Rikmenspoel R
Biophys J. 1976 May;16(5):445-70. doi: 10.1016/S0006-3495(76)85701-3.
The motion of the abnormal cilia of Opalina and Mytilus can be described by the recently developed model for ciliary motion, provided the activation of the contractility during the effective stroke is reduced by three- to fivefold compared with that in the recovery stroke. The stiffness of the Mytilus cilium during the effective stroke is found several hundred times larger than that predicted by the model, however. The stiffness of the cilia of Paramecium, Opalina, Phragmatopoma, and of Mytilus in the recovery phase, is predicted approximately correctly by the model. The activation of contractility in Mytilus and Phragmatopoma cilia increases with the viscosity of the medium, as the velocity of the ciliary motion slows down. This leads to the equivalent of a force-velocity relation. The velocity of propagation of the bend in the cilia during the recovery stroke is shown to be dependent only on the elastic properties of the ciliary shaft, and to be independent of the contractile activiey.
倘若在有效冲程期间收缩性的激活相较于恢复冲程减少三到五倍,那么Opalina和贻贝异常纤毛的运动就可以用最近开发的纤毛运动模型来描述。然而,贻贝纤毛在有效冲程期间的刚度比该模型预测的要大数百倍。该模型对草履虫、Opalina、Phragmatopoma以及贻贝纤毛在恢复阶段的刚度预测大致正确。随着纤毛运动速度减慢,贻贝和Phragmatopoma纤毛中收缩性的激活会随着介质粘度的增加而增强。这导致了类似于力-速度关系的情况。恢复冲程期间纤毛中弯曲传播的速度仅取决于纤毛轴的弹性特性,而与收缩活性无关。