生物
串扰
转录因子
拟南芥
脱落酸
非生物胁迫
细胞生物学
信号转导
重编程
亮氨酸拉链
代谢途径
转录组
遗传学
基因
基因表达
物理
突变体
光学
作者
Laura Hartmann,Lorenzo Pedrotti,Christoph Weiste,Ágnes Fekete,Jasper Schierstaedt,Jasmin Göttler,Stefan Kempa,Markus Krischke,Katrin Dietrich,Martin J. Mueller,Jesús Vicente‐Carbajosa,Johannes Hanson,Wolfgang Dröge‐Laser
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2015-08-01
卷期号:27 (8): 2244-2260
被引量:188
摘要
Soil salinity increasingly causes crop losses worldwide. Although roots are the primary targets of salt stress, the signaling networks that facilitate metabolic reprogramming to induce stress tolerance are less understood than those in leaves. Here, a combination of transcriptomic and metabolic approaches was performed in salt-treated Arabidopsis thaliana roots, which revealed that the group S1 basic leucine zipper transcription factors bZIP1 and bZIP53 reprogram primary C- and N-metabolism. In particular, gluconeogenesis and amino acid catabolism are affected by these transcription factors. Importantly, bZIP1 expression reflects cellular stress and energy status in roots. In addition to the well-described abiotic stress response pathway initiated by the hormone abscisic acid (ABA) and executed by SnRK2 (Snf1-RELATED-PROTEIN-KINASE2) and AREB-like bZIP factors, we identify a structurally related ABA-independent signaling module consisting of SnRK1s and S1 bZIPs. Crosstalk between these signaling pathways recruits particular bZIP factor combinations to establish at least four distinct gene expression patterns. Understanding this signaling network provides a framework for securing future crop productivity.
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