The Gene and Linda Voiland School of Chemical Engineering and Bioengineering, Washington State University, Pullman, WA 99164, USA.
The Department of Physiology and Biophysics, Center for Cardiovascular Research, College of Medicine, University of Illinois at Chicago, Chicago, IL 60612, USA.
Arch Biochem Biophys. 2018 Jun 15;648:27-35. doi: 10.1016/j.abb.2018.04.014. Epub 2018 Apr 25.
The C-terminus mobile domain of cTnI (cTnI-MD) is a highly conserved region which stabilizes the actin-cTnI interaction during the diastole. Upon Ca-binding to cTnC, cTnI-MD participates in a regulatory switching that involves cTnI to switch from interacting with actin toward interacting with the Ca-regulatory domain of cTnC. Despite many studies targeting the cTnI-MD, the role of this region in the length-dependent activation of cardiac contractility is yet to be determined. The present study investigated the functional consequences of losing the entire cTnI-MD in cTnI(1-167) truncation mutant, as it was exchanged for endogenous cTnI in skinned rat papillary muscle fibers. The influence of cTnI-MD truncation on the extent of the N-domain of cTnC hydrophobic cleft opening and the steady-state force as a function of sarcomere length (SL), cross-bridge state, and [Ca] was assessed using the simultaneous in situ time-resolved FRET and force measurements at short (1.8 μm) and long (2.2 μm) SLs. Our results show the significant role of cTnI-MD in the length dependent thin filament activation and the coupling between thin and thick filament regulations affected by SL. Our results also suggest that cTnI-MD transmits the effects of SL change to the core of troponin complex.
肌钙蛋白 I(cTnI)的 C 端移动结构域(cTnI-MD)是一个高度保守的区域,在心脏舒张期稳定肌动蛋白与 cTnI 的相互作用。当 cTnC 与 Ca 结合时,cTnI-MD 参与一个调节开关,使 cTnI 从与肌动蛋白相互作用转变为与 cTnC 的 Ca 调节结构域相互作用。尽管许多研究都针对 cTnI-MD,但该区域在心脏收缩性的长度依赖性激活中的作用尚未确定。本研究通过在去细胞大鼠乳头肌纤维中用内源性 cTnI 替换 cTnI(1-167)截断突变体,研究了丢失 cTnI-MD 对心脏收缩性长度依赖性激活的功能影响。使用同步原位时间分辨 FRET 和力测量技术,评估了 cTnI-MD 截断对 cTnC N 端疏水裂缝开口程度的影响,以及力作为肌节长度(SL)、横桥状态和 [Ca]的函数的稳态。我们的结果表明 cTnI-MD 在长度依赖性细肌丝激活以及由 SL 影响的细肌丝和粗肌丝调节之间的偶联中起重要作用。我们的结果还表明,cTnI-MD 将 SL 变化的影响传递到肌钙蛋白复合物的核心。