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Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice

Deficiency in the signal adaptor protein sequestosome 1 (SQSTM1/A170/p62) in mice is associated with mature-onset obesity, accompanied by insulin and leptin resistance. We previously established that redox sensitive transcription factor Nrf2 up-regulates SQSTM1 expression in response to atherogenic...

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Autores principales: Sugimoto, Rika, Warabi, Eiji, Katayanagi, Satoru, Sakai, Satoshi, Uwayama, Junya, Yanagawa, Toru, Watanabe, Ayaka, Harada, Harumi, Kitamura, Kiyoshi, Noguchi, Noriko, Yoshida, Hiroshi, Siow, Richard CM, Mann, Giovanni E, Ishii, Tetsuro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3829020/
https://www.ncbi.nlm.nih.gov/pubmed/19780870
http://dx.doi.org/10.1111/j.1582-4934.2009.00914.x
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author Sugimoto, Rika
Warabi, Eiji
Katayanagi, Satoru
Sakai, Satoshi
Uwayama, Junya
Yanagawa, Toru
Watanabe, Ayaka
Harada, Harumi
Kitamura, Kiyoshi
Noguchi, Noriko
Yoshida, Hiroshi
Siow, Richard CM
Mann, Giovanni E
Ishii, Tetsuro
author_facet Sugimoto, Rika
Warabi, Eiji
Katayanagi, Satoru
Sakai, Satoshi
Uwayama, Junya
Yanagawa, Toru
Watanabe, Ayaka
Harada, Harumi
Kitamura, Kiyoshi
Noguchi, Noriko
Yoshida, Hiroshi
Siow, Richard CM
Mann, Giovanni E
Ishii, Tetsuro
author_sort Sugimoto, Rika
collection PubMed
description Deficiency in the signal adaptor protein sequestosome 1 (SQSTM1/A170/p62) in mice is associated with mature-onset obesity, accompanied by insulin and leptin resistance. We previously established that redox sensitive transcription factor Nrf2 up-regulates SQSTM1 expression in response to atherogenic stimuli or laminar shear stress in vascular cells, and here examine the role of SQSTM1 in neointimal hyperplasia and vascular remodelling in vivo following carotid artery ligation. Neointimal hyperplasia was markedly enhanced at ligation sites after 3 weeks in SQSTM1(–/–) compared with wild-type (WT) mice. The intimal area and stenotic ratio were, respectively, 2.1- and 1.7-fold higher in SQSTM1(−/–) mice, indicating enhanced proliferation of vascular smooth muscle cells (SMCs). When aortic SMCs were isolated from WT and SQSTM1(−/–) mice and cultured in vitro, we found that SQSTM1(–/–) SMCs proliferated more rapidly in response to foetal calf serum (FCS) and attained 2–3-fold higher cell densities compared to WT SMCs. Moreover, migration of SQSTM1(–/–) SMCs was enhanced compared to WT SMCs. Early and late phases of p38(MAPK) activation in response to FCS stimulation were also more enhanced in SQSTM1(–/–) SMCs, and inhibitors of p38 and ERK1/2 signalling pathways significantly attenuated SMC proliferation. In summary, SQSTM1(–/–) mice exhibit enhanced neointimal hyperplasia and vascular remodelling following arterial ligation in vivo. The enhanced proliferation of SQSTM1(–/–) aortic SMCs in vitro highlights a novel role for SQSTM1 in suppressing smooth muscle proliferation following vascular injury.
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spelling pubmed-38290202015-04-20 Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice Sugimoto, Rika Warabi, Eiji Katayanagi, Satoru Sakai, Satoshi Uwayama, Junya Yanagawa, Toru Watanabe, Ayaka Harada, Harumi Kitamura, Kiyoshi Noguchi, Noriko Yoshida, Hiroshi Siow, Richard CM Mann, Giovanni E Ishii, Tetsuro J Cell Mol Med Original Articles Deficiency in the signal adaptor protein sequestosome 1 (SQSTM1/A170/p62) in mice is associated with mature-onset obesity, accompanied by insulin and leptin resistance. We previously established that redox sensitive transcription factor Nrf2 up-regulates SQSTM1 expression in response to atherogenic stimuli or laminar shear stress in vascular cells, and here examine the role of SQSTM1 in neointimal hyperplasia and vascular remodelling in vivo following carotid artery ligation. Neointimal hyperplasia was markedly enhanced at ligation sites after 3 weeks in SQSTM1(–/–) compared with wild-type (WT) mice. The intimal area and stenotic ratio were, respectively, 2.1- and 1.7-fold higher in SQSTM1(−/–) mice, indicating enhanced proliferation of vascular smooth muscle cells (SMCs). When aortic SMCs were isolated from WT and SQSTM1(−/–) mice and cultured in vitro, we found that SQSTM1(–/–) SMCs proliferated more rapidly in response to foetal calf serum (FCS) and attained 2–3-fold higher cell densities compared to WT SMCs. Moreover, migration of SQSTM1(–/–) SMCs was enhanced compared to WT SMCs. Early and late phases of p38(MAPK) activation in response to FCS stimulation were also more enhanced in SQSTM1(–/–) SMCs, and inhibitors of p38 and ERK1/2 signalling pathways significantly attenuated SMC proliferation. In summary, SQSTM1(–/–) mice exhibit enhanced neointimal hyperplasia and vascular remodelling following arterial ligation in vivo. The enhanced proliferation of SQSTM1(–/–) aortic SMCs in vitro highlights a novel role for SQSTM1 in suppressing smooth muscle proliferation following vascular injury. Blackwell Publishing Ltd 2010-06 2009-09-24 /pmc/articles/PMC3829020/ /pubmed/19780870 http://dx.doi.org/10.1111/j.1582-4934.2009.00914.x Text en © 2009 The Authors Journal compilation © 2010 Foundation for Cellular and Molecular Medicine/Blackwell Publishing Ltd
spellingShingle Original Articles
Sugimoto, Rika
Warabi, Eiji
Katayanagi, Satoru
Sakai, Satoshi
Uwayama, Junya
Yanagawa, Toru
Watanabe, Ayaka
Harada, Harumi
Kitamura, Kiyoshi
Noguchi, Noriko
Yoshida, Hiroshi
Siow, Richard CM
Mann, Giovanni E
Ishii, Tetsuro
Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title_full Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title_fullStr Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title_full_unstemmed Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title_short Enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
title_sort enhanced neointimal hyperplasia and carotid artery remodelling in sequestosome 1 deficient mice
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3829020/
https://www.ncbi.nlm.nih.gov/pubmed/19780870
http://dx.doi.org/10.1111/j.1582-4934.2009.00914.x
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