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Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2

The ACTN2 gene encodes α-actinin 2, located in the Z-disc of the sarcomeres in striated muscle. In this study, we sought to investigate the effects of an ACTN2 missense variant of unknown significance (p.A868T) on cardiac muscle structure and function. Left ventricular free wall samples were obtaine...

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Autores principales: Rodriguez Garcia, Michelle, Schmeckpeper, Jeffrey, Landim-Vieira, Maicon, Coscarella, Isabella Leite, Fang, Xuan, Ma, Weikang, Spran, Payton A., Yuan, Shengyao, Qi, Lin, Kahmini, Aida Rahimi, Shoemaker, M. Benjamin, Atkinson, James B., Kekenes-Huskey, Peter M., Irving, Thomas C., Chase, Prescott Bryant, Knollmann, Björn C., Pinto, Jose Renato
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10572656/
https://www.ncbi.nlm.nih.gov/pubmed/37834023
http://dx.doi.org/10.3390/ijms241914572
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author Rodriguez Garcia, Michelle
Schmeckpeper, Jeffrey
Landim-Vieira, Maicon
Coscarella, Isabella Leite
Fang, Xuan
Ma, Weikang
Spran, Payton A.
Yuan, Shengyao
Qi, Lin
Kahmini, Aida Rahimi
Shoemaker, M. Benjamin
Atkinson, James B.
Kekenes-Huskey, Peter M.
Irving, Thomas C.
Chase, Prescott Bryant
Knollmann, Björn C.
Pinto, Jose Renato
author_facet Rodriguez Garcia, Michelle
Schmeckpeper, Jeffrey
Landim-Vieira, Maicon
Coscarella, Isabella Leite
Fang, Xuan
Ma, Weikang
Spran, Payton A.
Yuan, Shengyao
Qi, Lin
Kahmini, Aida Rahimi
Shoemaker, M. Benjamin
Atkinson, James B.
Kekenes-Huskey, Peter M.
Irving, Thomas C.
Chase, Prescott Bryant
Knollmann, Björn C.
Pinto, Jose Renato
author_sort Rodriguez Garcia, Michelle
collection PubMed
description The ACTN2 gene encodes α-actinin 2, located in the Z-disc of the sarcomeres in striated muscle. In this study, we sought to investigate the effects of an ACTN2 missense variant of unknown significance (p.A868T) on cardiac muscle structure and function. Left ventricular free wall samples were obtained at the time of cardiac transplantation from a heart failure patient with the ACTN2 A868T heterozygous variant. This variant is in the EF 3–4 domain known to interact with titin and α-actinin. At the ultrastructural level, ACTN2 A868T cardiac samples presented small structural changes in cardiomyocytes when compared to healthy donor samples. However, contractile mechanics of permeabilized ACTN2 A868T variant cardiac tissue displayed higher myofilament Ca(2+) sensitivity of isometric force, reduced sinusoidal stiffness, and faster rates of tension redevelopment at all Ca(2+) levels. Small-angle X-ray diffraction indicated increased separation between thick and thin filaments, possibly contributing to changes in muscle kinetics. Molecular dynamics simulations indicated that while the mutation does not significantly impact the structure of α-actinin on its own, it likely alters the conformation associated with titin binding. Our results can be explained by two Z-disc mediated communication pathways: one pathway that involves α-actinin’s interaction with actin, affecting thin filament regulation, and the other pathway that involves α-actinin’s interaction with titin, affecting thick filament activation. This work establishes the role of α-actinin 2 in modulating cross-bridge kinetics and force development in the human myocardium as well as how it can be involved in the development of cardiac disease.
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spelling pubmed-105726562023-10-14 Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2 Rodriguez Garcia, Michelle Schmeckpeper, Jeffrey Landim-Vieira, Maicon Coscarella, Isabella Leite Fang, Xuan Ma, Weikang Spran, Payton A. Yuan, Shengyao Qi, Lin Kahmini, Aida Rahimi Shoemaker, M. Benjamin Atkinson, James B. Kekenes-Huskey, Peter M. Irving, Thomas C. Chase, Prescott Bryant Knollmann, Björn C. Pinto, Jose Renato Int J Mol Sci Article The ACTN2 gene encodes α-actinin 2, located in the Z-disc of the sarcomeres in striated muscle. In this study, we sought to investigate the effects of an ACTN2 missense variant of unknown significance (p.A868T) on cardiac muscle structure and function. Left ventricular free wall samples were obtained at the time of cardiac transplantation from a heart failure patient with the ACTN2 A868T heterozygous variant. This variant is in the EF 3–4 domain known to interact with titin and α-actinin. At the ultrastructural level, ACTN2 A868T cardiac samples presented small structural changes in cardiomyocytes when compared to healthy donor samples. However, contractile mechanics of permeabilized ACTN2 A868T variant cardiac tissue displayed higher myofilament Ca(2+) sensitivity of isometric force, reduced sinusoidal stiffness, and faster rates of tension redevelopment at all Ca(2+) levels. Small-angle X-ray diffraction indicated increased separation between thick and thin filaments, possibly contributing to changes in muscle kinetics. Molecular dynamics simulations indicated that while the mutation does not significantly impact the structure of α-actinin on its own, it likely alters the conformation associated with titin binding. Our results can be explained by two Z-disc mediated communication pathways: one pathway that involves α-actinin’s interaction with actin, affecting thin filament regulation, and the other pathway that involves α-actinin’s interaction with titin, affecting thick filament activation. This work establishes the role of α-actinin 2 in modulating cross-bridge kinetics and force development in the human myocardium as well as how it can be involved in the development of cardiac disease. MDPI 2023-09-26 /pmc/articles/PMC10572656/ /pubmed/37834023 http://dx.doi.org/10.3390/ijms241914572 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rodriguez Garcia, Michelle
Schmeckpeper, Jeffrey
Landim-Vieira, Maicon
Coscarella, Isabella Leite
Fang, Xuan
Ma, Weikang
Spran, Payton A.
Yuan, Shengyao
Qi, Lin
Kahmini, Aida Rahimi
Shoemaker, M. Benjamin
Atkinson, James B.
Kekenes-Huskey, Peter M.
Irving, Thomas C.
Chase, Prescott Bryant
Knollmann, Björn C.
Pinto, Jose Renato
Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title_full Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title_fullStr Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title_full_unstemmed Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title_short Disruption of Z-Disc Function Promotes Mechanical Dysfunction in Human Myocardium: Evidence for a Dual Myofilament Modulatory Role by Alpha-Actinin 2
title_sort disruption of z-disc function promotes mechanical dysfunction in human myocardium: evidence for a dual myofilament modulatory role by alpha-actinin 2
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10572656/
https://www.ncbi.nlm.nih.gov/pubmed/37834023
http://dx.doi.org/10.3390/ijms241914572
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