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纤毛轴丝中微管滑动的物理模型。

A physical model of microtubule sliding in ciliary axonemes.

作者信息

Holwill M E, Satir P

机构信息

Physics Department, King's College, Strand, London, England.

出版信息

Biophys J. 1990 Oct;58(4):905-17. doi: 10.1016/S0006-3495(90)82435-8.

Abstract

Ciliary movement is caused by coordinated sliding interactions between the peripheral doublet microtubules of the axoneme. In demembranated organelles treated with trypsin and ATP, this sliding can be visualized during progressive disintegration. In this paper, microtubule sliding behavior resulting from various patterns of dynein arm activity and elastic link breakage is determined using a simplified model of the axoneme. The model consists of a cylindrical array of microtubules joined, initially, by elastic links, with the possibility of dynein arm interaction between microtubules. If no elastic links are broken, sliding can produce stable distortion of the model, which finds application to straight sections of a motile cilium. If some elastic links break, the model predicts a variety of sliding patterns, some of which match, qualitatively, the observed disintegration behavior of real axonemes. Splitting of the axoneme is most likely to occur between two doublets N and N + 1 when either the arms on doublet N + 1 are active and arms on doublet N are inactive or arms on doublet N - 1 are active while arms on doublet N are inactive. The analysis suggests further experimental studies which, in conjunction with the model, will lead to a more detailed understanding of the sliding mechanism, and will allow the mechanical properties of some axonemal components to be evaluated.

摘要

纤毛运动是由轴丝外周双联微管之间的协同滑动相互作用引起的。在用胰蛋白酶和ATP处理的去膜细胞器中,这种滑动在逐渐解体过程中可以被观察到。在本文中,使用轴丝的简化模型确定了由动力蛋白臂活动和弹性连接断裂的各种模式导致的微管滑动行为。该模型由微管的圆柱形阵列组成,最初通过弹性连接连接,微管之间存在动力蛋白臂相互作用的可能性。如果没有弹性连接断裂,滑动会使模型产生稳定的变形,这适用于运动纤毛的直段。如果一些弹性连接断裂,该模型预测会出现各种滑动模式,其中一些在定性上与实际轴丝观察到的解体行为相匹配。当双联微管N + 1上的臂活跃而双联微管N上的臂不活跃,或者双联微管N - 1上的臂活跃而双联微管N上的臂不活跃时,轴丝最有可能在两个双联微管N和N + 1之间分裂。该分析建议进行进一步的实验研究,这些研究与模型相结合,将有助于更详细地了解滑动机制,并能够评估一些轴丝成分的力学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/617c/1281036/98b291c33a4a/biophysj00122-0090-a.jpg

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