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The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner

We have isolated a murine cDNA encoding a 9-kD protein, Chisel (Csl), in a screen for transcriptional targets of the cardiac homeodomain factor Nkx2-5. Csl transcripts were detected in atria and ventricles of the heart and in all skeletal muscles and smooth muscles of the stomach and pulmonary veins...

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Autores principales: Palmer, Steve, Groves, Nicola, Schindeler, Aaron, Yeoh, Thomas, Biben, Christine, Wang, Cheng-Chun, Sparrow, Duncan B., Barnett, Louise, Jenkins, Nancy A., Copeland, Neal G., Koentgen, Frank, Mohun, Tim, Harvey, Richard P.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2001
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2174333/
https://www.ncbi.nlm.nih.gov/pubmed/11381084
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author Palmer, Steve
Groves, Nicola
Schindeler, Aaron
Yeoh, Thomas
Biben, Christine
Wang, Cheng-Chun
Sparrow, Duncan B.
Barnett, Louise
Jenkins, Nancy A.
Copeland, Neal G.
Koentgen, Frank
Mohun, Tim
Harvey, Richard P.
author_facet Palmer, Steve
Groves, Nicola
Schindeler, Aaron
Yeoh, Thomas
Biben, Christine
Wang, Cheng-Chun
Sparrow, Duncan B.
Barnett, Louise
Jenkins, Nancy A.
Copeland, Neal G.
Koentgen, Frank
Mohun, Tim
Harvey, Richard P.
author_sort Palmer, Steve
collection PubMed
description We have isolated a murine cDNA encoding a 9-kD protein, Chisel (Csl), in a screen for transcriptional targets of the cardiac homeodomain factor Nkx2-5. Csl transcripts were detected in atria and ventricles of the heart and in all skeletal muscles and smooth muscles of the stomach and pulmonary veins. Csl protein was distributed throughout the cytoplasm in fetal muscles, although costameric and M-line localization to the muscle cytoskeleton became obvious after further maturation. Targeted disruption of Csl showed no overt muscle phenotype. However, ectopic expression in C2C12 myoblasts induced formation of lamellipodia in which Csl protein became tethered to membrane ruffles. Migration of these cells was retarded in a monolayer wound repair assay. Csl-expressing myoblasts differentiated and fused normally, although in the presence of insulin-like growth factor (IGF)-1 they showed dramatically enhanced fusion, leading to formation of large dysmorphogenic “myosacs.” The activities of transcription factors nuclear factor of activated T cells (NFAT) and myocyte enhancer–binding factor (MEF)2, were also enhanced in an IGF-1 signaling–dependent manner. The dynamic cytoskeletal localization of Csl and its dominant effects on cell shape and behavior and transcription factor activity suggest that Csl plays a role in the regulatory network through which muscle cells coordinate their structural and functional states during growth, adaptation, and repair.
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spelling pubmed-21743332008-05-01 The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner Palmer, Steve Groves, Nicola Schindeler, Aaron Yeoh, Thomas Biben, Christine Wang, Cheng-Chun Sparrow, Duncan B. Barnett, Louise Jenkins, Nancy A. Copeland, Neal G. Koentgen, Frank Mohun, Tim Harvey, Richard P. J Cell Biol Original Article We have isolated a murine cDNA encoding a 9-kD protein, Chisel (Csl), in a screen for transcriptional targets of the cardiac homeodomain factor Nkx2-5. Csl transcripts were detected in atria and ventricles of the heart and in all skeletal muscles and smooth muscles of the stomach and pulmonary veins. Csl protein was distributed throughout the cytoplasm in fetal muscles, although costameric and M-line localization to the muscle cytoskeleton became obvious after further maturation. Targeted disruption of Csl showed no overt muscle phenotype. However, ectopic expression in C2C12 myoblasts induced formation of lamellipodia in which Csl protein became tethered to membrane ruffles. Migration of these cells was retarded in a monolayer wound repair assay. Csl-expressing myoblasts differentiated and fused normally, although in the presence of insulin-like growth factor (IGF)-1 they showed dramatically enhanced fusion, leading to formation of large dysmorphogenic “myosacs.” The activities of transcription factors nuclear factor of activated T cells (NFAT) and myocyte enhancer–binding factor (MEF)2, were also enhanced in an IGF-1 signaling–dependent manner. The dynamic cytoskeletal localization of Csl and its dominant effects on cell shape and behavior and transcription factor activity suggest that Csl plays a role in the regulatory network through which muscle cells coordinate their structural and functional states during growth, adaptation, and repair. The Rockefeller University Press 2001-05-28 /pmc/articles/PMC2174333/ /pubmed/11381084 Text en © 2001 The Rockefeller University Press This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Original Article
Palmer, Steve
Groves, Nicola
Schindeler, Aaron
Yeoh, Thomas
Biben, Christine
Wang, Cheng-Chun
Sparrow, Duncan B.
Barnett, Louise
Jenkins, Nancy A.
Copeland, Neal G.
Koentgen, Frank
Mohun, Tim
Harvey, Richard P.
The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title_full The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title_fullStr The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title_full_unstemmed The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title_short The Small Muscle-Specific Protein Csl Modifies Cell Shape and Promotes Myocyte Fusion in an Insulin-like Growth Factor 1–Dependent Manner
title_sort small muscle-specific protein csl modifies cell shape and promotes myocyte fusion in an insulin-like growth factor 1–dependent manner
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2174333/
https://www.ncbi.nlm.nih.gov/pubmed/11381084
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