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鞭毛的动态影像:关于轴丝摆动机制的新闻与观点

A moving image of flagella: news and views on the mechanisms involved in axonemal beating.

作者信息

Cosson J

机构信息

UA 671 du CNRS, Station Marine de l'Université de Paris VI, Villefranche sur Mer, France.

出版信息

Cell Biol Int. 1996 Feb;20(2):83-94. doi: 10.1006/cbir.1996.0012.

Abstract

Beating of cilia and flagellae allows movement of the fluid surrounding isolated cells (for example: protists) or epithelia (bronchial tissue) but is also responsible for the movement of unicellular organisms in this medium (such as spermatozoa or protists). This paper aims to describe: (1) the biochemical and structural elements of the '9 + 2' structure called the axoneme; (2) the mechanisms of wave generation and propagation along the axoneme of cilia and flagellae are then described, stating that in most models of wave propagation, a clear distinction is made between the dynein-dependent microtubule sliding which represents the oscillatory motor and the bending mechanism which regulates wave propagation. In current models, the bending propagation is supported by a bind/relax cyclic mechanism which propagates in register, but frame-shifted, with the powering action of the dynein motor along the axoneme. While a large amount of knowledge was accumulated about the motor, little is known about the resisting elements regulating the bending. (3) The present study also puts forward ideas as to how these organelles have been highly conserved throughout eucaryotic evolution, and concludes with suggestions for further fields of investigation into this unique mechanical device used for cell movement.

摘要

纤毛和鞭毛的摆动使得孤立细胞(如原生生物)或上皮组织(如支气管组织)周围的液体得以流动,同时也负责单细胞生物在这种介质中的移动(如精子或原生生物)。本文旨在描述:(1)被称为轴丝的“9 + 2”结构的生化和结构成分;(2)接着描述沿纤毛和鞭毛的轴丝产生和传播波的机制,指出在大多数波传播模型中,代表振荡马达的动力蛋白依赖的微管滑动与调节波传播的弯曲机制之间有明显区别。在当前模型中,弯曲传播由一种结合/松弛循环机制支持,该机制与动力蛋白马达沿轴丝的驱动作用同步但存在移码传播。虽然积累了大量关于马达的知识,但对于调节弯曲的抵抗元件却知之甚少。(3)本研究还就这些细胞器在整个真核生物进化过程中如何高度保守提出了观点,并最后对进一步研究这个用于细胞移动的独特机械装置的领域提出了建议。

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