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细胞质通过活跃的地毯搅动。

Cytoplasmic stirring by active carpets.

机构信息

Center for Computational Biology, Flatiron Institute, New York, NY 10010.

International Centre for Theoretical Sciences, Tata Institute of Fundamental Research, Bengaluru 560089, India.

出版信息

Proc Natl Acad Sci U S A. 2024 Jul 23;121(30):e2405114121. doi: 10.1073/pnas.2405114121. Epub 2024 Jul 16.

Abstract

Large cells often rely on cytoplasmic flows for intracellular transport, maintaining homeostasis, and positioning cellular components. Understanding the mechanisms of these flows is essential for gaining insights into cell function, developmental processes, and evolutionary adaptability. Here, we focus on a class of self-organized cytoplasmic stirring mechanisms that result from fluid-structure interactions between cytoskeletal elements at the cell cortex. Drawing inspiration from streaming flows in late-stage fruit fly oocytes, we propose an analytically tractable active carpet theory. This model deciphers the origins and three-dimensional spatiotemporal organization of such flows. Through a combination of simulations and weakly nonlinear theory, we establish the pathway of the streaming flow to its global attractor: a cell-spanning vortical twister. Our study reveals the inherent symmetries of this emergent flow, its low-dimensional structure, and illustrates how complex fluid-structure interaction aligns with classical solutions in Stokes flow. This framework can be easily adapted to elucidate a broad spectrum of self-organized, cortex-driven intracellular flows.

摘要

大细胞通常依赖细胞质流动进行细胞内运输、维持内稳态和定位细胞成分。了解这些流动的机制对于深入了解细胞功能、发育过程和进化适应性至关重要。在这里,我们专注于一类由细胞皮层处细胞骨架元件之间的流固相互作用产生的自组织细胞质搅拌机制。受晚期果蝇卵母细胞中流动流的启发,我们提出了一种可分析处理的活性地毯理论。该模型解释了这种流动的起源和三维时空组织。通过模拟和弱非线性理论的结合,我们建立了流动流到达全局吸引子的途径:一个贯穿细胞的涡旋扭结。我们的研究揭示了这种新兴流动的内在对称性、它的低维结构,并说明了复杂的流固相互作用如何与斯托克斯流中的经典解相一致。该框架可以轻松地适应阐明广泛的自组织、皮层驱动的细胞内流动。

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