[1]蔡梦霞,魏婷婷,朱凌鹏,等.细胞衰老在干性年龄相关性黄斑变性中的作用研究进展[J].眼科新进展,2024,44(4):324-328.[doi:10.13389/j.cnki.rao.2024.0063]
 CAI Mengxia,WEI Tingting,ZHU Lingpeng,et al.Research progress on the role of cell aging in dry age-related macular degeneration[J].Recent Advances in Ophthalmology,2024,44(4):324-328.[doi:10.13389/j.cnki.rao.2024.0063]
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细胞衰老在干性年龄相关性黄斑变性中的作用研究进展/HTML
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《眼科新进展》[ISSN:1003-5141/CN:41-1105/R]

卷:
44卷
期数:
2024年4期
页码:
324-328
栏目:
文献综述
出版日期:
2024-04-05

文章信息/Info

Title:
Research progress on the role of cell aging in dry age-related macular degeneration
作者:
蔡梦霞魏婷婷朱凌鹏姚勇
214023 江苏省无锡市,南京医科大学附属无锡人民医院眼科,南京医科大学无锡医学中心(蔡梦霞,姚勇);214023 江苏省无锡市,南京医科大学附属无锡人民医院临床研究中心,南京医科大学无锡医学中心(魏婷婷,朱凌鹏)
Author(s):
CAI Mengxia1WEI Tingting2ZHU Lingpeng2YAO Yong1
1.Department of Ophthalmology,the Affiliated Wuxi People’s Hospital of Nanjing Medical University,Wuxi Medical Center,Nanjing Medical University,Wuxi 214023,Jiangsu Province,China
2.Center of Clinical Research,the Affiliated Wuxi People’s Hospital of Nanjing Medical University,Wuxi Medical Center,Nanjing Medical University,Wuxi 214023,Jiangsu Province,China
关键词:
年龄相关性黄斑变性细胞衰老视网膜色素上皮细胞小胶质细胞脉络膜血管内皮细胞线粒体溶酶体炎症
Keywords:
age-related macular degeneration cell aging retinal pigment epithelial cells microglia choroidal vascular endothelial cells mitochondria lysosome inflammation
分类号:
R774.5
DOI:
10.13389/j.cnki.rao.2024.0063
文献标志码:
A
摘要:
干性年龄相关性黄斑变性 (AMD) 是一种视网膜黄斑区域的退行性疾病,各种视网膜和脉络膜组织的衰老变化是AMD致病的重要因素之一。细胞衰老是细胞在某些生理过程中或受到应激性损伤时引发的不可逆的细胞周期停滞状态,影响多种生理和病理过程。越来越多的研究表明,细胞衰老在AMD的发生发展中起重要作用。本文就细胞衰老的机制及其与干性AMD的关系进行综述,旨在为干性AMD治疗提供新思路。
Abstract:
Dry age-related macular degeneration (AMD) is a degenerative disease affecting the macular region of the retina, and aging changes in retinal and choroidal tissues are an important factor in AMD pathogenesis. Cell aging is an irreversible state of cell cycle arrest triggered by certain physiological processes or stressful injury, affecting a variety of physiological and pathological processes. An increasing number of studies have shown that cell aging plays an essential role in the occurrence and development of AMD. This paper reviews the mechanisms of cell aging and its relationship with dry AMD, aiming to provide new ideas for the treatment of dry AMD.

参考文献/References:

[1] MITCHELL P,LIEW G,GOPINATH B,WONG T Y.Age-related macular degeneration[J].Lancet,2018,392(10153):1147-1159.
[2] RUAN Y,JIANG S,GERICKE A.Age-related macular degeneration:role of oxidative stress and blood vessels[J].Int J Mol Sci,2021,22(3):1296.
[3] PARRAVANO M,COSTANZO E,SCONDOTTO G,TRIFIR G,VIRGILI G.Anti-VEGF and other novel therapies for neovascular age-related macular degeneration:an update[J].BioDrugs,2021,35(6):673-692.
[4] GONZLEZ-GUALDA E,BAKER A G,FRUK L,MUOZ-ESPN D.A guide to assessing cellular senescence invitro and invivo[J].FEBS J,2021,288(1):56-80.
[5] WONG W L,SU X,LI X,CHEUNG C M,KLEIN R,CHENG C Y,et al.Global prevalence of age-related macular degeneration and disease burden projection for 2020 and 2040:a systematic review and meta-analysis[J].Lancet Glob Health,2014,2(2):e106-e116.
[6] STAHL A.The diagnosis and treatment of age-related macular degeneration[J].Dtsch Arztebl Int,2020,117(29/30):513-520.
[7] LEE K S,LIN S,COPLAND D A,DICK A D,LIU J.Cellular senescence in the aging retina and developments of senotherapies for age-related macular degeneration[J].J Neuroinflammation,2021,18(1):32.
[8] GORGOULIS V,ADAMS P D,ALIMONTI A,BENNETT D C,BISCHOF O,BISHOP C,et al.Cellular senescence:defining a path forward[J].Cell,2019,179(4):813-827.
[9] HEKMATIMOGHADDAM S,DEHGHANI FIROOZABADI A,ZARE-KHORMIZI M R,POURRAJAB F.Sirt1 and Parp1 as epigenome safeguards and microRNAs as SASP-associated signals,in cellular senescence and aging[J].Ageing Res Rev,2017,40:120-141.
[10] DI MICCO R,KRIZHANOVSKY V,BAKER D,D’ADDA DI FAGAGNA F.Cellular senescence in ageing:from mechanisms to therapeutic opportunities[J].Nat Rev Mol Cell Biol,2021,22(2):75-95.
[11] KOWALD A,PASSOS J F,KIRKWOOD T B L.On the evolution of cellular senescence[J].Aging Cell,2020,19(12):e13270.
[12] WATANABE S,KAWAMOTO S,OHTANI N,HARA E.Impact of senescence-associated secretory phenotype and its potential as a therapeutic target for senescence-associated diseases[J].Cancer Sci,2017,108(4):563-569.
[13] YANG S,ZHOU J,LI D.Functions and diseases of the retinal pigment epithelium[J].Front Pharmacol,2021,12:727870.
[14] VADDAVALLI P L,SCHUMACHER B.The p53 network:cellular and systemic DNA damage responses in cancer and aging[J].Trends Genet,2022,38(6):598-612.
[15] SHMULEVICH R,KRIZHANOVSKY V.Cell senescence,DNA damage,and metabolism[J].Antioxid Redox Signal,2021,34(4):324-334.
[16] MARAZITA M C,DUGOUR A,MARQUIONI-RAMELLA M D,FIGUEROA J M,SUBURO A M.Oxidative stress-induced premature senescence dysregulates VEGF and CFH expression in retinal pigment epithelial cells:implications for age-related macular degeneration[J].Redox Biol,2016,7:78-87.
[17] CHEN S J,LIN T B,PENG H Y,LIU H J,LEE A S,LIN C H,et al.Cytoprotective potential of fucoxanthin in oxidative stress-induced age-related macular degeneration and retinal pigment epithelial cell senescence in vivo and in vitro[J].Mar Drugs,2021,19(2):114.
[18] VICTORELLI S,PASSOS J F.Telomeres and cell senescence-size matters not[J].EBioMedicine,2017,21:14-20.
[19] ERUSALIMSKY J D.Oxidative stress,telomeres and cellular senescence:what non-drug interventions might break the link?[J].Free Radic Biol Med,2020,150:87-95.
[20] PUNDER K D,HEIM C,WADHWA P D,ENTRINGER S.Stress and immunosenescence:the role of telomerase[J].Psychoneuroendocrinology,2019,101:87-100.
[21] ZHAO N,YIN G,LIU C,ZHANG W,SHEN Y,WANG D,et al.Critically short telomeres derepress retrotransposons to promote genome instability in embryonic stem cells[J].Cell Discov,2023,9(1):45.
[22] WANG J,FENG Y,HAN P,WANG F,LUO X,LIANG J,et al.Photosensitization of A2E triggers telomere dysfunction and accelerates retinal pigment epithelium senescence[J].Cell Death Dis,2018,9(2):178.
[23] DOW C T,HARLEY C B.Evaluation of an oral telomerase activator for early age-related macular degeneration:a pilot study[J].Clin Ophthalmol,2016,10:243-249.
[24] GUO L,CHOI S,BIKKANNAVAR P,CORDEIRO M F.Microglia:key players in retinal ageing and neurodegeneration[J].Front Cell Neurosci,2022,16:804782.
[25] FAN W,HUANG W,CHEN J,LI N,MAO L,HOU S.Retinal microglia:functions and diseases[J].Immunology,2022,166(3):268-286.
[26] MECCA C,GIAMBANCO I,DONATO R,ARCURI C.Microglia and aging:the role of the TREM2-DAP12 and CX3CL1-CX3CR1 axes[J].Int J Mol Sci,2018,19(1):318.
[27] RATHNASAMY G,FOULDS W S,LING E A,KAUR C.Retinal microglia:a key player in healthy and diseased retina[J].Prog Neurobiol,2019,173:18-40.
[28] WU J,GAO G,SHI F,XIE H,YANG Q,LIU D,et al.Activated microglia-induced neuroinflammatory cytokines lead to photoreceptor apoptosis in Aβ-injected mice[J].J Mol Med,2021,99(5):713-728.
[29] WANG Y,HAN S,CHEN J,SUN J,SUN X.PFKFB3 knockdown attenuates amyloid β-induced microglial activation and retinal pigment epithelium disorders in mice[J].Int Immunopharmacol,2023,115:109691.
[30] DU X,BYRNE E M,CHEN M,XU H.Minocycline inhibits microglial activation and improves visual function in a chronic model of age-related retinal degeneration[J].Biomedicines,2022,10(12):3222.
[31] CHIRCO K R,SOHN E H,STONE E M,TUCKER B A,MULLINS R F.Structural and molecular changes in the aging choroid:implications for age-related macular degeneration[J].Eye,2017,31(1):10-25.
[32] CABRERA A P,STODDARD J,SANTIAGO TIERNO I,MATISIOUDIS N,AGARWAL M,RENNER L,et al.Increased cell stiffness contributes to complement-mediated injury of choroidal endothelial cells in a monkey model of early age-related macular degeneration[J].J Pathol,2022,257(3):314-326.
[33] CABRERA A P,BHASKARAN A,XU J,YANG X,SCOTT H A,MOHIDEEN U,et al.Senescence increases choroidal endothelial stiffness and susceptibility to complement injury:implications for choriocapillaris loss in AMD[J].Invest Ophthalmol Vis Sci,2016,57(14):5910-5918.
[34] MIWA S,KASHYAP S,CHINI E,VON ZGLINICKI T.Mitochondrial dysfunction in cell senescence and aging[J].J Clin Invest,2022,132(13):e158447.
[35] NOH S E,LEE S J,LEE T G,PARK K S,KIM J H.Inhibition of cellular senescence hallmarks by mitochondrial transplantation in senescence-induced ARPE-19 cells[J].Neurobiol Aging,2023,121:157-165.
[36] SREEKUMAR P G,ISHIKAWA K,SPEE C,MEHTA H H,WAN J,YEN K,et al.The mitochondrial-derived peptide humanin protects RPE cells from oxidative stress,senescence,and mitochondrial dysfunction[J].Invest Ophthalmol Vis Sci,2016,57(3):1238-1253.
[37] YAN F,WANG H,GAO Y,XU J,ZHENG W.Artemisinin protects retinal neuronal cells against oxidative stress and restores rat retinal physiological function from light exposed damage[J].ACS Chem Neurosci,2017,8(8):1713-1723.
[38] KAARNIRANTA K,KAJDANEK J,MORAWIEC J,PAWLOWSKA E,BLASIAK J.PGC-1α protects RPE cells of the aging retina against oxidative stress-induced degeneration through the regulation of senescence and mitochondrial quality control.the significance for AMD pathogenesis[J].Int J Mol Sci,2018,19(8):2317.
[39] RUBIO-TOMS T,SOTIRIOU A,TAVERNARAKIS N.The interplay between selective types of (macro)autophagy:mitophagy and xenophagy[J].Int Rev Cell Mol Biol,2023,374:129-157.
[40] GALLAGHER L E,WILLIAMSON L E,CHAN E Y.Advances in autophagy regulatory mechanisms[J].Cells,2016,5(2):24.
[41] LUO L,QIN Z H.Autophagy,aging,and longevity[J].Adv Exp Med Biol,2019,1206:509-525.
[42] ZHANG Z Y,BAO X L,CONG Y Y,FAN B,LI G Y.Autophagy in age-related macular degeneration:a regulatory mechanism of oxidative stress[J].Oxid Med Cell Longev,2020,2020:2896036.
[43] MITTER S K,SONG C,QI X,MAO H,RAO H,AKIN D,et al.Dysregulated autophagy in the RPE is associated with increased susceptibility to oxidative stress and AMD[J].Autophagy,2014,10(11):1989-2005.
[44] YAO J,JIA L,KHAN N,LIN C,MITTER S K,BOULTON M E,et al.Deletion of autophagy inducer RB1CC1 results in degeneration of the retinal pigment epithelium[J].Autophagy,2015,11(6):939-953.
[45] LEE Y,KIM J,KIM M S,KWON Y,SHIN S,YI H,et al.Coordinate regulation of the senescent state by selective autophagy[J].Dev Cell,2021,56(10):1512-1525.
[46] WANG S,WANG X,CHENG Y,OUYANG W,SANG X,LIU J,et al.Autophagy dysfunction,cellular senescence,and abnormal immune-inflammatory responses in AMD:from mechanisms to therapeutic potential[J].Oxid Med Cell Longev,2019,2019:3632169.
[47] ZHANG Y,YANG Y,YU H,LI M,HANG L,XU X.Apigenin protects mouse retina against oxidative damage by regulating the Nrf2 pathway and autophagy[J].Oxid Med Cell Longev,2020,2020:9420704.
[48] XIONG H,HUA F,DONG Y,LIN Y,YING J,LIU J,et al.DNA damage response and GATA4 signaling in cellular senescence and aging-related pathology[J].Front Aging Neurosci,2022,14:933015.
[49] HERRANZ N,GIL J.Mechanisms and functions of cellular senescence[J].J Clin Invest,2018,128(4):1238-1246.
[50] YIN Y,ZHOU Z,LIU W,CHANG Q,SUN G,DAI Y.Vascular endothelial cells senescence is associated with NOD-like receptor family pyrin domain-containing 3 (NLRP3) inflammasome activation via reactive oxygen species (ROS)/thioredoxin-interacting protein (TXNIP) pathway[J].Int J Biochem Cell Biol,2017,84:22-34.
[51] HOPFNER K P,HORNUNG V.Molecular mechanisms and cellular functions of cGAS-STING signalling[J].Nat Rev Mol Cell Biol,2020,21(9):501-521.
[52] BIRCH J,GIL J.Senescence and the SASP:many therapeutic avenues[J].Genes Dev,2020,34(23/24):1565-1576.
[53] ZOU M,KE Q,NIE Q,QI R,ZHU X,LIU W,et al.Inhibition of cGAS-STING by JQ1 alleviates oxidative stress-induced retina inflammation and degeneration[J].Cell Death Differ,2022,29(9):1816-1833.

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备注/Memo

备注/Memo:
国家自然科学基金(编号:82201220);2020年度“太湖人才计划”顶尖医学专家团队(编号:2020-THRCTD-1)
更新日期/Last Update: 2024-04-05