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Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells

BACKGROUND: There is a great need to discover factors that could protect pancreatic β-cells from apoptosis and thus prevent diabetes mellitus. Clusterin (CLU), a chaperone protein, plays an important role in cell protection in numerous cells and is involved in various cellular mechanisms, including...

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Autores principales: Hong, Seok-Woo, Lee, Jinmi, Kim, Min Jeong, Moon, Sun Joon, Kwon, Hyemi, Park, Se Eun, Rhee, Eun-Jung, Lee, Won-Young
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Korean Endocrine Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7803614/
https://www.ncbi.nlm.nih.gov/pubmed/33261311
http://dx.doi.org/10.3803/EnM.2020.768
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author Hong, Seok-Woo
Lee, Jinmi
Kim, Min Jeong
Moon, Sun Joon
Kwon, Hyemi
Park, Se Eun
Rhee, Eun-Jung
Lee, Won-Young
author_facet Hong, Seok-Woo
Lee, Jinmi
Kim, Min Jeong
Moon, Sun Joon
Kwon, Hyemi
Park, Se Eun
Rhee, Eun-Jung
Lee, Won-Young
author_sort Hong, Seok-Woo
collection PubMed
description BACKGROUND: There is a great need to discover factors that could protect pancreatic β-cells from apoptosis and thus prevent diabetes mellitus. Clusterin (CLU), a chaperone protein, plays an important role in cell protection in numerous cells and is involved in various cellular mechanisms, including autophagy. In the present study, we investigated the protective role of CLU through autophagy regulation in pancreatic β-cells. METHODS: To identify the protective role of CLU, mouse insulinoma 6 (MIN6) cells were incubated with CLU and/or free fatty acid (FFA) palmitate, and cellular apoptosis and autophagy were examined. RESULTS: Treatment with CLU remarkably upregulated microtubule-associated protein 1-light chain 3 (LC3)-II conversion in a dose- and time-dependent manner with a significant increase in the autophagy-related 3 (Atg3) gene expression level, which is a mediator of LC3-II conversion. Moreover, co-immunoprecipitation and fluorescence microscopy experiments showed that the molecular interaction of LC3 with Atg3 and p62 was markedly increased by CLU. Stimulation of LC3-II conversion by CLU persisted in lipotoxic conditions, and FFA-induced apoptosis and dysfunction were simultaneously improved by CLU treatment. Finally, inhibition of LC3-II conversion by Atg3 gene knockdown markedly attenuated the cytoprotective effect of CLU. CONCLUSION: Taken together, these findings suggest that CLU protects pancreatic β-cells against lipotoxicity-induced apoptosis via autophagy stimulation mediated by facilitating LC3-II conversion. Thus, CLU has therapeutic effects on FFA-induced pancreatic β-cell dysfunction.
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spelling pubmed-78036142021-01-22 Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells Hong, Seok-Woo Lee, Jinmi Kim, Min Jeong Moon, Sun Joon Kwon, Hyemi Park, Se Eun Rhee, Eun-Jung Lee, Won-Young Endocrinol Metab (Seoul) Original Article BACKGROUND: There is a great need to discover factors that could protect pancreatic β-cells from apoptosis and thus prevent diabetes mellitus. Clusterin (CLU), a chaperone protein, plays an important role in cell protection in numerous cells and is involved in various cellular mechanisms, including autophagy. In the present study, we investigated the protective role of CLU through autophagy regulation in pancreatic β-cells. METHODS: To identify the protective role of CLU, mouse insulinoma 6 (MIN6) cells were incubated with CLU and/or free fatty acid (FFA) palmitate, and cellular apoptosis and autophagy were examined. RESULTS: Treatment with CLU remarkably upregulated microtubule-associated protein 1-light chain 3 (LC3)-II conversion in a dose- and time-dependent manner with a significant increase in the autophagy-related 3 (Atg3) gene expression level, which is a mediator of LC3-II conversion. Moreover, co-immunoprecipitation and fluorescence microscopy experiments showed that the molecular interaction of LC3 with Atg3 and p62 was markedly increased by CLU. Stimulation of LC3-II conversion by CLU persisted in lipotoxic conditions, and FFA-induced apoptosis and dysfunction were simultaneously improved by CLU treatment. Finally, inhibition of LC3-II conversion by Atg3 gene knockdown markedly attenuated the cytoprotective effect of CLU. CONCLUSION: Taken together, these findings suggest that CLU protects pancreatic β-cells against lipotoxicity-induced apoptosis via autophagy stimulation mediated by facilitating LC3-II conversion. Thus, CLU has therapeutic effects on FFA-induced pancreatic β-cell dysfunction. Korean Endocrine Society 2020-12 2020-11-01 /pmc/articles/PMC7803614/ /pubmed/33261311 http://dx.doi.org/10.3803/EnM.2020.768 Text en Copyright © 2020 Korean Endocrine Society This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Hong, Seok-Woo
Lee, Jinmi
Kim, Min Jeong
Moon, Sun Joon
Kwon, Hyemi
Park, Se Eun
Rhee, Eun-Jung
Lee, Won-Young
Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title_full Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title_fullStr Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title_full_unstemmed Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title_short Clusterin Protects Lipotoxicity-Induced Apoptosis via Upregulation of Autophagy in Insulin-Secreting Cells
title_sort clusterin protects lipotoxicity-induced apoptosis via upregulation of autophagy in insulin-secreting cells
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7803614/
https://www.ncbi.nlm.nih.gov/pubmed/33261311
http://dx.doi.org/10.3803/EnM.2020.768
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