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CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells

Beta-cell dysfunction is a hallmark of disease progression in patients with diabetes. Research has been focused on maintaining and restoring beta-cell function during diabetes development. The aims of this study were to explore the expression of C-type lectin domain containing 11A (CLEC11A), a secre...

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Autores principales: Shi, Ruifeng, Cen, Jing, Westermark, Gunilla T, Zhao, Sheng, Welsh, Nils, Sun, Zilin, Lau, Joey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Bioscientifica Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10326638/
https://www.ncbi.nlm.nih.gov/pubmed/37078556
http://dx.doi.org/10.1530/JME-22-0066
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author Shi, Ruifeng
Cen, Jing
Westermark, Gunilla T
Zhao, Sheng
Welsh, Nils
Sun, Zilin
Lau, Joey
author_facet Shi, Ruifeng
Cen, Jing
Westermark, Gunilla T
Zhao, Sheng
Welsh, Nils
Sun, Zilin
Lau, Joey
author_sort Shi, Ruifeng
collection PubMed
description Beta-cell dysfunction is a hallmark of disease progression in patients with diabetes. Research has been focused on maintaining and restoring beta-cell function during diabetes development. The aims of this study were to explore the expression of C-type lectin domain containing 11A (CLEC11A), a secreted sulphated glycoprotein, in human islets and to evaluate the effects of CLEC11A on beta-cell function and proliferation in vitro. To test these hypotheses, human islets and human EndoC-βH1 cell line were used in this study. We identified that CLEC11A was expressed in beta-cells and alpha-cells in human islets but not in EndoC-βH1 cells, whereas the receptor of CLEC11A called integrin subunit alpha 11 was found in both human islets and EndoC-βH1 cells. Long-term treatment with exogenous recombinant human CLEC11A (rhCLEC11A) accentuated glucose-stimulated insulin secretion, insulin content, and proliferation from human islets and EndoC-βH1 cells, which was partially due to the accentuated expression levels of transcription factors MAFA and PDX1. However, the impaired beta-cell function and reduced mRNA expression of INS and MAFA in EndoC-βH1 cells that were caused by chronic palmitate exposure could only be partially improved by the introduction of rhCLEC11A. Based on these results, we conclude that rhCLEC11A promotes insulin secretion, insulin content, and proliferation in human beta-cells, which are associated with the accentuated expression levels of transcription factors MAFA and PDX1. CLEC11A, therefore, may provide a novel therapeutic target for maintaining beta-cell function in patients with diabetes.
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spelling pubmed-103266382023-07-08 CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells Shi, Ruifeng Cen, Jing Westermark, Gunilla T Zhao, Sheng Welsh, Nils Sun, Zilin Lau, Joey J Mol Endocrinol Research Beta-cell dysfunction is a hallmark of disease progression in patients with diabetes. Research has been focused on maintaining and restoring beta-cell function during diabetes development. The aims of this study were to explore the expression of C-type lectin domain containing 11A (CLEC11A), a secreted sulphated glycoprotein, in human islets and to evaluate the effects of CLEC11A on beta-cell function and proliferation in vitro. To test these hypotheses, human islets and human EndoC-βH1 cell line were used in this study. We identified that CLEC11A was expressed in beta-cells and alpha-cells in human islets but not in EndoC-βH1 cells, whereas the receptor of CLEC11A called integrin subunit alpha 11 was found in both human islets and EndoC-βH1 cells. Long-term treatment with exogenous recombinant human CLEC11A (rhCLEC11A) accentuated glucose-stimulated insulin secretion, insulin content, and proliferation from human islets and EndoC-βH1 cells, which was partially due to the accentuated expression levels of transcription factors MAFA and PDX1. However, the impaired beta-cell function and reduced mRNA expression of INS and MAFA in EndoC-βH1 cells that were caused by chronic palmitate exposure could only be partially improved by the introduction of rhCLEC11A. Based on these results, we conclude that rhCLEC11A promotes insulin secretion, insulin content, and proliferation in human beta-cells, which are associated with the accentuated expression levels of transcription factors MAFA and PDX1. CLEC11A, therefore, may provide a novel therapeutic target for maintaining beta-cell function in patients with diabetes. Bioscientifica Ltd 2023-04-20 /pmc/articles/PMC10326638/ /pubmed/37078556 http://dx.doi.org/10.1530/JME-22-0066 Text en © the author(s) https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License. (https://creativecommons.org/licenses/by/4.0/)
spellingShingle Research
Shi, Ruifeng
Cen, Jing
Westermark, Gunilla T
Zhao, Sheng
Welsh, Nils
Sun, Zilin
Lau, Joey
CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title_full CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title_fullStr CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title_full_unstemmed CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title_short CLEC11A improves insulin secretion and promotes cell proliferation in human beta-cells
title_sort clec11a improves insulin secretion and promotes cell proliferation in human beta-cells
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10326638/
https://www.ncbi.nlm.nih.gov/pubmed/37078556
http://dx.doi.org/10.1530/JME-22-0066
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