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Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation

Deletion of c-Src, a ubiquitously expressed tyrosine kinase, results in osteoclast dysfunction and osteopetrosis, in which bones harden into “stone.” In contrast, deletion of the genes encoding other members of the Src family kinase (SFK) fails to produce an osteopetrotic phenotype. This suggests th...

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Autores principales: Matsubara, Takuma, Addison, William N., Kokabu, Shoichiro, Neff, Lynn, Horne, William, Gori, Francesca, Baron, Roland
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8196221/
https://www.ncbi.nlm.nih.gov/pubmed/34019873
http://dx.doi.org/10.1016/j.jbc.2021.100790
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author Matsubara, Takuma
Addison, William N.
Kokabu, Shoichiro
Neff, Lynn
Horne, William
Gori, Francesca
Baron, Roland
author_facet Matsubara, Takuma
Addison, William N.
Kokabu, Shoichiro
Neff, Lynn
Horne, William
Gori, Francesca
Baron, Roland
author_sort Matsubara, Takuma
collection PubMed
description Deletion of c-Src, a ubiquitously expressed tyrosine kinase, results in osteoclast dysfunction and osteopetrosis, in which bones harden into “stone.” In contrast, deletion of the genes encoding other members of the Src family kinase (SFK) fails to produce an osteopetrotic phenotype. This suggests that c-Src performs a unique function in the osteoclast that cannot be compensated for by other SFKs. We aimed to identify the molecular basis of this unique role in osteoclasts and bone resorption. We found that c-Src, Lyn, and Fyn were the most highly expressed SFKs in WT osteoclasts, whereas Hck, Lck, Blk, and Fgr displayed low levels of expression. Formation of the podosome belt, clusters of unique actin assemblies, was disrupted in src(−/−) osteoclasts; introduction of constitutively activated SFKs revealed that only c-Src and Fyn could restore this process. To identify the key structural domains responsible, we constructed chimeric Src–Hck and Src–Lyn constructs in which the unique, SH3, SH2, or catalytic domains had been swapped. We found that the Src unique, SH3, and kinase domains were each crucial to establish Src functionality. The SH2 domain could however be substituted with Lyn or Hck SH2 domains. Furthermore, we demonstrate that c-Src’s functionality is, in part, derived from an SH3–proximal proline-rich domain interaction with c-Cbl, leading to phosphorylation of c-Cbl Tyr700. These data help clarify Src’s unique functionality in the organization of the cytoskeleton in osteoclasts, required for efficient bone resorption and explain why c-Src cannot be replaced, in osteoclasts, by other SFKs.
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spelling pubmed-81962212021-06-16 Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation Matsubara, Takuma Addison, William N. Kokabu, Shoichiro Neff, Lynn Horne, William Gori, Francesca Baron, Roland J Biol Chem Research Article Deletion of c-Src, a ubiquitously expressed tyrosine kinase, results in osteoclast dysfunction and osteopetrosis, in which bones harden into “stone.” In contrast, deletion of the genes encoding other members of the Src family kinase (SFK) fails to produce an osteopetrotic phenotype. This suggests that c-Src performs a unique function in the osteoclast that cannot be compensated for by other SFKs. We aimed to identify the molecular basis of this unique role in osteoclasts and bone resorption. We found that c-Src, Lyn, and Fyn were the most highly expressed SFKs in WT osteoclasts, whereas Hck, Lck, Blk, and Fgr displayed low levels of expression. Formation of the podosome belt, clusters of unique actin assemblies, was disrupted in src(−/−) osteoclasts; introduction of constitutively activated SFKs revealed that only c-Src and Fyn could restore this process. To identify the key structural domains responsible, we constructed chimeric Src–Hck and Src–Lyn constructs in which the unique, SH3, SH2, or catalytic domains had been swapped. We found that the Src unique, SH3, and kinase domains were each crucial to establish Src functionality. The SH2 domain could however be substituted with Lyn or Hck SH2 domains. Furthermore, we demonstrate that c-Src’s functionality is, in part, derived from an SH3–proximal proline-rich domain interaction with c-Cbl, leading to phosphorylation of c-Cbl Tyr700. These data help clarify Src’s unique functionality in the organization of the cytoskeleton in osteoclasts, required for efficient bone resorption and explain why c-Src cannot be replaced, in osteoclasts, by other SFKs. American Society for Biochemistry and Molecular Biology 2021-05-18 /pmc/articles/PMC8196221/ /pubmed/34019873 http://dx.doi.org/10.1016/j.jbc.2021.100790 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Matsubara, Takuma
Addison, William N.
Kokabu, Shoichiro
Neff, Lynn
Horne, William
Gori, Francesca
Baron, Roland
Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title_full Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title_fullStr Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title_full_unstemmed Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title_short Characterization of unique functionalities in c-Src domains required for osteoclast podosome belt formation
title_sort characterization of unique functionalities in c-src domains required for osteoclast podosome belt formation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8196221/
https://www.ncbi.nlm.nih.gov/pubmed/34019873
http://dx.doi.org/10.1016/j.jbc.2021.100790
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