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Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus

Krüppel-like transcription factors (KLFs) have elicited significant attention because of their regulation of essential biochemical pathways and, more recently, because of their fundamental role in the mechanisms of human diseases. Neonatal diabetes mellitus is a monogenic disorder with primary alter...

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Autores principales: Bonnefond, Amélie, Lomberk, Gwen, Buttar, Navtej, Busiah, Kanetee, Vaillant, Emmanuel, Lobbens, Stéphane, Yengo, Loïc, Dechaume, Aurélie, Mignot, Brigitte, Simon, Albane, Scharfmann, Raphaël, Neve, Bernadette, Tanyolaç, Sinan, Hodoglugil, Ugur, Pattou, François, Cavé, Hélène, Iovanna, Juan, Stein, Roland, Polak, Michel, Vaxillaire, Martine, Froguel, Philippe, Urrutia, Raul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3151084/
https://www.ncbi.nlm.nih.gov/pubmed/21592955
http://dx.doi.org/10.1074/jbc.M110.215822
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author Bonnefond, Amélie
Lomberk, Gwen
Buttar, Navtej
Busiah, Kanetee
Vaillant, Emmanuel
Lobbens, Stéphane
Yengo, Loïc
Dechaume, Aurélie
Mignot, Brigitte
Simon, Albane
Scharfmann, Raphaël
Neve, Bernadette
Tanyolaç, Sinan
Hodoglugil, Ugur
Pattou, François
Cavé, Hélène
Iovanna, Juan
Stein, Roland
Polak, Michel
Vaxillaire, Martine
Froguel, Philippe
Urrutia, Raul
author_facet Bonnefond, Amélie
Lomberk, Gwen
Buttar, Navtej
Busiah, Kanetee
Vaillant, Emmanuel
Lobbens, Stéphane
Yengo, Loïc
Dechaume, Aurélie
Mignot, Brigitte
Simon, Albane
Scharfmann, Raphaël
Neve, Bernadette
Tanyolaç, Sinan
Hodoglugil, Ugur
Pattou, François
Cavé, Hélène
Iovanna, Juan
Stein, Roland
Polak, Michel
Vaxillaire, Martine
Froguel, Philippe
Urrutia, Raul
author_sort Bonnefond, Amélie
collection PubMed
description Krüppel-like transcription factors (KLFs) have elicited significant attention because of their regulation of essential biochemical pathways and, more recently, because of their fundamental role in the mechanisms of human diseases. Neonatal diabetes mellitus is a monogenic disorder with primary alterations in insulin secretion. We here describe a key biochemical mechanism that underlies neonatal diabetes mellitus insulin biosynthesis impairment, namely a homozygous mutation within the insulin gene (INS) promoter, c.-331C>G, which affects a novel KLF-binding site. The combination of careful expression profiling, electromobility shift assays, reporter experiments, and chromatin immunoprecipitation demonstrates that, among 16 different KLF proteins tested, KLF11 is the most reliable activator of this site. Congruently, the c.-331C>G INS mutation fails to bind KLF11, thus inhibiting activation by this transcription factor. Klf11(−/−) mice recapitulate the disruption in insulin production and blood levels observed in patients. Thus, these data demonstrate an important role for KLF11 in the regulation of INS transcription via the novel c.-331 KLF site. Lastly, our screening data raised the possibility that other members of the KLF family may also regulate this promoter under distinct, yet unidentified, cellular contexts. Collectively, this study underscores a key role for KLF proteins in biochemical mechanisms of human diseases, in particular, early infancy onset diabetes mellitus.
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spelling pubmed-31510842011-08-15 Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus Bonnefond, Amélie Lomberk, Gwen Buttar, Navtej Busiah, Kanetee Vaillant, Emmanuel Lobbens, Stéphane Yengo, Loïc Dechaume, Aurélie Mignot, Brigitte Simon, Albane Scharfmann, Raphaël Neve, Bernadette Tanyolaç, Sinan Hodoglugil, Ugur Pattou, François Cavé, Hélène Iovanna, Juan Stein, Roland Polak, Michel Vaxillaire, Martine Froguel, Philippe Urrutia, Raul J Biol Chem Molecular Bases of Disease Krüppel-like transcription factors (KLFs) have elicited significant attention because of their regulation of essential biochemical pathways and, more recently, because of their fundamental role in the mechanisms of human diseases. Neonatal diabetes mellitus is a monogenic disorder with primary alterations in insulin secretion. We here describe a key biochemical mechanism that underlies neonatal diabetes mellitus insulin biosynthesis impairment, namely a homozygous mutation within the insulin gene (INS) promoter, c.-331C>G, which affects a novel KLF-binding site. The combination of careful expression profiling, electromobility shift assays, reporter experiments, and chromatin immunoprecipitation demonstrates that, among 16 different KLF proteins tested, KLF11 is the most reliable activator of this site. Congruently, the c.-331C>G INS mutation fails to bind KLF11, thus inhibiting activation by this transcription factor. Klf11(−/−) mice recapitulate the disruption in insulin production and blood levels observed in patients. Thus, these data demonstrate an important role for KLF11 in the regulation of INS transcription via the novel c.-331 KLF site. Lastly, our screening data raised the possibility that other members of the KLF family may also regulate this promoter under distinct, yet unidentified, cellular contexts. Collectively, this study underscores a key role for KLF proteins in biochemical mechanisms of human diseases, in particular, early infancy onset diabetes mellitus. American Society for Biochemistry and Molecular Biology 2011-08-12 2011-05-18 /pmc/articles/PMC3151084/ /pubmed/21592955 http://dx.doi.org/10.1074/jbc.M110.215822 Text en © 2011 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Molecular Bases of Disease
Bonnefond, Amélie
Lomberk, Gwen
Buttar, Navtej
Busiah, Kanetee
Vaillant, Emmanuel
Lobbens, Stéphane
Yengo, Loïc
Dechaume, Aurélie
Mignot, Brigitte
Simon, Albane
Scharfmann, Raphaël
Neve, Bernadette
Tanyolaç, Sinan
Hodoglugil, Ugur
Pattou, François
Cavé, Hélène
Iovanna, Juan
Stein, Roland
Polak, Michel
Vaxillaire, Martine
Froguel, Philippe
Urrutia, Raul
Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title_full Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title_fullStr Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title_full_unstemmed Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title_short Disruption of a Novel Krüppel-like Transcription Factor p300-regulated Pathway for Insulin Biosynthesis Revealed by Studies of the c.-331 INS Mutation Found in Neonatal Diabetes Mellitus
title_sort disruption of a novel krüppel-like transcription factor p300-regulated pathway for insulin biosynthesis revealed by studies of the c.-331 ins mutation found in neonatal diabetes mellitus
topic Molecular Bases of Disease
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3151084/
https://www.ncbi.nlm.nih.gov/pubmed/21592955
http://dx.doi.org/10.1074/jbc.M110.215822
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