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SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family

[Image: see text] Src-family kinases (SFKs) make up a family of nine homologous multidomain tyrosine kinases whose misregulation is responsible for human disease (cancer, diabetes, inflammation, etc.). Despite overall sequence homology and identical domain architecture, differences in SH3 and SH2 re...

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Autores principales: Register, A. C., Leonard, Stephen E., Maly, Dustin J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4230323/
https://www.ncbi.nlm.nih.gov/pubmed/25302671
http://dx.doi.org/10.1021/bi5008194
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author Register, A. C.
Leonard, Stephen E.
Maly, Dustin J.
author_facet Register, A. C.
Leonard, Stephen E.
Maly, Dustin J.
author_sort Register, A. C.
collection PubMed
description [Image: see text] Src-family kinases (SFKs) make up a family of nine homologous multidomain tyrosine kinases whose misregulation is responsible for human disease (cancer, diabetes, inflammation, etc.). Despite overall sequence homology and identical domain architecture, differences in SH3 and SH2 regulatory domain accessibility and ability to allosterically autoinhibit the ATP-binding site have been observed for the prototypical SFKs Src and Hck. Biochemical and structural studies indicate that the SH2-catalytic domain (SH2-CD) linker, the intramolecular binding epitope for SFK SH3 domains, is responsible for allosterically coupling SH3 domain engagement to autoinhibition of the ATP-binding site through the conformation of the αC helix. As a relatively unconserved region between SFK family members, SH2-CD linker sequence variability across the SFK family is likely a source of nonredundant cellular functions between individual SFKs via its effect on the availability of SH3 and SH2 domains for intermolecular interactions and post-translational modification. Using a combination of SFKs engineered with enhanced or weakened regulatory domain intramolecular interactions and conformation-selective inhibitors that report αC helix conformation, this study explores how SH2-CD sequence heterogeneity affects allosteric coupling across the SFK family by examining Lyn, Fyn1, and Fyn2. Analyses of Fyn1 and Fyn2, isoforms that are identical but for a 50-residue sequence spanning the SH2-CD linker, demonstrate that SH2-CD linker sequence differences can have profound effects on allosteric coupling between otherwise identical kinases. Most notably, a dampened allosteric connection between the SH3 domain and αC helix leads to greater autoinhibitory phosphorylation by Csk, illustrating the complex effects of SH2-CD linker sequence on cellular function.
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spelling pubmed-42303232015-10-10 SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family Register, A. C. Leonard, Stephen E. Maly, Dustin J. Biochemistry [Image: see text] Src-family kinases (SFKs) make up a family of nine homologous multidomain tyrosine kinases whose misregulation is responsible for human disease (cancer, diabetes, inflammation, etc.). Despite overall sequence homology and identical domain architecture, differences in SH3 and SH2 regulatory domain accessibility and ability to allosterically autoinhibit the ATP-binding site have been observed for the prototypical SFKs Src and Hck. Biochemical and structural studies indicate that the SH2-catalytic domain (SH2-CD) linker, the intramolecular binding epitope for SFK SH3 domains, is responsible for allosterically coupling SH3 domain engagement to autoinhibition of the ATP-binding site through the conformation of the αC helix. As a relatively unconserved region between SFK family members, SH2-CD linker sequence variability across the SFK family is likely a source of nonredundant cellular functions between individual SFKs via its effect on the availability of SH3 and SH2 domains for intermolecular interactions and post-translational modification. Using a combination of SFKs engineered with enhanced or weakened regulatory domain intramolecular interactions and conformation-selective inhibitors that report αC helix conformation, this study explores how SH2-CD sequence heterogeneity affects allosteric coupling across the SFK family by examining Lyn, Fyn1, and Fyn2. Analyses of Fyn1 and Fyn2, isoforms that are identical but for a 50-residue sequence spanning the SH2-CD linker, demonstrate that SH2-CD linker sequence differences can have profound effects on allosteric coupling between otherwise identical kinases. Most notably, a dampened allosteric connection between the SH3 domain and αC helix leads to greater autoinhibitory phosphorylation by Csk, illustrating the complex effects of SH2-CD linker sequence on cellular function. American Chemical Society 2014-10-10 2014-11-11 /pmc/articles/PMC4230323/ /pubmed/25302671 http://dx.doi.org/10.1021/bi5008194 Text en Copyright © 2014 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Register, A. C.
Leonard, Stephen E.
Maly, Dustin J.
SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title_full SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title_fullStr SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title_full_unstemmed SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title_short SH2-Catalytic Domain Linker Heterogeneity Influences Allosteric Coupling across the SFK Family
title_sort sh2-catalytic domain linker heterogeneity influences allosteric coupling across the sfk family
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4230323/
https://www.ncbi.nlm.nih.gov/pubmed/25302671
http://dx.doi.org/10.1021/bi5008194
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