Kreplak L, Bär H, Leterrier J F, Herrmann H, Aebi U
M.E Müller Institute for Structural Biology, Biozentrum, University of Basel Klingelbergstrasse 70, 4056 Basel, Switzerland.
J Mol Biol. 2005 Dec 2;354(3):569-77. doi: 10.1016/j.jmb.2005.09.092. Epub 2005 Oct 21.
Intermediate filaments (IFs) are structural elements of eukaryotic cells with distinct mechanical properties. Tissue integrity is severely impaired, in particular in skin and muscle, when IFs are either absent or malfunctioning due to mutations. Our knowledge on the mechanical properties of IFs is mainly based on tensile testing of macroscopic fibers and on the rheology of IF networks. At the single filament level, the only piece of data available is a measure of the persistence length of vimentin IFs. Here, we have employed an atomic force microscopy (AFM) based protocol to directly probe the mechanical properties of single cytoplasmic IFs when adsorbed to a solid support in physiological buffer environment. Three IF types were studied in vitro: recombinant murine desmin, recombinant human keratin K5/K14 and neurofilaments isolated from rat brains, which are composed of the neurofilament triplet proteins NF-L, NF-M and NF-H. Depending on the experimental conditions, the AFM tip was used to laterally displace or to stretch single IFs on the support they had been adsorbed to. Upon applying force, IFs were stretched on average 2.6-fold. The maximum stretching that we encountered was 3.6-fold. A large reduction of the apparent filament diameter was observed concomitantly. The observed mechanical properties therefore suggest that IFs may indeed function as mechanical shock absorbers in vivo.
中间丝(IFs)是真核细胞的结构成分,具有独特的机械性能。当IFs由于突变而缺失或功能异常时,组织完整性会受到严重损害,尤其是在皮肤和肌肉中。我们对IFs机械性能的了解主要基于宏观纤维的拉伸测试和IF网络的流变学。在单丝水平上,唯一可用的数据是波形蛋白中间丝的持久长度测量值。在这里,我们采用了一种基于原子力显微镜(AFM)的方法,在生理缓冲环境中吸附到固体支持物上时,直接探测单个细胞质中间丝的机械性能。在体外研究了三种中间丝类型:重组小鼠结蛋白、重组人角蛋白K5/K14和从大鼠脑中分离的神经丝,后者由神经丝三联体蛋白NF-L、NF-M和NF-H组成。根据实验条件,AFM针尖用于横向移动或拉伸吸附在支持物上的单个中间丝。施加力时,中间丝平均拉伸2.6倍。我们遇到的最大拉伸倍数为3.6倍。同时观察到明显的细丝直径大幅减小。因此,观察到的机械性能表明,中间丝在体内可能确实起到机械减震器的作用。