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The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I

Phosphorylation of troponin I by protein kinase A (PKA) reduces Ca(2+) sensitivity and increases the rate of Ca(2+) release from troponin C and the rate of relaxation in cardiac muscle. In vitro experiments indicate that mutations that cause dilated cardiomyopathy (DCM) uncouple this modulation, but...

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Autores principales: Vikhorev, Petr G., Song, Weihua, Wilkinson, Ross, Copeland, O’Neal, Messer, Andrew E., Ferenczi, Michael A., Marston, Steven B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4241448/
https://www.ncbi.nlm.nih.gov/pubmed/25418306
http://dx.doi.org/10.1016/j.bpj.2014.10.024
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author Vikhorev, Petr G.
Song, Weihua
Wilkinson, Ross
Copeland, O’Neal
Messer, Andrew E.
Ferenczi, Michael A.
Marston, Steven B.
author_facet Vikhorev, Petr G.
Song, Weihua
Wilkinson, Ross
Copeland, O’Neal
Messer, Andrew E.
Ferenczi, Michael A.
Marston, Steven B.
author_sort Vikhorev, Petr G.
collection PubMed
description Phosphorylation of troponin I by protein kinase A (PKA) reduces Ca(2+) sensitivity and increases the rate of Ca(2+) release from troponin C and the rate of relaxation in cardiac muscle. In vitro experiments indicate that mutations that cause dilated cardiomyopathy (DCM) uncouple this modulation, but this has not been demonstrated in an intact contractile system. Using a Ca(2+)-jump protocol, we measured the effect of the DCM-causing mutation ACTC E361G on the equilibrium and kinetic parameters of Ca(2+) regulation of contractility in single transgenic mouse heart myofibrils. We used propranolol treatment of mice to reduce the level of troponin I and myosin binding protein C (MyBP-C) phosphorylation in their hearts before isolating the myofibrils. In nontransgenic mouse myofibrils, the Ca(2+) sensitivity of force was increased, the fast relaxation phase rate constant, k(REL), was reduced, and the length of the slow linear phase, t(LIN), was increased when the troponin I phosphorylation level was reduced from 1.02 to 0.3 molPi/TnI (EC(50) P/unP = 1.8 ± 0.2, p < 0.001). Native myofibrils from ACTC E361G transgenic mice had a 2.4-fold higher Ca(2+) sensitivity than nontransgenic mouse myofibrils. Strikingly, the Ca(2+) sensitivity and relaxation parameters of ACTC E361G myofibrils did not depend on the troponin I phosphorylation level (EC(50) P/unP = 0.88 ± 0.17, p = 0.39). Nevertheless, modulation of the Ca(2+) sensitivity of ACTC E361G myofibrils by sarcomere length or EMD57033 was indistinguishable from that of nontransgenic myofibrils. Overall, EC(50) measured in different conditions varied over a 7-fold range. The time course of relaxation, as defined by t(LIN) and k(REL), was correlated with EC(50) but varied by just 2.7- and 3.3-fold, respectively. Our results confirm that troponin I phosphorylation specifically alters the Ca(2+) sensitivity of isometric tension and the time course of relaxation in cardiac muscle myofibrils. Moreover, the DCM-causing mutation ACTC E361G blunts this phosphorylation-dependent response without affecting other parameters of contraction, including length-dependent activation and the response to EMD57033.
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spelling pubmed-42414482015-11-18 The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I Vikhorev, Petr G. Song, Weihua Wilkinson, Ross Copeland, O’Neal Messer, Andrew E. Ferenczi, Michael A. Marston, Steven B. Biophys J Molecular Machines, Motors and Nanoscale Biophysics Phosphorylation of troponin I by protein kinase A (PKA) reduces Ca(2+) sensitivity and increases the rate of Ca(2+) release from troponin C and the rate of relaxation in cardiac muscle. In vitro experiments indicate that mutations that cause dilated cardiomyopathy (DCM) uncouple this modulation, but this has not been demonstrated in an intact contractile system. Using a Ca(2+)-jump protocol, we measured the effect of the DCM-causing mutation ACTC E361G on the equilibrium and kinetic parameters of Ca(2+) regulation of contractility in single transgenic mouse heart myofibrils. We used propranolol treatment of mice to reduce the level of troponin I and myosin binding protein C (MyBP-C) phosphorylation in their hearts before isolating the myofibrils. In nontransgenic mouse myofibrils, the Ca(2+) sensitivity of force was increased, the fast relaxation phase rate constant, k(REL), was reduced, and the length of the slow linear phase, t(LIN), was increased when the troponin I phosphorylation level was reduced from 1.02 to 0.3 molPi/TnI (EC(50) P/unP = 1.8 ± 0.2, p < 0.001). Native myofibrils from ACTC E361G transgenic mice had a 2.4-fold higher Ca(2+) sensitivity than nontransgenic mouse myofibrils. Strikingly, the Ca(2+) sensitivity and relaxation parameters of ACTC E361G myofibrils did not depend on the troponin I phosphorylation level (EC(50) P/unP = 0.88 ± 0.17, p = 0.39). Nevertheless, modulation of the Ca(2+) sensitivity of ACTC E361G myofibrils by sarcomere length or EMD57033 was indistinguishable from that of nontransgenic myofibrils. Overall, EC(50) measured in different conditions varied over a 7-fold range. The time course of relaxation, as defined by t(LIN) and k(REL), was correlated with EC(50) but varied by just 2.7- and 3.3-fold, respectively. Our results confirm that troponin I phosphorylation specifically alters the Ca(2+) sensitivity of isometric tension and the time course of relaxation in cardiac muscle myofibrils. Moreover, the DCM-causing mutation ACTC E361G blunts this phosphorylation-dependent response without affecting other parameters of contraction, including length-dependent activation and the response to EMD57033. The Biophysical Society 2014-11-18 /pmc/articles/PMC4241448/ /pubmed/25418306 http://dx.doi.org/10.1016/j.bpj.2014.10.024 Text en © 2014 The Authors http://creativecommons.org/licenses/by/3.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Molecular Machines, Motors and Nanoscale Biophysics
Vikhorev, Petr G.
Song, Weihua
Wilkinson, Ross
Copeland, O’Neal
Messer, Andrew E.
Ferenczi, Michael A.
Marston, Steven B.
The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title_full The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title_fullStr The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title_full_unstemmed The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title_short The Dilated Cardiomyopathy-Causing Mutation ACTC E361G in Cardiac Muscle Myofibrils Specifically Abolishes Modulation of Ca(2+) Regulation by Phosphorylation of Troponin I
title_sort dilated cardiomyopathy-causing mutation actc e361g in cardiac muscle myofibrils specifically abolishes modulation of ca(2+) regulation by phosphorylation of troponin i
topic Molecular Machines, Motors and Nanoscale Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4241448/
https://www.ncbi.nlm.nih.gov/pubmed/25418306
http://dx.doi.org/10.1016/j.bpj.2014.10.024
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