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衣藻纤毛/鞭毛摆动的分析。

Analysis of the ciliary/flagellar beating of Chlamydomonas.

作者信息

Foster Kenneth W

机构信息

Department of Physics, Syracuse University, Syracuse, New York 13244-1130, USA.

出版信息

Methods Cell Biol. 2009;91:173-239. doi: 10.1016/S0091-679X(08)91011-6. Epub 2009 Dec 1.

Abstract

Eukaryotic flagella and cilia are alternative names, for the slender cylindrical protrusions of a cell (240nm diameter, approximately 12,800nm-long in Chlamydomonas reinhardtii) that propel a cell or move fluid. Cilia are extraordinarily successful complex organelles abundantly found in animals performing many tasks. They play a direct or developmental role in the sensors of fluid flow, light, sound, gravity, smells, touch, temperature, and taste in mammals. The failure of cilia can lead to hydrocephalus, infertility, and blindness. However, in spite of their large role in human function and pathology, there is as yet no consensus on how cilia beat and perform their many functions, such as moving fluids in brain ventricles and lungs and propelling and steering sperm, larvae, and many microorganisms. One needs to understand and analyze ciliary beating and its hydrodynamic interactions. This chapter provides a guide for measuring, analyzing, and interpreting ciliary behavior in various contexts studied in the model system of Chlamydomonas. It describes: (1) how cilia work as self-organized beating structures (SOBSs), (2) the overlaid control in the cilia that optimizes the SOBS to achieve cell dispersal, phototaxis steering, and avoidance of obstacles, (3) the assay of a model intracellular signal processing system that responds to multiple external and internal inputs, choosing mode of behavior and then controlling the cilia, (4) how cilia sense their environment, and (5) potentially an assay of ciliary performance for toxicology or medical assessment.

摘要

真核生物的鞭毛和纤毛是细胞细长圆柱形突起的别称(莱茵衣藻中直径240纳米,长度约12,800纳米),可推动细胞或移动液体。纤毛是极为成功的复杂细胞器,在动物体内大量存在并执行多种任务。它们在哺乳动物的流体流动、光、声音、重力、气味、触觉、温度和味觉传感器中发挥直接或发育作用。纤毛功能异常会导致脑积水、不孕和失明。然而,尽管纤毛在人体功能和病理学中作用重大,但对于纤毛如何摆动以及执行其众多功能,如在脑室和肺部移动液体、推动和引导精子、幼虫及许多微生物,目前尚无共识。人们需要理解和分析纤毛摆动及其流体动力学相互作用。本章为在莱茵衣藻模型系统中研究的各种情况下测量、分析和解释纤毛行为提供指南。它描述了:(1)纤毛如何作为自组织摆动结构(SOBSs)发挥作用;(2)纤毛中的叠加控制如何优化SOBS以实现细胞分散、趋光性引导和避开障碍物;(3)对响应多种外部和内部输入、选择行为模式然后控制纤毛的细胞内信号处理系统模型的测定;(4)纤毛如何感知其环境;(5)潜在的用于毒理学或医学评估的纤毛性能测定。

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