Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
    • 指導教授
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 醫學院
  3. 臨床醫學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/104517
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor黃國晉zh_TW
dc.contributor.advisorKuo-Chin Huangen
dc.contributor.author官佳芸zh_TW
dc.contributor.authorChia-Yin Kuanen
dc.date.accessioned2026-08-27T16:12:13Z-
dc.date.available2026-08-28-
dc.date.copyright2026-08-27-
dc.date.issued2026-
dc.date.submitted2026-07-22 00:00:00-
dc.identifier.citation1. Abbasi A, Gupta SS, Sabharwal N, et al. A comprehensive review of obstructive sleep apnea. Sleep Sci. 2021;14(2):142-154.
2. Gottlieb DJ, Punjabi NM. Diagnosis and Management of Obstructive Sleep Apnea: A Review. JAMA. 2020;323(14):1389-1400. doi:10.1001/jama.2020.3514
3. Pham LV, Jun J, Polotsky VY. Obstructive sleep apnea. Handb Clin Neurol. 2022;189:105-136. doi:10.1016/B978-0-323-91532-8.00017-3
4. Senaratna CV, Perret JL, Lodge CJ, et al. Prevalence of obstructive sleep apnea in the general population: a systematic review. Sleep Med Rev. 2017;34:70-81.
5. Benjafield AV, Ayas NT, Eastwood PR, et al. Estimation of the global prevalence and burden of obstructive sleep apnoea: a literature-based analysis. Lancet Respir Med. 2019;7(8):687-698.
6. Drager LF, Togeiro SM, Polotsky VY, Lorenzi-Filho G. Obstructive sleep apnea: a cardiometabolic risk in obesity and the metabolic syndrome. J Am Coll Cardiol. 2013;62(7):569-576.
7. Javaheri S, Javaheri S, Gozal D, et al. Treatment of OSA and its impact on cardiovascular disease, part 2: JACC state-of-the-art review. J Am Coll Cardiol. 2024;84(13):1224-1240.
8. Isono S. Obesity and obstructive sleep apnoea: Mechanisms for increased collapsibility of the passive pharyngeal airway. Respirology. 2012;17(1):32-42. doi:10.1111/j.1440-1843.2011.02093.x
9. Hudgel DW, Patel SR, Ahasic AM, et al. The Role of Weight Management in the Treatment of Adult Obstructive Sleep Apnea. An Official American Thoracic Society Clinical Practice Guideline. Am J Respir Crit Care Med. 2018;198(6):e70-e87. doi:10.1164/rccm.201807-1326ST
10. Xia F, Sawan M. Clinical and research solutions to manage obstructive sleep apnea: a review. Sensors (Basel). 2021;21(5):1784.
11. Gudzune KA, Kushner RF. Medications for obesity: a review. JAMA. 2024;332(7):571-584.
12. Sultana R, Sissoho F, Kaushik VP, Raji MA. The case for early use of glucagon-like peptide-1 receptor agonists in obstructive sleep apnea patients with comorbid diabetes and metabolic syndrome. Life (Basel). 2022;12(8):1222.
13. Framnes SN, Arble DM. The Bidirectional Relationship Between Obstructive Sleep Apnea and Metabolic Disease. Front Endocrinol (Lausanne). 2018;9:440. Published 2018 Aug 6. doi:10.3389/fendo.2018.00440
14. Heffernan A, Duplancic D, Kumric M, Ticinovic Kurir T, Bozic J. Metabolic crossroads: unveiling the complex interactions between obstructive sleep apnea and metabolic syndrome. Int J Mol Sci. 2024;25(6):3243. doi:10.3390/ijms25063243
15. Page MJ, Moher D, Bossuyt PM, et al. PRISMA 2020 explanation and elaboration: updated guidance and exemplars for reporting systematic reviews. BMJ. 2021;372:n160. doi:10.1136/bmj.n160
16. Tarsilla M. Cochrane Handbook for Systematic Reviews of Interventions. Journal of Multidisciplinary Evaluation. 2010;6(14):142-148.
17. Carlson RB, Martin JR, Beckett RD. Ten simple rules for interpreting and evaluating a meta-analysis. PLoS Comput Biol. 2023;19(9):e1011461. doi:10.1371/journal.pcbi.1011461
18. Sterne JAC, Savović J, Page MJ, et al. RoB 2: a revised tool for assessing risk of bias in randomised trials. BMJ. 2019;366:l4898. Published 2019 Aug 28. doi:10.1136/bmj.l4898
19. Higgins JP, Thomas J, Chandler J, Cumpston M, Li T, Page MJ, et al, editor(s). Cochrane Handbook for Systematic Reviews of Interventions version 6.5. Cochrane, 2024.
20. Blackman A, Foster GD, Zammit G, et al. Effect of liraglutide 3.0 mg in individuals with obesity and moderate or severe obstructive sleep apnea: the SCALE Sleep Apnea randomized clinical trial. Int J Obes (Lond). 2016;40(8):1310-1319. doi:10.1038/ijo.2016.52
21. Liu K, Yuan H, Wang D, Yuan Q, Shi X. Effects of liraglutide on sleep-disordered breathing and diabetic microangiopathy in patients with type 2 diabetes mellitus and obstructive sleep apnea-hypopnea syndrome. Chin J Diabetes Mellit. 2020;12:86-91.
22. Jiang W, Li W, Cheng J, Li W, Cheng F. Efficacy and safety of liraglutide in patients with type 2 diabetes mellitus and severe obstructive sleep apnea. Sleep Breath. 2023;27(5):1687-1694. doi:10.1007/s11325-022-02768-y
23. O'Donnell C, Crilly S, O'Mahony A, et al. Continuous positive airway pressure but not GLP1-mediated weight loss improves early cardiovascular disease in obstructive sleep apnea: a randomized proof-of-concept study. Ann Am Thorac Soc. 2024;21(3):464-473. doi:10.1513/AnnalsATS.202309-821OC
24. Malhotra A, Grunstein RR, Fietze I, et al. Tirzepatide for the treatment of obstructive sleep apnea and obesity. N Engl J Med. 2024;391(13):1193-1205. doi:10.1056/NEJMoa2404881
25. Xu B, Gaynor-Sodeifi K, Kundel V, et al. Obstructive sleep apnea: an evolving therapeutic landscape with an emerging role for incretin-based therapies. Adv Ther. 2025;42(9):4255-4269.
26. Diz-Chaves Y, Herrera-Pérez S, González-Matías LC, Lamas JA, Mallo F. Glucagon-Like Peptide-1 (GLP-1) in the Integration of Neural and Endocrine Responses to Stress. Nutrients. 2020;12(11):3304. Published 2020 Oct 28. doi:10.3390/nu12113304
27. Donovan LM, Hoyos CM, Kimoff RJ, et al. Strategies to assess the effect of continuous positive airway pressure on long-term clinically important outcomes among patients with symptomatic obstructive sleep apnea: an official American Thoracic Society workshop report. Ann Am Thorac Soc. 2023;20(7):931-943.
28. Caruso I, Cignarelli A, Sorice GP, Perrini S, Giorgino F. Incretin-based therapies for the treatment of obesity-related diseases. NPJ Metab Health Dis. 2024;2(1):31. Published 2024 Nov 6. doi:10.1038/s44324-024-00030-5
29. Epstein LJ, Kristo D, Strollo PJ Jr, et al. Clinical guideline for the evaluation, management and long-term care of obstructive sleep apnea in adults. J Clin Sleep Med. 2009;5(3):263-276.
30. Dreher L, Kylies D, Danser AHJ, Wenzel UO. Incretin-Based Therapies: A Paradigm Shift in Blood Pressure Management? Hypertension. 2025;82(7):1167-1174.
31. Dragonieri S, Portacci A, Quaranta VN, et al. Therapeutic Potential of Glucagon-like Peptide-1 Receptor Agonists in Obstructive Sleep Apnea Syndrome Management: A Narrative Review. Diseases. 2024;12(9):224.
32. Zgardau A, Cheong RCT, Pang KP, Rotenberg BW. GLP-1 Receptor Agonists for Obstructive Sleep Apnea: An Otolaryngologist's Prescription? Laryngoscope. Published online August 7, 2025. doi:10.1002/lary.70022
33. Weinstock TG, Wang X, Rueschman M, et al. A controlled trial of CPAP therapy on metabolic control in individuals with impaired glucose tolerance and sleep apnea. Sleep. 2012;35:617B-625B. doi:10.5665/sleep.1816
34. Bakker JP, Edwards BA, Gautam SP, et al. Blood pressure improvement with continuous positive airway pressure is independent of obstructive sleep apnea severity. J Clin Sleep Med. 2014;10:365-369. doi:10.5664/jcsm.3604
35. Diz-Chaves Y, Mastoor Z, Spuch C, González-Matías LC, Mallo F. Anti-Inflammatory Effects of GLP-1 Receptor Activation in the Brain in Neurodegenerative Diseases. Int J Mol Sci. 2022;23(17):9583. Published 2022 Aug 24. doi:10.3390/ijms23179583
36. Moon K, Punjabi NM, Aurora RN. Obstructive sleep apnea and type 2 diabetes in older adults. Clin Geriatr Med. 2015;31(1):139-ix. doi:10.1016/j.cger.2014.08.023
37. Imayama I, Prasad B. Role of leptin in obstructive sleep apnea. Ann Am Thorac Soc. 2017;14(11):1607-1621. doi:10.1513/AnnalsATS.201702-181FR
38. Wang SH, Keenan BT, Wiemken A, et al. Effect of weight loss on upper airway & anatomy and the apnea-hypopnea index: the importance of tongue fat. Am J Respir Crit Care Med. 2020;201:718-727.
39. Edwards BA, Eckert DJ, McSharry DG, et al. Clinical predictors of the respiratory arousal threshold in patients with obstructive sleep apnea. Am J Respir Crit Care Med. 2014;190:1293-1300.
40. Ron T Varghese, Sneha Akurati, Gianluca Iacobellis, Epicardial fat and sleep apnea: perspective mechanisms, diagnostics, and therapeutics, Obesity and Endocrinology, Volume 1, Issue 2, July 2025, wjaf009.
41. Ng SSS, Chan K, Yiu BTY, et al. Effect of weight loss and continuous positive airway pressure on obstructive sleep apnea and metabolic profile stratified by craniofacial phenotype: a randomized clinical trial. Am J Respir Crit Care Med. 2022;205(6):711-720.
42. Xie Y, Choi T, Al-Aly Z. Mapping the effectiveness and risks of GLP-1 receptor agonists. Nat Med. 2025;31(3):951-962.
43. Pauza AG, Thakkar P, Tasic T, et al. GLP1R attenuates sympathetic response to high glucose via carotid body inhibition. Circ Res. 2022;130(5):694-707.
44. Patil SP, Ayappa IA, Caples SM, et al. Treatment of adult obstructive sleep apnea with positive airway pressure: an American Academy of Sleep Medicine systematic review, meta-analysis, and GRADE assessment. J Clin Sleep Med. 2019;15(2):301-334.
45. Polotsky M, Elsayed-Ahmed AS, Pichard L, et al. Effects of leptin and obesity on the upper airway function. J Appl Physiol (1985). 2012;112(10):1637-1643.
46. Rasmussen F, Mikkelsen D, Hancox RJ, et al. High-sensitive C-reactive protein is associated with reduced lung function in young adults. Eur Respir J. 2009;33(2):382-388.
47. Lim S, Buranapin S, Bao X et al. Once-weekly semaglutide 2·4 mg in an Asian population with obesity, defined as BMI ≥25 kg/m2, in South Korea and Thailand (STEP 11): a randomised, double-blind, placebo-controlled, phase 3 trial The Lancet Diabetes & Endocrinology, 2025; 13, 838-847
48. Li M, Lin H, Yang Q, et al. Glucagon-like peptide-1 receptor agonists for the treatment of obstructive sleep apnea: a meta-analysis. Sleep. 2024;48(4).
49.Altobaishat O, Farid Gadelmawla A, Balbaa E, Turkmani M, Abouzid M. Safety and efficacy of glucagon-like peptide-1 receptor agonists in patients with obstructive sleep apnea: a systematic review and meta-analysis of randomized controlled trials. Eur Clin Respir J. 2025;12(1):2484048.
50.Kow CS, Ramachandram DS, Hasan SS, Thiruchelvam K. Efficacy and safety of GLP-1 receptor agonists in the management of obstructive sleep apnea in individuals without diabetes: A systematic review and meta-analysis of randomized, placebo-controlled trials. Sleep Med. 2025;129:40-44.
-
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/104517-
dc.description.abstract研究背景:阻塞型睡眠呼吸中止症(obstructive sleep apnea, OSA)是一種常見且具高度心血管與代謝風險的慢性疾病。持續性正壓呼吸器(CPAP)雖為標準治療,但長期依從性不佳,顯示仍有發展疾病修飾型治療的必要。由於肥胖與OSA之間具有強烈且可逆的病理連結,兼具減重與代謝改善效果的glucagon-like peptide-1 receptor agonists(GLP-1RA)遂成為具高度潛力的藥物治療策略。
目的:本論文第一章透過系統性文獻回顧與統合分析,評估GLP-1RA於OSA患者之療效與相關心代謝指標變化;第二章據此提出一項以亞洲族群為核心之隨機分派臨床試驗計畫,以驗證semaglutide對過重或輕中度肥胖成人OSA之治療效益。
方法:本研究依PRISMA 2020原則進行文獻回顧,搜尋PubMed、MEDLINE、EMBASE與Cochrane等資料庫,納入對象為成人中重度OSA患者,介入措施為任一GLP-1或雙重GIP/GLP-1受體促效劑,主要終點 apnea-hypopnea index (AHI)變化。統合分析採隨機效應模型,估計平均差與95%信賴區間,並以I²評估異質性。另就研究設計與藥物別進行次群分析。
研究結果:共納入6篇研究、1,028名受試者,其中包括4篇隨機對照試驗與2篇非隨機研究。整體分析顯示,GLP-1類藥物可顯著降低AHI,合併平均差為−10.23 events/hour (95% CI −14.85至−5.61;I² = 91.8%)。體重百分比變化為−12.46%,BMI變化為−1.60 kg/m²;收縮壓與舒張壓亦分別下降−4.85與−2.67 mmHg。HbA1c、總膽固醇與三酸甘油酯則未達顯著差異。此外,次群分析顯示,隨機對照試驗之效果較非隨機研究更為明顯:RCT為−13.39 events/hour,non-RCT為−3.46 events/hour。依藥物別分析,liraglutide之AHI合併效果為−5.88 events/hour,tirzepatide為−21.89 events/hour。綜合現有資料,AHI改善大致與體重下降幅度呈方向一致關係,支持減重可能為主要治療中介機轉。
結論:GLP-1 及雙重 GIP/GLP-1 受體促效劑在阻塞性睡眠呼吸中止症(OSA)患者中,可顯著改善呼吸功能以及心血管與代謝相關指標。本結果顯示,OSA應由傳統所認知的單純上氣道塌陷疾病,重新定位為一種與代謝失衡高度相關之全身性疾病。針對亞洲族群,考量到獨特的顱顏結構和解剖特徵,OSA可於較低身體質量指數(BMI)下發生;惟現階段相關實證數據有限。有鑑於此,本文進一步提出以 semaglutide 為主之隨機、雙盲、安慰劑對照臨床試驗計畫,旨在評估其於亞洲過重 OSA 患者族群中的治療成效與臨床可行性。
zh_TW
dc.description.abstractBackground: Obstructive sleep apnea (OSA) is a common chronic disorder associated with substantial cardiovascular and metabolic risk. Although continuous positive airway pressure (CPAP) remains the standard therapy, long-term adherence is frequently suboptimal, underscoring the need for disease-modifying therapeutic strategies. Given the strong and potentially reversible pathophysiologic relationship between obesity and OSA, glucagon-like peptide-1 receptor agonists (GLP-1RAs), which confer both weight reduction and metabolic benefits, have emerged as promising pharmacologic interventions for OSA.
Objectives: The first part of this thesis aimed to evaluate the efficacy of GLP-1RAs in patients with OSA through a systematic review and meta-analysis, with particular emphasis on respiratory and cardiometabolic outcomes. The second part proposed a randomized clinical trial protocol specifically designed for Asian populations to assess the therapeutic efficacy of semaglutide in overweight or mildly to moderately obese adults with OSA.
Methods: This study was conducted in accordance with the PRISMA 2020 statement. PubMed, MEDLINE, EMBASE, and Cochrane Library databases were systematically searched. Eligible studies included adults with moderate-to-severe OSA treated with either GLP-1 receptor agonists or dual GIP/GLP-1 receptor agonists. The primary outcome was change in the apnea–hypopnea index (AHI). A random-effects model was used to estimate pooled mean differences and 95% confidence intervals, and heterogeneity was assessed with the I² statistic. Subgroup analyses were performed according to study design and pharmacologic agent.
Results: A total of six studies involving 1,028 participants were included, comprising four randomized controlled trials and two nonrandomized studies. Overall, GLP-1–based therapies significantly reduced AHI, with a pooled mean difference of −10.23 events per hour (95% confidence interval [CI], −14.85 to −5.61; I² = 91.8%). Mean body-weight reduction was 12.46%, and body-mass index (BMI) decreased by 1.60 kg/m². Systolic and diastolic blood pressure decreased by 4.85 mmHg and 2.67 mmHg, respectively. No statistically significant differences were observed in glycated hemoglobin, total cholesterol, or triglyceride levels. Subgroup analyses demonstrated greater treatment effects in randomized controlled trials than in nonrandomized studies (−13.39 vs. −3.46 events per hour, respectively). Drug-specific analyses showed pooled AHI reductions of −5.88 events per hour with liraglutide and −21.89 events per hour with tirzepatide. Across studies, improvements in AHI appeared directionally consistent with the magnitude of weight reduction, supporting weight loss as a principal mechanistic mediator of therapeutic benefit.
Conclusions: GLP-1 receptor agonists and dual GIP/GLP-1 receptor agonists significantly improved respiratory parameters as well as cardiovascular and metabolic outcomes in patients with OSA. These findings support a conceptual shift in the understanding of OSA, from a disorder characterized solely by upper-airway collapse to a systemic disease closely linked to metabolic dysfunction. In Asian populations, distinctive craniofacial and upper-airway anatomical characteristics may predispose individuals to OSA at lower BMI thresholds; however, clinical evidence in this population remains limited. Accordingly, this thesis further proposes a randomized, double-blind, placebo-controlled clinical trial of semaglutide to evaluate its efficacy and clinical feasibility in overweight Asian adults with OSA.
en
dc.description.provenanceSubmitted by admin ntu (admin@lib.ntu.edu.tw) on 2026-08-27T16:12:13Z
No. of bitstreams: 0
en
dc.description.provenanceMade available in DSpace on 2026-08-27T16:12:13Z (GMT). No. of bitstreams: 0en
dc.description.tableofcontentsCONTENT
口試委員會審定書 i
誌謝/ Acknowledgements ii
中文摘要 v
ABSTRACT vii
CONTENT x
LIST OF FIGUARES xiii
LIST OF TABLES xiii

Chapter 1 GLP-1 and Dual GIP/GLP-1 Receptor Agonists for Treating Obstructive Sleep Apnea: A systematic review and Meta-analysis 1
Introduction 1
Method 4
Result 7
Discussion 11
Limitations and future directions 14
Conclusion 16
Conflicts of interest 16
Funding source/Founding disclosure 16
Reference 28

Chapter 2 Protocol A Randomized, Double-Blind, Placebo-Controlled Phase III Study of Semaglutide for Mild to Moderately Obese Asian Adults with Obstructive Sleep Apnea 36
Glossary of Abbreviations and Definition of Terms 37
Protocol Summary 38
1 Introduction 41
1.1 Background 41
1.2 Rationale 42
2 Objectives and Endpoints 44
2.1 Primary Objective 44
2.2 Secondary Objectives 44
2.3 Endpoints 45
3 Study Design 47
3.1 Overall Design (Flow Chart) 47
3.2 Study Assessment 49
3.3 Number of Patients 49
3.4 Schedule of Activities (Time-Event scheme) 50
3.5 Randomization 51
3.6 Blinding 52
4 Study Population 52
4.1 Inclusion Criteria 52
4.2 Exclusion Criteria 53
4.3 Lifestyle Considerations 54
5 Treatments 54
6 Efficacy Assessments 55
6.1 Primary Efficacy Assessment: Polysomnography 55
6.2 Secondary Efficacy Assessments 56
6.3 Exploratory Efficacy Assessments 56
7 Safety Assessments 57
8 Adverse Events 58
9 Statistical Considerations 60
9.1 Sample Size 60
9.2 Analysis Plan 62
9.3 Subgroup Analyses 64
10 Data collection and management 65
10.1 Data collection 65
10.2 Data management 66
11 Subject protection and rights 67
11.1 Subject protection and rights 67
11.2 Withdrawal and suspension of research 68
11.3 Possible risks and their incidence and treatment methods 69
12 Inform consent 70
13 Financing and Insurance 72
14 References 73
-
dc.language.isozh_TW-
dc.subject阻塞型睡眠呼吸中止症-
dc.subjectGLP-1受體促效劑-
dc.subjectGIP/GLP-1雙受體促效劑-
dc.subject統合分析-
dc.subject臨床試驗-
dc.subjecttirzepatide-
dc.subjectliraglutide-
dc.subjectsemaglutide-
dc.subjectObstructive sleep apnea-
dc.subjectGLP-1 receptor agonists-
dc.subjectDual GIP/GLP-1 Receptor Agonists-
dc.subjectmeta-analysis-
dc.subjectclinical trial-
dc.titleGLP-1與GIP/GLP-1雙重受體促效劑用於治療阻塞型睡眠呼吸中止症的統合分析與臨床試驗計畫書zh_TW
dc.titleGLP-1 and Dual GIP/GLP-1 Receptor Agonists for Treating Obstructive Sleep Apnea: A Systematic Review, Meta-analysis and Protocolen
dc.typeThesis-
dc.date.schoolyear114-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee許巍鐘;王景淵zh_TW
dc.contributor.oralexamcommitteeWei-Chung Hsu;Chih-Yuan Wangen
dc.subject.keyword阻塞型睡眠呼吸中止症; GLP-1受體促效劑; GIP/GLP-1雙受體促效劑; 統合分析; 臨床試驗zh_TW
dc.subject.keywordtirzepatide; liraglutide; semaglutide; Obstructive sleep apnea; GLP-1 receptor agonists; Dual GIP/GLP-1 Receptor Agonists; meta-analysis; clinical trialen
dc.relation.page78-
dc.identifier.doi10.6342/NTU202601952-
dc.rights.note未授權-
dc.date.accepted2026-07-22-
dc.contributor.author-college醫學院-
dc.contributor.author-dept臨床醫學研究所-
dc.date.embargo-liftN/A-
顯示於系所單位:臨床醫學研究所

文件中的檔案:
檔案 大小格式 
ntu-114-2.pdf
  未授權公開取用
2.08 MBAdobe PDF
顯示文件簡單紀錄


系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved