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Integration of ER protein quality control mechanisms defines β cell function and ER architecture

Three principal ER quality-control mechanisms, namely, the unfolded protein response, ER-associated degradation (ERAD), and ER-phagy are each important for the maintenance of ER homeostasis, yet how they are integrated to regulate ER homeostasis and organellar architecture in vivo is largely unclear...

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Autores principales: Shrestha, Neha, Torres, Mauricio, Zhang, Jason, Lu, You, Haataja, Leena, Reinert, Rachel B., Knupp, Jeffrey, Chen, Yu-Jie, Parlakgul, Gunes, Arruda, Ana Paula, Tsai, Billy, Arvan, Peter, Qi, Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9797341/
https://www.ncbi.nlm.nih.gov/pubmed/36346671
http://dx.doi.org/10.1172/JCI163584
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author Shrestha, Neha
Torres, Mauricio
Zhang, Jason
Lu, You
Haataja, Leena
Reinert, Rachel B.
Knupp, Jeffrey
Chen, Yu-Jie
Parlakgul, Gunes
Arruda, Ana Paula
Tsai, Billy
Arvan, Peter
Qi, Ling
author_facet Shrestha, Neha
Torres, Mauricio
Zhang, Jason
Lu, You
Haataja, Leena
Reinert, Rachel B.
Knupp, Jeffrey
Chen, Yu-Jie
Parlakgul, Gunes
Arruda, Ana Paula
Tsai, Billy
Arvan, Peter
Qi, Ling
author_sort Shrestha, Neha
collection PubMed
description Three principal ER quality-control mechanisms, namely, the unfolded protein response, ER-associated degradation (ERAD), and ER-phagy are each important for the maintenance of ER homeostasis, yet how they are integrated to regulate ER homeostasis and organellar architecture in vivo is largely unclear. Here we report intricate crosstalk among the 3 pathways, centered around the SEL1L-HRD1 protein complex of ERAD, in the regulation of organellar organization in β cells. SEL1L-HRD1 ERAD deficiency in β cells triggers activation of autophagy, at least in part, via IRE1α (an endogenous ERAD substrate). In the absence of functional SEL1L-HRD1 ERAD, proinsulin is retained in the ER as high molecular weight conformers, which are subsequently cleared via ER-phagy. A combined loss of both SEL1L and autophagy in β cells leads to diabetes in mice shortly after weaning, with premature death by approximately 11 weeks of age, associated with marked ER retention of proinsulin and β cell loss. Using focused ion beam scanning electron microscopy powered by deep-learning automated image segmentation and 3D reconstruction, our data demonstrate a profound organellar restructuring with a massive expansion of ER volume and network in β cells lacking both SEL1L and autophagy. These data reveal at an unprecedented detail the intimate crosstalk among the 3 ER quality-control mechanisms in the dynamic regulation of organellar architecture and β cell function.
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spelling pubmed-97973412023-01-10 Integration of ER protein quality control mechanisms defines β cell function and ER architecture Shrestha, Neha Torres, Mauricio Zhang, Jason Lu, You Haataja, Leena Reinert, Rachel B. Knupp, Jeffrey Chen, Yu-Jie Parlakgul, Gunes Arruda, Ana Paula Tsai, Billy Arvan, Peter Qi, Ling J Clin Invest Research Article Three principal ER quality-control mechanisms, namely, the unfolded protein response, ER-associated degradation (ERAD), and ER-phagy are each important for the maintenance of ER homeostasis, yet how they are integrated to regulate ER homeostasis and organellar architecture in vivo is largely unclear. Here we report intricate crosstalk among the 3 pathways, centered around the SEL1L-HRD1 protein complex of ERAD, in the regulation of organellar organization in β cells. SEL1L-HRD1 ERAD deficiency in β cells triggers activation of autophagy, at least in part, via IRE1α (an endogenous ERAD substrate). In the absence of functional SEL1L-HRD1 ERAD, proinsulin is retained in the ER as high molecular weight conformers, which are subsequently cleared via ER-phagy. A combined loss of both SEL1L and autophagy in β cells leads to diabetes in mice shortly after weaning, with premature death by approximately 11 weeks of age, associated with marked ER retention of proinsulin and β cell loss. Using focused ion beam scanning electron microscopy powered by deep-learning automated image segmentation and 3D reconstruction, our data demonstrate a profound organellar restructuring with a massive expansion of ER volume and network in β cells lacking both SEL1L and autophagy. These data reveal at an unprecedented detail the intimate crosstalk among the 3 ER quality-control mechanisms in the dynamic regulation of organellar architecture and β cell function. American Society for Clinical Investigation 2023-01-03 /pmc/articles/PMC9797341/ /pubmed/36346671 http://dx.doi.org/10.1172/JCI163584 Text en © 2023 Shrestha et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Shrestha, Neha
Torres, Mauricio
Zhang, Jason
Lu, You
Haataja, Leena
Reinert, Rachel B.
Knupp, Jeffrey
Chen, Yu-Jie
Parlakgul, Gunes
Arruda, Ana Paula
Tsai, Billy
Arvan, Peter
Qi, Ling
Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title_full Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title_fullStr Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title_full_unstemmed Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title_short Integration of ER protein quality control mechanisms defines β cell function and ER architecture
title_sort integration of er protein quality control mechanisms defines β cell function and er architecture
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9797341/
https://www.ncbi.nlm.nih.gov/pubmed/36346671
http://dx.doi.org/10.1172/JCI163584
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