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重新考虑叶绿体代谢物逆行信号的性质和作用模式。

Reconsidering the nature and mode of action of metabolite retrograde signals from the chloroplast.

机构信息

ARC Centre of Excellence in Plant Energy Biology, Research School of Biology, The Australian National University Canberra, ACT, Australia.

出版信息

Front Plant Sci. 2013 Jan 4;3:300. doi: 10.3389/fpls.2012.00300. eCollection 2012.

Abstract

Plant organelles produce retrograde signals to alter nuclear gene expression in order to coordinate their biogenesis, maintain homeostasis, or optimize their performance under adverse conditions. Many signals of different chemical nature have been described in the past decades, including chlorophyll intermediates, reactive oxygen species (ROS), and adenosine derivatives. While the effects of retrograde signaling on gene expression are well understood, the initiation and transport of the signals and their mode of action have either not been resolved, or are a matter of speculation. Moreover, retrograde signaling should be considered as part of a broader cellular network, instead of as separate pathways, required to adjust to changing physiologically relevant conditions. Here we summarize current plastid retrograde signaling models in plants, with a focus on new signaling pathways, SAL1-PAP, methylerythritol cyclodiphosphate (MEcPP), and β-cyclocitral (β-CC), and outline missing links or future areas of research that we believe need to be addressed to have a better understanding of plant intracellular signaling networks.

摘要

植物细胞器产生逆行信号以改变核基因表达,从而协调它们的生物发生、维持体内平衡,或在不利条件下优化它们的性能。在过去的几十年中,已经描述了许多不同化学性质的信号,包括叶绿素中间体、活性氧物种 (ROS) 和腺嘌呤衍生物。虽然逆行信号对基因表达的影响已经得到很好的理解,但信号的起始和运输及其作用模式要么尚未解决,要么仍在推测之中。此外,逆行信号应被视为更广泛的细胞网络的一部分,而不是作为单独的途径,以适应不断变化的与生理相关的条件。在这里,我们总结了目前植物中质体逆行信号模型,重点介绍了新的信号通路,SAL1-PAP、甲基赤藓醇磷酸 (MEcPP) 和β-环柠檬醛 (β-CC),并概述了我们认为需要解决的缺失环节或未来的研究领域,以便更好地理解植物细胞内信号网络。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5cd/3539676/d92f0cd36366/fpls-03-00300-g0001.jpg

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