Modelling muscle motor conformations using low-angle X-ray diffraction.

J M Squire, H A Al-Khayat, J J Harford, L Hudson, T Irving, C Knupp, M K Reedy
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引用次数: 7

Abstract

New results on myosin head organization using analysis of low-angle X-ray diffraction patterns from relaxed insect flight muscle (IFM) from a giant waterbug, building on previous studies of myosin filaments in bony fish skeletal muscle (BFM), show that the information content of such low-angle diffraction patterns is very high despite the 'crystallographically low' resolution limit (65 A) of the spacings of the Bragg diffraction peaks being used. This high information content and high structural sensitivity arises because: (i) the atomic structures of the domains of the myosin head are known from protein crystallography; and (ii) myosin head action appears to consist mainly of pivoting between domains which themselves stay rather constant in structure, thus (iii) the intensity distribution among diffraction peaks in even the low resolution diffraction pattern is highly determined by the high-resolution distribution of atomically modelled domain mass. A single model was selected among 5000+ computer-generated variations as giving the best fit for the 65 reflections recorded within the selected resolution limit of 65 A. Clear evidence for a change in shape of the insect flight muscle myosin motor between the resting (probably like the pre-powerstroke) state and the rigor state (considered to mimic the end-of-powerstroke conformation) has been obtained. This illustrates the power of the low-angle X-ray diffraction method. The implications of these new results about myosin motor action during muscle contraction are discussed.

用低角x射线衍射模拟肌肉运动构象。
在先前对硬骨鱼骨骼肌(BFM)中肌球蛋白细丝的研究基础上,利用对巨型水虫松弛昆虫飞行肌(IFM)低角度x射线衍射图的分析,对肌球蛋白头部组织进行了新的研究,结果表明,尽管使用的Bragg衍射峰间隔的“晶体学低”分辨率限制(65 a),但这种低角度衍射图的信息含量非常高。这种高信息含量和高结构敏感性的出现是因为:(i)肌球蛋白头部结构域的原子结构是通过蛋白质晶体学已知的;并且(ii)肌凝蛋白头部作用似乎主要由结构域之间的旋转组成,而这些结构域本身在结构上保持相当恒定,因此(iii)即使在低分辨率衍射模式中,衍射峰之间的强度分布在很大程度上取决于原子模拟的畴质量的高分辨率分布。在5000多个计算机生成的变化中选择了一个单一的模型,因为它最适合在选定的65 A分辨率限制内记录的65个反射。已经获得了昆虫飞行肌肌球蛋白马达在休息状态(可能像动力冲程前)和严格状态(被认为模仿动力冲程结束时的构造)之间形状变化的明确证据。这说明了低角度x射线衍射法的威力。本文讨论了肌球蛋白在肌肉收缩过程中运动作用的新结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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