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A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation
Myocardial remodeling in response to chronic myocardial infarction (CMI) progresses through two phases, hypertrophic “compensation” and congestive “decompensation.” Nothing is known about the ability of uninfarcted myocardium to produce force, velocity, and power during these clinical phases, even t...
Autores principales: | , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Physiological Society
2016
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5005282/ https://www.ncbi.nlm.nih.gov/pubmed/27233767 http://dx.doi.org/10.1152/ajpheart.00899.2015 |
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author | Toepfer, Christopher N. Sikkel, Markus B. Caorsi, Valentina Vydyanath, Anupama Torre, Iratxe Copeland, O'Neal Lyon, Alexander R. Marston, Steven B. Luther, Pradeep K. Macleod, Kenneth T. West, Timothy G. Ferenczi, Michael A. |
author_facet | Toepfer, Christopher N. Sikkel, Markus B. Caorsi, Valentina Vydyanath, Anupama Torre, Iratxe Copeland, O'Neal Lyon, Alexander R. Marston, Steven B. Luther, Pradeep K. Macleod, Kenneth T. West, Timothy G. Ferenczi, Michael A. |
author_sort | Toepfer, Christopher N. |
collection | PubMed |
description | Myocardial remodeling in response to chronic myocardial infarction (CMI) progresses through two phases, hypertrophic “compensation” and congestive “decompensation.” Nothing is known about the ability of uninfarcted myocardium to produce force, velocity, and power during these clinical phases, even though adaptation in these regions likely drives progression of compensation. We hypothesized that enhanced cross-bridge-level contractility underlies mechanical compensation and is controlled in part by changes in the phosphorylation states of myosin regulatory proteins. We induced CMI in rats by left anterior descending coronary artery ligation. We then measured mechanical performance in permeabilized ventricular trabecula taken distant from the infarct zone and assayed myosin regulatory protein phosphorylation in each individual trabecula. During full activation, the compensated myocardium produced twice as much power and 31% greater isometric force compared with noninfarcted controls. Isometric force during submaximal activations was raised >2.4-fold, while power was 2-fold greater. Electron and confocal microscopy demonstrated that these mechanical changes were not a result of increased density of contractile protein and therefore not an effect of tissue hypertrophy. Hence, sarcomere-level contractile adaptations are key determinants of enhanced trabecular mechanics and of the overall cardiac compensatory response. Phosphorylation of myosin regulatory light chain (RLC) increased and remained elevated post-MI, while phosphorylation of myosin binding protein-C (MyBP-C) was initially depressed but then increased as the hearts became decompensated. These sensitivities to CMI are in accordance with phosphorylation-dependent regulatory roles for RLC and MyBP-C in crossbridge function and with compensatory adaptation in force and power that we observed in post-CMI trabeculae. |
format | Online Article Text |
id | pubmed-5005282 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2016 |
publisher | American Physiological Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-50052822016-09-12 A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation Toepfer, Christopher N. Sikkel, Markus B. Caorsi, Valentina Vydyanath, Anupama Torre, Iratxe Copeland, O'Neal Lyon, Alexander R. Marston, Steven B. Luther, Pradeep K. Macleod, Kenneth T. West, Timothy G. Ferenczi, Michael A. Am J Physiol Heart Circ Physiol Muscle Mechanics and Ventricular Function Myocardial remodeling in response to chronic myocardial infarction (CMI) progresses through two phases, hypertrophic “compensation” and congestive “decompensation.” Nothing is known about the ability of uninfarcted myocardium to produce force, velocity, and power during these clinical phases, even though adaptation in these regions likely drives progression of compensation. We hypothesized that enhanced cross-bridge-level contractility underlies mechanical compensation and is controlled in part by changes in the phosphorylation states of myosin regulatory proteins. We induced CMI in rats by left anterior descending coronary artery ligation. We then measured mechanical performance in permeabilized ventricular trabecula taken distant from the infarct zone and assayed myosin regulatory protein phosphorylation in each individual trabecula. During full activation, the compensated myocardium produced twice as much power and 31% greater isometric force compared with noninfarcted controls. Isometric force during submaximal activations was raised >2.4-fold, while power was 2-fold greater. Electron and confocal microscopy demonstrated that these mechanical changes were not a result of increased density of contractile protein and therefore not an effect of tissue hypertrophy. Hence, sarcomere-level contractile adaptations are key determinants of enhanced trabecular mechanics and of the overall cardiac compensatory response. Phosphorylation of myosin regulatory light chain (RLC) increased and remained elevated post-MI, while phosphorylation of myosin binding protein-C (MyBP-C) was initially depressed but then increased as the hearts became decompensated. These sensitivities to CMI are in accordance with phosphorylation-dependent regulatory roles for RLC and MyBP-C in crossbridge function and with compensatory adaptation in force and power that we observed in post-CMI trabeculae. American Physiological Society 2016-05-27 2016-08-01 /pmc/articles/PMC5005282/ /pubmed/27233767 http://dx.doi.org/10.1152/ajpheart.00899.2015 Text en Copyright © 2016 the American Physiological Society http://creativecommons.org/licenses/by/3.0/deed.en_US Licensed under Creative Commons Attribution CC-BY 3.0 (http://creativecommons.org/licenses/by/3.0/deed.en_US) : © the American Physiological Society. |
spellingShingle | Muscle Mechanics and Ventricular Function Toepfer, Christopher N. Sikkel, Markus B. Caorsi, Valentina Vydyanath, Anupama Torre, Iratxe Copeland, O'Neal Lyon, Alexander R. Marston, Steven B. Luther, Pradeep K. Macleod, Kenneth T. West, Timothy G. Ferenczi, Michael A. A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title | A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title_full | A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title_fullStr | A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title_full_unstemmed | A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title_short | A post-MI power struggle: adaptations in cardiac power occur at the sarcomere level alongside MyBP-C and RLC phosphorylation |
title_sort | post-mi power struggle: adaptations in cardiac power occur at the sarcomere level alongside mybp-c and rlc phosphorylation |
topic | Muscle Mechanics and Ventricular Function |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5005282/ https://www.ncbi.nlm.nih.gov/pubmed/27233767 http://dx.doi.org/10.1152/ajpheart.00899.2015 |
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