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纤毛密度和流速影响来自脑细胞的运动性纤毛的排列。

Cilia density and flow velocity affect alignment of motile cilia from brain cells.

作者信息

Pellicciotta Nicola, Das Debasish, Kotar Jurij, Faucourt Marion, Spassky Nathalie, Lauga Eric, Cicuta Pietro

机构信息

Cavendish Laboratory, University of Cambridge, Cambridge CB3 0HE, UK.

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

出版信息

J Exp Biol. 2020 Dec 29;223(Pt 24):jeb229310. doi: 10.1242/jeb.229310.

Abstract

In many organs, thousands of microscopic 'motile cilia' beat in a coordinated fashion generating fluid flow. Physiologically, these flows are important in both development and homeostasis of ciliated tissues. Combining experiments and simulations, we studied how cilia from brain tissue align their beating direction. We subjected cilia to a broad range of shear stresses, similar to the fluid flow that cilia themselves generate, in a microfluidic setup. In contrast to previous studies, we found that cilia from mouse ependyma respond and align to these physiological shear stress at all maturation stages. Cilia align more easily earlier in maturation, and we correlated this property with the increase in multiciliated cell density during maturation. Our numerical simulations show that cilia in densely packed clusters are hydrodynamically screened from the external flow, in agreement with our experimental observation. Cilia carpets create a hydrodynamic screening that reduces the susceptibility of individual cilia to external flows.

摘要

在许多器官中,数以千计的微观“运动纤毛”以协调的方式摆动,产生流体流动。从生理角度来看,这些流动对于纤毛组织的发育和内环境稳定都很重要。我们结合实验和模拟,研究了脑组织中的纤毛如何排列其摆动方向。在微流体装置中,我们使纤毛承受广泛的剪切应力,类似于纤毛自身产生的流体流动。与之前的研究不同,我们发现来自小鼠室管膜的纤毛在所有成熟阶段都对这些生理剪切应力做出反应并排列。纤毛在成熟早期更容易排列,我们将这一特性与成熟过程中多纤毛细胞密度的增加联系起来。我们的数值模拟表明,紧密堆积簇中的纤毛在流体动力学上受到外部流动的屏蔽,这与我们的实验观察结果一致。纤毛毯形成了一种流体动力学屏蔽,降低了单个纤毛对外界流动的敏感性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b40c/7790191/2f5e569eb425/jexbio-223-229310-g1.jpg

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