Modulation of Skeletal Muscle Contraction by Myosin Phosphorylation

被引:66
|
作者
Vandenboom, Rene [1 ]
机构
[1] Brock Univ, Fac Appl Hlth Sci, Dept Kinesiol, St Catharines, ON, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
LIGHT-CHAIN PHOSPHORYLATION; SUPER-RELAXED STATE; CROSS-BRIDGE KINETICS; N-TERMINAL EXTENSION; POST-TETANIC POTENTIATION; SKINNED RABBIT SKELETAL; CHEMICAL ENERGY USAGE; UNIT DISCHARGE RATE; CATCH-LIKE PROPERTY; X-RAY STRUCTURES;
D O I
10.1002/cphy.c150044
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The striated muscle sarcomere is a highly organized and complex enzymatic and structural organelle. Evolutionary pressures have played a vital role in determining the structure-function relationship of each protein within the sarcomere. A key part of this multimeric assembly is the light chain-binding domain (LCBD) of the myosin II motor molecule. This elongated "beam" functions as a biological lever, amplifying small interdomain movements within the myosin head into piconewton forces and nanometer displacements against the thin filament during the cross-bridge cycle. The LCBD contains two subunits known as the essential and regulatory myosin light chains (ELC and RLC, respectively). Isoformic differences in these respective species provide molecular diversity and, in addition, sites for phosphorylation of serine residues, a highly conserved feature of striated muscle systems. Work on permeabilized skeletal fibers and thick filament systems shows that the skeletal myosin light chain kinase catalyzed phosphorylation of the RLC alters the "interacting head motif" of myosin motor heads on the thick filament surface, with myriad consequences for muscle biology. At rest, structure-function changes may upregulate actomyosin ATPase activity of phosphorylated cross-bridges. During activation, these same changes may increase the Ca2+ sensitivity of force development to enhance force, work, and power output, outcomes known as "potentiation." Thus, although other mechanisms may contribute, RLC phosphorylation may represent a form of thick filament activation that provides a "molecular memory" of contraction. The clinical significance of these RLC phosphorylation mediated alterations to contractile performance of various striated muscle systems are just beginning to be understood. (C) 2017 American Physiological Society.
引用
收藏
页码:171 / 212
页数:42
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