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细长细胞中细胞质流动的分析方法。

Analytical methods for cytoplasmic streaming in elongated cells.

作者信息

Htet Pyae Hein, Lauga Eric

机构信息

Department of Applied Mathematics and Theoretical Physics, University of Cambridge, Cambridge CB3 0WA, United Kingdom.

出版信息

PNAS Nexus. 2025 Mar 3;4(3):pgaf057. doi: 10.1093/pnasnexus/pgaf057. eCollection 2025 Mar.

Abstract

Cytoplasmic streaming, the coherent flow of cytoplasm, plays a critical role in transport and mixing over large scales in eukaryotic cells. In many large cells, this process is driven by active forces at the cell boundary, such as cortical cytoskeletal contractions in and embryos, or intracellular cargo transport in plant cells. These cytoplasmic flows are approximately Newtonian and governed by the Stokes equations. In this article, we use lubrication theory-a powerful technique for simplifying the fluid mechanics equations in elongated geometries-to derive a general solution for boundary-driven cytoplasmic flows. We apply this framework to predict cytoplasmic fluid dynamics and cortical stresses in four systems of biological significance: the and embryos (including pseudocleavage furrow formation), the pollen tube of seed plants, and plant root hair cells. Our results showcase the elegance and accuracy of asymptotic solutions in capturing the complex flows and stress patterns in diverse biological contexts, reinforcing its utility as a robust tool for cellular biophysics.

摘要

细胞质流动,即细胞质的连贯流动,在真核细胞的大规模物质运输和混合过程中起着关键作用。在许多大型细胞中,这一过程由细胞边界处的主动力驱动,比如在海胆和蛔虫胚胎中的皮层细胞骨架收缩,或者植物细胞中的细胞内物质运输。这些细胞质流动近似于牛顿流体,并由斯托克斯方程支配。在本文中,我们运用润滑理论——一种用于简化细长几何形状中流体力学方程的强大技术——来推导边界驱动细胞质流动的通用解。我们将这个框架应用于预测四个具有生物学意义的系统中的细胞质流体动力学和皮层应力:海胆和蛔虫胚胎(包括假分裂沟形成)、种子植物的花粉管以及植物根毛细胞。我们的结果展示了渐近解在捕捉不同生物学背景下复杂流动和应力模式方面的简洁性和准确性,强化了其作为细胞生物物理学有力工具的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69f8/11914321/7b6176191ba6/pgaf057f1.jpg

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