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中华肺部疾病杂志(电子版) ›› 2019, Vol. 12 ›› Issue (02) : 233 -236. doi: 10.3877/cma.j.issn.1674-6902.2019.02.027

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阻塞性睡眠呼吸暂停低通气综合征患者无创呼吸机治疗进展
朱悦1, 董佳慧1, 孙耕耘1,()   
  1. 1. 230022 合肥,安徽医科大学第一附属医院呼吸与危重症医学科
  • 收稿日期:2018-12-08 出版日期:2019-04-20
  • 通信作者: 孙耕耘

Progress of non-invasive ventilator therapy in patients with obstructive sleep apnea-hypopnea syndrome

Yue Zhu1, Jiahui Dong1, Gengyun Sun1()   

  • Received:2018-12-08 Published:2019-04-20
  • Corresponding author: Gengyun Sun
引用本文:

朱悦, 董佳慧, 孙耕耘. 阻塞性睡眠呼吸暂停低通气综合征患者无创呼吸机治疗进展[J]. 中华肺部疾病杂志(电子版), 2019, 12(02): 233-236.

Yue Zhu, Jiahui Dong, Gengyun Sun. Progress of non-invasive ventilator therapy in patients with obstructive sleep apnea-hypopnea syndrome[J]. Chinese Journal of Lung Diseases(Electronic Edition), 2019, 12(02): 233-236.

1
Buratti L, Viticchi G, Baldinelli S, et al. Sleep Apnea, Cognitive Profile, and Vascular Changes: An Intriguing Relationship[J]. J Alzheimers Dis, 2017, 60(3):1195-1203.
2
Young T, Finn L, Peppard PE, et al. Sleep disordered breathing and mortality: eighteen-year follow-up of the wisconsin sleep cohort[J]. Sleep, 2008, 31(8):1070-1078.
3
Sullivan C, Issa F, Berthon-Jones M, et al. Reversal of obstructive sleep apnea by continuous positive airway pressure applied through the nares[J]. Lancet, 1981, 1(8225):862-865.
4
王玮. 无创通气是睡眠呼吸暂停低通气的首选和主要治疗手段[J/CD]. 中华肺部疾病杂志(电子版), 2014, 7(6):614-616.
5
Kushida CA, Chediak A, Berry RB, et al. Clinical guidelines for the manual titration of positive airway pressure in patients with obstructive sleep apnea[J]. J Clin Sleep Med, 2008, 4(2):157-171.
6
Lai CC, Friedman M, Lin HC, et al. Clinical predictors of effective continuous positive airway pressure in patients with obstructive sleep apnea/hypopnea syndrome[J]. Laryngoscope, 2015, 125(8):1983-1987.
7
徐启明,郭曲练,姚尚龙,等. 《临床麻醉学》麻醉专业本科教材[M]. 人民卫生出版社,第2版,2008: 35.
8
陆冬晓,吴海桂,罗嘉莹,等. 阻塞性睡眠呼吸暂停低通气综合征患者自动与人工调定持续气道正压通气治疗压力的比较[J]. 中华医学杂志,2013, 93(36):2898-2900.
9
Ward S. Randomised controlled trial of non-invasive ventilation (NIV) for nocturnal hypoventilation in neuromuscular and chest wall disease patients with daytime normocapnia[J]. Thorax, 2005, 60(12):1019-1024.
10
Aurora R N, Chowdhuri S, Ramar K, et al. The Treatment of central sleep apnea syndromes in adults: Practice parameters with an evidence-based literature review and Meta-analyses[J]. SLEEP, 2012, 35(1):17-40.
11
Qaseem A, Holty JE, Owens DK, et al. Management of obstructive sleep apnea in adults: A clinical practice guideline from the American College of Physicians[J]. Ann Intern Med, 2013, 159(7):471-483.
12
Weaver TE, Sawyer A. Management of obstructive sleep apnea by continuous positive airway pressure[J]. Oral Maxillofac Surg Clin North Am, 2009, 21(4):403-412.
13
Mokhlesi B, Ayas NT. Cardiovascular Events in Obstructive Sleep Apnea-Can CPAP Therapy SAVE Lives?[J]. N Engl J Med, 375(10):994-996.
14
Mehrtash M, Bakker JP, Ayas N. Predictors of continuous positive airway pressure adherence in patients with obstructive sleep apnea[J]. Lung 2019, doi: 10.1007/s00408-018-00193-1.
15
Inoue A, Chiba S, Matsuura K, et al. Nasal function and CPAP compliance[J]. Auris Nasus Larynx, 2018, pii:S0385-8146(18)30701-30706.
16
Rowland S, Aiyappan V, Hennessy C, et al. Comparing the efficacy,mask leak, patient adherence, and patient preference of three different CPAP interfaces to treat moderate-severe obstructive sleep apnea[J]. J Clin Sleep Med, 2018, 14(1):101-108.
17
Thomas RJ. The chemoreflex and sleep-disordered breathing: man and machine vs. the beast[J]. Sleep Med, 2011, 12(6):533-535.
18
Boyd SB, Upender R, Walters AS, et al. Effective Apnea-Hypopnea Index ( "Effective AHI" ): A new measure of effectiveness for positive airway pressure therapy [J]. Sleep, 2016, 39(11):1961-1972.
19
Priou P, d′Ortho MP, Damy T, et al. Adaptive servo-ventilation: how does it fit into the treatment of central sleep apnoea syndrome? Expert opinions[J]. Rev Mal Respir, 2015, 32(1):1072-1081.
20
Lyons OD, Floras JS, Logan AG, et al. Design of the effect of adaptive servo-ventilation on survival and cardiovascular hospital admissions in patients with heart failure and sleep apnoea: the ADVENT-HF trial[J]. Eur J Heart Fail, 2017, 19(4):579-587.
21
Kushida CA, Chediak A, Berry RB, et al. Clinical guidelines for the manual titration of positive airway pressure in patients with obstructive sleep apnea [J]. J Clin Sleep Med, 2008, 4(2):157-71.
22
Diaz-Abad M, Isaiah A, Rogers VE, et al. Use of noninvasive ventilation with volume-assured pressure support to avoid tracheostomy in severe obstructive sleep apnea[J]. Case Rep Pediatr, 2018, 2018:4701736.
23
Carlucci A, Ceriana P, Mancini M, et al. Efficacy of Bi-level-auto treatment in patients with obstructive sleep apnea not responsive to or intolerant of continuous positive airway pressure ventilation[J]. J Clin Sleep Med, 2015, 11(9):981-985.
24
Gentina T, Fortin F, Douay B, et al. Auto bi-level with pressure relief during exhalation as a rescue therapy for optimally treated obstructive sleep apnoea patients with poor compliance to continuous positive airways pressure therapy-a pilot study[J]. Sleep Breath, 2011, 15(1):21-27.
25
Ballard RD, Gay PC, Strollo PJ. Interventions to improve compliance in sleep apnea patients previously non-compliant with continuous positive airway pressure[J]. J Clin Sleep Med, 2007, 3(7):706-712.
26
Blau A, Minx M, Peter JG, et al. Auto bi-level pressure relief-PAP is as effective as CPAP in OSAHS patients-a pilot study[J]. Sleep Breath, 2012, 16(3):773-779.
27
Gershon AS, Campitelli MA, Croxford R, et al. Combination long-acting β-agonists and inhaled corticosteroids compared with long-acting β-agonists alone in older adults with chronic obstructive pulmonary disease[J]. Jama, 2014, 312(11):1114-1121.
28
Flenley DC. Sleep in chronic obstructive lung disease[J]. Clin Chest Med, 1985, 6(4):651-661.
29
Celli BR, MacNee W, ATS/ERS Task Force. Standards for the diagnosis and treatment of patients with COPD: a summary of the ATS/ERS position paper[J]. Eur Respir J, 2004, 23(6):932-946.
30
Windisch W, Haenel M, Storre JH, et al. High-intensity non-invasive positive pressure ventilation for stable hypercapnic COPD[J]. Int J Med Sci, 2009, 6(2):72-76.
31
Nural S, Günay E, Halici B, et al. Inflammatory Processes and Effects of Continuous Positive Airway Pressure (CPAP) in Overlap Syndrome[J]. Inflammation, 2013, 36(1):66-74.
32
Marin JM, Soriano JB, Carrizo SJ, et al. Outcomes in patients with chronic obstructive pulmonary disease and obstructive sleep apnea[J]. Am J Respir Crit Care Med, 2010, 182(3):325-331.
33
McNicholas WT. COPD-OSAHS Overlap Syndrome: evolving evidence regarding epidemiology, clinical consequences, and management[J]. Chest, 2017, 152(6):1318-1326.
34
Fox N, Hirschallen A, Goodfellow E, et al. The impact of a telemedicine monitoring system on positive airway pressure adherence in patients with obstructive sleep apnea: A randomized controlled trial[J]. Sleep, 2012, 35(4):477-481.
35
Sparrow D, Aloia M, Demolles DA, et al. A telemedicine intervention to improve adherence to continuous positive airway pressure: a randomised controlled trial[J]. Thorax, 2010, 65(12):1061-1066.
36
Taylor Y, Eliasson A, Andrada T, et al. The role of telemedicine in CPAP compliance for patients with obstructive sleep apnea syndrome[J]. Sleep Breath, 2006, 10(3):132-138.
37
Wu X, Fu C, Zhang S, et al. Adaptive servoventilation improves cardiac dysfunction and prognosis in heart failure patients with sleep-disordered breathing: a meta-analysis[J]. Clin Respir J, 2017, 11(5):547-557.
38
Khayat A, Medin D, Syed F, et al. Intelligent volume-assured pressured support (iVAPS) for the treatment of congenital central hypoventilation syndrome[J]. Sleep Breath, 2017, 21(2):513-519.
39
Mcardle N, Rea C, King S, et al. Treating chronic hypoventilation with automatic adjustable versus fixed EPAP intelligent volume-assured positive airway pressure support (iVAPS); a randomized controlled trial [J]. Sleep, 2017, 40(10). doi: 10.1093/sleep/zsx136.
40
Kelly JL, Jaye J, Pickersgill RE, et al. Randomized trial of 'intelligent’ autotitrating ventilation versus standard pressure support non-invasive ventilation: Impact on adherence and physiological outcomes[J]. Respirology, 2014, 19(4):596-603.
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