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Temperature variability is integrated by a spatially embedded decision-making center to break dormancy in Arabidopsis seeds

机译:温度可变性由空间嵌入式决策中心整合以打破拟南芥种子的休眠状态

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摘要

Plants perceive and integrate information from the environment to time critical transitions in their life cycle. Some mechanisms underlying this quantitative signal processing have been described, whereas others await discovery. Seeds have evolved a mechanism to integrate environmental information by regulating the abundance of the antagonistically acting hormones abscisic acid (ABA) and gibberellin (GA). Here, we show that hormone metabolic interactions and their feedbacks are sufficient to create a bistable developmental fate switch in Arabidopsis seeds. A digital single-cell atlas mapping the distribution of hormone metabolic and response components revealed their enrichment within the embryonic radicle, identifying the presence of a decision-making center within dormant seeds. The responses to both GA and ABA were found to occur within distinct cell types, suggesting cross-talk occurs at the level of hormone transport between these signaling centers. We describe theoretically, and demonstrate experimentally, that this spatial separation within the decision-making center is required to process variable temperature inputs from the environment to promote the breaking of dormancy. In contrast to other noise-filtering systems, including human neurons, the functional role of this spatial embedding is to leverage variability in temperature to transduce a fate-switching signal within this biological system. Fluctuating inputs therefore act as an instructive signal for seeds, enhancing the accuracy with which plants are established in ecosystems, and distributed computation within the radicle underlies this signal integration mechanism.
机译:植物可以感知并整合从环境到生命周期中关键时间转变的信息。已经描述了这种定量信号处理基础的一些机制,而其他机制则等待发现。种子已经进化出一种机制,可通过调节拮抗性激素脱落酸(ABA)和赤霉素(GA)的含量来整合环境信息。在这里,我们显示激素代谢相互作用及其反馈足以在拟南芥种子中产生双稳态发育命运转换。映射激素代谢和反应成分分布的数字单细胞图谱揭示了它们在胚根内的富集,从而确定了休眠种子中决策中心的存在。发现对GA和ABA的反应都发生在不同的细胞类型中,表明串扰发生在这些信号中心之间的激素转运水平。我们从理论上进行描述,并通过实验证明,决策中心内的这种空间分隔是处理来自环境的可变温度输入以促进休眠的打破所必需的。与包括人神经元在内的其他噪声过滤系统相比,这种空间嵌入的功能是利用温度的可变性来转换该生物系统内的命运转换信号。因此,波动的输入充当种子的指示性信号,从而提高了在生态系统中建立植物的准确性,并且胚根内的分布式计算是该信号集成机制的基础。

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