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Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy

BACKGROUND: Hypertrophic cardiomyopathy (HCM) is caused by pathogenic variants in sarcomere protein genes that evoke hypercontractility, poor relaxation, and increased energy consumption by the heart and increased patient risks for arrhythmias and heart failure. Recent studies show that pathogenic m...

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Autores principales: Toepfer, Christopher N., Garfinkel, Amanda C., Venturini, Gabriela, Wakimoto, Hiroko, Repetti, Giuliana, Alamo, Lorenzo, Sharma, Arun, Agarwal, Radhika, Ewoldt, Jourdan F., Cloonan, Paige, Letendre, Justin, Lun, Mingyue, Olivotto, Iacopo, Colan, Steve, Ashley, Euan, Jacoby, Daniel, Michels, Michelle, Redwood, Charles S., Watkins, Hugh C., Day, Sharlene M., Staples, James F., Padrón, Raúl, Chopra, Anant, Ho, Carolyn Y., Chen, Christopher S., Pereira, Alexandre C., Seidman, Jonathan G., Seidman, Christine E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077965/
https://www.ncbi.nlm.nih.gov/pubmed/31983222
http://dx.doi.org/10.1161/CIRCULATIONAHA.119.042339
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author Toepfer, Christopher N.
Garfinkel, Amanda C.
Venturini, Gabriela
Wakimoto, Hiroko
Repetti, Giuliana
Alamo, Lorenzo
Sharma, Arun
Agarwal, Radhika
Ewoldt, Jourdan F.
Cloonan, Paige
Letendre, Justin
Lun, Mingyue
Olivotto, Iacopo
Colan, Steve
Ashley, Euan
Jacoby, Daniel
Michels, Michelle
Redwood, Charles S.
Watkins, Hugh C.
Day, Sharlene M.
Staples, James F.
Padrón, Raúl
Chopra, Anant
Ho, Carolyn Y.
Chen, Christopher S.
Pereira, Alexandre C.
Seidman, Jonathan G.
Seidman, Christine E.
author_facet Toepfer, Christopher N.
Garfinkel, Amanda C.
Venturini, Gabriela
Wakimoto, Hiroko
Repetti, Giuliana
Alamo, Lorenzo
Sharma, Arun
Agarwal, Radhika
Ewoldt, Jourdan F.
Cloonan, Paige
Letendre, Justin
Lun, Mingyue
Olivotto, Iacopo
Colan, Steve
Ashley, Euan
Jacoby, Daniel
Michels, Michelle
Redwood, Charles S.
Watkins, Hugh C.
Day, Sharlene M.
Staples, James F.
Padrón, Raúl
Chopra, Anant
Ho, Carolyn Y.
Chen, Christopher S.
Pereira, Alexandre C.
Seidman, Jonathan G.
Seidman, Christine E.
author_sort Toepfer, Christopher N.
collection PubMed
description BACKGROUND: Hypertrophic cardiomyopathy (HCM) is caused by pathogenic variants in sarcomere protein genes that evoke hypercontractility, poor relaxation, and increased energy consumption by the heart and increased patient risks for arrhythmias and heart failure. Recent studies show that pathogenic missense variants in myosin, the molecular motor of the sarcomere, are clustered in residues that participate in dynamic conformational states of sarcomere proteins. We hypothesized that these conformations are essential to adapt contractile output for energy conservation and that pathophysiology of HCM results from destabilization of these conformations. METHODS: We assayed myosin ATP binding to define the proportion of myosins in the super relaxed state (SRX) conformation or the disordered relaxed state (DRX) conformation in healthy rodent and human hearts, at baseline and in response to reduced hemodynamic demands of hibernation or pathogenic HCM variants. To determine the relationships between myosin conformations, sarcomere function, and cell biology, we assessed contractility, relaxation, and cardiomyocyte morphology and metabolism, with and without an allosteric modulator of myosin ATPase activity. We then tested whether the positions of myosin variants of unknown clinical significance that were identified in patients with HCM, predicted functional consequences and associations with heart failure and arrhythmias. RESULTS: Myosins undergo physiological shifts between the SRX conformation that maximizes energy conservation and the DRX conformation that enables cross-bridge formation with greater ATP consumption. Systemic hemodynamic requirements, pharmacological modulators of myosin, and pathogenic myosin missense mutations influenced the proportions of these conformations. Hibernation increased the proportion of myosins in the SRX conformation, whereas pathogenic variants destabilized these and increased the proportion of myosins in the DRX conformation, which enhanced cardiomyocyte contractility, but impaired relaxation and evoked hypertrophic remodeling with increased energetic stress. Using structural locations to stratify variants of unknown clinical significance, we showed that the variants that destabilized myosin conformations were associated with higher rates of heart failure and arrhythmias in patients with HCM. CONCLUSIONS: Myosin conformations establish work-energy equipoise that is essential for life-long cellular homeostasis and heart function. Destabilization of myosin energy-conserving states promotes contractile abnormalities, morphological and metabolic remodeling, and adverse clinical outcomes in patients with HCM. Therapeutic restabilization corrects cellular contractile and metabolic phenotypes and may limit these adverse clinical outcomes in patients with HCM.
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spelling pubmed-70779652020-03-25 Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy Toepfer, Christopher N. Garfinkel, Amanda C. Venturini, Gabriela Wakimoto, Hiroko Repetti, Giuliana Alamo, Lorenzo Sharma, Arun Agarwal, Radhika Ewoldt, Jourdan F. Cloonan, Paige Letendre, Justin Lun, Mingyue Olivotto, Iacopo Colan, Steve Ashley, Euan Jacoby, Daniel Michels, Michelle Redwood, Charles S. Watkins, Hugh C. Day, Sharlene M. Staples, James F. Padrón, Raúl Chopra, Anant Ho, Carolyn Y. Chen, Christopher S. Pereira, Alexandre C. Seidman, Jonathan G. Seidman, Christine E. Circulation Original Research Articles BACKGROUND: Hypertrophic cardiomyopathy (HCM) is caused by pathogenic variants in sarcomere protein genes that evoke hypercontractility, poor relaxation, and increased energy consumption by the heart and increased patient risks for arrhythmias and heart failure. Recent studies show that pathogenic missense variants in myosin, the molecular motor of the sarcomere, are clustered in residues that participate in dynamic conformational states of sarcomere proteins. We hypothesized that these conformations are essential to adapt contractile output for energy conservation and that pathophysiology of HCM results from destabilization of these conformations. METHODS: We assayed myosin ATP binding to define the proportion of myosins in the super relaxed state (SRX) conformation or the disordered relaxed state (DRX) conformation in healthy rodent and human hearts, at baseline and in response to reduced hemodynamic demands of hibernation or pathogenic HCM variants. To determine the relationships between myosin conformations, sarcomere function, and cell biology, we assessed contractility, relaxation, and cardiomyocyte morphology and metabolism, with and without an allosteric modulator of myosin ATPase activity. We then tested whether the positions of myosin variants of unknown clinical significance that were identified in patients with HCM, predicted functional consequences and associations with heart failure and arrhythmias. RESULTS: Myosins undergo physiological shifts between the SRX conformation that maximizes energy conservation and the DRX conformation that enables cross-bridge formation with greater ATP consumption. Systemic hemodynamic requirements, pharmacological modulators of myosin, and pathogenic myosin missense mutations influenced the proportions of these conformations. Hibernation increased the proportion of myosins in the SRX conformation, whereas pathogenic variants destabilized these and increased the proportion of myosins in the DRX conformation, which enhanced cardiomyocyte contractility, but impaired relaxation and evoked hypertrophic remodeling with increased energetic stress. Using structural locations to stratify variants of unknown clinical significance, we showed that the variants that destabilized myosin conformations were associated with higher rates of heart failure and arrhythmias in patients with HCM. CONCLUSIONS: Myosin conformations establish work-energy equipoise that is essential for life-long cellular homeostasis and heart function. Destabilization of myosin energy-conserving states promotes contractile abnormalities, morphological and metabolic remodeling, and adverse clinical outcomes in patients with HCM. Therapeutic restabilization corrects cellular contractile and metabolic phenotypes and may limit these adverse clinical outcomes in patients with HCM. Lippincott Williams & Wilkins 2020-03-10 2020-01-27 /pmc/articles/PMC7077965/ /pubmed/31983222 http://dx.doi.org/10.1161/CIRCULATIONAHA.119.042339 Text en © 2020 The Authors. Circulation is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited.
spellingShingle Original Research Articles
Toepfer, Christopher N.
Garfinkel, Amanda C.
Venturini, Gabriela
Wakimoto, Hiroko
Repetti, Giuliana
Alamo, Lorenzo
Sharma, Arun
Agarwal, Radhika
Ewoldt, Jourdan F.
Cloonan, Paige
Letendre, Justin
Lun, Mingyue
Olivotto, Iacopo
Colan, Steve
Ashley, Euan
Jacoby, Daniel
Michels, Michelle
Redwood, Charles S.
Watkins, Hugh C.
Day, Sharlene M.
Staples, James F.
Padrón, Raúl
Chopra, Anant
Ho, Carolyn Y.
Chen, Christopher S.
Pereira, Alexandre C.
Seidman, Jonathan G.
Seidman, Christine E.
Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title_full Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title_fullStr Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title_full_unstemmed Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title_short Myosin Sequestration Regulates Sarcomere Function, Cardiomyocyte Energetics, and Metabolism, Informing the Pathogenesis of Hypertrophic Cardiomyopathy
title_sort myosin sequestration regulates sarcomere function, cardiomyocyte energetics, and metabolism, informing the pathogenesis of hypertrophic cardiomyopathy
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077965/
https://www.ncbi.nlm.nih.gov/pubmed/31983222
http://dx.doi.org/10.1161/CIRCULATIONAHA.119.042339
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