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Published on: July 30, 2014
Effect of a myosin regulatory light chain mutation K104E on actin-myosin interactions
D Duggal1, J Nagwekar1, R Rich1
1Department of Cell Biology & Immunology and Center for Commercialization of Fluorescence Technologies, University of North Texas, Health Science Center, Fort Worth, Texas; and.
Insights
Familial hypertrophic cardiomyopathy (FHC) is linked to myosin mutations affecting actin-myosin interactions. This study reveals how the K104E mutation alters cross-bridge kinetics, potentially explaining FHC development.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Biophysics
Background:
- Familial hypertrophic cardiomyopathy (FHC) is a primary cause of sudden cardiac death in young individuals.
- The molecular mechanisms underlying FHC, particularly concerning actin-myosin interactions, remain largely unexplored.
Purpose of the Study:
- To investigate the role of actin-myosin cross-bridge (XB) kinetics and order in FHC pathogenesis.
- To elucidate how a specific regulatory light chain (RLC) mutation (K104E) impacts cardiac muscle contractility.
Main Methods:
- Examined ex vivo left ventricles from transgenic (Tg) mice expressing the FHC RLC K104E mutation.
- Minimized observed XBs to ~20 per sample for precise kinetic and order analysis.
- Utilized red-emitting dye labeling of the myosin lever arm to minimize autofluorescence and photobleaching.
Main Results:
- Mutated XBs (K104E) exhibited enhanced order during steady-state contraction and rigor, but not in relaxed myofibrils.
- The K104E mutation accelerated XB binding to thin filaments and the power stroke execution.
- Stopped-flow experiments showed faster dissociation rates and slower ATP binding in Tg-K104E myosin compared to wild-type (WT).
Conclusions:
- Mutation-induced alterations in myosin-actin interactions during the cardiac cycle contribute to altered contractility.
- These changes in cross-bridge dynamics are implicated in the development of familial hypertrophic cardiomyopathy.
Abstract:
Familial hypertrophic cardiomyopathy (FHC) is the most common cause of sudden cardiac death in young individuals. Molecular mechanisms underlying this disorder are largely unknown; this study aims at revealing how disruptions in actin-myosin interactions can play a role in this disorder. Cross-bridge (XB) kinetics and the degree of order were examined in contracting myofibrils from the ex vivo left ventricles of transgenic (Tg) mice expressing FHC regulatory light chain (RLC) mutation K104E. Because the degree of order and the kinetics are best studied when an individual XB makes a significant contribution to the overall signal, the number of observed XBs in an ex vivo ventricle was minimized to ∼20. Autofluorescence and photobleaching were minimized by labeling the myosin lever arm with a relatively long-lived red-emitting dye containing a chromophore system encapsulated in a cyclic macromolecule. Mutated XBs were significantly better ordered during steady-state contraction and during rigor, but the mutation had no effect on the degree of order in relaxed myofibrils. The K104E mutation increased the rate of XB binding to thin filaments and the rate of execution of the power stroke. The stopped-flow experiments revealed a significantly faster observed dissociation rate in Tg-K104E vs. Tg-wild-type (WT) myosin and a smaller second-order ATP-binding rate for the K104E compared with WT myosin. Collectively, our data indicate that the mutation-induced changes in the interaction of myosin with actin during the contraction-relaxation cycle may contribute to altered contractility and the development of FHC.
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