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生长素控制高等植物侧枝的向地性设定角度。

Auxin controls gravitropic setpoint angle in higher plant lateral branches.

机构信息

Centre for Plant Sciences, University of Leeds, Leeds, LS2 9JT, UK.

出版信息

Curr Biol. 2013 Aug 5;23(15):1497-504. doi: 10.1016/j.cub.2013.06.034. Epub 2013 Jul 25.

DOI:10.1016/j.cub.2013.06.034
PMID:23891109
Abstract

Lateral branches in higher plants are often maintained at specific angles with respect to gravity, a quantity known as the gravitropic setpoint angle (GSA) [1]. Despite the importance of GSA control as a fundamental determinant of plant form, the mechanisms underlying gravity-dependent angled growth are not known. Here we address the central questions of how stable isotropic growth of a branch at a nonvertical angle is maintained and of how the value of that angle is set. We show that nonvertical lateral root and shoot branches are distinguished from the primary axis by the existence of an auxin-dependent antigravitropic offset mechanism that operates in tension with gravitropic response to generate angled isotropic growth. Further, we show that the GSA of lateral roots and shoots is dependent upon the magnitude of the antigravitropic offset component. Finally, we show that auxin specifies GSA values dynamically throughout development by regulating the magnitude of the antigravitropic offset component via TIR1/AFB-Aux/IAA-ARF-dependent auxin signaling within the gravity-sensing cells of the root and shoot. The involvement of auxin in controlling GSA is yet another example of auxin's remarkable capacity to self-organize in development [2] and provides a conceptual framework for understanding the specification of GSA throughout nature.

摘要

高等植物的侧枝通常相对于重力保持在特定的角度,这个角度被称为向重设定点角度(GSA)[1]。尽管 GSA 控制作为植物形态的基本决定因素非常重要,但重力依赖性角度生长的机制尚不清楚。在这里,我们解决了以下几个核心问题:如何维持非垂直角度的分支的稳定各向同性生长,以及如何设定该角度的值。我们表明,非垂直的侧根和侧枝与主轴的区别在于存在一个依赖生长素的抗重定向偏移机制,该机制在张力作用下与重力响应相互作用,从而产生角度各向同性生长。此外,我们表明侧根和侧枝的 GSA 值取决于抗重定向偏移分量的大小。最后,我们表明生长素通过在根和茎的重力感应细胞中通过 TIR1/AFB-Aux/IAA-ARF 依赖的生长素信号调节抗重定向偏移分量的大小,在整个发育过程中动态地控制 GSA 值。生长素在控制 GSA 中的作用是生长素在发育中自我组织的又一个显著例子[2],并为理解整个自然界中 GSA 的规范提供了一个概念框架。

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