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肌动蛋白丝内在无序性的结构基础:“侧向滑动”模型。

The structural basis for the intrinsic disorder of the actin filament: the "lateral slipping" model.

作者信息

Bremer A, Millonig R C, Sütterlin R, Engel A, Pollard T D, Aebi U

机构信息

M.E. Müller-Institute for High-Resolution Electron Microscopy at the Biocenter, University of Basel, Switzerland.

出版信息

J Cell Biol. 1991 Nov;115(3):689-703. doi: 10.1083/jcb.115.3.689.

Abstract

Three-dimensional (3-D) helical reconstructions computed from electron micrographs of negatively stained dispersed F-actin filaments invariably revealed two uninterrupted columns of mass forming the "backbone" of the double-helical filament. The contact between neighboring subunits along the thus defined two long-pitch helical strands was spatially conserved and of high mass density, while the intersubunit contact between them was of lower mass density and varied among reconstructions. In contrast, phalloidinstabilized F-actin filaments displayed higher and spatially more conserved mass density between the two long-pitch helical strands, suggesting that this bicyclic hepta-peptide toxin strengthens the intersubunit contact between the two strands. Consistent with this distinct intersubunit bonding pattern, the two long-pitch helical strands of unstabilized filaments were sometimes observed separated from each other over a distance of two to six subunits, suggesting that the intrastrand intersubunit contact is also physically stronger than the interstrand contact. The resolution of the filament reconstructions, extending to 2.5 nm axially and radially, enabled us to reproducibly "cut out" the F-actin subunit which measured 5.5 nm axially by 6.0 nm tangentially by 3.2 nm radially. The subunit is distinctly polar with a massive "base" pointing towards the "barbed" end of the filament, and a slender "tip" defining its "pointed" end (i.e., relative to the "arrowhead" pattern revealed after stoichiometric decoration of the filaments with myosin subfragment 1). Concavities running approximately parallel to the filament axis both on the inner and outer face of the subunit define a distinct cleft separating the subunit into two domains of similar size: an inner domain confined to radii less than or equal to 2.5-nm forms the uninterrupted backbone of the two long-pitch helical strands, and an outer domain placed at radii of 2-5-nm protrudes radially and thus predominantly contributes to the outer part of the massive base. Quantitative evaluation of successive crossover spacings along individual F-actin filaments revealed the deviations from the mean repeat to be compensatory, i.e., short crossovers frequently followed long ones and vice versa. The variable crossover spacings and diameter of the F-actin filament together with the local unraveling of the two long-pitch helical strands are explained in terms of varying amounts of compensatory "lateral slipping" of the two strands past each other roughly perpendicular to the filament axis. This intrinsic disorder of the actin filament may enable the actin moiety to play a more active role in actin-myosin-based force generation than merely act as a rigid passive cable as has hitherto been assumed.

摘要

从负染分散的F-肌动蛋白丝的电子显微照片计算得到的三维(3-D)螺旋重建总是显示出两列连续的物质形成双螺旋丝的“主干”。沿着如此定义的两条长间距螺旋链,相邻亚基之间的接触在空间上是保守的,且质量密度高,而它们之间的亚基间接触质量密度较低,并且在不同重建中有所变化。相比之下,鬼笔环肽稳定的F-肌动蛋白丝在两条长间距螺旋链之间显示出更高且在空间上更保守的质量密度,这表明这种双环七肽毒素加强了两条链之间的亚基间接触。与这种独特的亚基间结合模式一致,有时观察到未稳定化丝的两条长间距螺旋链在两到六个亚基的距离上彼此分离,这表明链内亚基间接触在物理上也比链间接触更强。丝重建的分辨率在轴向和径向上延伸到2.5nm,使我们能够可重复地“切出”F-肌动蛋白亚基,其轴向测量为5.5nm,切向测量为6.0nm,径向测量为3.2nm。该亚基明显具有极性,一个巨大的“基部”指向丝的“带刺”端,一个细长的“尖端”定义其“尖”端(即相对于用肌球蛋白亚片段1对丝进行化学计量修饰后显示的“箭头”模式)。在亚基的内表面和外表面上大致平行于丝轴延伸的凹面定义了一个明显的裂缝,将亚基分成两个大小相似的结构域:一个内结构域,其半径小于或等于2.5nm,形成两条长间距螺旋链的连续主干,一个外结构域,位于半径为2 - 5nm处,径向突出,因此主要构成巨大基部的外部。对沿着单个F-肌动蛋白丝的连续交叉间距的定量评估表明,与平均重复的偏差是补偿性的,即短交叉经常跟随长交叉,反之亦然。F-肌动蛋白丝可变的交叉间距和直径以及两条长间距螺旋链的局部解缠可以用两条链彼此大致垂直于丝轴的不同程度的补偿性“侧向滑动”来解释。肌动蛋白丝的这种内在无序性可能使肌动蛋白部分在基于肌动蛋白 - 肌球蛋白的力产生中发挥比迄今为止所假设的仅仅作为刚性被动缆索更积极的作用。

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