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Ca2+-induced switching of troponin and tropomyosin on actin filaments as revealed by electron cryo-microscopy

机译:电子冷冻显微镜显示Ca2 +诱导肌动蛋白丝上肌钙蛋白和原肌球蛋白的转换

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摘要

Muscle contraction is regulated by the intracellular Ca2+ concentration. Ln vertebrate striated muscle, troponin and tropomyosin on actin filaments comprise a Ca2+-sensitive switch that controls contraction. Ca2+ binds to troponin and triggers a series of changes in actin-containing filaments that lead to cyclic interactions with myosin that generate contraction. However, the precise location of troponin relative to actin and tropomyosin and how its structure changes with Ca2+ have been not determined. To understand the regulatory mechanism, we visualized the location of troponin by determining the three-dimensional structure of thin filaments from electron cryo-micrographs without imposing helical symmetry to similar to 35 Angstrom resolution With Ca2+, the globular domain of troponin was gourd-shaped and was located over the inner domain of actin. Without Ca2+, the main body of troponin was shifted by similar to 30 Angstrom towards the outer domain and bifurcated, with a horizontal branch (troponin arm) covering the N and C-terminal regions of actin. The C-terminal one-third of tropomyosin shifted towards the outer domain of actin by similar to 35 Angstrom supporting the steric blocking model, however it is surprising that the N-terminal half of troyomyosin shifted less than similar to 12 Angstrom. Therefore tropomyosin shifted differentially without Ca-2+. With Ca2+, tropomyosin was located entirely over the inner domain thereby allowing greater access of myosin for force generation. The interpretation of three-dimensional maps was facilitated by determining the three-dimensional positions of fluorophores labelled on specific sites of troponin or tropomyosin by applying probabilistic distance geometry to data from fluorescence resonance energy transfer measurements. (C) 2001 Academic Press. [References: 85]
机译:肌肉收缩受细胞内Ca2 +浓度的调节。 Ln脊椎动物的横纹肌,肌动蛋白丝上的肌钙蛋白和原肌球蛋白包含控制收缩的Ca2 +敏感开关。 Ca2 +与肌钙蛋白结合并触发含肌动蛋白丝的一系列变化,从而导致与肌球蛋白的循环相互作用,从而产生收缩。但是,尚未确定肌钙蛋白相对于肌动蛋白和原肌球蛋白的精确位置以及其结构随Ca2 +的变化。为了理解调节机制,我们通过从电子显微照片确定细丝的三维结构来可视化肌钙蛋白的位置,而没有施加类似于35埃分辨率的螺旋对称性。Ca2 +时,肌钙蛋白的球状区域呈葫芦形且位于肌动蛋白的内部区域。没有Ca 2+时,肌钙蛋白的主体向外部区域移动约30埃,并分叉,水平分支(肌钙蛋白臂)覆盖肌动蛋白的N和C端区域。原肌球蛋白的C端三分之一移向肌动蛋白的外部结构域,类似于支持空间阻断模型的35埃,但是令人惊奇的是,肌钙蛋白的N端一半的移位小于12埃。因此,原肌球蛋白在没有Ca-2 +的情况下差异转移。对于Ca2 +,原肌球蛋白完全位于内部区域上方,从而允许更多的肌球蛋白产生力。通过将概率距离几何应用于来自荧光共振能量转移测量的数据,可以确定在肌钙蛋白或原肌球蛋白特定位点上标记的荧光团的三维位置,从而有助于三维图的解释。 (C)2001学术出版社。 [参考:85]

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