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首页> 外文期刊>Biophysical Journal >Cytoskeletal Network Morphology Regulates Intracellular Transport Dynamics
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Cytoskeletal Network Morphology Regulates Intracellular Transport Dynamics

机译:细胞骨架网络形态调节细胞内运输动力学。

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Intracellular transport is essential for maintaining proper cellular function in most eukaryotic cells, with perturbations in active transport resulting in several types of disease. Efficient delivery of critical cargos to specific locations is accomplished through a combination of passive diffusion and active transport by molecular motors that ballistically move along a network of cytoskeletal filaments. Although motor-based transport is known to be necessary to overcome cytoplasmic crowding and the limited range of diffusion within reasonable timescales, the topological features of the cytoskeletal network that regulate transport efficiency and robustness have not been established. Using a continuum diffusion model, we observed that the time required for cellular transport was minimized when the network was localized near the nucleus. In simulations that explicitly incorporated network spatial architectures, total filament mass was the primary driver of network transit times. However, filament traps that redirect cargo back to the nucleus caused large variations in network transport. Filament polarity was more important than filament orientation in reducing average transit times, and transport properties were optimized in networks with intermediate motor on and off rates. Our results provide important insights into the functional constraints on intracellular transport under which cells have evolved cytoskeletal structures, and have potential applications for enhancing reactions in biomimetic systems through rational transport network design.
机译:细胞内转运对于在大多数真核细胞中维持适当的细胞功能至关重要,主动转运中的干扰会导致多种疾病。通过被动扩散和主动运输相结合,通过分子马达沿着细胞骨架细丝网络弹道运动,可以将关键货物有效地运送到特定位置。尽管已知基于马达的运输是克服细胞质拥挤和在合理时间范围内有限的扩散范围所必需的,但尚未建立调节运输效率和鲁棒性的细胞骨架网络的拓扑特征。使用连续扩散模型,我们观察到当网络位于细胞核附近时,细胞运输所需的时间最小化。在明确纳入网络空间架构的仿真中,总灯丝质量是网络传输时间的主要驱动力。但是,将货物重定向到核的细丝陷阱导致网络传输发生很大变化。在减少平均传输时间方面,灯丝极性比灯丝取向更重要,并且在具有中间电动机开和关速度的网络中,运输性能得到了优化。我们的结果提供了对细胞内运输的功能限制的重要见解,在该功能下细胞已经进化了细胞骨架结构,并通过合理的运输网络设计在增强仿生系统的反应中具有潜在的应用。

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