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一种小肽通过脱落酸在长距离信号转导中调节气孔控制。

A small peptide modulates stomatal control via abscisic acid in long-distance signalling.

机构信息

Gene Discovery Research Group, RIKEN Center for Sustainable Resource Science, Tsukuba, Japan.

Biomass Research Platform Team, RIKEN Center for Sustainable Resource Science, Tsukuba, Japan.

出版信息

Nature. 2018 Apr;556(7700):235-238. doi: 10.1038/s41586-018-0009-2. Epub 2018 Apr 4.

DOI:10.1038/s41586-018-0009-2
PMID:29618812
Abstract

Mammalian peptide hormones propagate extracellular stimuli from sensing tissues to appropriate targets to achieve optimal growth maintenance . In land plants, root-to-shoot signalling is important to prevent water loss by transpiration and to adapt to water-deficient conditions . The phytohormone abscisic acid has a role in the regulation of stomatal movement to prevent water loss . However, no mobile signalling molecules have yet been identified that can trigger abscisic acid accumulation in leaves. Here we show that the CLAVATA3/EMBRYO-SURROUNDING REGION-RELATED 25 (CLE25) peptide transmits water-deficiency signals through vascular tissues in Arabidopsis, and affects abscisic acid biosynthesis and stomatal control of transpiration in association with BARELY ANY MERISTEM (BAM) receptors in leaves. The CLE25 gene is expressed in vascular tissues and enhanced in roots in response to dehydration stress. The root-derived CLE25 peptide moves from the roots to the leaves, where it induces stomatal closure by modulating abscisic acid accumulation and thereby enhances resistance to dehydration stress. BAM receptors are required for the CLE25 peptide-induced dehydration stress response in leaves, and the CLE25-BAM module therefore probably functions as one of the signalling molecules for long-distance signalling in the dehydration response.

摘要

哺乳动物肽激素将来自感应组织的细胞外刺激传递到适当的靶标,以实现最佳的生长维持。在陆地植物中,根到梢的信号传递对于防止蒸腾引起的水分损失和适应缺水条件非常重要。植物激素脱落酸在调节气孔运动以防止水分损失方面发挥作用。然而,尚未鉴定出能够触发叶片中脱落酸积累的可移动信号分子。在这里,我们表明 CLAVATA3/EMBRYO-SURROUNDING REGION-RELATED 25(CLE25)肽通过拟南芥的维管束组织传递水分不足信号,并与叶片中的 BARELY ANY MERISTEM(BAM)受体一起影响脱落酸的生物合成和气孔对蒸腾的控制。CLE25 基因在维管束组织中表达,并在响应脱水胁迫时在根中增强表达。源自根的 CLE25 肽从根部移动到叶片,通过调节脱落酸的积累诱导气孔关闭,从而增强对脱水胁迫的抗性。BAM 受体是叶片中 CLE25 肽诱导的脱水胁迫反应所必需的,因此 CLE25-BAM 模块可能作为脱水响应中长距离信号的信号分子之一发挥作用。

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