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本文引用的文献

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A receptor-like kinase mutant with absent endodermal diffusion barrier displays selective nutrient homeostasis defects.一种具有内胚层扩散屏障缺失的类受体激酶突变体表现出选择性营养稳态缺陷。
Elife. 2014 Sep 16;3:e03115. doi: 10.7554/eLife.03115.
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OSCA1 mediates osmotic-stress-evoked Ca2+ increases vital for osmosensing in Arabidopsis.OSCA1 介导渗透胁迫诱导的 Ca2+ 增加,对拟南芥的渗透感应至关重要。
Nature. 2014 Oct 16;514(7522):367-71. doi: 10.1038/nature13593. Epub 2014 Aug 27.
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The receptor-like kinase FERONIA is required for mechanical signal transduction in Arabidopsis seedlings.类受体激酶FERONIA是拟南芥幼苗机械信号转导所必需的。
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Beyond the barrier: communication in the root through the endodermis.突破屏障:通过内皮层在根部进行的信号传递。
Plant Physiol. 2014 Oct;166(2):551-9. doi: 10.1104/pp.114.244871. Epub 2014 Aug 14.
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Plant roots use a patterning mechanism to position lateral root branches toward available water.植物根系利用模式形成机制将侧根分支定位到可用的水分处。
Proc Natl Acad Sci U S A. 2014 Jun 24;111(25):9319-24. doi: 10.1073/pnas.1400966111. Epub 2014 Jun 9.
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Plastid osmotic stress activates cellular stress responses in Arabidopsis.质体渗透胁迫激活拟南芥中的细胞应激反应。
Plant Physiol. 2014 May;165(1):119-28. doi: 10.1104/pp.114.236620. Epub 2014 Mar 27.
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No stress! Relax! Mechanisms governing growth and shape in plant cells.别紧张!放松!植物细胞生长和形态的调控机制。
Int J Mol Sci. 2014 Mar 21;15(3):5094-114. doi: 10.3390/ijms15035094.
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Nitrate transport and signalling in Arabidopsis.拟南芥中的硝酸盐转运和信号转导。
J Exp Bot. 2014 Mar;65(3):789-98. doi: 10.1093/jxb/eru001.
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Plant aquaporins: roles in plant physiology.植物水通道蛋白:在植物生理学中的作用
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Mercury-sensitive water channels as possible sensors of water potentials in pollen.汞敏感水通道作为花粉中水势的可能传感器。
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探测根源:微观和宏观尺度下根系对水分驱动的响应

The divining root: moisture-driven responses of roots at the micro- and macro-scale.

作者信息

Robbins Neil E, Dinneny José R

机构信息

Carnegie Institution for Science, Department of Plant Biology, 260 Panama Street, Stanford, CA 94305, USA Department of Biology, Stanford University, 371 Serra Mall, Stanford, CA 94305, USA.

Carnegie Institution for Science, Department of Plant Biology, 260 Panama Street, Stanford, CA 94305, USA

出版信息

J Exp Bot. 2015 Apr;66(8):2145-54. doi: 10.1093/jxb/eru496. Epub 2015 Jan 22.

DOI:10.1093/jxb/eru496
PMID:25617469
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4817643/
Abstract

Water is fundamental to plant life, but the mechanisms by which plant roots sense and respond to variations in water availability in the soil are poorly understood. Many studies of responses to water deficit have focused on large-scale effects of this stress, but have overlooked responses at the sub-organ or cellular level that give rise to emergent whole-plant phenotypes. We have recently discovered hydropatterning, an adaptive environmental response in which roots position new lateral branches according to the spatial distribution of available water across the circumferential axis. This discovery illustrates that roots are capable of sensing and responding to water availability at spatial scales far lower than those normally studied for such processes. This review will explore how roots respond to water availability with an emphasis on what is currently known at different spatial scales. Beginning at the micro-scale, there is a discussion of water physiology at the cellular level and proposed sensory mechanisms cells use to detect osmotic status. The implications of these principles are then explored in the context of cell and organ growth under non-stress and water-deficit conditions. Following this, several adaptive responses employed by roots to tailor their functionality to the local moisture environment are discussed, including patterning of lateral root development and generation of hydraulic barriers to limit water loss. We speculate that these micro-scale responses are necessary for optimal functionality of the root system in a heterogeneous moisture environment, allowing for efficient water uptake with minimal water loss during periods of drought.

摘要

水是植物生命的基础,但植物根系感知并响应土壤中水分有效性变化的机制仍鲜为人知。许多关于水分亏缺响应的研究都集中在这种胁迫的大规模影响上,却忽略了在亚器官或细胞水平上的响应,而正是这些响应产生了整体植株的表型。我们最近发现了水分模式化现象,这是一种适应性环境响应,即根根据圆周轴上可用水分的空间分布来定位新的侧枝。这一发现表明,根能够在远低于此类过程通常研究尺度的空间尺度上感知并响应水分有效性。本综述将探讨根如何响应水分有效性,重点关注不同空间尺度上的现有认知。从微观尺度开始,讨论细胞水平的水分生理学以及细胞用于检测渗透状态的假定传感机制。然后在非胁迫和水分亏缺条件下细胞和器官生长的背景下探讨这些原理的意义。在此之后,讨论根为使其功能适应局部水分环境而采用的几种适应性响应,包括侧根发育的模式化以及形成水力屏障以限制水分流失。我们推测,这些微观尺度的响应对于异质水分环境中根系的最佳功能是必要的,能够在干旱时期以最小的水分流失实现高效的水分吸收。