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形态发生中的离子电流。

Ionic currents in morphogenesis.

作者信息

Nuccitelli R

机构信息

Zoology Department, University of California, Davis 95616.

出版信息

Experientia. 1988 Aug 15;44(8):657-66. doi: 10.1007/BF01941026.

Abstract

Morphogenetic fields must be generated by mechanisms based on known physical forces which include gravitational forces, mechanical forces, electrical forces, or some combination of these. While it is unrealistic to expect a single force, such as a voltage gradient, to be the sole cause of a morphogenetic event, spatial and temporal information about the electrical fields and ion concentration gradients in and around a cell or embryo undergoing morphogenesis can take us one step further toward understanding the entire morphogenetic mechanism. This is especially true because one of the handful of identified morphogens is Ca2+, an ion that will not only generate a current as it moves, but which is known to directly influence the plasma membrane's permeability to other ions, leading to other transcellular currents. It would be expected that movements of this morphogen across the plasma membrane might generate ionic currents and gradients of both electrical potential and intracellular concentration. Such ionic currents have been found to be integral components of the morphogenetic mechanism in some cases and only secondary components in other cases. My goal in this review is to discuss examples of both of these levels of involvement that have resulted from investigations conducted during the past several years, and to point to areas that are ripe for future investigation. This will include the history and theory of ionic current measurements, and a discussion of examples in both plant and animal systems in which ionic currents and intracellular concentration gradients are integral components of morphogenesis as well as cases in which they play only a secondary role. By far the strongest cases for a direct role of ionic currents in morphogenesis is the polarizing fucoid egg where the current is carried in part by Ca2+ and generates an intracellular concentration gradient of this ion that orients the outgrowth, and the insect follicle in which an intracellular voltage gradient is responsible for the polarized transport from nurse cell to oocyte. However, in most of the systems studied, the experiments to determine if the observed ionic currents are directly involved in the morphogenetic mechanism are yet to be done. Our experience with the fucoid egg and the fungal hypha of Achlya suggest that it is the change in the intracellular ion concentration resulting from the ionic current that is critical for morphogenesis.

摘要

形态发生场必定是由基于已知物理力的机制所产生的,这些物理力包括引力、机械力、电力,或者是这些力的某种组合。虽然期望单一的力,比如电压梯度,成为形态发生事件的唯一原因是不现实的,但关于正在经历形态发生的细胞或胚胎内部及其周围的电场和离子浓度梯度的时空信息,能让我们在理解整个形态发生机制方面更进一步。尤其如此是因为少数已确定的形态发生素之一是Ca2+,这种离子不仅在移动时会产生电流,而且已知它会直接影响质膜对其他离子的通透性,从而导致其他跨细胞电流。可以预期,这种形态发生素跨质膜的移动可能会产生离子电流以及电势和细胞内浓度的梯度。在某些情况下,这种离子电流已被发现是形态发生机制的组成部分,而在其他情况下则只是次要组成部分。我在这篇综述中的目标是讨论过去几年研究中出现的这两种参与程度的例子,并指出未来研究的成熟领域。这将包括离子电流测量的历史和理论,以及对植物和动物系统中离子电流和细胞内浓度梯度是形态发生的组成部分的例子的讨论,还有它们只起次要作用的例子。到目前为止,离子电流在形态发生中直接起作用的最有力例子是极化的墨角藻卵,其中电流部分由Ca2+携带,并产生该离子的细胞内浓度梯度,使生长定向;还有昆虫卵泡,其中细胞内电压梯度负责从滋养细胞到卵母细胞的极化运输。然而,在大多数研究的系统中,确定观察到的离子电流是否直接参与形态发生机制的实验尚未进行。我们对墨角藻卵和绵霉真菌菌丝的研究经验表明,对形态发生至关重要的是由离子电流导致的细胞内离子浓度变化。

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