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神经丝侧臂调节平行和交叉丝取向,诱导向各向同性和回复双折射水凝胶的转变。

Neurofilament sidearms modulate parallel and crossed-filament orientations inducing nematic to isotropic and re-entrant birefringent hydrogels.

机构信息

Chemistry and Biochemistry Department, University of California, Santa Barbara, California 93106, USA.

出版信息

Nat Commun. 2013;4:2224. doi: 10.1038/ncomms3224.

Abstract

Neurofilaments are intermediate filaments assembled from the subunits neurofilament-low, neurofilament-medium and neurofilament-high. In axons, parallel neurofilaments form a nematic liquid-crystal hydrogel with network structure arising from interactions between the neurofilaments' C-terminal sidearms. Here we report, using small-angle X-ray-scattering, polarized-microscopy and rheometry, that with decreasing ionic strength, neurofilament-low-high, neurofilament-low-medium and neurofilament-low-medium-high hydrogels transition from the nematic hydrogel to an isotropic hydrogel (with random, crossed-filament orientation) and to an unexpected new re-entrant liquid-crystal hydrogel with parallel filaments--the bluish-opaque hydrogel--with notable mechanical and water retention properties reminiscent of crosslinked hydrogels. Significantly, the isotropic gel phase stability is sidearm-dependent: neurofilament-low-high hydrogels exhibit a wide ionic strength range, neurofilament-low-medium hydrogels a narrow ionic strength range, whereas neurofilament-low hydrogels lack the isotropic gel phase. This suggests a dominant regulatory role for neurofilament-high sidearms in filament reorientation plasticity, facilitating organelle transport in axons. Neurofilament-inspired biomimetic hydrogels should therefore exhibit remarkable structure-dependent moduli and slow and fast water-release properties.

摘要

神经丝由神经丝低、中、高分子组成。在轴突中,平行的神经丝形成向列液晶水凝胶,其网络结构由神经丝 C 端侧臂之间的相互作用产生。本文利用小角 X 射线散射、偏光显微镜和流变学研究发现,随着离子强度的降低,神经丝低高分子、神经丝低中高分子水凝胶从向列水凝胶转变为各向同性水凝胶(具有随机交叉纤维取向),再转变为一种具有平行纤维的意想不到的新型再入液晶水凝胶——蓝白色不透明水凝胶,其具有显著的机械性能和保水性能,类似于交联水凝胶。值得注意的是,各向同性凝胶相的稳定性取决于侧臂:神经丝低高分子水凝胶具有较宽的离子强度范围,神经丝低中高分子水凝胶具有较窄的离子强度范围,而神经丝低水凝胶则缺乏各向同性凝胶相。这表明神经丝高分子侧臂在纤维重排可塑性中起主要调节作用,有利于轴突中的细胞器运输。因此,受神经丝启发的仿生水凝胶应该表现出显著的结构依赖性模量以及慢释放和快释放水性能。

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