Transgenic mice bearing the R92Q mutation in cardiac troponin T exhibited a decrease in the free energy of ATP hydrolysis and a marked inability to increase contractile performance upon inotropic challenge.
Familial hypertrophic cardiomyopathy
R92Q mutation in cardiac troponin T vs Control mice
Cardiac energetics (free energy of ATP hydrolysis) and contractile performance upon acute inotropic challenge
The thin filament protein cardiac troponin T (cTnT) is an important regulator of myofilament activation. Here we report a significant change in cardiac energetics in transgenic mice bearing the missense mutation R92Q within the tropomyosin-binding domain of cTnT, a mutation associated with a clinically severe form of familial hypertrophic cardiomyopathy. This functional domain of cTnT has recently been shown to be a crucial modulator of contractile function despite the fact that it does not directly interact with the ATP hydrolysis site in the myosin head. Simultaneous measurements of cardiac energetics using 31P NMR spectroscopy and contractile performance of the intact beating heart revealed both a decrease in the free energy of ATP hydrolysis available to support contractile work and a marked inability to increase contractile performance upon acute inotropic challenge in hearts from R92Q mice. These results show that alterations in thin filament protein structure and function can lead to significant defects in myocardial energetics and contractile reserve.
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Maryam M. Javadpour
Islamic Azad University, Ahvaz Branch
Jil C. Tardiff
University of Arizona
Ilka Pinz
Tufts University
Journal of Clinical Investigation
Harvard University
Brigham and Women's Hospital
Harvard University Press
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Javadpour et al. (Mon,) conducted a other in Familial hypertrophic cardiomyopathy. R92Q mutation in cardiac troponin T vs. Control mice was evaluated on Cardiac energetics (free energy of ATP hydrolysis) and contractile performance upon acute inotropic challenge. Transgenic mice bearing the R92Q mutation in cardiac troponin T exhibited a decrease in the free energy of ATP hydrolysis and a marked inability to increase contractile performance upon inotropic challenge.
synapsesocial.com/papers/6a0d1d886a6e1c7abfdbdad3 — DOI: https://doi.org/10.1172/jci15967