Human cardiac myosin-binding protein C phosphorylation- and mutation-dependent structural dynamics monitored by time-resolved FRET

被引:8
作者
Kanassatega, Rhye-Samuel [1 ]
Bunch, Thomas A. A. [1 ]
Lepak, Victoria C. C. [1 ]
Wang, Christopher [1 ]
Colson, Brett A. A. [1 ]
机构
[1] Univ Arizona, Dept Cellular & Mol Med, Tucson, AZ 85724 USA
关键词
Cardiac myosin-binding protein C (cMyBP-C); Biosensor; Phosphorylation; Protein kinase A (PKA); Fluorescence lifetime; High-throughput screening (HTS); Time-resolved fluorescence resonance energy; transfer (TR-FRET); KINASE-A PHOSPHORYLATION; MYBP-C; MUSCLE; DOMAIN; HEART; IDENTIFICATION; ACCELERATION; PURIFICATION; ORGANIZATION; ACTIVATION;
D O I
10.1016/j.yjmcc.2022.02.005
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Cardiac myosin-binding protein C (cMyBP-C) is a thick filament-associated protein of the sarcomere and a potential therapeutic target for treating contractile dysfunction in heart failure. Mimicking the structural dynamics of phosphorylated cMyBP-C by small-molecule drug binding could lead to therapies that modulate cMyBP-C conformational states, and thereby function, to improve contractility. We have developed a human cMyBP-C biosensor capable of detecting intramolecular structural changes due to phosphorylation and mutation. Using site-directed mutagenesis and time-resolved fluorescence resonance energy transfer (TR-FRET), we substituted cysteines in cMyBP-C N-terminal domains C0 through C2 (C0-C2) for thiol-reactive fluorescent probe labeling to examine C0-C2 structure. We identified a cysteine pair that upon donor-acceptor labeling reports phosphorylation-sensitive structural changes between the C1 domain and the tri-helix bundle of the M-domain that links C1 to C2. Phosphorylation reduced FRET efficiency by-18%, corresponding to a-11% increase in the distance between probes and a-30% increase in disorder between them. The magnitude and precision of phosphorylation-mediated TR-FRET changes, as quantified by the Z'-factor, demonstrate the assay's potential for structure-based high-throughput screening of compounds for cMyBP-C-targeted therapies to improve cardiac performance in heart failure. Additionally, by probing C1's spatial positioning relative to the tri-helix bundle, these findings provide new molecular insight into the structural dynamics of phosphoregulation as well as mutations in cMyBP-C. Biosensor sensitivity to disease-relevant mutations in C0-C2 was demonstrated by examination of the hypertrophic cardiomyopathy mutation R282W. The results presented here support a screening platform to identify small molecules that regulate N-terminal cMyBP-C conformational states.
引用
收藏
页码:116 / 126
页数:11
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