ArticleThe Journal of general physiology2021
cMyBPC phosphorylation modulates the effect of omecamtiv mecarbil on myocardial force generation.
Article in The Journal of general physiology, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Comparative mechanistic analysis of danicamtiv and omecamtiv mecarbil's in vivo cardiac effects.The Journal of general physiology · 2025Article
- Differential effects of myosin activators on myocardial contractile function in nonfailing and failing human hearts.American journal of physiology. Heart and circulatory physiology · 2025Article
- Cardiac myosin binding protein-C phosphorylation as a function of multiple protein kinase and phosphatase activities.Nature communications · 2024Article
- Effect of the Novel Myotrope Danicamtiv on Cross-Bridge Behavior in Human Myocardium.Journal of the American Heart Association · 2023Article
- Phosphorylation Mimetic of Myosin Regulatory Light Chain Mitigates Cardiomyopathy-Induced Myofilament Impairment in Mouse Models of RCM and DCM.Life (Basel, Switzerland) · 2023Article
- The contribution of N-terminal truncated cMyBPC to in vivo cardiac function.The Journal of general physiology · 2023Article
- Distinct Mechanisms for Increased Cardiac Contraction Through Selective Alteration of Either Myosin or Troponin Activity.JACC. Basic to translational science · 2022Article
- Generative adversarial networks for construction of virtual populations of mechanistic models: simulations to study Omecamtiv Mecarbil action.Journal of pharmacokinetics and pharmacodynamics · 2022Article
- Further progress in understanding of myofibrillar function in health and disease.The Journal of general physiology · 2021Article
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6 authors.
Funding
Abstract
Omecamtiv mecarbil (OM), a direct myosin motor activator, is currently being tested as a therapeutic replacement for conventional inotropes in heart failure (HF) patients. It is known that HF patients exhibit dysregulated β-adrenergic signaling and decreased cardiac myosin-binding protein C (cMyBPC) phosphorylation, a critical modulator of myocardial force generation. However, the functional effects of OM in conditions of altered cMyBPC phosphorylation have not been established. Here, we tested the effects of OM on force generation and cross-bridge (XB) kinetics using murine myocardial preparations isolated from wild-type (WT) hearts and from hearts expressing S273A, S282A, and S302A substitutions (SA) in the M domain, between the C1 and C2 domains of cMyBPC, which cannot be phosphorylated. At submaximal Ca2+ activations, OM-mediated force enhancements were less pronounced in SA than in WT myocardial preparations. Additionally, SA myocardial preparations lacked the dose-dependent increases in force that were observed in WT myocardial preparations. Following OM incubation, the basal differences in the rate of XB detachment (krel) between WT and SA myocardial preparations were abolished, suggesting that OM differentially affects the XB behavior when cMyBPC phosphorylation is reduced. Similarly, in myocardial preparations pretreated with protein kinase A to phosphorylate cMyBPC, incubation with OM significantly slowed krel in both the WT and SA myocardial preparations. Collectively, our data suggest there is a strong interplay between the effects of OM and XB behavior, such that it effectively uncouples the sarcomere from cMyBPC phosphorylation levels. Our findings imply that OM may significantly alter the in vivo cardiac response to β-adrenergic stimulation.
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