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基体内的连接促进了运动纤毛的协调行为。

Intracellular connections between basal bodies promote the coordinated behavior of motile cilia.

机构信息

Department of Cell and Developmental Biology, Anschutz Medical Campus, University of Colorado, Aurora, CO 80045.

Department of Mechanical Engineering and Material Science, Washington University in St. Louis, St. Louis, MO 63130.

出版信息

Mol Biol Cell. 2022 Sep 15;33(11):br18. doi: 10.1091/mbc.E22-05-0150. Epub 2022 Jun 29.

Abstract

Hydrodynamic flow produced by multiciliated cells is critical for fluid circulation and cell motility. Hundreds of cilia beat with metachronal synchrony for fluid flow. Cilia-driven fluid flow produces extracellular hydrodynamic forces that cause neighboring cilia to beat in a synchronized manner. However, hydrodynamic coupling between neighboring cilia is not the sole mechanism that drives cilia synchrony. Cilia are nucleated by basal bodies (BBs) that link to each other and to the cell's cortex via BB-associated appendages. The intracellular BB and cortical network is hypothesized to synchronize ciliary beating by transmitting cilia coordination cues. The extent of intracellular ciliary connections and the nature of these stimuli remain unclear. Moreover, how BB connections influence the dynamics of individual cilia has not been established. We show by focused ion beam scanning electron microscopy imaging that cilia are coupled both longitudinally and laterally in the ciliate by the underlying BB and cortical cytoskeletal network. To visualize the behavior of individual cilia in live, immobilized cells, we developed elivered ron article biety ive ight (DIPULL) microscopy. Quantitative and computer analyses of ciliary dynamics reveal that BB connections control ciliary waveform and coordinate ciliary beating. Loss of BB connections reduces cilia-dependent fluid flow forces.

摘要

纤毛细胞产生的流体动力对于液体循环和细胞运动至关重要。数百根纤毛以同步的相位协调方式进行摆动,产生液体流动。纤毛驱动的液体流动产生细胞外流体动力,导致相邻纤毛以同步的方式进行摆动。然而,相邻纤毛之间的流体耦合并不是驱动纤毛同步的唯一机制。纤毛由基体(BB)产生,基体通过与细胞皮层相连的 BB 相关附属物相互连接。细胞内的 BB 和皮层网络通过传递纤毛协调线索来同步纤毛的摆动。细胞内纤毛连接的程度和这些刺激的性质尚不清楚。此外,BB 连接如何影响单个纤毛的动力学尚未确定。我们通过聚焦离子束扫描电子显微镜成像显示,在纤毛虫中,基底 BB 和皮层细胞骨架网络使纤毛在纵向和横向方向上相互连接。为了在活的、固定的细胞中可视化单个纤毛的行为,我们开发了 DIPULL 显微镜。对纤毛动力学的定量和计算机分析表明,BB 连接控制纤毛的波形并协调纤毛的摆动。失去 BB 连接会降低依赖纤毛的流体流动力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3862/9582806/3c24332a044a/mbc-33-br18-g001.jpg

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