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小麦籽粒发育过程中的信号转导

Signal transduction during wheat grain development.

作者信息

Kong Lingan, Guo Honghai, Sun Mingze

机构信息

Crop Research Institute, Shandong Academy of Agricultural Sciences, 202 Gongyebei Road, Jinan, 250100, China,

出版信息

Planta. 2015 Apr;241(4):789-801. doi: 10.1007/s00425-015-2260-1. Epub 2015 Feb 14.

DOI:10.1007/s00425-015-2260-1
PMID:25680351
Abstract

This review examines the signaling pathways from the developmental and environmental point of view and the interactions among external conditions, hormonal regulations, and sugarsensing in wheat. Grain development is the key phase of reproductive growth that is closely associated with vegetative organ senescence, initiation of grain filling, pre-stored assimilates remobilization, and maturation. Senescence is characterized by loss of chlorophyll and the degradation of proteins, nucleic acids, lipids as well as nutrient exports to the sink. The initiation and progression of vegetative organ senescence are under the control of an array of environmental signals (such as biotic and abiotic stresses, darkness, and nutrient availability) and endogenous factors (including aging, multiple hormones, and sugar availability). This review will discuss the major breakthroughs in signal transduction for the wheat (Triticum aestivum) grain development achieved in the past several years, with focuses on the regulation of senescence, reserves remobilization and biosynthesis of main components of the grain. Different mechanisms of diverse signals in controlling different phrases of wheat grain development, and cross talks between different signaling pathways will also be discussed. For perspectives, key signaling networks for grain development remain to be elucidated, including cross talks and the interactions between various environmental factors and internal signals.

摘要

本综述从发育和环境的角度审视了小麦中的信号传导途径,以及外部条件、激素调节和糖感知之间的相互作用。籽粒发育是生殖生长的关键阶段,与营养器官衰老、灌浆启动、前期储存同化物的转运以及成熟密切相关。衰老的特征是叶绿素丧失以及蛋白质、核酸、脂质的降解,以及营养物质向库的输出。营养器官衰老的起始和进程受一系列环境信号(如生物和非生物胁迫、黑暗以及养分有效性)和内源因子(包括衰老、多种激素和糖的有效性)的控制。本综述将讨论过去几年在小麦(普通小麦)籽粒发育信号转导方面取得的主要突破,重点关注衰老调节、储备转运以及籽粒主要成分的生物合成。还将讨论不同信号在控制小麦籽粒发育不同阶段的不同机制,以及不同信号传导途径之间的相互作用。展望未来,籽粒发育的关键信号网络仍有待阐明,包括各种环境因子与内部信号之间的相互作用和对话。

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Development of endosperm transfer cells in barley.胚乳转移细胞在大麦中的发育。
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