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NPR1-WRKY46-WRKY6 信号级联介导拟南芥中丙森锌/水杨酸诱导的叶片衰老。

The NPR1-WRKY46-WRKY6 signaling cascade mediates probenazole/salicylic acid-elicited leaf senescence in Arabidopsis thaliana.

机构信息

State Key Laboratory of Genetic Engineering and Fudan Center for Genetic Diversity and Designing Agriculture, Institute of Plant Biology, School of Life Sciences, Fudan University, Shanghai, 200438, China.

Institute of Neurology, Huashan Hospital, Fudan University, Shanghai, 200040, China.

出版信息

J Integr Plant Biol. 2021 May;63(5):924-936. doi: 10.1111/jipb.13044. Epub 2021 Mar 8.

Abstract

Endogenous salicylic acid (SA) regulates leaf senescence, but the underlying mechanism remains largely unexplored. The exogenous application of SA to living plants is not efficient for inducing leaf senescence. By taking advantage of probenazole (PBZ)-induced biosynthesis of endogenous SA, we previously established a chemical inducible leaf senescence system that depends on SA biosynthesis and its core signaling receptor NPR1 in Arabidopsis thaliana. Here, using this system, we identified WRKY46 and WRKY6 as key components of the transcriptional machinery downstream of NPR1 signaling. Upon PBZ treatment, the wrky46 mutant exhibited significantly delayed leaf senescence. We demonstrate that NPR1 is essential for PBZ/SA-induced WRKY46 activation, whereas WRKY46 in turn enhances NPR1 expression. WRKY46 interacts with NPR1 in the nucleus, binding to the W-box of the WRKY6 promoter to induce its expression in response to SA signaling. Dysfunction of WRKY6 abolished PBZ-induced leaf senescence, while overexpression of WRKY6 was sufficient to accelerate leaf senescence even under normal growth conditions, suggesting that WRKY6 may serve as an integration node of multiple leaf senescence signaling pathways. Taken together, these findings reveal that the NPR1-WRKY46-WRKY6 signaling cascade plays a critical role in PBZ/SA-mediated leaf senescence in Arabidopsis.

摘要

内源性水杨酸(SA)调节叶片衰老,但其中的作用机制在很大程度上仍未得到探索。将 SA 施加于活体植物上并不利于诱导叶片衰老。我们曾利用咯菌腈(PBZ)诱导内源性 SA 的生物合成,建立了一个化学诱导的叶片衰老系统,该系统依赖于拟南芥中 SA 的生物合成及其核心信号受体 NPR1。在此,我们利用该系统鉴定出 WRKY46 和 WRKY6 是 NPR1 信号下游转录机制的关键组成部分。经 PBZ 处理后,wrky46 突变体表现出明显延迟的叶片衰老。我们证明 NPR1 对于 PBZ/SA 诱导的 WRKY46 激活是必需的,而 WRKY46 反过来又增强 NPR1 的表达。WRKY46 在核内与 NPR1 相互作用,结合 WRKY6 启动子的 W-box 以响应 SA 信号诱导其表达。WRKY6 的功能失调会使 PBZ 诱导的叶片衰老过程遭到破坏,而过表达 WRKY6 即使在正常生长条件下也足以加速叶片衰老,这表明 WRKY6 可能作为多个叶片衰老信号通路的整合节点。总之,这些发现揭示了 NPR1-WRKY46-WRKY6 信号级联在 PBZ/SA 介导的拟南芥叶片衰老过程中发挥着关键作用。

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