Mechanisms of a novel regulatory light chain–dependent cardiac myosin inhibitor

肌原纤维 肌节 肌球蛋白 化学 心室 生物物理学 心肌细胞 心肌 细胞生物学 内科学 生物化学 解剖 生物 医学
作者
Kristina B. Kooiker,Qing-Fen Gan,Ming Yu,Na Sa,Saffie Mohran,Yuanhua Cheng,Galina Flint,Stephanie Neys,Chengqian Gao,Devin Nissen,Timothy S. McMillen,Anthony Asencio,Weikang Ma,Thomas C. Irving,Farid Moussavi‐Harami,Michael Regnier
出处
期刊:The Journal of General Physiology [Rockefeller University Press]
卷期号:156 (10) 被引量:1
标识
DOI:10.1085/jgp.202313503
摘要

Hypertrophic cardiomyopathy (HCM) is a genetic disease of the heart characterized by thickening of the left ventricle (LV), hypercontractility, and impaired relaxation. HCM is caused primarily by heritable mutations in sarcomeric proteins, such as β myosin heavy chain. Until recently, medications in clinical use for HCM did not directly target the underlying contractile changes in the sarcomere. Here, we investigate a novel small molecule, RLC-1, identified in a bovine cardiac myofibril high-throughput screen. RLC-1 is highly dependent on the presence of a regulatory light chain to bind to cardiac myosin and modulate its ATPase activity. In demembranated rat LV trabeculae, RLC-1 decreased maximal Ca2+-activated force and Ca2+ sensitivity of force, while it increased the submaximal rate constant for tension redevelopment. In myofibrils isolated from rat LV, both maximal and submaximal Ca2+-activated force are reduced by nearly 50%. Additionally, the fast and slow phases of relaxation were approximately twice as fast as DMSO controls, and the duration of the slow phase was shorter. Structurally, x-ray diffraction studies showed that RLC-1 moved myosin heads away from the thick filament backbone and decreased the order of myosin heads, which is different from other myosin inhibitors. In intact trabeculae and isolated cardiomyocytes, RLC-1 treatment resulted in decreased peak twitch magnitude and faster activation and relaxation kinetics. In conclusion, RLC-1 accelerated kinetics and decreased force production in the demembranated tissue, intact tissue, and intact whole cells, resulting in a smaller cardiac twitch, which could improve the underlying contractile changes associated with HCM.

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