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TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis

Structural cardiac remodeling, accompanying cytoskeletal reorganization of cardiac cells, is a major clinical outcome of diastolic heart failure. A highly local Ca(2+) influx across the plasma membrane has been suggested to code signals to induce Rho GTPase-mediated fibrosis, but it is obscure how t...

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Autores principales: Numaga-Tomita, Takuro, Kitajima, Naoyuki, Kuroda, Takuya, Nishimura, Akiyuki, Miyano, Kei, Yasuda, Satoshi, Kuwahara, Koichiro, Sato, Yoji, Ide, Tomomi, Birnbaumer, Lutz, Sumimoto, Hideki, Mori, Yasuo, Nishida, Motohiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5171702/
https://www.ncbi.nlm.nih.gov/pubmed/27991560
http://dx.doi.org/10.1038/srep39383
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author Numaga-Tomita, Takuro
Kitajima, Naoyuki
Kuroda, Takuya
Nishimura, Akiyuki
Miyano, Kei
Yasuda, Satoshi
Kuwahara, Koichiro
Sato, Yoji
Ide, Tomomi
Birnbaumer, Lutz
Sumimoto, Hideki
Mori, Yasuo
Nishida, Motohiro
author_facet Numaga-Tomita, Takuro
Kitajima, Naoyuki
Kuroda, Takuya
Nishimura, Akiyuki
Miyano, Kei
Yasuda, Satoshi
Kuwahara, Koichiro
Sato, Yoji
Ide, Tomomi
Birnbaumer, Lutz
Sumimoto, Hideki
Mori, Yasuo
Nishida, Motohiro
author_sort Numaga-Tomita, Takuro
collection PubMed
description Structural cardiac remodeling, accompanying cytoskeletal reorganization of cardiac cells, is a major clinical outcome of diastolic heart failure. A highly local Ca(2+) influx across the plasma membrane has been suggested to code signals to induce Rho GTPase-mediated fibrosis, but it is obscure how the heart specifically decodes the local Ca(2+) influx as a cytoskeletal reorganizing signal under the conditions of the rhythmic Ca(2+) handling required for pump function. We found that an inhibition of transient receptor potential canonical 3 (TRPC3) channel activity exhibited resistance to Rho-mediated maladaptive fibrosis in pressure-overloaded mouse hearts. Proteomic analysis revealed that microtubule-associated Rho guanine nucleotide exchange factor, GEF-H1, participates in TRPC3-mediated RhoA activation induced by mechanical stress in cardiomyocytes and transforming growth factor (TGF) β stimulation in cardiac fibroblasts. We previously revealed that TRPC3 functionally interacts with microtubule-associated NADPH oxidase (Nox) 2, and inhibition of Nox2 attenuated mechanical stretch-induced GEF-H1 activation in cardiomyocytes. Finally, pharmacological TRPC3 inhibition significantly suppressed fibrotic responses in human cardiomyocytes and cardiac fibroblasts. These results strongly suggest that microtubule-localized TRPC3-GEF-H1 axis mediates fibrotic responses commonly in cardiac myocytes and fibroblasts induced by physico-chemical stimulation.
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spelling pubmed-51717022016-12-28 TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis Numaga-Tomita, Takuro Kitajima, Naoyuki Kuroda, Takuya Nishimura, Akiyuki Miyano, Kei Yasuda, Satoshi Kuwahara, Koichiro Sato, Yoji Ide, Tomomi Birnbaumer, Lutz Sumimoto, Hideki Mori, Yasuo Nishida, Motohiro Sci Rep Article Structural cardiac remodeling, accompanying cytoskeletal reorganization of cardiac cells, is a major clinical outcome of diastolic heart failure. A highly local Ca(2+) influx across the plasma membrane has been suggested to code signals to induce Rho GTPase-mediated fibrosis, but it is obscure how the heart specifically decodes the local Ca(2+) influx as a cytoskeletal reorganizing signal under the conditions of the rhythmic Ca(2+) handling required for pump function. We found that an inhibition of transient receptor potential canonical 3 (TRPC3) channel activity exhibited resistance to Rho-mediated maladaptive fibrosis in pressure-overloaded mouse hearts. Proteomic analysis revealed that microtubule-associated Rho guanine nucleotide exchange factor, GEF-H1, participates in TRPC3-mediated RhoA activation induced by mechanical stress in cardiomyocytes and transforming growth factor (TGF) β stimulation in cardiac fibroblasts. We previously revealed that TRPC3 functionally interacts with microtubule-associated NADPH oxidase (Nox) 2, and inhibition of Nox2 attenuated mechanical stretch-induced GEF-H1 activation in cardiomyocytes. Finally, pharmacological TRPC3 inhibition significantly suppressed fibrotic responses in human cardiomyocytes and cardiac fibroblasts. These results strongly suggest that microtubule-localized TRPC3-GEF-H1 axis mediates fibrotic responses commonly in cardiac myocytes and fibroblasts induced by physico-chemical stimulation. Nature Publishing Group 2016-12-19 /pmc/articles/PMC5171702/ /pubmed/27991560 http://dx.doi.org/10.1038/srep39383 Text en Copyright © 2016, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Numaga-Tomita, Takuro
Kitajima, Naoyuki
Kuroda, Takuya
Nishimura, Akiyuki
Miyano, Kei
Yasuda, Satoshi
Kuwahara, Koichiro
Sato, Yoji
Ide, Tomomi
Birnbaumer, Lutz
Sumimoto, Hideki
Mori, Yasuo
Nishida, Motohiro
TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title_full TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title_fullStr TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title_full_unstemmed TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title_short TRPC3-GEF-H1 axis mediates pressure overload-induced cardiac fibrosis
title_sort trpc3-gef-h1 axis mediates pressure overload-induced cardiac fibrosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5171702/
https://www.ncbi.nlm.nih.gov/pubmed/27991560
http://dx.doi.org/10.1038/srep39383
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