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Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis

Impaired proinsulin-to-insulin processing in pancreatic β-cells is a key defective step in both type 1 diabetes and type 2 diabetes (T2D) (refs. (1)(,)(2)), but the mechanisms involved remain to be defined. Altered metabolism of sphingolipids (SLs) has been linked to development of obesity, type 1 d...

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Autores principales: Griess, Kerstin, Rieck, Michael, Müller, Nadine, Karsai, Gergely, Hartwig, Sonja, Pelligra, Angela, Hardt, Robert, Schlegel, Caroline, Kuboth, Jennifer, Uhlemeyer, Celina, Trenkamp, Sandra, Jeruschke, Kay, Weiss, Jürgen, Peifer-Weiss, Leon, Xu, Weiwei, Cames, Sandra, Yi, Xiaoyan, Cnop, Miriam, Beller, Mathias, Stark, Holger, Kondadi, Arun Kumar, Reichert, Andreas S., Markgraf, Daniel, Wammers, Marianne, Häussinger, Dieter, Kuss, Oliver, Lehr, Stefan, Eizirik, Decio, Lickert, Heiko, Lammert, Eckhard, Roden, Michael, Winter, Dominic, Al-Hasani, Hadi, Höglinger, Doris, Hornemann, Thorsten, Brüning, Jens C., Belgardt, Bengt-Frederik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9859757/
https://www.ncbi.nlm.nih.gov/pubmed/36543979
http://dx.doi.org/10.1038/s41556-022-01027-2
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author Griess, Kerstin
Rieck, Michael
Müller, Nadine
Karsai, Gergely
Hartwig, Sonja
Pelligra, Angela
Hardt, Robert
Schlegel, Caroline
Kuboth, Jennifer
Uhlemeyer, Celina
Trenkamp, Sandra
Jeruschke, Kay
Weiss, Jürgen
Peifer-Weiss, Leon
Xu, Weiwei
Cames, Sandra
Yi, Xiaoyan
Cnop, Miriam
Beller, Mathias
Stark, Holger
Kondadi, Arun Kumar
Reichert, Andreas S.
Markgraf, Daniel
Wammers, Marianne
Häussinger, Dieter
Kuss, Oliver
Lehr, Stefan
Eizirik, Decio
Lickert, Heiko
Lammert, Eckhard
Roden, Michael
Winter, Dominic
Al-Hasani, Hadi
Höglinger, Doris
Hornemann, Thorsten
Brüning, Jens C.
Belgardt, Bengt-Frederik
author_facet Griess, Kerstin
Rieck, Michael
Müller, Nadine
Karsai, Gergely
Hartwig, Sonja
Pelligra, Angela
Hardt, Robert
Schlegel, Caroline
Kuboth, Jennifer
Uhlemeyer, Celina
Trenkamp, Sandra
Jeruschke, Kay
Weiss, Jürgen
Peifer-Weiss, Leon
Xu, Weiwei
Cames, Sandra
Yi, Xiaoyan
Cnop, Miriam
Beller, Mathias
Stark, Holger
Kondadi, Arun Kumar
Reichert, Andreas S.
Markgraf, Daniel
Wammers, Marianne
Häussinger, Dieter
Kuss, Oliver
Lehr, Stefan
Eizirik, Decio
Lickert, Heiko
Lammert, Eckhard
Roden, Michael
Winter, Dominic
Al-Hasani, Hadi
Höglinger, Doris
Hornemann, Thorsten
Brüning, Jens C.
Belgardt, Bengt-Frederik
author_sort Griess, Kerstin
collection PubMed
description Impaired proinsulin-to-insulin processing in pancreatic β-cells is a key defective step in both type 1 diabetes and type 2 diabetes (T2D) (refs. (1)(,)(2)), but the mechanisms involved remain to be defined. Altered metabolism of sphingolipids (SLs) has been linked to development of obesity, type 1 diabetes and T2D (refs. (3–8)); nonetheless, the role of specific SL species in β-cell function and demise is unclear. Here we define the lipid signature of T2D-associated β-cell failure, including an imbalance of specific very-long-chain SLs and long-chain SLs. β-cell-specific ablation of CerS2, the enzyme necessary for generation of very-long-chain SLs, selectively reduces insulin content, impairs insulin secretion and disturbs systemic glucose tolerance in multiple complementary models. In contrast, ablation of long-chain-SL-synthesizing enzymes has no effect on insulin content. By quantitatively defining the SL–protein interactome, we reveal that CerS2 ablation affects SL binding to several endoplasmic reticulum–Golgi transport proteins, including Tmed2, which we define as an endogenous regulator of the essential proinsulin processing enzyme Pcsk1. Our study uncovers roles for specific SL subtypes and SL-binding proteins in β-cell function and T2D-associated β-cell failure.
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spelling pubmed-98597572023-01-22 Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis Griess, Kerstin Rieck, Michael Müller, Nadine Karsai, Gergely Hartwig, Sonja Pelligra, Angela Hardt, Robert Schlegel, Caroline Kuboth, Jennifer Uhlemeyer, Celina Trenkamp, Sandra Jeruschke, Kay Weiss, Jürgen Peifer-Weiss, Leon Xu, Weiwei Cames, Sandra Yi, Xiaoyan Cnop, Miriam Beller, Mathias Stark, Holger Kondadi, Arun Kumar Reichert, Andreas S. Markgraf, Daniel Wammers, Marianne Häussinger, Dieter Kuss, Oliver Lehr, Stefan Eizirik, Decio Lickert, Heiko Lammert, Eckhard Roden, Michael Winter, Dominic Al-Hasani, Hadi Höglinger, Doris Hornemann, Thorsten Brüning, Jens C. Belgardt, Bengt-Frederik Nat Cell Biol Letter Impaired proinsulin-to-insulin processing in pancreatic β-cells is a key defective step in both type 1 diabetes and type 2 diabetes (T2D) (refs. (1)(,)(2)), but the mechanisms involved remain to be defined. Altered metabolism of sphingolipids (SLs) has been linked to development of obesity, type 1 diabetes and T2D (refs. (3–8)); nonetheless, the role of specific SL species in β-cell function and demise is unclear. Here we define the lipid signature of T2D-associated β-cell failure, including an imbalance of specific very-long-chain SLs and long-chain SLs. β-cell-specific ablation of CerS2, the enzyme necessary for generation of very-long-chain SLs, selectively reduces insulin content, impairs insulin secretion and disturbs systemic glucose tolerance in multiple complementary models. In contrast, ablation of long-chain-SL-synthesizing enzymes has no effect on insulin content. By quantitatively defining the SL–protein interactome, we reveal that CerS2 ablation affects SL binding to several endoplasmic reticulum–Golgi transport proteins, including Tmed2, which we define as an endogenous regulator of the essential proinsulin processing enzyme Pcsk1. Our study uncovers roles for specific SL subtypes and SL-binding proteins in β-cell function and T2D-associated β-cell failure. Nature Publishing Group UK 2022-12-21 2023 /pmc/articles/PMC9859757/ /pubmed/36543979 http://dx.doi.org/10.1038/s41556-022-01027-2 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Letter
Griess, Kerstin
Rieck, Michael
Müller, Nadine
Karsai, Gergely
Hartwig, Sonja
Pelligra, Angela
Hardt, Robert
Schlegel, Caroline
Kuboth, Jennifer
Uhlemeyer, Celina
Trenkamp, Sandra
Jeruschke, Kay
Weiss, Jürgen
Peifer-Weiss, Leon
Xu, Weiwei
Cames, Sandra
Yi, Xiaoyan
Cnop, Miriam
Beller, Mathias
Stark, Holger
Kondadi, Arun Kumar
Reichert, Andreas S.
Markgraf, Daniel
Wammers, Marianne
Häussinger, Dieter
Kuss, Oliver
Lehr, Stefan
Eizirik, Decio
Lickert, Heiko
Lammert, Eckhard
Roden, Michael
Winter, Dominic
Al-Hasani, Hadi
Höglinger, Doris
Hornemann, Thorsten
Brüning, Jens C.
Belgardt, Bengt-Frederik
Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title_full Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title_fullStr Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title_full_unstemmed Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title_short Sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
title_sort sphingolipid subtypes differentially control proinsulin processing and systemic glucose homeostasis
topic Letter
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9859757/
https://www.ncbi.nlm.nih.gov/pubmed/36543979
http://dx.doi.org/10.1038/s41556-022-01027-2
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