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Modulating the tension-time integral of the cardiac twitch prevents dilated cardiomyopathy in murine hearts
Joseph D. Powers, Kristina B. Kooiker, Allison B. Mason, Abigail E. Teitgen, Galina V. Flint, Jil C. Tardiff, Steven D. Schwartz, Andrew D. McCulloch, Michael Regnier, Jennifer Davis, Farid Moussavi-Harami
Joseph D. Powers, Kristina B. Kooiker, Allison B. Mason, Abigail E. Teitgen, Galina V. Flint, Jil C. Tardiff, Steven D. Schwartz, Andrew D. McCulloch, Michael Regnier, Jennifer Davis, Farid Moussavi-Harami
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Research Article Cardiology

Modulating the tension-time integral of the cardiac twitch prevents dilated cardiomyopathy in murine hearts

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Abstract

Dilated cardiomyopathy (DCM) is often associated with sarcomere protein mutations that confer reduced myofilament tension–generating capacity. We demonstrated that cardiac twitch tension-time integrals can be targeted and tuned to prevent DCM remodeling in hearts with contractile dysfunction. We employed a transgenic murine model of DCM caused by the D230N-tropomyosin (Tm) mutation and designed a sarcomere-based intervention specifically targeting the twitch tension-time integral of D230N-Tm hearts using multiscale computational models of intramolecular and intermolecular interactions in the thin filament and cell-level contractile simulations. Our models predicted that increasing the calcium sensitivity of thin filament activation using the cardiac troponin C (cTnC) variant L48Q can sufficiently augment twitch tension-time integrals of D230N-Tm hearts. Indeed, cardiac muscle isolated from double-transgenic hearts expressing D230N-Tm and L48Q cTnC had increased calcium sensitivity of tension development and increased twitch tension-time integrals compared with preparations from hearts with D230N-Tm alone. Longitudinal echocardiographic measurements revealed that DTG hearts retained normal cardiac morphology and function, whereas D230N-Tm hearts developed progressive DCM. We present a computational and experimental framework for targeting molecular mechanisms governing the twitch tension of cardiomyopathic hearts to counteract putative mechanical drivers of adverse remodeling and open possibilities for tension-based treatments of genetic cardiomyopathies.

Authors

Joseph D. Powers, Kristina B. Kooiker, Allison B. Mason, Abigail E. Teitgen, Galina V. Flint, Jil C. Tardiff, Steven D. Schwartz, Andrew D. McCulloch, Michael Regnier, Jennifer Davis, Farid Moussavi-Harami

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Figure 2

Measuring and modulating the tension index of D230N hearts.

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Measuring and modulating the tension index of D230N hearts.
(A) Average ...
(A) Average twitch T traces of intact trabeculae from WT and D230N hearts as a percentage of WT T. The Tpeak of trabeculae from D230N hearts is approximately half that of WT (inset). Sample sizes of n = 6 and n = 7 for WT and D230N trabeculae, respectively. The error bars of the inset represent SD and *P < 0.01 using a 2-tailed unpaired Student’s t test. (B) Dependence of the T index of simulated D230N twitches on modulation of XB or Ca2+ binding. The simulated T index for D230N twitches without any modulation is indicated by the blue circle. The rate of XB transition from a weak to a strong (T-generating) state was independently increased to simulate D230N twitches with augmented XB binding (dashed line). The affinity of Ca2+ for cTnC was also independently increased to simulate twitches of D230N cardiomyocytes with augmented Ca2+ sensitivity (solid line). T, tension; Tpeak, peak twitch tension; XB, cross-bridge; Ca2+, calcium; cTnC, cardiac troponin C.

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