Nolting Jens-Friedrich, Möbius Wiebke, Köster Sarah
Institute for X-Ray Physics, Georg-August-Universität Göttingen, Göttingen, Germany; Center for Nanoscale Microscopy and Molecular Physiology of the Brain (CNMPB), Göttingen, Germany.
Max Planck Institute of Experimental Medicine, Department of Neurogenetics, Göttingen, Germany; Center for Nanoscale Microscopy and Molecular Physiology of the Brain (CNMPB), Göttingen, Germany.
Biophys J. 2014 Dec 2;107(11):2693-9. doi: 10.1016/j.bpj.2014.10.039.
Along with microtubules and microfilaments, intermediate filaments are a major component of the eukaryotic cytoskeleton and play a key role in cell mechanics. In cells, keratin intermediate filaments form networks of bundles that are sparser in structure and have lower connectivity than, for example, actin networks. Because of this, bending and buckling play an important role in these networks. Buckling events, which occur due to compressive intracellular forces and cross-talk between the keratin network and other cytoskeletal components, are measured here in situ. By applying a mechanical model for the bundled filaments, we can access the mechanical properties of both the keratin bundles themselves and the surrounding cytosol. Bundling is characterized by a coupling parameter that describes the strength of the linkage between the individual filaments within a bundle. Our findings suggest that coupling between the filaments is mostly complete, although it becomes weaker for thicker bundles, with some relative movement allowed.
中间丝与微管和微丝一起,是真核细胞骨架的主要组成部分,在细胞力学中起关键作用。在细胞中,角蛋白中间丝形成束状网络,其结构比例如肌动蛋白网络更稀疏,连通性更低。因此,弯曲和屈曲在这些网络中起重要作用。由于细胞内压缩力以及角蛋白网络与其他细胞骨架成分之间的相互作用而发生的屈曲事件,在此进行原位测量。通过应用束状丝的力学模型,我们可以了解角蛋白束本身以及周围细胞质溶胶的力学特性。成束的特征在于一个耦合参数,该参数描述了束内单个丝之间连接的强度。我们的研究结果表明,丝之间的耦合大多是完全的,尽管对于较粗的束耦合会变弱,允许有一些相对运动。