A Regulatory Circuit Integrating Stress-Induced with Natural Leaf Senescence

O. T. Fraga, B. P. Melo, L. Camargos, Debora Pellanda Fagundes, C. C. Oliveira, E. B. Simoni, Pedro A. B. Reis, E. P. Fontes
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引用次数: 1

Abstract

Any condition that disrupts the ER homeostasis activates a cytoprotective signaling cascade, designated as the unfolded protein response (UPR), which is transduced in plant cells by a bipartite signaling module. Activation of IRE1/ bZIP60 and bZIP28/bZIP17, which represent the bipartite signaling arms and serve as ER stress sensors and transducers, results in the upregulation of ER protein processing machinery-related genes to recover from stress. However, if the ER stress persists and the cell is unable to restore ER homeostasis, programmed cell death signaling pathways are activated for survival. Here, we describe an ER stress-induced plant-specific cell death program, which is a shared response to multiple stress signals. This signaling pathway was first identified through genome-wide expression profile of differentially expressed genes in response to combined ER stress and osmotic stress. Among them, the development and cell death domain-containing N-rich proteins (DCD/NRPs), NRP-A and NRP-B , and the transcriptional factor GmNAC81 were selected as mediators of cell death in plants. These genes were used as targets to identify additional components of the cell death pathway, which is described here as a regulatory circuit that integrates a stress-induced cell death program with leaf senescence via the NRP-A/NRP-B/GmNAC81:GmNAC30/VPE signaling module.
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整合应力诱导与自然叶片衰老的调控回路
任何破坏内质网稳态的情况都会激活细胞保护性信号级联反应,称为未折叠蛋白反应(UPR),该反应在植物细胞中通过两部分信号传导模块进行转导。IRE1/ bZIP60和bZIP28/bZIP17是内质网应激传感器和转导器,它们的激活可导致内质网蛋白加工机械相关基因的上调,从而从应激中恢复。然而,如果内质网应激持续存在并且细胞无法恢复内质网稳态,则程序性细胞死亡信号通路被激活以维持生存。在这里,我们描述了内质网应激诱导的植物特异性细胞死亡程序,这是对多种应激信号的共同反应。这一信号通路首次通过内质网胁迫和渗透胁迫联合作用下差异表达基因的全基因组表达谱被发现。其中,含有富n蛋白的发育和细胞死亡结构域(DCD/NRPs)、NRP-A和NRP-B以及转录因子GmNAC81被选为植物细胞死亡的介质。这些基因被用作鉴定细胞死亡途径其他成分的靶标,本文将细胞死亡途径描述为通过NRP-A/NRP-B/GmNAC81:GmNAC30/VPE信号模块整合应激诱导的细胞死亡程序和叶片衰老的调控回路。
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