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Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability

UHRF1 is a key mediator of inheritance of epigenetic DNA methylation patterns during cell division and is a putative target for cancer therapy. Recent studies indicate that interdomain interactions critically influence UHRF1's chromatin-binding properties, including allosteric regulation of its...

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Autores principales: Houliston, R. Scott, Lemak, Alexander, Iqbal, Aman, Ivanochko, Danton, Duan, Shili, Kaustov, Lilia, Ong, Michelle S., Fan, Lixin, Senisterra, Guillermo, Brown, Peter J., Wang, Yun-Xing, Arrowsmith, Cheryl H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5743070/
https://www.ncbi.nlm.nih.gov/pubmed/29074623
http://dx.doi.org/10.1074/jbc.M117.799700
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author Houliston, R. Scott
Lemak, Alexander
Iqbal, Aman
Ivanochko, Danton
Duan, Shili
Kaustov, Lilia
Ong, Michelle S.
Fan, Lixin
Senisterra, Guillermo
Brown, Peter J.
Wang, Yun-Xing
Arrowsmith, Cheryl H.
author_facet Houliston, R. Scott
Lemak, Alexander
Iqbal, Aman
Ivanochko, Danton
Duan, Shili
Kaustov, Lilia
Ong, Michelle S.
Fan, Lixin
Senisterra, Guillermo
Brown, Peter J.
Wang, Yun-Xing
Arrowsmith, Cheryl H.
author_sort Houliston, R. Scott
collection PubMed
description UHRF1 is a key mediator of inheritance of epigenetic DNA methylation patterns during cell division and is a putative target for cancer therapy. Recent studies indicate that interdomain interactions critically influence UHRF1's chromatin-binding properties, including allosteric regulation of its histone binding. Here, using an integrative approach that combines small angle X-ray scattering, NMR spectroscopy, and molecular dynamics simulations, we characterized the dynamics of the tandem tudor domain–plant homeodomain (TTD–PHD) histone reader module, including its 20-residue interdomain linker. We found that the apo TTD–PHD module in solution comprises a dynamic ensemble of conformers, approximately half of which are compact conformations, with the linker lying in the TTD peptide–binding groove. These compact conformations are amenable to cooperative, high-affinity histone binding. In the remaining conformations, the linker position was in flux, and the reader adopted both extended and compact states. Using a small-molecule fragment screening approach, we identified a compound, 4-benzylpiperidine-1-carboximidamide, that binds to the TTD groove, competes with linker binding, and promotes open TTD–PHD conformations that are less efficient at H3K9me3 binding. Our work reveals a mechanism by which the dynamic TTD–PHD module can be allosterically targeted with small molecules to modulate its histone reader function for therapeutic or experimental purposes.
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spelling pubmed-57430702017-12-27 Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability Houliston, R. Scott Lemak, Alexander Iqbal, Aman Ivanochko, Danton Duan, Shili Kaustov, Lilia Ong, Michelle S. Fan, Lixin Senisterra, Guillermo Brown, Peter J. Wang, Yun-Xing Arrowsmith, Cheryl H. J Biol Chem Protein Structure and Folding UHRF1 is a key mediator of inheritance of epigenetic DNA methylation patterns during cell division and is a putative target for cancer therapy. Recent studies indicate that interdomain interactions critically influence UHRF1's chromatin-binding properties, including allosteric regulation of its histone binding. Here, using an integrative approach that combines small angle X-ray scattering, NMR spectroscopy, and molecular dynamics simulations, we characterized the dynamics of the tandem tudor domain–plant homeodomain (TTD–PHD) histone reader module, including its 20-residue interdomain linker. We found that the apo TTD–PHD module in solution comprises a dynamic ensemble of conformers, approximately half of which are compact conformations, with the linker lying in the TTD peptide–binding groove. These compact conformations are amenable to cooperative, high-affinity histone binding. In the remaining conformations, the linker position was in flux, and the reader adopted both extended and compact states. Using a small-molecule fragment screening approach, we identified a compound, 4-benzylpiperidine-1-carboximidamide, that binds to the TTD groove, competes with linker binding, and promotes open TTD–PHD conformations that are less efficient at H3K9me3 binding. Our work reveals a mechanism by which the dynamic TTD–PHD module can be allosterically targeted with small molecules to modulate its histone reader function for therapeutic or experimental purposes. American Society for Biochemistry and Molecular Biology 2017-12-22 2017-10-26 /pmc/articles/PMC5743070/ /pubmed/29074623 http://dx.doi.org/10.1074/jbc.M117.799700 Text en Author's Choice—Final version free via Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Protein Structure and Folding
Houliston, R. Scott
Lemak, Alexander
Iqbal, Aman
Ivanochko, Danton
Duan, Shili
Kaustov, Lilia
Ong, Michelle S.
Fan, Lixin
Senisterra, Guillermo
Brown, Peter J.
Wang, Yun-Xing
Arrowsmith, Cheryl H.
Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title_full Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title_fullStr Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title_full_unstemmed Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title_short Conformational dynamics of the TTD–PHD histone reader module of the UHRF1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
title_sort conformational dynamics of the ttd–phd histone reader module of the uhrf1 epigenetic regulator reveals multiple histone-binding states, allosteric regulation, and druggability
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5743070/
https://www.ncbi.nlm.nih.gov/pubmed/29074623
http://dx.doi.org/10.1074/jbc.M117.799700
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