Suppr超能文献

X 射线衍射研究在高钙僵肌纤维中,在斜坡形释放后动态张力恢复的结构起源。

X-ray Diffraction Studies on the Structural Origin of Dynamic Tension Recovery Following Ramp-Shaped Releases in High-Ca Rigor Muscle Fibers.

机构信息

Department of Physioloogy, Teikyo University School of Medicine, Tokyo 173-8605, Japan.

Department of Molecular Physiology, Jikei University School of Medicine, Tokyo 105-0003, Japan.

出版信息

Int J Mol Sci. 2020 Feb 13;21(4):1244. doi: 10.3390/ijms21041244.

Abstract

It is generally believed that during muscle contraction, myosin heads (M) extending from myosin filament attaches to actin filaments (A) to perform power stroke, associated with the reaction, A-M-ADP-Pi → A-M + ADP + Pi, so that myosin heads pass through the state of A-M, i.e., rigor A-M complex. We have, however, recently found that: (1) an antibody to myosin head, completely covering actin-binding sites in myosin head, has no effect on Ca-activated tension in skinned muscle fibers; (2) skinned fibers exhibit distinct tension recovery following ramp-shaped releases (amplitude, 0.5% of Lo; complete in 5 ms); and (3) EDTA, chelating Mg ions, eliminate the tension recovery in low-Ca rigor fibers but not in high-Ca rigor fibers. These results suggest that A-M-ADP myosin heads in high-Ca rigor fibers have dynamic properties to produce the tension recovery following ramp-shaped releases, and that myosin heads do not pass through rigor A-M complex configuration during muscle contraction. To obtain information about the structural changes in A-M-ADP myosin heads during the tension recovery, we performed X-ray diffraction studies on high-Ca rigor skinned fibers subjected to ramp-shaped releases. X-ray diffraction patterns of the fibers were recorded before and after application of ramp-shaped releases. The results obtained indicate that during the initial drop in rigor tension coincident with the applied release, rigor myosin heads take up applied displacement by tilting from oblique to perpendicular configuration to myofilaments, and after the release myosin heads appear to rotate around the helical structure of actin filaments to produce the tension recovery.

摘要

人们普遍认为,在肌肉收缩过程中,从肌球蛋白丝伸出的肌球蛋白头部(M)与肌动蛋白丝(A)结合,进行力作用冲程,伴随着反应 A-M-ADP-Pi→A-M+ADP+Pi,从而使肌球蛋白头部通过 A-M 状态,即刚性 A-M 复合物。然而,我们最近发现:(1)针对肌球蛋白头部的抗体,完全覆盖肌球蛋白头部的肌动蛋白结合位点,对肌球蛋白丝肌纤维的钙激活张力没有影响;(2)肌球蛋白丝肌纤维在斜坡形释放(幅度为 Lo 的 0.5%;在 5 毫秒内完全)后表现出明显的张力恢复;(3)EDTA,螯合镁离子,消除低钙僵硬纤维中的张力恢复,但不消除高钙僵硬纤维中的张力恢复。这些结果表明,高钙僵硬纤维中的 A-M-ADP 肌球蛋白头部具有产生斜坡形释放后张力恢复的动态特性,并且在肌肉收缩过程中肌球蛋白头部不会通过僵硬 A-M 复合物构型。为了获得关于高钙僵硬肌纤维中 A-M-ADP 肌球蛋白头部在张力恢复过程中结构变化的信息,我们对经受斜坡形释放的高钙僵硬肌纤维进行了 X 射线衍射研究。在应用斜坡形释放前后记录纤维的 X 射线衍射图谱。结果表明,在与施加的释放同步的初始僵硬张力下降期间,僵硬肌球蛋白头部通过从倾斜到垂直于肌丝的配置倾斜来占据施加的位移,并且在释放后肌球蛋白头部似乎围绕肌动蛋白丝的螺旋结构旋转以产生张力恢复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/726b/7072990/77ebb808dd6f/ijms-21-01244-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验