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Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling

Vitamin D receptor (VDR) is a substrate for modification with small ubiquitin-like modifier (SUMO). To further assess the role of reversible SUMOylation within the vitamin D hormonal response, we evaluated the effects of sentrin/SUMO-specific proteases (SENPs) that can function to remove small ubiqu...

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Autores principales: Lee, Wai-Ping, Jena, Sarita, Doherty, Declan, Ventakesh, Jaganathan, Schimdt, Joachim, Furmick, Julie, Widener, Tim, Lemau, Jana, Jurutka, Peter W., Thompson, Paul D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3930751/
https://www.ncbi.nlm.nih.gov/pubmed/24586832
http://dx.doi.org/10.1371/journal.pone.0089506
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author Lee, Wai-Ping
Jena, Sarita
Doherty, Declan
Ventakesh, Jaganathan
Schimdt, Joachim
Furmick, Julie
Widener, Tim
Lemau, Jana
Jurutka, Peter W.
Thompson, Paul D.
author_facet Lee, Wai-Ping
Jena, Sarita
Doherty, Declan
Ventakesh, Jaganathan
Schimdt, Joachim
Furmick, Julie
Widener, Tim
Lemau, Jana
Jurutka, Peter W.
Thompson, Paul D.
author_sort Lee, Wai-Ping
collection PubMed
description Vitamin D receptor (VDR) is a substrate for modification with small ubiquitin-like modifier (SUMO). To further assess the role of reversible SUMOylation within the vitamin D hormonal response, we evaluated the effects of sentrin/SUMO-specific proteases (SENPs) that can function to remove small ubiquitin-like modifier (SUMO) from target proteins upon the activities of VDR and related receptors. We report that SENP1 and SENP2 strikingly potentiate ligand-mediated transactivation of VDR and also its heterodimeric partner, retinoid X receptor (RXRα) with depletion of cellular SENP1 significantly diminishing the hormonal responsiveness of the endogenous vitamin D target gene CYP24A1. We find that SENP-directed modulation of VDR activity is cell line-dependent, achieving potent modulatory effects in Caco-2 and HEK-293 cells, while in MCF-7 cells the vitamin D signal is unaffected by any tested SENP. In support of their function as novel modulators of the vitamin D hormonal pathway we demonstrate that both SENP1 and SENP2 can interact with VDR and reverse its modification with SUMO2. In a preliminary analysis we identify lysine 91, a residue known to be critical for formation and DNA binding of the VDR-RXR heterodimer, as a minor SUMO acceptor site within VDR. In combination, our results support a repressor function for SUMOylation of VDR and reveal SENPs as a novel class of VDR/RXR co-regulatory protein that significantly modulate the vitamin D response and which could also have important impact upon the functionality of both RXR-containing homo and heterodimers.
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spelling pubmed-39307512014-02-25 Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling Lee, Wai-Ping Jena, Sarita Doherty, Declan Ventakesh, Jaganathan Schimdt, Joachim Furmick, Julie Widener, Tim Lemau, Jana Jurutka, Peter W. Thompson, Paul D. PLoS One Research Article Vitamin D receptor (VDR) is a substrate for modification with small ubiquitin-like modifier (SUMO). To further assess the role of reversible SUMOylation within the vitamin D hormonal response, we evaluated the effects of sentrin/SUMO-specific proteases (SENPs) that can function to remove small ubiquitin-like modifier (SUMO) from target proteins upon the activities of VDR and related receptors. We report that SENP1 and SENP2 strikingly potentiate ligand-mediated transactivation of VDR and also its heterodimeric partner, retinoid X receptor (RXRα) with depletion of cellular SENP1 significantly diminishing the hormonal responsiveness of the endogenous vitamin D target gene CYP24A1. We find that SENP-directed modulation of VDR activity is cell line-dependent, achieving potent modulatory effects in Caco-2 and HEK-293 cells, while in MCF-7 cells the vitamin D signal is unaffected by any tested SENP. In support of their function as novel modulators of the vitamin D hormonal pathway we demonstrate that both SENP1 and SENP2 can interact with VDR and reverse its modification with SUMO2. In a preliminary analysis we identify lysine 91, a residue known to be critical for formation and DNA binding of the VDR-RXR heterodimer, as a minor SUMO acceptor site within VDR. In combination, our results support a repressor function for SUMOylation of VDR and reveal SENPs as a novel class of VDR/RXR co-regulatory protein that significantly modulate the vitamin D response and which could also have important impact upon the functionality of both RXR-containing homo and heterodimers. Public Library of Science 2014-02-20 /pmc/articles/PMC3930751/ /pubmed/24586832 http://dx.doi.org/10.1371/journal.pone.0089506 Text en © 2014 Lee et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lee, Wai-Ping
Jena, Sarita
Doherty, Declan
Ventakesh, Jaganathan
Schimdt, Joachim
Furmick, Julie
Widener, Tim
Lemau, Jana
Jurutka, Peter W.
Thompson, Paul D.
Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title_full Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title_fullStr Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title_full_unstemmed Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title_short Sentrin/SUMO Specific Proteases as Novel Tissue-Selective Modulators of Vitamin D Receptor-Mediated Signaling
title_sort sentrin/sumo specific proteases as novel tissue-selective modulators of vitamin d receptor-mediated signaling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3930751/
https://www.ncbi.nlm.nih.gov/pubmed/24586832
http://dx.doi.org/10.1371/journal.pone.0089506
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