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原始真核生物鞭毛中具有功能意义的中央微管对旋转

Functionally significant central-pair rotation in a primitive eukaryotic flagellum.

作者信息

Omoto C K, Witman G B

出版信息

Nature. 1981 Apr 23;290(5808):708-10. doi: 10.1038/290708a0.

Abstract

There is now considerable evidence that the basis for ciliary and flagellar movement is an active sliding between peripheral doublet microtubules which, when resisted by structures within the axoneme, leads to axonemal bend formation. In contrast, relatively little is known about the control mechanisms which coordinate the interdoublet sliding and axonemal binding to produce the effective motion observed in various cilia and flagella. One component of the axoneme which may be involved in this control is the central pair of microtubules. To learn more about the action of the central pair, we have studied the tiny uniflagellate marine alga, Micromonas pusilla. The central tubules of the M. pusilla flagellum extend for several micrometres beyond the termination of the peripheral doublets, thus permitting direct observation of the central pair during flagellar movement. Our findings, reported here, indicate that in living M. pusilla the central pair of microtubules undergoes continuous rotation in one direction. This rotation provides the motive force for the cell.

摘要

现在有大量证据表明,纤毛和鞭毛运动的基础是外周双联微管之间的主动滑动,当这种滑动受到轴丝内结构的阻力时,会导致轴丝弯曲形成。相比之下,关于协调双联微管滑动和轴丝结合以产生在各种纤毛和鞭毛中观察到的有效运动的控制机制,人们了解得相对较少。轴丝中可能参与这种控制的一个成分是中央微管对。为了更多地了解中央微管对的作用,我们研究了微小的单鞭毛海洋藻类——微小原甲藻。微小原甲藻鞭毛的中央微管在周边双联微管终止处之外延伸数微米,从而在鞭毛运动期间可以直接观察到中央微管对。我们在此报告的研究结果表明,在活的微小原甲藻中,中央微管对沿一个方向持续旋转。这种旋转为细胞提供了动力。

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