Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.

Mutations affecting the expression of dystrophin result in progressive loss of skeletal muscle function and cardiomyopathy leading to early mortality. Interestingly, clinical studies revealed no correlation in disease severity or age of onset between cardiac and skeletal muscles, suggesting that dys...

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Main Authors: Eric K Johnson, Liwen Zhang, Marvin E Adams, Alistair Phillips, Michael A Freitas, Stanley C Froehner, Kari B Green-Church, Federica Montanaro
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3427372?pdf=render
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spelling doaj-3c5decfd48fe4009b024f1b4aa48a87d2020-11-25T00:23:38ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0178e4351510.1371/journal.pone.0043515Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.Eric K JohnsonLiwen ZhangMarvin E AdamsAlistair PhillipsMichael A FreitasStanley C FroehnerKari B Green-ChurchFederica MontanaroMutations affecting the expression of dystrophin result in progressive loss of skeletal muscle function and cardiomyopathy leading to early mortality. Interestingly, clinical studies revealed no correlation in disease severity or age of onset between cardiac and skeletal muscles, suggesting that dystrophin may play overlapping yet different roles in these two striated muscles. Since dystrophin serves as a structural and signaling scaffold, functional differences likely arise from tissue-specific protein interactions. To test this, we optimized a proteomics-based approach to purify, identify and compare the interactome of dystrophin between cardiac and skeletal muscles from as little as 50 mg of starting material. We found selective tissue-specific differences in the protein associations of cardiac and skeletal muscle full length dystrophin to syntrophins and dystrobrevins that couple dystrophin to signaling pathways. Importantly, we identified novel cardiac-specific interactions of dystrophin with proteins known to regulate cardiac contraction and to be involved in cardiac disease. Our approach overcomes a major challenge in the muscular dystrophy field of rapidly and consistently identifying bona fide dystrophin-interacting proteins in tissues. In addition, our findings support the existence of cardiac-specific functions of dystrophin and may guide studies into early triggers of cardiac disease in Duchenne and Becker muscular dystrophies.http://europepmc.org/articles/PMC3427372?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Eric K Johnson
Liwen Zhang
Marvin E Adams
Alistair Phillips
Michael A Freitas
Stanley C Froehner
Kari B Green-Church
Federica Montanaro
spellingShingle Eric K Johnson
Liwen Zhang
Marvin E Adams
Alistair Phillips
Michael A Freitas
Stanley C Froehner
Kari B Green-Church
Federica Montanaro
Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
PLoS ONE
author_facet Eric K Johnson
Liwen Zhang
Marvin E Adams
Alistair Phillips
Michael A Freitas
Stanley C Froehner
Kari B Green-Church
Federica Montanaro
author_sort Eric K Johnson
title Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
title_short Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
title_full Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
title_fullStr Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
title_full_unstemmed Proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
title_sort proteomic analysis reveals new cardiac-specific dystrophin-associated proteins.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Mutations affecting the expression of dystrophin result in progressive loss of skeletal muscle function and cardiomyopathy leading to early mortality. Interestingly, clinical studies revealed no correlation in disease severity or age of onset between cardiac and skeletal muscles, suggesting that dystrophin may play overlapping yet different roles in these two striated muscles. Since dystrophin serves as a structural and signaling scaffold, functional differences likely arise from tissue-specific protein interactions. To test this, we optimized a proteomics-based approach to purify, identify and compare the interactome of dystrophin between cardiac and skeletal muscles from as little as 50 mg of starting material. We found selective tissue-specific differences in the protein associations of cardiac and skeletal muscle full length dystrophin to syntrophins and dystrobrevins that couple dystrophin to signaling pathways. Importantly, we identified novel cardiac-specific interactions of dystrophin with proteins known to regulate cardiac contraction and to be involved in cardiac disease. Our approach overcomes a major challenge in the muscular dystrophy field of rapidly and consistently identifying bona fide dystrophin-interacting proteins in tissues. In addition, our findings support the existence of cardiac-specific functions of dystrophin and may guide studies into early triggers of cardiac disease in Duchenne and Becker muscular dystrophies.
url http://europepmc.org/articles/PMC3427372?pdf=render
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