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Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH

The human proteome is replete with short linear motifs (SLiMs) of four to six residues that are critical for protein-protein interactions, yet the importance of the sequence surrounding such motifs is underexplored. We devised a proteomic screen to examine the influence of SLiM sequence context on p...

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Autores principales: Hwang, Theresa, Parker, Sara S, Hill, Samantha M, Grant, Robert A, Ilunga, Meucci W, Sivaraman, Venkatesh, Mouneimne, Ghassan, Keating, Amy E
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8789275/
https://www.ncbi.nlm.nih.gov/pubmed/35076015
http://dx.doi.org/10.7554/eLife.70680
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author Hwang, Theresa
Parker, Sara S
Hill, Samantha M
Grant, Robert A
Ilunga, Meucci W
Sivaraman, Venkatesh
Mouneimne, Ghassan
Keating, Amy E
author_facet Hwang, Theresa
Parker, Sara S
Hill, Samantha M
Grant, Robert A
Ilunga, Meucci W
Sivaraman, Venkatesh
Mouneimne, Ghassan
Keating, Amy E
author_sort Hwang, Theresa
collection PubMed
description The human proteome is replete with short linear motifs (SLiMs) of four to six residues that are critical for protein-protein interactions, yet the importance of the sequence surrounding such motifs is underexplored. We devised a proteomic screen to examine the influence of SLiM sequence context on protein-protein interactions. Focusing on the EVH1 domain of human ENAH, an actin regulator that is highly expressed in invasive cancers, we screened 36-residue proteome-derived peptides and discovered new interaction partners of ENAH and diverse mechanisms by which context influences binding. A pocket on the ENAH EVH1 domain that has diverged from other Ena/VASP paralogs recognizes extended SLiMs and favors motif-flanking proline residues. Many high-affinity ENAH binders that contain two proline-rich SLiMs use a noncanonical site on the EVH1 domain for binding and display a thermodynamic signature consistent with the two-motif chain engaging a single domain. We also found that photoreceptor cilium actin regulator (PCARE) uses an extended 23-residue region to obtain a higher affinity than any known ENAH EVH1-binding motif. Our screen provides a way to uncover the effects of proteomic context on motif-mediated binding, revealing diverse mechanisms of control over EVH1 interactions and establishing that SLiMs can’t be fully understood outside of their native context.
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spelling pubmed-87892752022-01-27 Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH Hwang, Theresa Parker, Sara S Hill, Samantha M Grant, Robert A Ilunga, Meucci W Sivaraman, Venkatesh Mouneimne, Ghassan Keating, Amy E eLife Biochemistry and Chemical Biology The human proteome is replete with short linear motifs (SLiMs) of four to six residues that are critical for protein-protein interactions, yet the importance of the sequence surrounding such motifs is underexplored. We devised a proteomic screen to examine the influence of SLiM sequence context on protein-protein interactions. Focusing on the EVH1 domain of human ENAH, an actin regulator that is highly expressed in invasive cancers, we screened 36-residue proteome-derived peptides and discovered new interaction partners of ENAH and diverse mechanisms by which context influences binding. A pocket on the ENAH EVH1 domain that has diverged from other Ena/VASP paralogs recognizes extended SLiMs and favors motif-flanking proline residues. Many high-affinity ENAH binders that contain two proline-rich SLiMs use a noncanonical site on the EVH1 domain for binding and display a thermodynamic signature consistent with the two-motif chain engaging a single domain. We also found that photoreceptor cilium actin regulator (PCARE) uses an extended 23-residue region to obtain a higher affinity than any known ENAH EVH1-binding motif. Our screen provides a way to uncover the effects of proteomic context on motif-mediated binding, revealing diverse mechanisms of control over EVH1 interactions and establishing that SLiMs can’t be fully understood outside of their native context. eLife Sciences Publications, Ltd 2022-01-25 /pmc/articles/PMC8789275/ /pubmed/35076015 http://dx.doi.org/10.7554/eLife.70680 Text en © 2022, Hwang et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Hwang, Theresa
Parker, Sara S
Hill, Samantha M
Grant, Robert A
Ilunga, Meucci W
Sivaraman, Venkatesh
Mouneimne, Ghassan
Keating, Amy E
Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title_full Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title_fullStr Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title_full_unstemmed Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title_short Native proline-rich motifs exploit sequence context to target actin-remodeling Ena/VASP protein ENAH
title_sort native proline-rich motifs exploit sequence context to target actin-remodeling ena/vasp protein enah
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8789275/
https://www.ncbi.nlm.nih.gov/pubmed/35076015
http://dx.doi.org/10.7554/eLife.70680
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