Divi Uday K, Rahman Tawhidur, Krishna Priti
Department of Biology, University of Western Ontario, London, ON, Canada.
The School of Environmental and Rural Sciences, The University of New England, Armidale, NSW, Australia.
Plant Biotechnol J. 2016 Jan;14(1):419-32. doi: 10.1111/pbi.12396. Epub 2015 May 14.
The plant hormone brassinosteroid (BR) plays essential roles in plant growth and development, while also controlling plant stress responses. This dual ability of BR is intriguing from a mechanistic point of view and as a viable solution for stabilizing crop yields under the changing climatic conditions. Here we report a time course analysis of BR responses under both stress and no-stress conditions, the results of which establish that BR incorporates many stress-related features even under no-stress conditions, which are then accompanied by a dynamic stress response under unfavourable conditions. Found within the BR transcriptome were distinct molecular signatures of two stress hormones, abscisic acid and jasmonic acid, which were correlated with enhanced endogenous levels of the two hormones in BR-treated seedlings. The marked presence of genes related to protein metabolism and modification, defence responses and calcium signalling highlights the significance of their associated mechanisms and roles in BR processes. Functional analysis of loss-of-function mutants of a subset of genes selected from the BR transcriptome identified abiotic stress-related roles for ACID PHOSPHATASE5 (ACP5), WRKY33, JACALIN-RELATED LECTIN1-3 (JAC-LEC1-3) and a BR-RESPONSIVE-RECEPTOR-LIKE KINASE (BRRLK). Overall, the results of this study provide a clear link between the molecular changes impacted by BR and its ability to confer broad-range stress tolerance, emphasize the importance of post-translational modification and protein turnover as BR regulatory mechanisms and demonstrate the BR transcriptome as a repertoire of new stress-related regulatory and structural genes.
植物激素油菜素甾醇(BR)在植物生长发育中发挥着重要作用,同时也控制着植物的应激反应。从机制角度来看,BR的这种双重能力很有趣,并且作为在不断变化的气候条件下稳定作物产量的可行解决方案。在这里,我们报告了在胁迫和非胁迫条件下BR反应的时间进程分析,结果表明,即使在非胁迫条件下,BR也具有许多与胁迫相关的特征,然后在不利条件下伴随着动态的应激反应。在BR转录组中发现了两种胁迫激素脱落酸和茉莉酸的独特分子特征,这与BR处理的幼苗中这两种激素的内源性水平升高相关。与蛋白质代谢和修饰、防御反应及钙信号传导相关的基因的显著存在,突出了它们相关机制及其在BR过程中的作用的重要性。对从BR转录组中选择的一部分基因的功能缺失突变体进行功能分析,确定了酸性磷酸酶5(ACP5)、WRKY33、 jacalin相关凝集素1 - 3(JAC-LEC1-3)和一种BR反应性受体样激酶(BRRLK)在非生物胁迫相关的作用。总体而言,本研究结果明确了受BR影响的分子变化与其赋予广泛胁迫耐受性能力之间的联系,强调了翻译后修饰和蛋白质周转作为BR调节机制的重要性,并证明BR转录组是新的胁迫相关调节和结构基因的宝库。