Ca(2+) and Myosin Cycle States Work as Allosteric Effectors of Troponin Activation.

Ca(2+)和肌球蛋白循环状态作为肌钙蛋白激活的变构效应物发挥作用

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作者:Solís Christopher, Kim Giho H, Moutsoglou Maria E, Robinson John M
In cardiac muscle, troponin (Tn) and tropomyosin inhibit actin and myosin interactions through the steric blocking of myosin binding to F-actin. Ca(2+) binding to Tn C modulates this inhibition. Thin filaments become activated upon Ca(2+) binding, which enables strong binding of myosin with a concomitant release of ATP hydrolysis products and level arm swinging responsible for force generation. Despite this level of description, the current cross-bridge cycle model does not fully define the structural events that take place within Tn during combinatorial myosin and Ca(2+) interventions. Here, we studied conformational changes within Tn bound to F-actin and tropomyosin by fluorescence lifetime imaging combined with Förster resonance energy transfer. Fluorescent dye molecules covalently bound to the Tn C C-lobe and Tn I C-terminal domain report Ca(2+)- and myosin-induced activation of Tn. Reconstituted thin filaments were deposited on a myosin-coated surface similar to an in vitro motility assay setup without filament sliding involved. Under all the tested conditions, Ca(2+) was responsible for the most significant changes in Tn activation. Rigor myosin activated Tn at subsaturated Ca(2+) conditions but not to the degree seen in thin filaments with Ca(2+). ATP-γ-S did not affect Tn activation significantly; however, blebbistatin induced significant activation at subsaturating Ca(2+) levels. The relation between the extent of Tn activation and its conformational flexibility suggests that active/inactive Tn states coexist in different proportions that depend on the combination of effectors. These results satisfy an allosteric activation model of the thin filament as a function of Ca(2+) and the myosin catalytic cycle state.

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