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首页> 外文期刊>Journal of Structural Biology >A comparison of muscle thin filament models obtained from electron microscopy reconstructions and low-angle X-ray fibre diagrams from non-overlap muscle
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A comparison of muscle thin filament models obtained from electron microscopy reconstructions and low-angle X-ray fibre diagrams from non-overlap muscle

机译:从电子显微镜重建获得的肌肉细丝模型与非重叠肌肉的低角度X射线纤维图的比较

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The regulation of striated muscle contraction involves changes in the interactions of troponin and tropomyosin with actin thin filaments. In resting muscle, myosin-binding sites on actin are thought to be blocked by the coiled-coil protein tropomyosin. During muscle activation, Ca2+ binding to troponin alters the tropomyosin position on actin, resulting in cyclic actin-myosin interactions that accompany muscle contraction. Evidence for this steric regulation by troponin-tropomyosin comes from X-ray data [Haselgrove, J.C., 1972. X-ray evidence for a conformational change in the actin-containing filaments of verterbrate striated muscle. Cold Spring Habor Symp. Quant. Biol. 37, 341-352; Huxley, H.E., 1972. Structural changes in actin and myosin-containing filaments during contraction. Cold Spring Habor Symp. Quant. Biol. 37, 361-376; Parry, D.A., Squire, J.M., 1973. Structural role of tropomyosin in muscle regulation: analysis of the X-ray diffraction patterns from relaxed and contracting muscles. J. Mol. Biol. 75, 33-55] and electron microscope (EM) data [Spudich, J.A., Huxley, H.E., Finch, J., 1972. Regulation of skeletal muscle contraction. II. Structural studies of the interaction of the tropomyosin-troponin complex with actin. J. Mol. Biol. 72, 619-632; O'Brien, E.J., Gillis, J.M., Couch, J., 1975. Symmetry and molecular arrangement in paracrystals of reconstituted muscle thin filaments. J. Mol. Biol. 99, 461-475; Lehman, W., Craig, R., Vibert, P., 1994. Ca2+-induced tropomyosin movement in Limulus thin filaments revealed by three-dimensional reconstruction. Nature 368, 65-67] each with its own particular strengths and limitations. Here we bring together some of the latest information from EM analysis of single thin filaments from Pirani et al. [Pirani, A., Xu, C., Hatch, V., Craig, R., Tobacman, L.S., Lehman, W. (2005). Single particle analysis of relaxed and activated muscle thin filaments. J. Mol. Biol. 346, 761-772], with synchrotron X-ray data from non-overlapped muscle fibres to refine the models of the striated muscle thin filament. This was done by incorporating current atomic-resolution structures of actin, tropomyosin, troponin and myosin subfragment-1. Fitting these atomic coordinates to EM reconstructions, we present atomic models of the thin filament that are entirely consistent with a steric regulatory mechanism. Furthermore, fitting the atomic models against diffraction data from skinned muscle fibres, stretched to non-overlap to preclude crossbridge binding, produced very similar results, including a large Ca2+-induced shift in tropomyosin azimuthal location but little change in the actin structure or apparent alteration in troponin position.
机译:横纹肌收缩的调节涉及肌钙蛋白和原肌球蛋白与肌动蛋白细丝相互作用的变化。在静止的肌肉中,肌动蛋白上的肌球蛋白结合位点被认为被卷曲螺旋蛋白原肌球蛋白所阻断。在肌肉激活过程中,Ca2 +与肌钙蛋白的结合会改变肌动蛋白上原肌球蛋白的位置,导致伴随肌肉收缩的环状肌动蛋白-肌球蛋白相互作用。肌钙蛋白-原肌球蛋白的这种空间调节的证据来自X射线数据[Haselgrove,J.C.,1972年。X射线证据表明脊椎动物的横纹肌中含肌动蛋白的细丝构象发生了变化。冷泉港症状。数量生物学37,341-352; Huxley,H.E.,1972年。收缩期间肌动蛋白和肌球蛋白丝的结构变化。冷泉港症状。数量生物学37,361-376; Parry,D.A.,Squire,J.M.,1973年。原肌球蛋白在肌肉调节中的结构作用:分析松弛和收缩的肌肉的X射线衍射图。 J.摩尔生物学75,33-55]和电子显微镜(EM)数据[Spudich,J.A.,Huxley,H.E.,Finch,J.,1972。骨骼肌收缩的调节。二。原肌球蛋白-肌钙蛋白复合物与肌动蛋白相互作用的结构研究。 J.摩尔生物学72,619-632; O'Brien,E.J.,Gillis,J.M.,Couch,J.,1975。重构的肌肉细丝的副晶体中的对称性和分子排列。 J.摩尔生物学99,461-475; Lehman,W.,Craig,R.,Vibert,P.,1994。三维重建揭示了Ca2 +诱导的Li细丝中原肌球蛋白运动。 [Nature 368,65-67]各自具有自己的特定优势和局限性。在这里,我们汇总了来自Pirani等人的单根细丝的EM分析的一些最新信息。 [Pirani,A.,Xu,C.,Hatch,V.,Craig,R.,Tobacman,L.S.,Lehman,W.(2005)。松弛和活化的肌肉细丝的单颗粒分析。 J.摩尔生物学[346,761-772],使用来自不重叠肌肉纤维的同步加速器X射线数据来细化横纹肌细丝的模型。这是通过结合当前的肌动蛋白,原肌球蛋白,肌钙蛋白和肌球蛋白亚片段1的原子分辨结构来完成的。将这些原子坐标拟合到EM重建中,我们提出了与空间调节机制完全一致的细丝原子模型。此外,针对来自皮肤肌肉纤维的衍射数据拟合原子模型,拉伸至非交叠以排除跨桥结合,产生了非常相似的结果,包括原肌球蛋白方位角位置中Ca2 +诱导的大位移,但肌动蛋白结构变化很小或表观改变在肌钙蛋白位置。

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