Cargando…

Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer

Although most primary estrogen receptor (ER)–positive breast cancers respond well to endocrine therapies, many relapse later as metastatic disease due to endocrine therapy resistance. Over one third of these are associated with mutations in the ligand-binding domain (LBD) that activate the receptor...

Descripción completa

Detalles Bibliográficos
Autores principales: Mayne, Christopher G., Toy, Weiyi, Carlson, Kathryn E., Bhatt, Trusha, Fanning, Sean W., Greene, Geoffrey L., Katzenellenbogen, Benita S., Chandarlapaty, Sarat, Katzenellenbogen, John A., Tajkhorshid, Emad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8419021/
https://www.ncbi.nlm.nih.gov/pubmed/34021071
http://dx.doi.org/10.1158/1541-7786.MCR-20-1017
_version_ 1783748673887272960
author Mayne, Christopher G.
Toy, Weiyi
Carlson, Kathryn E.
Bhatt, Trusha
Fanning, Sean W.
Greene, Geoffrey L.
Katzenellenbogen, Benita S.
Chandarlapaty, Sarat
Katzenellenbogen, John A.
Tajkhorshid, Emad
author_facet Mayne, Christopher G.
Toy, Weiyi
Carlson, Kathryn E.
Bhatt, Trusha
Fanning, Sean W.
Greene, Geoffrey L.
Katzenellenbogen, Benita S.
Chandarlapaty, Sarat
Katzenellenbogen, John A.
Tajkhorshid, Emad
author_sort Mayne, Christopher G.
collection PubMed
description Although most primary estrogen receptor (ER)–positive breast cancers respond well to endocrine therapies, many relapse later as metastatic disease due to endocrine therapy resistance. Over one third of these are associated with mutations in the ligand-binding domain (LBD) that activate the receptor independent of ligand. We have used an array of advanced computational techniques rooted in molecular dynamics simulations, in concert with and validated by experiments, to characterize the molecular mechanisms by which specific acquired somatic point mutations give rise to ER constitutive activation. By comparing structural and energetic features of constitutively active mutants and ligand-bound forms of ER-LBD with unliganded wild-type (WT) ER, we characterize a spring force originating from strain in the Helix 11–12 loop of WT-ER, opposing folding of Helix 12 into the active conformation and keeping WT-ER off and disordered, with the ligand-binding pocket open for rapid ligand binding. We quantify ways in which this spring force is abrogated by activating mutations that latch (Y537S) or relax (D538G) the folded form of the loop, enabling formation of the active conformation without ligand binding. We also identify a new ligand-mediated hydrogen-bonding network that stabilizes the active, ligand-bound conformation of WT-ER LBD, and similarly stabilizes the active conformation of the ER mutants in the hormone-free state. IMPLICATIONS: Our investigations provide deep insight into the energetic basis for the structural mechanisms of receptor activation through mutation, exemplified here with ER in endocrine-resistant metastatic breast cancers, with potential application to other dysregulated receptor signaling due to driver mutations.
format Online
Article
Text
id pubmed-8419021
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Association for Cancer Research
record_format MEDLINE/PubMed
spelling pubmed-84190212021-09-06 Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer Mayne, Christopher G. Toy, Weiyi Carlson, Kathryn E. Bhatt, Trusha Fanning, Sean W. Greene, Geoffrey L. Katzenellenbogen, Benita S. Chandarlapaty, Sarat Katzenellenbogen, John A. Tajkhorshid, Emad Mol Cancer Res Signal Transduction and Functional Imaging Although most primary estrogen receptor (ER)–positive breast cancers respond well to endocrine therapies, many relapse later as metastatic disease due to endocrine therapy resistance. Over one third of these are associated with mutations in the ligand-binding domain (LBD) that activate the receptor independent of ligand. We have used an array of advanced computational techniques rooted in molecular dynamics simulations, in concert with and validated by experiments, to characterize the molecular mechanisms by which specific acquired somatic point mutations give rise to ER constitutive activation. By comparing structural and energetic features of constitutively active mutants and ligand-bound forms of ER-LBD with unliganded wild-type (WT) ER, we characterize a spring force originating from strain in the Helix 11–12 loop of WT-ER, opposing folding of Helix 12 into the active conformation and keeping WT-ER off and disordered, with the ligand-binding pocket open for rapid ligand binding. We quantify ways in which this spring force is abrogated by activating mutations that latch (Y537S) or relax (D538G) the folded form of the loop, enabling formation of the active conformation without ligand binding. We also identify a new ligand-mediated hydrogen-bonding network that stabilizes the active, ligand-bound conformation of WT-ER LBD, and similarly stabilizes the active conformation of the ER mutants in the hormone-free state. IMPLICATIONS: Our investigations provide deep insight into the energetic basis for the structural mechanisms of receptor activation through mutation, exemplified here with ER in endocrine-resistant metastatic breast cancers, with potential application to other dysregulated receptor signaling due to driver mutations. American Association for Cancer Research 2021-09-01 2021-05-21 /pmc/articles/PMC8419021/ /pubmed/34021071 http://dx.doi.org/10.1158/1541-7786.MCR-20-1017 Text en ©2021 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0) license.
spellingShingle Signal Transduction and Functional Imaging
Mayne, Christopher G.
Toy, Weiyi
Carlson, Kathryn E.
Bhatt, Trusha
Fanning, Sean W.
Greene, Geoffrey L.
Katzenellenbogen, Benita S.
Chandarlapaty, Sarat
Katzenellenbogen, John A.
Tajkhorshid, Emad
Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title_full Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title_fullStr Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title_full_unstemmed Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title_short Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen Receptors in Breast Cancer
title_sort defining the energetic basis for a conformational switch mediating ligand-independent activation of mutant estrogen receptors in breast cancer
topic Signal Transduction and Functional Imaging
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8419021/
https://www.ncbi.nlm.nih.gov/pubmed/34021071
http://dx.doi.org/10.1158/1541-7786.MCR-20-1017
work_keys_str_mv AT maynechristopherg definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT toyweiyi definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT carlsonkathryne definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT bhatttrusha definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT fanningseanw definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT greenegeoffreyl definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT katzenellenbogenbenitas definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT chandarlapatysarat definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT katzenellenbogenjohna definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer
AT tajkhorshidemad definingtheenergeticbasisforaconformationalswitchmediatingligandindependentactivationofmutantestrogenreceptorsinbreastcancer