浏览全部资源
扫码关注微信
杭州师范大学公共卫生学院 杭州 311121
胡俊豪 硕士;研究方向:蛋白质功能与疾病,环境与疾病的分子机制研究
洪玉,E-mail:hongyu_xj@126.com
纸质出版日期:2023-07-15,
收稿日期:2023-04-13,
移动端阅览
胡俊豪,李愉,王珊珊等.年龄相关性听力损失相关信号通路研究进展[J].中国听力语言康复科学杂志,2023,21(04):403-407.
HU Jun-hao,LI Yu,WANG Shan-shan,et al.Research Progress of Presbycusis Related Signaling Pathways[J].Chinese Scientifific Journal of Hearing and Speech Rehabilitation,2023,21(04):403-407.
胡俊豪,李愉,王珊珊等.年龄相关性听力损失相关信号通路研究进展[J].中国听力语言康复科学杂志,2023,21(04):403-407. DOI: 10.3969/j.issn.1672-4933.2023.04.017.
HU Jun-hao,LI Yu,WANG Shan-shan,et al.Research Progress of Presbycusis Related Signaling Pathways[J].Chinese Scientifific Journal of Hearing and Speech Rehabilitation,2023,21(04):403-407. DOI: 10.3969/j.issn.1672-4933.2023.04.017.
年龄相关性听力损失(age-related hearing loss,ARHL)又称老年性聋(presbycusis),是一种在老年人中普遍存在的慢性疾病,其主要表现为进行性听力下降。氧化应激、细胞凋亡及线粒体功能异常等机制在ARHL发展进程中起重要作用,而其相关信号通路在其中也发挥重要作用。本文对目前研究较多的ARHL相关信号通路进行综述,旨在为进一步探讨ARHL的发病机制提供参考,为寻找新的治疗靶点提供新思路。
Age-related hearing loss (ARHL)
also known as Presbycusis
is a common chronic disease in the elderly
mainly manifested by progressive hearing loss. Current research shows that oxidative stress
apoptosis and mitochondrial dysfunction play an important role in the development of ARHL
and its related signal pathways play an important role in it. This article reviews the signal pathways related to ARHL that have been studied extensively at present
in order to provide a reference for further exploring the pathogenesis of ARHL and provide new ideas for finding new therapeutic targets.
年龄相关性听力损失信号通路氧化应激凋亡
Age-related hearing lossPathway of signalOxidative stressApoptosis
Yévenes-Briones H,Caballero FF,Struijk EA,et al. Association Between Hearing Loss and Impaired Physical Function, Frailty, and Disability in Older Adults: A Cross-sectional Study[J]. JAMA Otolaryngol Head Neck Surg,2021,147(11):951-958.
张车伟. 人口与劳动绿皮书:中国人口与劳动问题报告No.19[M]. 北京:社会科学文献出版社,2018.1-31.
龙墨,郑晓瑛,卜行宽,等. 中国听力健康报告(2021)[M]. 北京:社会科学文献出版社,2021.1-51.
Joseph AR. Hearing Health Outcomes as a Function of Age, Gender, and Diversity[J]. Semin Hear. 2022, 43(4):324-338.
Kim S,Park JM,Han JS,et al. Age-related hearing loss in the Korea National Health and Nutrition Examination Survey[J]. PLoS One,2020,15(12):e0243001.
Tang D,Tran Y,Dawes P,et al. A Narrative Review of Lifestyle Risk Factors and the Role of Oxidative Stress in Age-Related Hearing Loss[J]. Antioxidants (Basel),2023,12(4):878-878.
Wang M, Zhang C, Lin S, et al. Biased auditory nerve central synaptopathy is associated with age-related hearing loss[J]. J Physiol. 2021, 599(6):1833-1854.
Fruman DA,Chiu H,Hopkins BD,et al. The PI3K Pathway in Human Disease[J]. Cell,2017,170(4):605-635.
Kumar R,Sharma A,Kumari A,et al. Epigallocatechin gallate suppresses premature senescence of preadipocytes by inhibition of PI3K/Akt/mTOR pathway and induces senescent cell death by regulation of Bax/Bcl-2 pathway[J]. Biogerontology,2019,20(2):171-189.
Zhang Y,Lv Z,Liu Y,et al. PIN1 Protects Hair Cells and Auditory HEI-OC1 Cells against Senescence by Inhibiting the PI3K/Akt/mTOR Pathway[J]. Oxid Med Cell Longev, 2021, 2021(6): 9980444-9980444.
Wang T,Cheng Y,Han H,et al. miR-194 Accelerates Apoptosis of Aβ1⁻42-Transduced Hippocampal Neurons by Inhibiting Nrn1 and Decreasing PI3K/Akt Signaling Pathway Activity[J]. Genes (Basel),2019,10(4):313-313.
Feng ZY,Huang TL,Li XR,et al. 17β-Estradiol promotes angiogenesis of stria vascular in cochlea of C57BL/6J mice[J]. Eur J Pharmacol,2021,913(12):174642-174642.
Chen C,Zhou M,Ge Y,et al. SIRT1 and aging related signaling pathways[J]. Mech Ageing,2020,187(1):111215-111215.
Rius-Pérez S,Torres-Cuevas I,Millán I,et al. PGC-1α,Inflammation,and Oxidative Stress: An Integrative View in Metabolism[J]. Oxid Med Cell Longev,2020,2020(3): 1452696-1452696.
Safabakhsh S,Wijesinghe P,Nunez M,et al. The role of hypoxia-associated miRNAs in acquired sensorineural hearing loss[J]. Front Cell Neurosci,2022,16(8):916696-916696.
Hao S,Wang L,Zhao K,et al. Rs1894720 polymorphism in MIAT increased susceptibility to age-related hearing loss by modulating the activation of miR-29b/SIRT1/PGC-1α signaling[J]. J Cell Biochem,2019,120(4):4975-4986.
Gao Y,Kamogashira T,Fujimoto C,et al. Pyrroloquinoline quinone (PQQ) protects mitochondrial function of HEI-OC1 cells under premature senescence[J]. NPJ Aging,2022,8(1):3-3.
Tian G,Sawashita J,Kubo H,et al. Ubiquinol-10 supplementation activates mitochondria functions to decelerate senescence in senescence-accelerated mice[J]. Antioxid Redox Signal,2014,20(16):2606-2620.
Xue T,Wei L,Zha DJ,et al. [Corrigendum] miR-29b overexpression induces cochlear hair cell apoptosis through the regulation of SIRT1/PGC-1α signaling: Implications for age-related hearing loss[J]. Int J Mol Med,2022,49(4):1-2.
Baird L,Yamamoto M. The Molecular Mechanisms Regulating the KEAP1-NRF2 Pathway[J]. Mol Cell Biol, 2020, 40(13):e00099-20.
Bellezza I,Giambanco I,Minelli A,et al. Nrf2-Keap1 signaling in oxidative and reductive stress[J]. Biochim Biophys Acta Mol Cell Res,2018,1865(5):721-733.
Yamamoto M,Kensler TW,Motohashi H. The KEAP1-NRF2 System: a Thiol-Based Sensor-Effector Apparatus for Maintaining Redox Homeostasis[J]. Physiol Rev, 2018, 98(3):1169-1203.
Hosokawa K,Hosokawa S,Ishiyama G,et al. Immunohistochemical localization of Nrf2 in the human cochlea[J]. Brain Res, 2018, 1700(12):1-8.
Fetoni AR,Zorzi V,Paciello F,et al. Cx26 partial loss causes accelerated presbycusis by redox imbalance and dysregulation of Nfr2 pathway[J]. Redox Biol, 2018,19(10):301-317.
Kishimoto-Urata M, Urata S, Fujimoto C, et al. Role of Oxidative Stress and Antioxidants in Acquired Inner Ear Disorders[J]. Antioxidants (Basel), 2022, 11(8):1469-1469.
Oishi T,Matsumaru D,Ota N,et al. Activation of the NRF2 pathway in Keap1-knockdown mice attenuates progression of age-related hearing loss[J]. NPJ Aging Mech Dis, 2020, 6(1):14-14.
Shi X,Qiu S,Zhuang W,et al. NLRP3-inflammasomes are triggered by age-related hearing loss in the inner ear of mice[J]. Am J Transl Res,2017, 9(12):5611-5618.
Uraguchi K,Maeda Y,Takahara J,et al. Upregulation of a nuclear factor-kappa B-interacting immune gene network in mice cochleae with age-related hearing loss[J]. PLoS One, 2021, 16(10):e0258977.
Kim HJ,Cao W,Oh GS,et al. Augmentation of cellular NAD+ by NQO1 enzymatic action improves age-related hearing impairment[J]. Aging Cell, 2019, 18(5):e13016.
Li L,Xu K,Bai X,et al. UCHL1 regulated by Sp1 ameliorates cochlear hair cell senescence and oxidative damage[J]. Exp Ther Med, 2023, 25(2):94-94.
0
浏览量
78
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构