Viikki Biocenter, Department of Biosciences, Division of Genetics, University of Helsinki, FIN-00014, Helsinki, Finland.
J Exp Bot. 2012 Apr;63(7):2667-79. doi: 10.1093/jxb/err450. Epub 2012 Jan 20.
The plant-specific WRKY transcription factor (TF) family with 74 members in Arabidopsis thaliana appears to be involved in the regulation of various physiological processes including plant defence and senescence. WRKY53 and WRKY70 were previously implicated as positive and negative regulators of senescence, respectively. Here the putative function of other WRKY group III proteins in Arabidopsis leaf senescence has been explored and the results suggest the involvement of two additional WRKY TFs, WRKY 54 and WRKY30, in this process. The structurally related WRKY54 and WRKY70 exhibit a similar expression pattern during leaf development and appear to have co-operative and partly redundant functions in senescence, as revealed by single and double mutant studies. These two negative senescence regulators and the positive regulator WRKY53 were shown by yeast two-hydrid analysis to interact independently with WRKY30. WRKY30 was expressed during developmental leaf senescence and consequently it is hypothesized that the corresponding protein could participate in a senescence regulatory network with the other WRKYs. Expression in wild-type and salicylic acid-deficient mutants suggests a common but not exclusive role for SA in induction of WRKY30, 53, 54, and 70 during senescence. WRKY30 and WRKY53 but not WRKY54 and WRKY70 are also responsive to additional signals such as reactive oxygen species. The results suggest that WRKY53, WRKY54, and WRKY70 may participate in a regulatory network that integrates internal and environmental cues to modulate the onset and the progression of leaf senescence, possibly through an interaction with WRKY30.
植物特有的 WRKY 转录因子(TF)家族在拟南芥中有 74 个成员,似乎参与了各种生理过程的调节,包括植物防御和衰老。WRKY53 和 WRKY70 先前被认为分别是衰老的正调控因子和负调控因子。在这里,我们探讨了拟南芥叶片衰老过程中其他 WRKY 第三组蛋白的假定功能,结果表明另外两个 WRKY 转录因子 WRKY54 和 WRKY30 参与了这一过程。结构上相关的 WRKY54 和 WRKY70 在叶片发育过程中表现出相似的表达模式,并且在衰老过程中似乎具有合作和部分冗余的功能,这是通过单突变和双突变研究揭示的。酵母双杂交分析表明,这两个负调控衰老的因子和正调控因子 WRKY53 与 WRKY30 独立相互作用。WRKY30 在发育过程中的叶片衰老过程中表达,因此可以假设该蛋白可能与其他 WRKYs 一起参与衰老调控网络。在野生型和水杨酸缺陷型突变体中的表达表明,SA 在诱导 WRKY30、53、54 和 70 衰老过程中具有共同但非排他的作用。WRKY30 和 WRKY53 而不是 WRKY54 和 WRKY70 也对其他信号(如活性氧)有反应。结果表明,WRKY53、WRKY54 和 WRKY70 可能参与了一个调节网络,该网络整合了内部和环境线索,以调节叶片衰老的开始和进展,可能通过与 WRKY30 的相互作用。