Delayed phosphate release can highly improve energy efficiency of muscle contraction
Jiaxiang Xu, Jiangke Tao, Bin Chen

TL;DR
This study uses computational modeling to show that delaying phosphate release during muscle contraction can greatly improve energy efficiency, offering new insights into muscle mechanics.
Contribution
It introduces a detailed sarcomere mechanics model demonstrating how delayed Pi-release enhances muscle energy efficiency, a novel perspective on chemomechanical coupling.
Findings
Delayed Pi-release increases energy efficiency of muscle contraction.
Gradual Pi-release modulates myosin stability and power stroke.
Simulation replicates experimental observations across parameters.
Abstract
While the power stroke of myosin and the release of inorganic phosphate (Pi) play crucial roles in transforming ATP's chemical energy into mechanical work across diverse biological systems, the exact temporal relationship between these events continues to be intensely debated. In this study, from a functional perspective, we computationally investigate the impact of Pi-release kinetics during the power stroke on muscle contraction dynamics. By implementing a mechanics model of the sarcomere unit that comprehensively incorporates the chemomechanical cycle of individual myosin molecules, we successfully replicate a broad range of experimental observations through parameter variation. Our simulation results reveal that delayed Pi-release can significantly enhance energy efficiency during muscle contraction. This work suggests that a gradual Pi-release that is not directly coupled with the…
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Taxonomy
TopicsMuscle activation and electromyography studies · Cardiovascular and exercise physiology
