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The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis

BACKGROUND: We previously showed that mice lacking the high mobility group A1 gene (Hmga1-knockout mice) developed a type 2-like diabetic phenotype, in which cell-surface insulin receptors were dramatically reduced (below 10% of those in the controls) in the major targets of insulin action, and gluc...

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Autores principales: Chiefari, Eusebio, Paonessa, Francesco, Iiritano, Stefania, Le Pera, Ilaria, Palmieri, Dario, Brunetti, Giuseppe, Lupo, Angelo, Colantuoni, Vittorio, Foti, Daniela, Gulletta, Elio, De Sarro, Giovambattista, Fusco, Alfredo, Brunetti, Antonio
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2698822/
https://www.ncbi.nlm.nih.gov/pubmed/19460132
http://dx.doi.org/10.1186/1741-7007-7-24
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author Chiefari, Eusebio
Paonessa, Francesco
Iiritano, Stefania
Le Pera, Ilaria
Palmieri, Dario
Brunetti, Giuseppe
Lupo, Angelo
Colantuoni, Vittorio
Foti, Daniela
Gulletta, Elio
De Sarro, Giovambattista
Fusco, Alfredo
Brunetti, Antonio
author_facet Chiefari, Eusebio
Paonessa, Francesco
Iiritano, Stefania
Le Pera, Ilaria
Palmieri, Dario
Brunetti, Giuseppe
Lupo, Angelo
Colantuoni, Vittorio
Foti, Daniela
Gulletta, Elio
De Sarro, Giovambattista
Fusco, Alfredo
Brunetti, Antonio
author_sort Chiefari, Eusebio
collection PubMed
description BACKGROUND: We previously showed that mice lacking the high mobility group A1 gene (Hmga1-knockout mice) developed a type 2-like diabetic phenotype, in which cell-surface insulin receptors were dramatically reduced (below 10% of those in the controls) in the major targets of insulin action, and glucose intolerance was associated with increased peripheral insulin sensitivity. This particular phenotype supports the existence of compensatory mechanisms of insulin resistance that promote glucose uptake and disposal in peripheral tissues by either insulin-dependent or insulin-independent mechanisms. We explored the role of these mechanisms in the regulation of glucose homeostasis by studying the Hmga1-knockout mouse model. Also, the hypothesis that increased insulin sensitivity in Hmga1-deficient mice could be related to the deficit of an insulin resistance factor is discussed. RESULTS: We first show that HMGA1 is needed for basal and cAMP-induced retinol-binding protein 4 (RBP4) gene and protein expression in living cells of both human and mouse origin. Then, by employing the Hmga1-knockout mouse model, we provide evidence for the identification of a novel biochemical pathway involving HMGA1 and the RBP4, whose activation by the cAMP-signaling pathway may play an essential role for maintaining glucose metabolism homeostasis in vivo, in certain adverse metabolic conditions in which insulin action is precluded. In comparative studies of normal and mutant mice, glucagon administration caused a considerable upregulation of HMGA1 and RBP4 expression both at the mRNA and protein level in wild-type animals. Conversely, in Hmga1-knockout mice, basal and glucagon-mediated expression of RBP4 was severely attenuated and correlated inversely with increased Glut4 mRNA and protein abundance in skeletal muscle and fat, in which the activation state of the protein kinase Akt, an important downstream mediator of the metabolic effects of insulin on Glut4 translocation and carbohydrate metabolism, was simultaneously increased. CONCLUSION: These results indicate that HMGA1 is an important modulator of RBP4 gene expression in vivo. Further, they provide evidence for the identification of a novel biochemical pathway involving the cAMP-HMGA1-RBP4 system, whose activation may play a role in glucose homeostasis in both rodents and humans. Elucidating these mechanisms has importance for both fundamental biology and therapeutic implications.
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spelling pubmed-26988222009-06-19 The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis Chiefari, Eusebio Paonessa, Francesco Iiritano, Stefania Le Pera, Ilaria Palmieri, Dario Brunetti, Giuseppe Lupo, Angelo Colantuoni, Vittorio Foti, Daniela Gulletta, Elio De Sarro, Giovambattista Fusco, Alfredo Brunetti, Antonio BMC Biol Research Article BACKGROUND: We previously showed that mice lacking the high mobility group A1 gene (Hmga1-knockout mice) developed a type 2-like diabetic phenotype, in which cell-surface insulin receptors were dramatically reduced (below 10% of those in the controls) in the major targets of insulin action, and glucose intolerance was associated with increased peripheral insulin sensitivity. This particular phenotype supports the existence of compensatory mechanisms of insulin resistance that promote glucose uptake and disposal in peripheral tissues by either insulin-dependent or insulin-independent mechanisms. We explored the role of these mechanisms in the regulation of glucose homeostasis by studying the Hmga1-knockout mouse model. Also, the hypothesis that increased insulin sensitivity in Hmga1-deficient mice could be related to the deficit of an insulin resistance factor is discussed. RESULTS: We first show that HMGA1 is needed for basal and cAMP-induced retinol-binding protein 4 (RBP4) gene and protein expression in living cells of both human and mouse origin. Then, by employing the Hmga1-knockout mouse model, we provide evidence for the identification of a novel biochemical pathway involving HMGA1 and the RBP4, whose activation by the cAMP-signaling pathway may play an essential role for maintaining glucose metabolism homeostasis in vivo, in certain adverse metabolic conditions in which insulin action is precluded. In comparative studies of normal and mutant mice, glucagon administration caused a considerable upregulation of HMGA1 and RBP4 expression both at the mRNA and protein level in wild-type animals. Conversely, in Hmga1-knockout mice, basal and glucagon-mediated expression of RBP4 was severely attenuated and correlated inversely with increased Glut4 mRNA and protein abundance in skeletal muscle and fat, in which the activation state of the protein kinase Akt, an important downstream mediator of the metabolic effects of insulin on Glut4 translocation and carbohydrate metabolism, was simultaneously increased. CONCLUSION: These results indicate that HMGA1 is an important modulator of RBP4 gene expression in vivo. Further, they provide evidence for the identification of a novel biochemical pathway involving the cAMP-HMGA1-RBP4 system, whose activation may play a role in glucose homeostasis in both rodents and humans. Elucidating these mechanisms has importance for both fundamental biology and therapeutic implications. BioMed Central 2009-05-21 /pmc/articles/PMC2698822/ /pubmed/19460132 http://dx.doi.org/10.1186/1741-7007-7-24 Text en Copyright © 2009 Chiefari et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Chiefari, Eusebio
Paonessa, Francesco
Iiritano, Stefania
Le Pera, Ilaria
Palmieri, Dario
Brunetti, Giuseppe
Lupo, Angelo
Colantuoni, Vittorio
Foti, Daniela
Gulletta, Elio
De Sarro, Giovambattista
Fusco, Alfredo
Brunetti, Antonio
The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title_full The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title_fullStr The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title_full_unstemmed The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title_short The cAMP-HMGA1-RBP4 system: a novel biochemical pathway for modulating glucose homeostasis
title_sort camp-hmga1-rbp4 system: a novel biochemical pathway for modulating glucose homeostasis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2698822/
https://www.ncbi.nlm.nih.gov/pubmed/19460132
http://dx.doi.org/10.1186/1741-7007-7-24
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