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中间丝之间的吸引力相互作用决定了体外网络力学。

Attractive interactions among intermediate filaments determine network mechanics in vitro.

作者信息

Pawelzyk Paul, Mücke Norbert, Herrmann Harald, Willenbacher Norbert

机构信息

Institute for Mechanical Process Engineering and Mechanics, Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany.

Biophysics of Macromolecules, German Cancer Research Center, Heidelberg, Germany.

出版信息

PLoS One. 2014 Apr 1;9(4):e93194. doi: 10.1371/journal.pone.0093194. eCollection 2014.

Abstract

Mechanical and structural properties of K8/K18 and vimentin intermediate filament (IF) networks have been investigated using bulk mechanical rheometry and optical microrheology including diffusing wave spectroscopy and multiple particle tracking. A high elastic modulus G0 at low protein concentration c, a weak concentration dependency of G0 (G0 ∼ c(0.5 ± 0.1)) and pronounced strain stiffening are found for these systems even without external crossbridgers. Strong attractive interactions among filaments are required to maintain these characteristic mechanical features, which have also been reported for various other IF networks. Filament assembly, the persistence length of the filaments and the network mesh size remain essentially unaffected when a nonionic surfactant is added, but strain stiffening is completely suppressed, G0 drops by orders of magnitude and exhibits a scaling G0 ∼ c(1.9 ± 0.2) in agreement with microrheological measurements and as expected for entangled networks of semi-flexible polymers. Tailless K8Δ/K18ΔT and various other tailless filament networks do not exhibit strain stiffening, but still show high G0 values. Therefore, two binding sites are proposed to exist in IF networks. A weaker one mediated by hydrophobic amino acid clusters in the central rod prevents stretched filaments between adjacent cross-links from thermal equilibration and thus provides the high G0 values. Another strong one facilitating strain stiffening is located in the tail domain with its high fraction of hydrophobic amino acid sequences. Strain stiffening is less pronounced for vimentin than for K8/K18 due to electrostatic repulsion forces partly compensating the strong attraction at filament contact points.

摘要

利用包括扩散波谱和多粒子追踪在内的体机械流变学和光学微流变学,对K8/K18和波形蛋白中间丝(IF)网络的力学和结构特性进行了研究。即使在没有外部交联剂的情况下,这些系统在低蛋白浓度c时也具有高弹性模量G0,G0对浓度的依赖性较弱(G0 ∼ c(0.5 ± 0.1)),并且有明显的应变硬化现象。细丝之间需要有强烈的吸引相互作用来维持这些特征性的力学特性,这在各种其他IF网络中也有报道。当添加非离子表面活性剂时,细丝组装、细丝的持久长度和网络网格尺寸基本不受影响,但应变硬化被完全抑制,G0下降几个数量级,并呈现出G0 ∼ c(1.9 ± 0.2)的标度,这与微流变学测量结果一致,并且符合半柔性聚合物缠结网络的预期。无尾的K8Δ/K18ΔT和各种其他无尾细丝网络不表现出应变硬化,但仍显示出高G0值。因此,有人提出IF网络中存在两个结合位点。一个较弱的位点由中央杆中的疏水氨基酸簇介导,可防止相邻交联点之间的拉伸细丝达到热平衡,从而提供高G0值。另一个促进应变硬化的强位点位于尾部结构域,其疏水氨基酸序列比例很高。由于静电排斥力部分补偿了细丝接触点处的强吸引力,波形蛋白的应变硬化比K8/K18不那么明显。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7022/3972185/231b0f1904da/pone.0093194.g001.jpg

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