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α-辅肌动蛋白对肌动蛋白丝的捆绑作用取决于其分子长度。

Bundling of actin filaments by alpha-actinin depends on its molecular length.

作者信息

Meyer R K, Aebi U

机构信息

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

出版信息

J Cell Biol. 1990 Jun;110(6):2013-24. doi: 10.1083/jcb.110.6.2013.

Abstract

Cross-linking of actin filaments (F-actin) into bundles and networks was investigated with three different isoforms of the dumbbell-shaped alpha-actinin homodimer under identical reaction conditions. These were isolated from chicken gizzard smooth muscle, Acanthamoeba, and Dictyostelium, respectively. Examination in the electron microscope revealed that each isoform was able to cross-link F-actin into networks. In addition, F-actin bundles were obtained with chicken gizzard and Acanthamoeba alpha-actinin, but not Dictyostelium alpha-actinin under conditions where actin by itself polymerized into disperse filaments. This F-actin bundle formation critically depended on the proper molar ratio of alpha-actinin to actin, and hence F-actin bundles immediately disappeared when free alpha-actinin was withdrawn from the surrounding medium. The apparent dissociation constants (Kds) at half-saturation of the actin binding sites were 0.4 microM at 22 degrees C and 1.2 microM at 37 degrees C for chicken gizzard, and 2.7 microM at 22 degrees C for both Acanthamoeba and Dictyostelium alpha-actinin. Chicken gizzard and Dictyostelium alpha-actinin predominantly cross-linked actin filaments in an antiparallel fashion, whereas Acanthamoeba alpha-actinin cross-linked actin filaments preferentially in a parallel fashion. The average molecular length of free alpha-actinin was 37 nm for glycerol-sprayed/rotary metal-shadowed and 35 nm for negatively stained chicken gizzard; 46 and 44 nm, respectively, for Acanthamoeba; and 34 and 31 nm, respectively, for Dictyostelium alpha-actinin. In negatively stained preparations we also evaluated the average molecular length of alpha-actinin when bound to actin filaments: 36 nm for chicken gizzard and 35 nm for Acanthamoeba alpha-actinin, a molecular length roughly coinciding with the crossover repeat of the two-stranded F-actin helix (i.e., 36 nm), but only 28 nm for Dictyostelium alpha-actinin. Furthermore, the minimal spacing between cross-linking alpha-actinin molecules along actin filaments was close to 36 nm for both smooth muscle and Acanthamoeba alpha-actinin, but only 31 nm for Dictyostelium alpha-actinin. This observation suggests that the molecular length of the alpha-actinin homodimer may determine its spacing along the actin filament, and hence F-actin bundle formation may require "tight" (i.e., one molecule after the other) and "untwisted" (i.e., the long axis of the molecule being parallel to the actin filament axis) packing of alpha-actinin molecules along the actin filaments.

摘要

在相同反应条件下,使用哑铃状α - 辅肌动蛋白同型二聚体的三种不同亚型研究肌动蛋白丝(F - 肌动蛋白)交联成束和网络的情况。这些亚型分别从鸡砂囊平滑肌、棘阿米巴和盘基网柄菌中分离得到。电子显微镜检查显示,每种亚型都能够将F - 肌动蛋白交联成网络。此外,在肌动蛋白自身聚合成分散丝的条件下,用鸡砂囊和棘阿米巴α - 辅肌动蛋白可得到F - 肌动蛋白束,但盘基网柄菌α - 辅肌动蛋白则不能。这种F - 肌动蛋白束的形成关键取决于α - 辅肌动蛋白与肌动蛋白的合适摩尔比,因此当从周围介质中去除游离的α - 辅肌动蛋白时,F - 肌动蛋白束会立即消失。鸡砂囊α - 辅肌动蛋白在肌动蛋白结合位点半饱和时的表观解离常数(Kds)在22℃为0.4μM,在37℃为1.2μM;棘阿米巴和盘基网柄菌α - 辅肌动蛋白在22℃时均为2.7μM。鸡砂囊和盘基网柄菌α - 辅肌动蛋白主要以反平行方式交联肌动蛋白丝,而棘阿米巴α - 辅肌动蛋白优先以平行方式交联肌动蛋白丝。对于甘油喷雾/旋转金属阴影法处理的游离α - 辅肌动蛋白,其平均分子长度鸡砂囊为37nm,棘阿米巴为46nm,盘基网柄菌为34nm;对于负染的鸡砂囊α - 辅肌动蛋白,其平均分子长度为35nm,棘阿米巴为44nm,盘基网柄菌为31nm。在负染制剂中,我们还评估了α - 辅肌动蛋白与肌动蛋白丝结合时的平均分子长度:鸡砂囊为36nm,棘阿米巴α - 辅肌动蛋白为35nm,该分子长度大致与双链F - 肌动蛋白螺旋的交叉重复长度(即36nm)一致,但盘基网柄菌α - 辅肌动蛋白仅为28nm。此外,沿着肌动蛋白丝交联的α - 辅肌动蛋白分子之间的最小间距,平滑肌和棘阿米巴α - 辅肌动蛋白均接近36nm,而盘基网柄菌α - 辅肌动蛋白仅为31nm。这一观察结果表明,α - 辅肌动蛋白同型二聚体的分子长度可能决定其沿肌动蛋白丝的间距,因此F - 肌动蛋白束的形成可能需要α - 辅肌动蛋白分子沿肌动蛋白丝“紧密”(即一个接一个)且“未扭曲”(即分子的长轴与肌动蛋白丝轴平行)的排列。

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