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植物细胞中的重力感应机制。

Gravity sensing mechanisms in plant cells.

作者信息

Sievers A

机构信息

Botanisches Institut, Universität Bonn, Germany.

出版信息

ASGSB Bull. 1991 Jul;4(2):43-50.

Abstract

Sensing of gravity is essential for the survival of plant seedlings. Therefore it is understandable that gravistimulation of only 0.5 sec-duration causes a graviresponse. The earliest graviresponses could be measured within seconds as alterations in membrane potentials of the statocytes in the root cap. Root statocytes are polarly organized. From a 6-day microgravity (10(-3) - 10(-4) g) experiment in the Spacelab D1 Mission it has been concluded that the observed polar differentiation is a result of a genetically prepatterned developmental program. Statoliths, the sedimentable organelles of statocytes, are surrounded by actin filaments which partly keep them in position. Under 6 min of microgravity during parabolic flights of rockets it could be demonstrated that the statoliths moved in the opposite direction to the initial gravity vector. It is concluded that shearing forces are exerted by microfilaments. It is supposed that the change of the position of statoliths is transmitted to gravisensitive structures of the statocytes (ER, plasma membrane) via microfilaments. As graviperception is influenced by calcium ions, it is suggested that these interactions regulate the activity of ion channels and/or pumps in the membranes thus initiating the graviresponse chain. In the case of cytoplasmic streaming in Chara rhizoids, the endogenous difference between the opposing streaming directions is diminished under microgravity during the flights of rockets. Possibly, shear stresses are affected by gravity, thus inducing gravity-related differences in the streaming velocities via actin filaments.

摘要

对重力的感知对植物幼苗的存活至关重要。因此,仅持续0.5秒的重力刺激会引发重力反应也就不难理解了。最早的重力反应可在数秒内通过根冠中平衡细胞的膜电位变化来测量。根平衡细胞呈极性组织。从太空实验室D1任务中进行的为期6天的微重力(10^(-3) - 10^(-4) g)实验得出结论,观察到的极性分化是基因预先设定的发育程序的结果。平衡石是平衡细胞中可沉降的细胞器,被肌动蛋白丝包围,肌动蛋白丝部分地将它们固定在原位。在火箭抛物线飞行过程中6分钟的微重力条件下,可以证明平衡石朝着与初始重力矢量相反的方向移动。得出的结论是,微丝会施加剪切力。据推测,平衡石位置的变化通过微丝传递到平衡细胞的重力敏感结构(内质网、质膜)。由于重力感知受钙离子影响,有人提出这些相互作用调节膜中离子通道和/或泵的活性,从而启动重力反应链。在轮藻假根的细胞质流动中,在火箭飞行期间的微重力条件下,相反流动方向之间的内源性差异会减小。可能是剪切应力受重力影响,从而通过肌动蛋白丝诱导流动速度中与重力相关的差异。

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