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Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young

The function of Krüppel-like factor 11 (KLF11) in the regulation of metabolic pathways is conserved from flies to human. Alterations in KLF11 function result in maturity onset diabetes of the young 7 (MODY7) and neonatal diabetes; however, the mechanisms underlying the role of this protein in metabo...

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Autores principales: Lomberk, Gwen, Grzenda, Adrienne, Mathison, Angela, Escande, Carlos, Zhang, Jin-San, Calvo, Ezequiel, Miller, Laurence J., Iovanna, Juan, Chini, Eduardo N., Fernandez-Zapico, Martin E., Urrutia, Raul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2013
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3682574/
https://www.ncbi.nlm.nih.gov/pubmed/23589285
http://dx.doi.org/10.1074/jbc.M112.434670
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author Lomberk, Gwen
Grzenda, Adrienne
Mathison, Angela
Escande, Carlos
Zhang, Jin-San
Calvo, Ezequiel
Miller, Laurence J.
Iovanna, Juan
Chini, Eduardo N.
Fernandez-Zapico, Martin E.
Urrutia, Raul
author_facet Lomberk, Gwen
Grzenda, Adrienne
Mathison, Angela
Escande, Carlos
Zhang, Jin-San
Calvo, Ezequiel
Miller, Laurence J.
Iovanna, Juan
Chini, Eduardo N.
Fernandez-Zapico, Martin E.
Urrutia, Raul
author_sort Lomberk, Gwen
collection PubMed
description The function of Krüppel-like factor 11 (KLF11) in the regulation of metabolic pathways is conserved from flies to human. Alterations in KLF11 function result in maturity onset diabetes of the young 7 (MODY7) and neonatal diabetes; however, the mechanisms underlying the role of this protein in metabolic disorders remain unclear. Here, we investigated how the A347S genetic variant, present in MODY7 patients, modulates KLF11 transcriptional activity. A347S affects a previously identified transcriptional regulatory domain 3 (TRD3) for which co-regulators remain unknown. Structure-oriented sequence analyses described here predicted that the KLF11 TRD3 represents an evolutionarily conserved protein domain. Combined yeast two-hybrid and protein array experiments demonstrated that the TRD3 binds WD40, WWI, WWII, and SH3 domain-containing proteins. Using one of these proteins as a model, guanine nucleotide-binding protein β2 (Gβ(2)), we investigated the functional consequences of KLF11 coupling to a TRD3 binding partner. Combined immunoprecipitation and biomolecular fluorescence complementation assays confirmed that activation of three different metabolic G protein-coupled receptors (β-adrenergic, secretin, and cholecystokinin) induces translocation of Gβ(2) to the nucleus where it directly binds KLF11 in a manner that is disrupted by the MODY7 A347S variant. Using genome-wide expression profiles, we identified metabolic gene networks impacted upon TRD3 disruption. Furthermore, A347S disrupted KLF11-mediated increases in basal insulin levels and promoter activity and blunted glucose-stimulated insulin secretion. Thus, this study characterizes a novel protein/protein interaction domain disrupted in a KLF gene variant that associates to MODY7, contributing to our understanding of gene regulation events in complex metabolic diseases.
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spelling pubmed-36825742013-06-17 Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young Lomberk, Gwen Grzenda, Adrienne Mathison, Angela Escande, Carlos Zhang, Jin-San Calvo, Ezequiel Miller, Laurence J. Iovanna, Juan Chini, Eduardo N. Fernandez-Zapico, Martin E. Urrutia, Raul J Biol Chem Gene Regulation The function of Krüppel-like factor 11 (KLF11) in the regulation of metabolic pathways is conserved from flies to human. Alterations in KLF11 function result in maturity onset diabetes of the young 7 (MODY7) and neonatal diabetes; however, the mechanisms underlying the role of this protein in metabolic disorders remain unclear. Here, we investigated how the A347S genetic variant, present in MODY7 patients, modulates KLF11 transcriptional activity. A347S affects a previously identified transcriptional regulatory domain 3 (TRD3) for which co-regulators remain unknown. Structure-oriented sequence analyses described here predicted that the KLF11 TRD3 represents an evolutionarily conserved protein domain. Combined yeast two-hybrid and protein array experiments demonstrated that the TRD3 binds WD40, WWI, WWII, and SH3 domain-containing proteins. Using one of these proteins as a model, guanine nucleotide-binding protein β2 (Gβ(2)), we investigated the functional consequences of KLF11 coupling to a TRD3 binding partner. Combined immunoprecipitation and biomolecular fluorescence complementation assays confirmed that activation of three different metabolic G protein-coupled receptors (β-adrenergic, secretin, and cholecystokinin) induces translocation of Gβ(2) to the nucleus where it directly binds KLF11 in a manner that is disrupted by the MODY7 A347S variant. Using genome-wide expression profiles, we identified metabolic gene networks impacted upon TRD3 disruption. Furthermore, A347S disrupted KLF11-mediated increases in basal insulin levels and promoter activity and blunted glucose-stimulated insulin secretion. Thus, this study characterizes a novel protein/protein interaction domain disrupted in a KLF gene variant that associates to MODY7, contributing to our understanding of gene regulation events in complex metabolic diseases. American Society for Biochemistry and Molecular Biology 2013-06-14 2012-04-15 /pmc/articles/PMC3682574/ /pubmed/23589285 http://dx.doi.org/10.1074/jbc.M112.434670 Text en © 2013 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Gene Regulation
Lomberk, Gwen
Grzenda, Adrienne
Mathison, Angela
Escande, Carlos
Zhang, Jin-San
Calvo, Ezequiel
Miller, Laurence J.
Iovanna, Juan
Chini, Eduardo N.
Fernandez-Zapico, Martin E.
Urrutia, Raul
Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title_full Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title_fullStr Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title_full_unstemmed Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title_short Krüppel-like Factor 11 Regulates the Expression of Metabolic Genes via an Evolutionarily Conserved Protein Interaction Domain Functionally Disrupted in Maturity Onset Diabetes of the Young
title_sort krüppel-like factor 11 regulates the expression of metabolic genes via an evolutionarily conserved protein interaction domain functionally disrupted in maturity onset diabetes of the young
topic Gene Regulation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3682574/
https://www.ncbi.nlm.nih.gov/pubmed/23589285
http://dx.doi.org/10.1074/jbc.M112.434670
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