State Key Lab of Plant Genomics, Institute of Genetics & Developmental Biology, Innovation Academy for Seed Design, Chinese Academy of Sciences, Beijing, 100101, China.
Biology and Agriculture Research Center, School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing, 100024, China.
J Integr Plant Biol. 2021 Jan;63(1):102-125. doi: 10.1111/jipb.13028.
Ethylene is a gaseous hormone which plays important roles in both plant growth and development and stress responses. Based on studies in the dicot model plant species Arabidopsis, a linear ethylene signaling pathway has been established, according to which ethylene is perceived by ethylene receptors and transduced through CONSTITUTIVE TRIPLE RESPONSE 1 (CTR1) and ETHYLENE-INSENSITIVE 2 (EIN2) to activate transcriptional reprogramming. In addition to this canonical signaling pathway, an alternative ethylene receptor-mediated phosphor-relay pathway has also been proposed to participate in ethylene signaling. In contrast to Arabidopsis, rice, a monocot, grows in semiaquatic environments and has a distinct plant structure. Several novel regulators and/or mechanisms of the rice ethylene signaling pathway have recently been identified, indicating that the ethylene signaling pathway in rice has its own unique features. In this review, we summarize the latest progress and compare the conserved and divergent aspects of the ethylene signaling pathway between Arabidopsis and rice. The crosstalk between ethylene and other plant hormones is also reviewed. Finally, we discuss how ethylene regulates plant growth, stress responses and agronomic traits. These analyses should help expand our knowledge of the ethylene signaling mechanism and could further be applied for agricultural purposes.
乙烯是一种气态激素,在植物生长发育和应激反应中都发挥着重要作用。基于拟南芥等双子叶模式植物的研究,已经建立了一个线性的乙烯信号通路,根据该通路,乙烯被乙烯受体感知,并通过组成型三重反应 1(CTR1)和乙烯不敏感 2(EIN2)传递,从而激活转录重编程。除了这个经典的信号通路外,还提出了一种替代的乙烯受体介导的磷酸传递途径来参与乙烯信号转导。与拟南芥不同,水稻是单子叶植物,生长在半水生环境中,具有独特的植物结构。最近,已经鉴定出几个水稻乙烯信号通路的新调控因子和/或机制,表明水稻中的乙烯信号通路具有其独特的特征。在这篇综述中,我们总结了最新的进展,并比较了拟南芥和水稻中乙烯信号通路的保守和差异方面。还综述了乙烯与其他植物激素之间的相互作用。最后,我们讨论了乙烯如何调节植物生长、应激反应和农艺性状。这些分析应该有助于扩展我们对乙烯信号机制的认识,并可进一步应用于农业目的。