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HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53

Cataract is a leading ocular disease causing global blindness. The mechanism of cataractogenesis has not been well defined. Here, we demonstrate that the heat shock protein 90β (HSP90β) plays a fundamental role in suppressing cataractogenesis. HSP90β is the most dominant HSP in normal lens, and its...

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Autores principales: Fu, Jia-Ling, Zheng, Shu-Yu, Wang, Yan, Hu, Xue-Bin, Xiao, Yuan, Wang, Jing-Miao, Zhang, Lan, Wang, Ling, Nie, Qian, Hou, Min, Bai, Yue-Yue, Gan, Yu-Wen, Liang, Xing-Miao, Xie, Liu-Liu, Li, David Wan-Cheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10400967/
https://www.ncbi.nlm.nih.gov/pubmed/37487085
http://dx.doi.org/10.1073/pnas.2221522120
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author Fu, Jia-Ling
Zheng, Shu-Yu
Wang, Yan
Hu, Xue-Bin
Xiao, Yuan
Wang, Jing-Miao
Zhang, Lan
Wang, Ling
Nie, Qian
Hou, Min
Bai, Yue-Yue
Gan, Yu-Wen
Liang, Xing-Miao
Xie, Liu-Liu
Li, David Wan-Cheng
author_facet Fu, Jia-Ling
Zheng, Shu-Yu
Wang, Yan
Hu, Xue-Bin
Xiao, Yuan
Wang, Jing-Miao
Zhang, Lan
Wang, Ling
Nie, Qian
Hou, Min
Bai, Yue-Yue
Gan, Yu-Wen
Liang, Xing-Miao
Xie, Liu-Liu
Li, David Wan-Cheng
author_sort Fu, Jia-Ling
collection PubMed
description Cataract is a leading ocular disease causing global blindness. The mechanism of cataractogenesis has not been well defined. Here, we demonstrate that the heat shock protein 90β (HSP90β) plays a fundamental role in suppressing cataractogenesis. HSP90β is the most dominant HSP in normal lens, and its constitutive high level of expression is largely derived from regulation by Sp1 family transcription factors. More importantly, HSP90β is significantly down-regulated in human cataract patients and in aging mouse lenses, whereas HSP90β silencing in zebrafish causes cataractogenesis, which can only be rescued by itself but not other HSP90 genes. Mechanistically, HSP90β can directly interact with CHMP4B, a newly-found client protein involved in control of cytokinesis. HSP90β silencing causes upregulation of CHMP4B and another client protein, the tumor suppressor p53. CHMP4B upregulation or overexpression induces excessive division of lens epithelial cells without proper differentiation. As a result, these cells were triggered to undergo apoptosis due to activation of the p53/Bak–Bim pathway, leading to cataractogenesis and microphthalmia. Silence of both HSP90β and CHMP4B restored normal phenotype of zebrafish eye. Together, our results reveal that HSP90β is a critical inhibitor of cataractogenesis through negative regulation of CHMP4B and the p53-Bak/Bim pathway.
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spelling pubmed-104009672023-08-05 HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53 Fu, Jia-Ling Zheng, Shu-Yu Wang, Yan Hu, Xue-Bin Xiao, Yuan Wang, Jing-Miao Zhang, Lan Wang, Ling Nie, Qian Hou, Min Bai, Yue-Yue Gan, Yu-Wen Liang, Xing-Miao Xie, Liu-Liu Li, David Wan-Cheng Proc Natl Acad Sci U S A Biological Sciences Cataract is a leading ocular disease causing global blindness. The mechanism of cataractogenesis has not been well defined. Here, we demonstrate that the heat shock protein 90β (HSP90β) plays a fundamental role in suppressing cataractogenesis. HSP90β is the most dominant HSP in normal lens, and its constitutive high level of expression is largely derived from regulation by Sp1 family transcription factors. More importantly, HSP90β is significantly down-regulated in human cataract patients and in aging mouse lenses, whereas HSP90β silencing in zebrafish causes cataractogenesis, which can only be rescued by itself but not other HSP90 genes. Mechanistically, HSP90β can directly interact with CHMP4B, a newly-found client protein involved in control of cytokinesis. HSP90β silencing causes upregulation of CHMP4B and another client protein, the tumor suppressor p53. CHMP4B upregulation or overexpression induces excessive division of lens epithelial cells without proper differentiation. As a result, these cells were triggered to undergo apoptosis due to activation of the p53/Bak–Bim pathway, leading to cataractogenesis and microphthalmia. Silence of both HSP90β and CHMP4B restored normal phenotype of zebrafish eye. Together, our results reveal that HSP90β is a critical inhibitor of cataractogenesis through negative regulation of CHMP4B and the p53-Bak/Bim pathway. National Academy of Sciences 2023-07-24 2023-08-01 /pmc/articles/PMC10400967/ /pubmed/37487085 http://dx.doi.org/10.1073/pnas.2221522120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Fu, Jia-Ling
Zheng, Shu-Yu
Wang, Yan
Hu, Xue-Bin
Xiao, Yuan
Wang, Jing-Miao
Zhang, Lan
Wang, Ling
Nie, Qian
Hou, Min
Bai, Yue-Yue
Gan, Yu-Wen
Liang, Xing-Miao
Xie, Liu-Liu
Li, David Wan-Cheng
HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title_full HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title_fullStr HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title_full_unstemmed HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title_short HSP90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (CHMP4B) and p53
title_sort hsp90β prevents aging-related cataract formation through regulation of the charged multivesicular body protein (chmp4b) and p53
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10400967/
https://www.ncbi.nlm.nih.gov/pubmed/37487085
http://dx.doi.org/10.1073/pnas.2221522120
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