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Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes

Recently, missense mutations upstream of preproinsulin’s signal peptide (SP) cleavage site were reported to cause mutant INS gene-induced diabetes of youth (MIDY). Our objective was to understand the molecular pathogenesis using metabolic labeling and assays of proinsulin export and insulin and C-pe...

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Autores principales: Liu, Ming, Lara-Lemus, Roberto, Shan, Shu-ou, Wright, Jordan, Haataja, Leena, Barbetti, Fabrizio, Guo, Huan, Larkin, Dennis, Arvan, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3314357/
https://www.ncbi.nlm.nih.gov/pubmed/22357960
http://dx.doi.org/10.2337/db11-0878
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author Liu, Ming
Lara-Lemus, Roberto
Shan, Shu-ou
Wright, Jordan
Haataja, Leena
Barbetti, Fabrizio
Guo, Huan
Larkin, Dennis
Arvan, Peter
author_facet Liu, Ming
Lara-Lemus, Roberto
Shan, Shu-ou
Wright, Jordan
Haataja, Leena
Barbetti, Fabrizio
Guo, Huan
Larkin, Dennis
Arvan, Peter
author_sort Liu, Ming
collection PubMed
description Recently, missense mutations upstream of preproinsulin’s signal peptide (SP) cleavage site were reported to cause mutant INS gene-induced diabetes of youth (MIDY). Our objective was to understand the molecular pathogenesis using metabolic labeling and assays of proinsulin export and insulin and C-peptide production to examine the earliest events of insulin biosynthesis, highlighting molecular mechanisms underlying β-cell failure plus a novel strategy that might ameliorate the MIDY syndrome. We find that whereas preproinsulin-A(SP23)S is efficiently cleaved, producing authentic proinsulin and insulin, preproinsulin-A(SP24)D is inefficiently cleaved at an improper site, producing two subpopulations of molecules. Both show impaired oxidative folding and are retained in the endoplasmic reticulum (ER). Preproinsulin-A(SP24)D also blocks ER exit of coexpressed wild-type proinsulin, accounting for its dominant-negative behavior. Upon increased expression of ER–oxidoreductin-1, preproinsulin-A(SP24)D remains blocked but oxidative folding of wild-type proinsulin improves, accelerating its ER export and increasing wild-type insulin production. We conclude that the efficiency of SP cleavage is linked to the oxidation of (pre)proinsulin. In turn, impaired (pre)proinsulin oxidation affects ER export of the mutant as well as that of coexpressed wild-type proinsulin. Improving oxidative folding of wild-type proinsulin may provide a feasible way to rescue insulin production in patients with MIDY.
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spelling pubmed-33143572013-04-01 Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes Liu, Ming Lara-Lemus, Roberto Shan, Shu-ou Wright, Jordan Haataja, Leena Barbetti, Fabrizio Guo, Huan Larkin, Dennis Arvan, Peter Diabetes Islet Studies Recently, missense mutations upstream of preproinsulin’s signal peptide (SP) cleavage site were reported to cause mutant INS gene-induced diabetes of youth (MIDY). Our objective was to understand the molecular pathogenesis using metabolic labeling and assays of proinsulin export and insulin and C-peptide production to examine the earliest events of insulin biosynthesis, highlighting molecular mechanisms underlying β-cell failure plus a novel strategy that might ameliorate the MIDY syndrome. We find that whereas preproinsulin-A(SP23)S is efficiently cleaved, producing authentic proinsulin and insulin, preproinsulin-A(SP24)D is inefficiently cleaved at an improper site, producing two subpopulations of molecules. Both show impaired oxidative folding and are retained in the endoplasmic reticulum (ER). Preproinsulin-A(SP24)D also blocks ER exit of coexpressed wild-type proinsulin, accounting for its dominant-negative behavior. Upon increased expression of ER–oxidoreductin-1, preproinsulin-A(SP24)D remains blocked but oxidative folding of wild-type proinsulin improves, accelerating its ER export and increasing wild-type insulin production. We conclude that the efficiency of SP cleavage is linked to the oxidation of (pre)proinsulin. In turn, impaired (pre)proinsulin oxidation affects ER export of the mutant as well as that of coexpressed wild-type proinsulin. Improving oxidative folding of wild-type proinsulin may provide a feasible way to rescue insulin production in patients with MIDY. American Diabetes Association 2012-04 2012-03-14 /pmc/articles/PMC3314357/ /pubmed/22357960 http://dx.doi.org/10.2337/db11-0878 Text en © 2012 by the American Diabetes Association. Readers may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle Islet Studies
Liu, Ming
Lara-Lemus, Roberto
Shan, Shu-ou
Wright, Jordan
Haataja, Leena
Barbetti, Fabrizio
Guo, Huan
Larkin, Dennis
Arvan, Peter
Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title_full Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title_fullStr Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title_full_unstemmed Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title_short Impaired Cleavage of Preproinsulin Signal Peptide Linked to Autosomal-Dominant Diabetes
title_sort impaired cleavage of preproinsulin signal peptide linked to autosomal-dominant diabetes
topic Islet Studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3314357/
https://www.ncbi.nlm.nih.gov/pubmed/22357960
http://dx.doi.org/10.2337/db11-0878
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