山东大学耳鼻喉眼学报 ›› 2026, Vol. 40 ›› Issue (4): 19-27.doi: 10.6040/j.issn.1673-3770.0.2025.510

• 论著 • 上一篇    下一篇

1990—2023年中国听力损失疾病负担变化及职业噪声暴露归因分析——基于GBD 2023数据

郭鹤龄1,周恩2,彭正加1,梁分凤1,秦念1   

  1. 1.湘潭市中心医院 耳鼻咽喉头颈外科, 湖南 湘潭 411100 ;
    2.湖南省人民医院 耳鼻咽喉头颈外科, 湖南 长沙 410000
  • 发布日期:2026-07-10
  • 通讯作者: 周恩. E-mail:657979509@qq.com
  • 基金资助:
    湖南省自然科学基金项目(2026JJ82708)

Changes in the disease burden of hearing loss in China from 1990 to 2023 and attributable analysis of occupational noise exposure: Based on GBD 2023 data

GUO Heling1, ZHOU En2, PENG Zhengjia1, LIANG Fenfeng1, QIN Nian1   

  1. 1. Department of Otorhinolaryngology & Head and Neck Surgery, Xiangtan Central Hospital, Xiangtan 411100, Hunan, China2. Department of Otorhinolaryngology & Head and Neck Surgery, Hunan Provincial People's Hospital, Changsha 410000, Hunan, China
  • Published:2026-07-10

摘要: 目的 基于2023年全球疾病负担研究数据,分析1990—2023年中国听力损失的疾病负担变化趋势、性别与年龄分布特征及职业噪声暴露归因情况,并预测未来负担趋势。 方法 提取1990—2023年中国听力损失的患病人数、伤残调整生命年(disability-adjusted life years, DALYs)、年龄标准化患病率(age-standardised prevalence rate, ASPR)和年龄标准化伤残调整生命年率(age-standardised DALY rate, ASDR)。采用对数线性回归模型计算估计年均百分比变化(estimated annual percentage change, EAPC)评估时间趋势。应用自回归综合移动平均模型预测2024—2043年ASPR和ASDR变化趋势,并分析职业噪声暴露对DALYs的归因比例。 结果 2023年,中国听力损失患病人数为4.84亿例,DALYs为1 413.16万年。1990—2023年间,患病人数和DALYs分别增加148.3%和135%。ASPR呈上升趋势[EAPC为0.20%,95%置信区间为(0.15%,0.24%)],ASDR变化无统计学意义。男性ASPR和ASDR均高于女性,且疾病负担随年龄增长而增加,其中50~74岁人群负担最为突出。预测结果显示,2024—2043年ASPR将持续上升,而ASDR呈稳定或轻度下降趋势。2023年中国听力损失DALYs中约21.6%归因于职业噪声暴露。 结论 1990—2023年中国听力损失疾病负担总体上升,男性负担高于女性,50~74岁人群为主要受累人群。人口增长、人口老龄化及职业噪声暴露可能是重要影响因素。加强高危人群筛查与职业噪声防控有助于减轻未来疾病负担。

关键词: 听力损失, 患病人数, 残疾, 疾病趋势

Abstract: Objective The objective of this study is to analyse temporal trends in the burden of hearing loss in China from 1990 to 2023 using data from the Global Burden of Disease Study 2023. The study will examine sex- and age-specific patterns, the contribution of occupational noise exposure, and future burden trends. Methods The data set encompasses prevalent cases, disability-adjusted life years(DALYs), age-standardised prevalence rate(ASPR), and age-standardised DALY rate(ASDR)of hearing loss in China from 1990 to 2023. The temporal trends under scrutiny were assessed by the estimation of the annual percentage change(EAPC), a process facilitated by log-linear regression models. The utilisation of an autoregressive integrated moving average(ARIMA)model was instrumental in the projection of ASPR and ASDR from 2024 to 2043. The proportion of DALYs attributable to occupational noise exposure was also analysed. Results In 2023, China had 484 million prevalent cases of hearing loss and 14.13 million DALYs. From 1990 to 2023, prevalent cases and DALYs increased by 148.3% and 135%, respectively. The ASPR demonstrated a marked upward trajectory [EAPC=0.20%, 95%CI(0.15%, 0.24%)], while the ASDR exhibited no substantial alteration. The findings of this study demonstrate that both ASPR and ASDR were higher in males than in females. Furthermore, the burden increased with age, particularly among individuals aged 50-74 years. Projections indicate that ASPR will undergo an upward trajectory from 2024 to 2043, while ASDR is expected to remain stable or exhibit a modest decline. In 2023, approximately 21.6% of DALYs were attributable to occupational noise exposure. Conclusion The prevalence of hearing impairment in China exhibited an upward trend from 1990 to 2023. The male population and individuals within the 50-74 age bracket are subject to a greater burden. The phenomenon under scrutiny has been hypothesised to be the result of population growth, ageing, and occupational noise exposure.The enhancement of early screening and occupational noise control measures has the potential to mitigate the future burden of hearing loss.

Key words: Hearing loss, Prevalent cases, Disability, Disease trends

中图分类号: 

  • R764
[1] Chadha S, Kamenov K, Cieza A. The world report on hearing, 2021[J]. Bull World Health Organ, 2021, 99(4): 242-242A. DOI:10.2471/blt.21.285643
[2] Teraoka M, Hato N, Inufusa H, et al. Role of oxidative stress in sensorineural hearing loss[J]. Int J Mol Sci, 2024, 25(8): 4146. DOI:10.3390/ijms25084146
[3] Haile LM, Kamenov K, Briant PS, et al. Hearing loss prevalence and years lived with disability, 1990-2019: findings from the Global Burden of Disease Study 2019[J]. Lancet, 2021, 397(10278): 996-1009. DOI:10.1016/S0140-6736(21)00516-X
[4] Moeller MP. Early intervention and language development in children who are deaf and hard of hearing[J]. Pediatrics, 2000, 106(3): E43. DOI:10.1542/peds.106.3.e43
[5] Tomblin JB, Harrison M, Ambrose SE, et al. Language outcomes in young children with mild to severe hearing loss[J]. Ear Hear, 2015, 36(01): 76S-91S. DOI:10.1097/AUD.0000000000000219
[6] Stevenson J, Kreppner J, Pimperton H, et al. Emotional and behavioural difficulties in children and adolescents with hearing impairment: a systematic review and meta-analysis[J]. Eur Child Adolesc Psychiatry, 2015, 24(5): 477-496. DOI:10.1007/s00787-015-0697-1
[7] Bougeard C, Picarel-Blanchot F, Schmid R, et al. Prevalence of autism spectrum disorder and co-morbidities in children and adolescents: a systematic literature review[J]. Front Psychiatry, 2021, 12: 744709. DOI:10.3389/fpsyt.2021.744709
[8] Nieman CL, Oh ES. Hearing loss[J]. Ann Intern Med, 2020, 173(11): ITC81-ITC96. DOI:10.7326/AITC202012010
[9] Lin FR, Yaffe K, Xia J, et al. Hearing loss and cognitive decline in older adults[J]. JAMA Intern Med, 2013, 173(4): 293-299. DOI:10.1001/jamainternmed.2013.1868
[10] Livingston G, Huntley J, Sommerlad A, et al. Dementia prevention, intervention, and care: 2020 report of the Lancet Commission[J]. Lancet, 2020, 396(10248): 413-446. DOI:10.1016/S0140-6736(20)30367-6
[11] Lin FR, Metter EJ, O'Brien RJ, et al. Hearing loss and incident dementia[J]. Arch Neurol, 2011, 68(2): 214-220. DOI:10.1001/archneurol.2010.362
[12] Lin FR, Albert M. Hearing loss and dementia-who is listening?[J]. Aging Ment Health, 2014, 18(6): 671-673. DOI:10.1080/13607863.2014.915924
[13] Uchida Y, Sugiura S, Nishita Y, et al. Age-related hearing loss and cognitive decline: The potential mechanisms linking the two[J]. Auris Nasus Larynx, 2019, 46(1): 1-9. DOI:10.1016/j.anl.2018.08.010
[14] 刘博, 傅新星. 重视老年听力损失的研究 强化主动健康工作的推进[J]. 中国耳鼻咽喉头颈外科, 2023, 30(4): 205-207. DOI:10.16066/j.1672-7002.2023.04.001
[15] 李欣欣, 柳安琪, 王丹, 等. 2020年中国工业企业接触噪声劳动者听力损失流行病学特征分析[J]. 中华疾病控制杂志, 2022, 26(8): 882-887.DOI:10.16462/j.cnki.zhjbkz.2022.08.003
[16] Ye X, He P. Direct costs attributable to hearing loss in China: based on an econometric model[J]. Ear Hear, 2023, 44(2): 330-337. DOI:10.1097/AUD.0000000000001284
[17] 阿娜尔古丽·阿不都肉什提, 宋迎豪, 闫晓晋, 等. 1990—2021年中国及全球增龄性听力损失的疾病负担与未来趋势预测[J]. 北京大学学报(医学版), 2025, 57(3): 545-553. DOI:10.19723/j.issn.1671-167X.2025.03.019
[18] GBD 2023 Causes of Death Collaborators. Global burden of 292 causes of death in 204 countries and territories and 660 subnational locations, 1990-2023: a systematic analysis for the Global Burden of Disease Study 2023[J]. Lancet, 2025, 406(10513): 1811-1872. DOI:10.1016/S0140-6736(25)01917-8
[19] GBD 2023 Disease and Injury and Risk Factor Collaborators. Burden of 375 diseases and injuries, risk-attributable burden of 88 risk factors, and healthy life expectancy in 204 countries and territories, including 660 subnational locations, 1990-2023: a systematic analysis for the Global Burden of Disease Study 2023[J]. Lancet, 2025, 406(10513): 1873-1922. DOI:10.1016/S0140-6736(25)01637-X
[20] Zhou TJ, Huang WJ, Wang XT, et al. Global burden of head and neck cancers from 1990 to 2019[J]. iScience, 2024, 27(3): 109282.DOI:10.1016/j.isci.2024.109282
[21] Huang YD, Lin WY, Chen XY, et al. Analyzing and forecasting global cervical cancer burden based on WHO's elimination strategy: insights and projections from a 1990-2021 global burden of disease(GBD)study covering 204 countries and territories[J]. J Adv Res, 2025: S2090-S1232(25)00742-8. DOI:10.1016/j.jare.2025.09.038
[22] Agrawal Y, Platz EA, Niparko JK. Prevalence of hearing loss and differences by demographic characteristics among US adults: data from the National Health and Nutrition Examination Survey, 1999-2004[J]. Arch Intern Med, 2008, 168(14): 1522-1530.DOI:10.1001/archinte.168.14.1522
[23] Hoffman HJ, Dobie RA, Losonczy KG, et al. Declining prevalence of hearing loss in US adults aged 20 to 69 years[J]. JAMA Otolaryngol Head Neck Surg, 2017, 143(3): 274-285. DOI:10.1001/jamaoto.2016.3527
[24] Hultcrantz M, Simonoska R, Stenberg AE. Estrogen and hearing: a summary of recent investigations[J]. Acta Otolaryngol, 2006, 126(1): 10-14. DOI:10.1080/00016480510038617
[25] König O, Rüttiger L, Müller M, et al. Estrogen and the inner ear: megalin knockout mice suffer progressive hearing loss[J]. FASEB J, 2008, 22(2): 410-417. DOI:10.1096/fj.07-9171com
[26] Frisina RD, Bazard P, Bauer M, et al. Translational implications of the interactions between hormones and age-related hearing loss[J]. Hear Res, 2021, 402: 108093. DOI:10.1016/j.heares.2020.108093
[27] O'Rourke D, Brown GD. Experiments in transforming the global workplace: incentives for and impediments to improving workplace conditions in China[J]. Int J Occup Environ Health, 2003, 9(4): 378-385. DOI:10.1179/oeh.2003.9.4.378
[28] Chadha S, Kamenov K, Cieza A. The world report on hearing, 2021[J]. Bull World Heal Organ, 2021, 99(4): 242-242A. DOI:10.2471/blt.21.285643
[29] Wilson BS, Tucci DL, Merson MH, et al. Global hearing health care: new findings and perspectives[J]. Lancet, 2017, 390(10111): 2503-2515. DOI:10.1016/S0140-6736(17)31073-5
[30] Smith AW. The World Health Organisation and the prevention of deafness and hearing impairment caused by noise[J]. Noise Health, 1998, 1(1): 6-12
[31] Le Prell CG, Dolan DF, Schacht J, et al. Pathways for protection from noise induced hearing loss[J]. Noise Health, 2003, 5(20): 1-17
[32] Basner M, Babisch W, Davis A, et al. Auditory and non-auditory effects of noise on health[J]. Lancet, 2014, 383(9925): 1325-1332. DOI:10.1016/S0140-6736(13)61613-X
[33] Bandyopadhyay A, Mukherjee A, Dhar G, et al. Burden and risk factors of occupational noise-induced hearing loss among employees working at an international airport in eastern India[J]. Indian J Occup Environ Med, 2024, 28(3): 223-227. DOI:10.4103/ijoem.ijoem_163_23
[34] Wang SR, Liu SH, Li KJ, et al. A systematic analysis of the burden of disease attributable to occupational noise-induced hearing loss in China based on the 2019 global burden of disease study[J]. BMC Public Health, 2024, 24(1): 3423. DOI:10.1186/s12889-024-21094-4
[35] Sun YH, Yi Y, Huang GY, et al. Temporal trends in prevalence and years of life lived with disability for hearing loss in China from 1990 to 2021: an analysis of the global burden of disease study 2021[J]. Front Public Health, 2025, 13: 1538145. DOI:10.3389/fpubh.2025.1538145
[36] Zheng HL, Wong LLN, Hickson L. Barriers to hearing aid adoption among older adults in mainland China[J]. Int J Audiol, 2023, 62(9): 814-825. DOI:10.1080/14992027.2022.2105263
[37] 张婷, 毛彦文, 黄巧宇, 等. 中国年龄相关性和其他听力损失疾病负担分析及趋势预测[J]. 现代预防医学, 2025, 52(24): 4450-4456. DOI:10.20043/j.cnki.MPM.202508013
[38] Naimoli A. Modelling the persistence of Covid-19 positivity rate in Italy[J]. Socioecon Plann Sci, 2022, 82: 101225. DOI:10.1016/j.seps.2022.101225
[39] Alabdulrazzaq H, Alenezi MN, Rawajfih Y, et al. On the accuracy of ARIMA based prediction of COVID-19 spread[J]. Results Phys, 2021, 27: 104509. DOI:10.1016/j.rinp.2021.104509
[40] Adeyinka DA, Muhajarine N. Time series prediction of under-five mortality rates for Nigeria: comparative analysis of artificial neural networks, Holt-Winters exponential smoothing and autoregressive integrated moving average models[J]. BMC Med Res Methodol, 2020, 20(1): 292. DOI:10.1186/s12874-020-01159-9
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