山东大学耳鼻喉眼学报 ›› 2026, Vol. 40 ›› Issue (4): 52-57.doi: 10.6040/j.issn.1673-3770.0.2025.207
黄静1,米雪芹1,潘庆春2,夏凯燕1,戚星1,何俊积1
HUANG Jing1, MI Xueqin1, PAN Qingchun2, XIA Kaiyan1, QI Xing1, HE Junji1
摘要: 目的 探讨阻塞性睡眠呼吸暂停低通气综合征(obstructive sleep apnea hypopnea syndrome, OSAHS)患者嗅觉功能障碍与睡眠结构参数的关系,并识别影响嗅觉功能的影响因素,为研究OSAHS多系统损伤提供新视角。 方法 采用横断面研究设计,回顾性分析198例于2020年12月1日至 2024年6月30日经多导睡眠监测(polysomnography, PSG)诊断为OSAHS的患者资料。使用Sniffin' Sticks嗅觉测试套件评估嗅觉功能,使用PSG记录睡眠结构参数,包括总睡眠时间(total sleep time, TST)、睡眠效率(sleep efficiency, SE)、N3期睡眠百分比(N3%)、快速眼动睡眠百分比(rapid-eye-movement, REM%)、呼吸暂停低通气指数(apnea and hypopnea index, AHI)、最低血氧饱和度(lowest oxygen saturation, LSaO2)等。采用Pearson及Spearman相关分析探究睡眠结构参数与嗅觉功能的相关性,用多因素Logistic回归,分析各睡眠参数对嗅觉障碍的独立影响。 结果 OSAHS患者嗅觉障碍组的男性比例高于嗅觉正常组(P<0.05);嗅觉障碍组的TST、SE、快速动眼(rapid eye movement, REM)睡眠期微觉醒总次数及非快速动眼(rapid eye movement, NREM)睡眠期微觉醒总次数、N3/TST%、REM/TST%低于嗅觉正常组(P<0.05);嗅觉障碍组的AHI及入睡后清醒时间(wake after sleep onset, WASO)长于嗅觉正常组(P<0.05);嗅觉障碍组的嗅觉阈值(threshold, T)、辨别能力(discrimination, D)、识别能力(identification, I)以及嗅觉阈值+辨别能力+识别能力的总分(TDI)均低于嗅觉正常组(P<0.05)。相关分析显示,TDI总分与年龄、AHI、WASO呈负相关,与TST、SE、REM期微觉醒总次数、REM/TST%呈正相关。Logistic回归结果显示,年龄、AHI和REM/TST%是TDI的独立影响因素。 结论 年龄增长、AHI升高及REM/TST%降低是嗅觉障碍发生的独立影响因素。嗅觉功能下降与REM睡眠显著减少密切相关。高龄、高AHI及低REM占比的OSAHS患者应作为嗅觉功能筛查的重点人群。
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| [1] Li CY, Gao YQ, Huang WJ, et al. The use of the sleep apnea-specific hypoxic burden to predict obstructive sleep apnea hypopnea syndrome: Evidence from a large cross-sectional study[J]. Sleep Med, 2023, 111: 94-100. DOI:10.1016/j.sleep.2023.09.007 [2] Faria A, Allen AH, Fox N, Ayas N, Laher I. The public health burden of obstructive sleep apnea. Sleep Sci. 2021 Jul-Sep;14(3):257-265. DOI: 10.5935/1984-0063.20200111 [3] Léger D, Stepnowsky C. The economic and societal burden of excessive daytime sleepiness in patients with obstructive sleep apnea[J]. Sleep Med Rev, 2020, 51: 101275. DOI:10.1016/j.smrv.2020.101275 [4] Karakurt SE, Karaku?瘙塂 MF, Çolak M, et al. Evaluation of olfactory function in patients with obstructive sleep apnea syndrome[J]. Sleep Breath, 2020, 24(3): 1137-1142. DOI:10.1007/s11325-019-01996-z [5] Iannella G, Magliulo G, Maniaci A, et al. Olfactory function in patients with obstructive sleep apnea: a meta-analysis study[J]. Eur Arch Oto Rhino Laryngol, 2021, 278(3): 883-891. DOI:10.1007/s00405-020-06316-w [6] 贾怡松,吕思莹,白尚杰. 阻塞性睡眠呼吸暂停与嗅觉功能的相关性研究[J]. 临床耳鼻咽喉头颈外科杂志, 2021, 35(1): 34-37. DOI:10.13201/j.issn.2096-7993.2021.01.008 [7] Deguchi K, Doi T, Takata T, et al. Rapid eye movement sleep behavior disorder-like symptoms due to arousal responses associated with severe obstructive sleep apnea-hypopnea[J]. Intern Med, 2021, 60(11): 1775-1778. DOI:10.2169/internalmedicine.6218-20 [8] Gauld C, Lopez R, Geoffroy PA, et al. A systematic analysis of ICSD-3 diagnostic criteria and proposal for further structured iteration[J]. Sleep Medicine Reviews, 2021, 58: 101439. DOI:10.1016/j.smrv.2021.101439 [9] Howell M, Avidan A Y, Foldvary-Schaefer N, et al. Management of REM sleep behavior disorder: an American academy of sleep medicine clinical practice guideline[J]. Journal of Clinical Sleep Medicine, 2023, 19(4): 759-768. DOI:10.5664/jcsm.10424 [10] 中华耳鼻咽喉头颈外科杂志编辑委员会鼻科组, 中华医学会耳鼻咽喉头颈外科学分会鼻科学组. 嗅觉障碍诊断和治疗专家共识(2017年)[J].中华耳鼻咽喉头颈外科杂志, 2018, 53(7): 484-494. DOI: 10.3760/cma.j.issn.1673-0860.2018.07.002 [11] Dong JJ, Yu X, Liang YZ, et al. Nomogram for predicting olfactory disorder in obstructive sleep apnea: a retrospective study based on a multicenter database[J]. PLoS One, 2025, 20(3): e0318145. DOI:10.1371/journal.pone.0318145 [12] Liu YF, Fang F, Zhan XJ, et al. The impact of obstructive apnea sleep syndrome on chemical function[J]. Sleep Breath, 2020, 24(4): 1549-1555. DOI:10.1007/s11325-020-02022-3 [13] Lee DH, Song J. Impaired olfactory system in metabolic imbalance-related neuropathology[J]. Life Sci, 2024, 355: 122967. DOI:10.1016/j.lfs.2024.122967 [14] Ali M, Ramadan A, Surani S. Obstructive sleep apnea-hypopnea syndrome immunological relationship[J]. World Journal of Clinical Cases, 2024, 12(27): 6011.DOI:10.12998/wjcc.v12.i27.6011 [15] Poirrier AL, Eloy P, Rombaux P. Nose and sleep breathing disorders[M] //Nasal Physiology and Pathophysiology of Nasal Disorders. Berlin, Heidelberg: Springer, 2013: 293-311. DOI:10.1007/978-3-642-37250-6_23 [16] Zhang XP, Zhou H, Liu HJ, et al. Role of oxidative stress in the occurrence and development of cognitive dysfunction in patients with obstructive sleep apnea syndrome[J]. Molecular Neurobiology, 2024, 61(8): 5083-5101. DOI: 10.1007/s12035-023-03899-3 [17] Dai Y, Li XL, Liang SS, et al. MultiChannelSleepNet: a transformer-based model for automatic sleep stage classification with PSG[J]. IEEE J Biomed Health Inform, 2023, 27(9): 4204-4215. DOI:10.1109/jbhi.2023.3284160 [18] 高吉, 龚哲, 陈菊萍. 阻塞性睡眠呼吸暂停综合征患者发生嗅觉功能障碍的影响因素分析[J]. 中国中西医结合耳鼻咽喉科杂志,2021,29(2):121-126. DOI:10.16542/j.cnki.issn.1007-4856.2021.02.010 [19] Dong JJ, Yu X, Liang YZ, et al. Nomogram for predicting olfactory disorder in obstructive sleep apnea: a retrospective study based on a multicenter database[J]. PLoS One, 2025, 20(3): e0318145. DOI:10.1371/journal.pone.0318145 [20] Boesveldt S, Lindau ST, McClintock MK, et al. Gustatory and olfactory dysfunction in older adults: a national probability study[J]. Rhin, 2011, 49(3):324-30. DOI: 10.4193/Rhino10.155 [21] Doty RL, Cameron EL. Sex differences and reproductive hormone influences on human odor perception[J]. Physiol Behav, 2009, 97(2):213-28. DOI: 10.1016/j.physbeh.2009.02.032 [22] Kovalev VA, Kruggel F, von Cramon DY. Gender and age effects in structural brain asymmetry as measured by MRI texture analysis[J]. Neuroimage, 2003, 19(3):895-905. DOI: 10.1016/s1053-8119(03)00140-x [23] Smith KE, Whitcroft K, Law S, et al. Olfactory ensheathing cells from the nasal mucosa and olfactory bulb have distinct membrane properties[J]. J Neurosci Res, 2020, 98(5):888-901. DOI: 10.1002/jnr.24566 [24] Baeg E, Jedema HP, Bradberry CW. Orbitofrontal cortex is selectively activated in a primate model of attentional bias to cocaine cues[J]. Neuropsychopharmacology, 2020, 45(4):675-682. DOI: 10.1038/s41386-019-0499-0 |
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