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Updated: Aug 23, 2025

Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Cardiac myosin filaments are directly regulated by calcium
Weikang Ma1, Suman Nag2, Henry Gong1
1BioCAT, Department of Biology, Illinois Institute of Technology, Chicago, IL.
Abstract:
Classically, striated muscle contraction is initiated by calcium (Ca2+)-dependent structural changes in regulatory proteins on actin-containing thin filaments, which allow the binding of myosin motors to generate force. Additionally, dynamic switching between resting off and active on myosin states has been shown to regulate muscle contractility, a recently validated mechanism by novel myosin-targeted therapeutics. The molecular nature of this switching, however, is not understood. Here, using a combination of small-angle x-ray fiber diffraction and biochemical assays with reconstituted systems, we show that cardiac thick filaments are directly Ca2+-regulated. We find that Ca2+ induces a structural transition of myosin heads from ordered off states close to the thick filament to disordered on states closer to the thin filaments. Biochemical assays show a Ca2+-induced transition from an inactive super-relaxed (SRX) state(s) to an active disordered-relaxed (DRX) state(s) in synthetic thick filaments. We show that these transitions are an intrinsic property of cardiac myosin only when assembled into thick filaments and provide a fresh perspective on nature's two orthogonal mechanisms to regulate muscle contraction through the thin and the thick filaments.
Insights
Calcium directly regulates cardiac muscle contraction by altering myosin head positions on thick filaments. This discovery reveals a novel mechanism for muscle contractility, distinct from thin filament regulation.
Area of Science:
- Muscle physiology
- Molecular biology
- Biophysics
Background:
- Striated muscle contraction classically involves calcium-dependent thin filament regulation.
- Myosin motor states (on/off) dynamically regulate contractility, a target for therapeutics.
- The molecular basis of myosin state switching remains unclear.
Purpose of the Study:
- To investigate the direct role of calcium in regulating cardiac thick filaments.
- To elucidate the molecular mechanism of myosin head switching in muscle contraction.
Main Methods:
- Small-angle X-ray fiber diffraction
- Biochemical assays
- Reconstituted cardiac myosin systems
Main Results:
- Cardiac thick filaments are directly regulated by calcium (Ca2+).
- Ca2+ induces myosin head transition from ordered off to disordered on states.
- Biochemical assays reveal Ca2+-induced transition from super-relaxed (SRX) to disordered-relaxed (DRX) states in synthetic thick filaments.
Conclusions:
- Calcium directly controls cardiac myosin head conformation within thick filaments.
- This thick filament regulation is an intrinsic property of assembled cardiac myosin.
- Identifies two orthogonal calcium-based regulatory mechanisms in muscle contraction (thin and thick filaments).
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