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Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators

Transcriptional coactivators are a molecular recognition marvel because a single domain within these proteins, the activator binding domain or ABD, interacts with multiple compositionally diverse transcriptional activators. Also remarkable is the structural diversity among ABDs, which range from con...

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Autores principales: Henderson, Andrew R., Henley, Matthew J., Foster, Nicholas J., Peiffer, Amanda L., Beyersdorf, Matthew S., Stanford, Kevon D., Sturlis, Steven M., Linhares, Brian M., Hill, Zachary B., Wells, James A., Cierpicki, Tomasz, Brooks, Charles L., Fierke, Carol A., Mapp, Anna K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6130367/
https://www.ncbi.nlm.nih.gov/pubmed/30127017
http://dx.doi.org/10.1073/pnas.1806202115
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author Henderson, Andrew R.
Henley, Matthew J.
Foster, Nicholas J.
Peiffer, Amanda L.
Beyersdorf, Matthew S.
Stanford, Kevon D.
Sturlis, Steven M.
Linhares, Brian M.
Hill, Zachary B.
Wells, James A.
Cierpicki, Tomasz
Brooks, Charles L.
Fierke, Carol A.
Mapp, Anna K.
author_facet Henderson, Andrew R.
Henley, Matthew J.
Foster, Nicholas J.
Peiffer, Amanda L.
Beyersdorf, Matthew S.
Stanford, Kevon D.
Sturlis, Steven M.
Linhares, Brian M.
Hill, Zachary B.
Wells, James A.
Cierpicki, Tomasz
Brooks, Charles L.
Fierke, Carol A.
Mapp, Anna K.
author_sort Henderson, Andrew R.
collection PubMed
description Transcriptional coactivators are a molecular recognition marvel because a single domain within these proteins, the activator binding domain or ABD, interacts with multiple compositionally diverse transcriptional activators. Also remarkable is the structural diversity among ABDs, which range from conformationally dynamic helical motifs to those with a stable core such as a β-barrel. A significant objective is to define conserved properties of ABDs that allow them to interact with disparate activator sequences. The ABD of the coactivator Med25 (activator interaction domain or AcID) is unique in that it contains secondary structural elements that are on both ends of the spectrum: helices and loops that display significant conformational mobility and a seven-stranded β-barrel core that is structurally rigid. Using biophysical approaches, we build a mechanistic model of how AcID forms binary and ternary complexes with three distinct activators; despite its static core, Med25 forms short-lived, conformationally mobile, and structurally distinct complexes with each of the cognate partners. Further, ternary complex formation is facilitated by allosteric communication between binding surfaces on opposing faces of the β-barrel. The model emerging suggests that the conformational shifts and cooperative binding is mediated by a flexible substructure comprised of two dynamic helices and flanking loops, indicating a conserved mechanistic model of activator engagement across ABDs. Targeting a region of this substructure with a small-molecule covalent cochaperone modulates ternary complex formation. Our data support a general strategy for the identification of allosteric small-molecule modulators of ABDs, which are key targets for mechanistic studies as well as therapeutic applications.
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spelling pubmed-61303672018-09-12 Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators Henderson, Andrew R. Henley, Matthew J. Foster, Nicholas J. Peiffer, Amanda L. Beyersdorf, Matthew S. Stanford, Kevon D. Sturlis, Steven M. Linhares, Brian M. Hill, Zachary B. Wells, James A. Cierpicki, Tomasz Brooks, Charles L. Fierke, Carol A. Mapp, Anna K. Proc Natl Acad Sci U S A Biological Sciences Transcriptional coactivators are a molecular recognition marvel because a single domain within these proteins, the activator binding domain or ABD, interacts with multiple compositionally diverse transcriptional activators. Also remarkable is the structural diversity among ABDs, which range from conformationally dynamic helical motifs to those with a stable core such as a β-barrel. A significant objective is to define conserved properties of ABDs that allow them to interact with disparate activator sequences. The ABD of the coactivator Med25 (activator interaction domain or AcID) is unique in that it contains secondary structural elements that are on both ends of the spectrum: helices and loops that display significant conformational mobility and a seven-stranded β-barrel core that is structurally rigid. Using biophysical approaches, we build a mechanistic model of how AcID forms binary and ternary complexes with three distinct activators; despite its static core, Med25 forms short-lived, conformationally mobile, and structurally distinct complexes with each of the cognate partners. Further, ternary complex formation is facilitated by allosteric communication between binding surfaces on opposing faces of the β-barrel. The model emerging suggests that the conformational shifts and cooperative binding is mediated by a flexible substructure comprised of two dynamic helices and flanking loops, indicating a conserved mechanistic model of activator engagement across ABDs. Targeting a region of this substructure with a small-molecule covalent cochaperone modulates ternary complex formation. Our data support a general strategy for the identification of allosteric small-molecule modulators of ABDs, which are key targets for mechanistic studies as well as therapeutic applications. National Academy of Sciences 2018-09-04 2018-08-20 /pmc/articles/PMC6130367/ /pubmed/30127017 http://dx.doi.org/10.1073/pnas.1806202115 Text en Copyright © 2018 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Henderson, Andrew R.
Henley, Matthew J.
Foster, Nicholas J.
Peiffer, Amanda L.
Beyersdorf, Matthew S.
Stanford, Kevon D.
Sturlis, Steven M.
Linhares, Brian M.
Hill, Zachary B.
Wells, James A.
Cierpicki, Tomasz
Brooks, Charles L.
Fierke, Carol A.
Mapp, Anna K.
Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title_full Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title_fullStr Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title_full_unstemmed Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title_short Conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
title_sort conservation of coactivator engagement mechanism enables small-molecule allosteric modulators
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6130367/
https://www.ncbi.nlm.nih.gov/pubmed/30127017
http://dx.doi.org/10.1073/pnas.1806202115
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