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首页> 外文期刊>American journal of botany >Regulation of plant gravity sensing and signaling by the actin cytoskeleton.
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Regulation of plant gravity sensing and signaling by the actin cytoskeleton.

机译:肌动蛋白细胞骨架对植物重力感应和信号传导的调节。

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摘要

Gravitropism is a process by which plant organs readjust their growth toward or away from the gravity vector when the plant is reoriented. The actin cytoskeleton has often been a significant component of models explaining gravitropism, but its role in this process has become somewhat controversial in light of reports showing that actin inhibitors enhance the gravitropic response. The work with inhibitors implies that actin might function as a negative regulator of gravitropism. In this article, possibilities for how such a role might be accomplished are presented. First, the organization of actin in statocytes is revisited in an attempt to rationalize how compressive forces exerted by statoliths on membranes can lead to enhanced gravity sensing. Second, recent genetic work in the model plant Arabidopsis thaliana is discussed, focusing on the potential involvement of the protein degradation machinery in actin-mediated control of statolith dynamics and on the intriguing possibility that an actin-regulated, ligand-receptor mechanism for gravity signal transduction might operate in higher plants. Third, modifications in the trafficking of auxin efflux transporters are considered as possible mechanisms for the enhanced gravity responses observed in plant organs when the actin cytoskeleton is disrupted by chemical inhibitors. The various possibilities presented in this review emphasize the large amount of research that remains to be done before we can fully understand how the actin cytoskeleton modulates tropisms in higher plants.
机译:引力作用是当植物重新定向时,植物器官朝着或远离重力矢量重新调整其生长的过程。肌动蛋白的细胞骨架通常是解释重力趋向的模型的重要组成部分,但鉴于有报道显示肌动蛋白抑制剂会增强重力趋向,因此肌动蛋白的细胞骨架在这一过程中的作用已引起争议。与抑制剂的研究表明肌动蛋白可能起重力作用的负调节剂作用。在本文中,提出了如何实现这种角色的可能性。首先,重新研究了肌动蛋白在稳定细胞中的组织,以试图合理化针石在膜上施加的压力如何导致增强的重力感应。其次,讨论了模型植物拟南芥中最近的遗传工作,重点是蛋白质降解机制在肌动蛋白介导的石笋动力学控制中的潜在参与,以及肌动蛋白调节的重力信号配体-受体机制的潜在可能性转导可能在高等植物中进行。第三,当肌动蛋白细胞骨架被化学抑制剂破坏时,对植物生长素外排转运蛋白运输的修饰被认为是在植物器官中观察到的重力反应增强的可能机制。这篇综述中提出的各种可能性强调了在我们完全了解肌动蛋白细胞骨架如何调节高等植物的嗜性之前仍有大量的研究要做。

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