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植物长距离信号传递的历史概述。

A historical overview of long-distance signalling in plants.

机构信息

Plant Molecular Biology Unit, Biochemical Sciences Division, CSIR-National Chemical Laboratory (NCL) Pune, Maharashtra, India.

Biology Division, Indian Institute of Science Education and Research (IISER) Pune, Maharashtra, India.

出版信息

J Exp Bot. 2021 May 28;72(12):4218-4236. doi: 10.1093/jxb/erab048.

DOI:10.1093/jxb/erab048
PMID:33682884
Abstract

Be it a small herb or a large tree, intra- and intercellular communication and long-distance signalling between distant organs are crucial for every aspect of plant development. The vascular system, comprising xylem and phloem, acts as a major conduit for the transmission of long-distance signals in plants. In addition to expanding our knowledge of vascular development, numerous reports in the past two decades revealed that selective populations of RNAs, proteins, and phytohormones function as mobile signals. Many of these signals were shown to regulate diverse physiological processes, such as flowering, leaf and root development, nutrient acquisition, crop yield, and biotic/abiotic stress responses. In this review, we summarize the significant discoveries made in the past 25 years, with emphasis on key mobile signalling molecules (mRNAs, proteins including RNA-binding proteins, and small RNAs) that have revolutionized our understanding of how plants integrate various intrinsic and external cues in orchestrating growth and development. Additionally, we provide detailed insights on the emerging molecular mechanisms that might control the selective trafficking and delivery of phloem-mobile RNAs to target tissues. We also highlight the cross-kingdom movement of mobile signals during plant-parasite relationships. Considering the dynamic functions of these signals, their implications in crop improvement are also discussed.

摘要

无论是小草还是大树,细胞内和细胞间的通讯以及远距离信号在植物发育的各个方面都至关重要。维管系统由木质部和韧皮部组成,是植物中长距离信号传递的主要途径。除了扩展我们对血管发育的认识外,过去二十年的众多报告还揭示了选择性的 RNA、蛋白质和植物激素群体作为可移动信号发挥作用。其中许多信号被证明可以调节多种生理过程,如开花、叶片和根系发育、养分获取、作物产量以及生物/非生物胁迫反应。在这篇综述中,我们总结了过去 25 年的重要发现,重点介绍了关键的移动信号分子(mRNA、蛋白质,包括 RNA 结合蛋白和小 RNA),这些分子彻底改变了我们对植物如何整合各种内在和外在线索来协调生长和发育的理解。此外,我们还提供了有关新兴分子机制的详细见解,这些机制可能控制韧皮部移动 RNA 向靶组织的选择性运输和递呈。我们还强调了在植物-寄生虫关系中移动信号的跨界运动。考虑到这些信号的动态功能,还讨论了它们在作物改良中的意义。

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