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根重力感知与信号转导的分子机制。

Molecular mechanisms of root gravity sensing and signal transduction.

作者信息

Strohm Allison K, Baldwin Katherine L, Masson Patrick H

机构信息

CMB Program, University of Wisconsin-Madison, Madison, WI, USA.

出版信息

Wiley Interdiscip Rev Dev Biol. 2012 Mar-Apr;1(2):276-85. doi: 10.1002/wdev.14. Epub 2011 Dec 8.

DOI:10.1002/wdev.14
PMID:23801441
Abstract

Plants use gravity as a guide to direct their roots down into the soil to anchor themselves and to find resources needed for growth and development. In higher plants, the columella cells of the root tip form the primary site of gravity sensing, and in these cells the sedimentation of dense, starch-filled plastids (amyloplasts) triggers gravity signal transduction. This generates an auxin gradient across the root cap that is transmitted to the elongation zone where it promotes differential cell elongation, allowing the root to direct itself downward. It is still not well understood how amyloplast sedimentation leads to auxin redistribution. Models have been proposed to explain how mechanosensitive ion channels or ligand-receptor interactions could connect these events. Although their roles are still unclear, possible second messengers in this process include protons, Ca(2+), and inositol 1,4,5-triphosphate. Upon gravistimulation, the auxin efflux facilitators PIN3 and PIN7 relocalize to the lower side of the columella cells and mediate auxin redistribution. However, evidence for an auxin-independent secondary mechanism of gravity sensing and signal transduction suggests that this physiological process is quite complex. Furthermore, plants must integrate a variety of environmental cues, resulting in multifaceted relationships between gravitropism and other directional growth responses such as hydro-, photo-, and thigmotropism.

摘要

植物利用重力作为引导,将其根部向下扎入土壤,以固定自身并获取生长和发育所需的资源。在高等植物中,根尖的柱细胞形成了重力感知的主要部位,在这些细胞中,密集的、充满淀粉的质体(淀粉体)沉降会触发重力信号转导。这会在根冠上产生一个生长素梯度,并传递到伸长区,在那里它促进细胞的差异伸长,使根向下生长。目前仍不清楚淀粉体沉降是如何导致生长素重新分布的。已经提出了一些模型来解释机械敏感离子通道或配体 - 受体相互作用如何连接这些事件。尽管它们的作用仍不明确,但这个过程中可能的第二信使包括质子、Ca(2+) 和肌醇 1,4,5 - 三磷酸。在重力刺激下,生长素外排促进因子PIN3和PIN7重新定位到柱细胞的下侧,并介导生长素的重新分布。然而,关于重力感知和信号转导的生长素非依赖二级机制的证据表明,这个生理过程相当复杂。此外,植物必须整合各种环境线索,导致向重力性与其他定向生长反应(如水向性、向光性和向触性)之间存在多方面的关系。

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