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A transcriptional network underlies susceptibility to kidney disease progression

The molecular networks that control the progression of chronic kidney diseases (CKD) are poorly defined. We have recently shown that the susceptibility to development of renal lesions after nephron reduction is controlled by a locus on mouse chromosome 6 and requires epidermal growth factor receptor...

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Autores principales: Laouari, Denise, Burtin, Martine, Phelep, Aurélie, Bienaime, Frank, Noel, Laure-Hélène, Lee, David C, Legendre, Christophe, Friedlander, Gérard, Pontoglio, Marco, Terzi, Fabiola
Formato: Online Artículo Texto
Lenguaje:English
Publicado: WILEY-VCH Verlag 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3494079/
https://www.ncbi.nlm.nih.gov/pubmed/22711280
http://dx.doi.org/10.1002/emmm.201101127
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author Laouari, Denise
Burtin, Martine
Phelep, Aurélie
Bienaime, Frank
Noel, Laure-Hélène
Lee, David C
Legendre, Christophe
Friedlander, Gérard
Pontoglio, Marco
Terzi, Fabiola
author_facet Laouari, Denise
Burtin, Martine
Phelep, Aurélie
Bienaime, Frank
Noel, Laure-Hélène
Lee, David C
Legendre, Christophe
Friedlander, Gérard
Pontoglio, Marco
Terzi, Fabiola
author_sort Laouari, Denise
collection PubMed
description The molecular networks that control the progression of chronic kidney diseases (CKD) are poorly defined. We have recently shown that the susceptibility to development of renal lesions after nephron reduction is controlled by a locus on mouse chromosome 6 and requires epidermal growth factor receptor (EGFR) activation. Here, we identified microphthalmia-associated transcription factor A (MITF-A), a bHLH-Zip transcription factor, as a modifier of CKD progression. Sequence analysis revealed a strain-specific mutation in the 5′ UTR that decreases MITF-A protein synthesis in lesion-prone friend virus B NIH (FVB/N) mice. More importantly, we dissected the molecular pathway by which MITF-A modulates CKD progression. MITF-A interacts with histone deacetylases to repress the transcription of TGF-α, a ligand of EGFR, and antagonizes transactivation by its related partner, transcription factor E3 (TFE3). Consistent with the key role of this network in CKD, Tgfa gene inactivation protected FVB/N mice from renal deterioration after nephron reduction. These data are relevant to human CKD, as we found that the TFE3/MITF-A ratio was increased in patients with damaged kidneys. Our study uncovers a novel transcriptional network and unveils novel potential prognostic and therapeutic targets for preventing human CKD progression.
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spelling pubmed-34940792012-11-09 A transcriptional network underlies susceptibility to kidney disease progression Laouari, Denise Burtin, Martine Phelep, Aurélie Bienaime, Frank Noel, Laure-Hélène Lee, David C Legendre, Christophe Friedlander, Gérard Pontoglio, Marco Terzi, Fabiola EMBO Mol Med Research Articles The molecular networks that control the progression of chronic kidney diseases (CKD) are poorly defined. We have recently shown that the susceptibility to development of renal lesions after nephron reduction is controlled by a locus on mouse chromosome 6 and requires epidermal growth factor receptor (EGFR) activation. Here, we identified microphthalmia-associated transcription factor A (MITF-A), a bHLH-Zip transcription factor, as a modifier of CKD progression. Sequence analysis revealed a strain-specific mutation in the 5′ UTR that decreases MITF-A protein synthesis in lesion-prone friend virus B NIH (FVB/N) mice. More importantly, we dissected the molecular pathway by which MITF-A modulates CKD progression. MITF-A interacts with histone deacetylases to repress the transcription of TGF-α, a ligand of EGFR, and antagonizes transactivation by its related partner, transcription factor E3 (TFE3). Consistent with the key role of this network in CKD, Tgfa gene inactivation protected FVB/N mice from renal deterioration after nephron reduction. These data are relevant to human CKD, as we found that the TFE3/MITF-A ratio was increased in patients with damaged kidneys. Our study uncovers a novel transcriptional network and unveils novel potential prognostic and therapeutic targets for preventing human CKD progression. WILEY-VCH Verlag 2012-08 2012-06-18 /pmc/articles/PMC3494079/ /pubmed/22711280 http://dx.doi.org/10.1002/emmm.201101127 Text en Copyright © 2012 EMBO Molecular Medicine
spellingShingle Research Articles
Laouari, Denise
Burtin, Martine
Phelep, Aurélie
Bienaime, Frank
Noel, Laure-Hélène
Lee, David C
Legendre, Christophe
Friedlander, Gérard
Pontoglio, Marco
Terzi, Fabiola
A transcriptional network underlies susceptibility to kidney disease progression
title A transcriptional network underlies susceptibility to kidney disease progression
title_full A transcriptional network underlies susceptibility to kidney disease progression
title_fullStr A transcriptional network underlies susceptibility to kidney disease progression
title_full_unstemmed A transcriptional network underlies susceptibility to kidney disease progression
title_short A transcriptional network underlies susceptibility to kidney disease progression
title_sort transcriptional network underlies susceptibility to kidney disease progression
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3494079/
https://www.ncbi.nlm.nih.gov/pubmed/22711280
http://dx.doi.org/10.1002/emmm.201101127
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