchio L, Iacobelli S, Urciuoli P, D’Orazi V. Original Technique for Preoperative Preparation of Patients and Intraoperative Localization of Parathyroid Adenomas. G Chir (2015) 36(3):97–100. doi: 10.11138/gchir/2015.36.3.097

PubMed Abstract | CrossRef Full Text | Google Scholar

16. Papavramidis TS, Anagnostis P, Chorti A, Pliakos I, Panidis S, Koutsoumparis D, et al. Do Near-Infrared Intra-Operative Findings Obtained Using Indocyanine Green Correlate With Post-Thyroidectomy Parathyroid Function? The Icgpredict Study. Endocr Pract (2020) 26(9):967–73. doi: 10.4158/EP-2020-0119

PubMed Abstract | CrossRef Full Text | Google Scholar

17. De Leeuw F, Breuskin I, Abbaci M, Casiraghi O, Mirghani H, Ben Lakhdar A, et al. Intraoperative Near-Infrared Imaging for Parathyroid Gland Identification by Auto-Fluorescence: A Feasibility Study. World J Surg (2016) 40(9):2131–8. doi: 10.1007/s00268-016-3571-5

PubMed Abstract | CrossRef Full Text | Google Scholar

18. Ladurner R, Sommerey S, Arabi NA, Hallfeldt KKJ, Stepp H, Gallwas JKS. Intraoperative Near-Infrared Autofluorescence Imaging of Parathyroid Glands. Surg Endosc (2017) 31(8):3140–5. doi: 10.1007/s00464-016-5338-3

PubMed Abstract | CrossRef Full Text | Google Scholar

19. Wolf HW, Grumbeck B, Runkel N. Intraoperative Verification of Parathyroid Glands in Primary and Secondary Hyperparathyroidism Using Near-Infrared Autofluorescence (IOPA). Updates Surg (2019) 71(3):579–85. doi: 10.1007/s13304-019-00652-1

PubMed Abstract | CrossRef Full Text | Google Scholar

20. Dip F, Falco J, Verna S, Prunello M, Loccisano M, Quadri P, et al. Randomized Controlled Trial Comparing White Light With Near-Infrared Autofluorescence for Parathyroid Gland Identification During Total Thyroidectomy. J Am Coll Surg (2019) 228(5):744–51. doi: 10.1016/j.jamcollsurg.2018.12.044

PubMed Abstract | CrossRef Full Text | Google Scholar

21. DiMarco A, Chotalia R, Bloxham R, McIntyre C, Tolley N, Palazzo FF. Does Fluoroscopy Prevent Inadvertent Parathyroidectomy in Thyroid Surgery? Ann R Coll Surg Engl (2019) 101(7):508–13. doi: 10.1308/rcsann.2019.0065

PubMed Abstract | CrossRef Full Text | Google Scholar

22. Papavramidis TS, Chorti A, Tzikos G, Anagnostis P, Pantelidis P, Pliakos I, et al. The Effect of Intraoperative Autofluorescence Monitoring on Unintentional Parathyroid Gland Excision Rates and Postoperative PTH Concentrations-A Single-Blind Randomized-Controlled Trial. Endocrine (2021) 72(2):546–52. doi: 10.1007/s12020-020-02599-5

PubMed Abstract | CrossRef Full Text | Google Scholar

23. Critical Appraisal Skills Programme. CASP Randomised Controlled Trial Checklist. [Online] (2020). Available at: https://casp-uk.net/casp-tools-checklistshttps://www.casp-uk.net/wp-content/uploads/2020/10/CASP_RCT_Checklist_PDF_Fillable_Form.pdf.

Google Scholar

24. Stang A. Critical Evaluation of the Newcastle-Ottawa Scale for the Assessment of the Quality of Nonrandomized Studies in Meta-Analyses. Eur J Epidemiol (2010) 25(9):603–5. doi: 10.1007/s10654-010-9491-z

PubMed Abstract | CrossRef Full Text | Google Scholar

25. Slim K, Nini E, Forestier D, Kwiatkowski F, Panis Y, Chipponi J. Methodological Index for Non-Randomized Studies (Minors): Development and Validation of a New Instrument. ANZ J Surg (2003) 73(9):712–6. doi: 10.1046/j.1445-2197.2003.02748.x

PubMed Abstract | CrossRef Full Text | Google Scholar

26. Begg CB, Mazumdar M. Operating Characteristics of a Rank Correlation Test for Publication Bias. Biometrics (1994) 50(4):1088–101.

PubMed Abstract | Google Scholar

27. Egger M, Davey Smith G, Schneider M, Minder C. Bias in Meta-Analysis Detected by a Simple, Graphical Test. BMJ (1997) 315(7109):629–34. doi: 10.1136/bmj.315.7109.629

PubMed Abstract | CrossRef Full Text | Google Scholar

28. Falco J, Dip F, Quadri P, de la Fuente M, Prunello M, Rosenthal RJ. Increased Identification of Parathyroid Glands Using Near Infrared Light During Thyroid and Parathyroid Surgery. Surg Endosc (2017) 31(9):3737–42. doi: 10.1007/s00464-017-5424-1

PubMed Abstract | CrossRef Full Text | Google Scholar

29. Benmiloud F, Rebaudet S, Varoquaux A, Penaranda G, Bannier M, Denizot A. Impact of Autofluorescence-Based Identification of Parathyroids During Total Thyroidectomy on Postoperative Hypocalcemia: A Before and After Controlled Study. Surgery (2018) 163(1):23–30. doi: 10.1016/j.surg.2017.06.022

PubMed Abstract | CrossRef Full Text | Google Scholar

30. Kim YS, Erten O, Kahramangil B, Aydin H, Donmez M, Berber E. The Impact of Near Infrared Fluorescence Imaging on Parathyroid Function After Total Thyroidectomy. J Surg Oncol (2020) 122(5):973–9. doi: 10.1002/jso.26098

PubMed Abstract | CrossRef Full Text | Google Scholar

31. Barbieri D, Indelicato P, Vinciguerra A, Di Marco F, Formenti AM, Trimarchi M, et al. Autofluorescence and Indocyanine Green in Thyroid Surgery: A Systematic Review and Meta-Analysis. Laryngoscope (2021) 131(7):1683–92. doi: 10.1002/lary.29297

PubMed Abstract | CrossRef Full Text | Google Scholar

32. Lin YS, Hsueh C, Wu HY, Yu MC, Chao TC. Incidental Parathyroidectomy During Thyroidectomy Increases the Risk of Postoperative Hypocalcemia. Laryngoscope (2017) 127(9):2194–200. doi: 10.1002/lary.26448

PubMed Abstract | CrossRef Full Text | Google Scholar

33. Sitges-Serra A, Gallego-Otaegui L, Suarez S, Lorente-Poch L, Munne A, Sancho JJ. Inadvertent Parathyroidectomy During Total Thyroidectomy and Central Neck Dissection for Papillary Thyroid Carcinoma. Surgery (2017) 161(3):712–9. doi: 10.1016/j.surg.2016.08.021

PubMed Abstract | CrossRef Full Text | Google Scholar

34. Teshima M, Otsuki N, Morita N, Furukawa T, Shinomiya H, Shinomiya H, et al. Postoperative Hypoparathyroidism After Total Thyroidectomy for Thyroid Cancer. Auris Nasus Larynx (2018) 45(6):1233–8. doi: 10.1016/j.anl.2018.04.008

PubMed Abstract | CrossRef Full Text | Google Scholar

35. Wang B, Zhu CR, Liu H, Wu J. The Effectiveness of Parathyroid Gland Autotransplantation in Preserving Parathyroid Function During Thyroid Surgery for Thyroid Neoplasms: A Meta-Analysis. PloS One (2019) 14(8):e0221173. doi: 10.1371/journal.pone.0221173

PubMed Abstract | CrossRef Full Text | Google Scholar

Keywords: near-infrared, autofluorescence, parathyroid gland function, thyroid surgery, meta-analysis

Citation: Wang B, Zhu C-R, Liu H, Yao X-M and Wu J (2021) The Ability of Near-Infrared Autofluorescence to Protect Parathyroid Gland Function During Thyroid Surgery: A Meta-Analysis. Front. Endocrinol. 12:714691. doi: 10.3389/fendo.2021.714691

Received: 25 May 2021; Accepted: 04 October 2021;
Published: 25 October 2021.

Edited by:

Alessandro Antonelli, University of Pisa, Italy

Reviewed by:

Gianluca Donatini, Centre Hospitalier Universitaire (CHU) de Poitiers, France
Gerasimos Sykiotis, Centre Hospitalier Universitaire Vaudois (CHUV), Switzerland

Copyright © 2021 Wang, Zhu, Liu, Yao and Wu. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

*Correspondence: Jian Wu, wo_doctor@163.com

These authors have contributed equally to this work and share first authorship

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