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交联的细微变化驱动肌动蛋白-微管网络中不同的异常输运特性。

Subtle changes in crosslinking drive diverse anomalous transport characteristics in actin-microtubule networks.

机构信息

Department of Physics & Biophysics, University of San Diego, San Diego, CA 92110, USA.

出版信息

Soft Matter. 2021 Apr 28;17(16):4375-4385. doi: 10.1039/d1sm00093d.

Abstract

Anomalous diffusion in crowded and complex environments is widely studied due to its importance in intracellular transport, fluid rheology and materials engineering. Specifically, diffusion through the cytoskeleton, a network comprised of semiflexible actin filaments and rigid microtubules that interact both sterically and via crosslinking, plays a principal role in viral infection, vesicle transport and targeted drug delivery. Here, we elucidate the impact of crosslinking on particle diffusion in composites of actin and microtubules with actin-actin, microtubule-microtubule and actin-microtubule crosslinking. We analyze a suite of transport metrics by coupling single-particle tracking and differential dynamic microscopy. Using these complementary techniques, we find that particles display non-Gaussian and non-ergodic subdiffusion that is markedly enhanced by cytoskeletal crosslinking, which we attribute to suppressed microtubule mobility. However, the extent to which transport deviates from normal Brownian diffusion depends strongly on the crosslinking motif - with actin-microtubule crosslinking inducing the most pronounced anomalous characteristics. Our results reveal that subtle changes to actin-microtubule interactions can have complex impacts on particle diffusion in cytoskeleton composites, and suggest that a combination of reduced filament mobility and more variance in actin mobilities leads to more strongly anomalous particle transport.

摘要

由于在细胞内运输、流体流变学和材料工程中的重要性,在拥挤和复杂的环境中扩散的异常现象得到了广泛的研究。具体来说,通过细胞骨架的扩散,细胞骨架是由半刚性肌动蛋白丝和刚性微管组成的网络,通过空间位阻和交联相互作用,在病毒感染、囊泡运输和靶向药物输送中起着主要作用。在这里,我们阐明了交联对肌动蛋白和微管与肌动蛋白-肌动蛋白、微管-微管和肌动蛋白-微管交联的复合材料中粒子扩散的影响。我们通过耦合单粒子跟踪和差示动态显微镜来分析一系列传输指标。使用这些互补技术,我们发现颗粒显示出非高斯和非遍历的亚扩散,这种扩散被细胞骨架交联显著增强,我们将其归因于微管流动性的抑制。然而,从正常的布朗扩散偏离的程度强烈取决于交联模式 - 肌动蛋白-微管交联诱导最显著的异常特征。我们的结果表明,肌动蛋白-微管相互作用的微小变化会对细胞骨架复合材料中的颗粒扩散产生复杂的影响,并表明纤维流动性的降低和肌动蛋白流动性的变化更大导致更强烈的异常颗粒运输。

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