Department of Botany, University of Wisconsin, Birge Hall, 430 Lincoln Drive, Madison, WI 53706, USA.
Department of Botany, University of Wisconsin, Birge Hall, 430 Lincoln Drive, Madison, WI 53706, USA.
Curr Opin Plant Biol. 2018 Jun;43:57-62. doi: 10.1016/j.pbi.2017.12.009. Epub 2018 Jan 17.
Plants possess systemic signaling networks that allow the perception of local stresses to be translated into plant-wide responses. Although information can be propagated via a variety of molecules such as hormones and RNAs moving within the bulk flow of the phloem or in the transpiration stream, the vasculature also appears to be a major pathway whereby extremely rapid signals move bi-directionally throughout the plant. In these cases, the movement mechanisms are not dependent on redistribution through bulk flow. For example, self-reinforcing systems based around changes in Ca and reactive oxygen species, coupled to parallel electrical signaling events appear able to generate waves of information that can propagate at hundreds of μm/s. These signals then elicit distant responses that prime the plant for a more effective defense or stress response in unchallenged tissues. Although ion channels, Ca, reactive oxygen species and associated molecular machineries, such as the NADPH oxidases, have been identified as likely important players in this propagation system, the precise nature of these signaling networks remains to be defined. Critically, whether different stimuli are using the same rapid, systemic signaling network, or whether multiple, parallel pathways for signal propagation are operating to trigger specific systemic outputs remains a key open question.
植物具有系统信号网络,允许将局部应激的感知转化为全株反应。尽管信息可以通过各种分子(如激素和 RNA)在韧皮部的整体流动或蒸腾流中传播,但脉管系统似乎也是一种主要途径,通过该途径,极其快速的信号可以在整个植物中双向移动。在这些情况下,移动机制不依赖于通过整体流动重新分配。例如,基于钙和活性氧变化的自我强化系统,与并行电信号事件相结合,似乎能够产生可以以数百 μm/s 速度传播的信息波。这些信号随后引发远处的反应,使植物在未受到挑战的组织中更有效地防御或应对应激。尽管已经确定离子通道、钙、活性氧和相关的分子机制(如 NADPH 氧化酶)可能是该传播系统中的重要参与者,但这些信号网络的确切性质仍有待确定。至关重要的是,不同的刺激是否使用相同的快速、系统信号网络,或者是否有多个并行的信号传播途径用于触发特定的系统输出,这仍然是一个关键的未解决问题。