Key Laboratory for Bio-resources and Eco-environment & State Key Lab of Hydraulics & Mountain River Engineering, Sichuan Zoige Alpine Wetland Ecosystem National Observation and Research Station, Key Laboratory for Bio-resource and Eco-environment of Ministry of Education, College of Life Sciences, Sichuan University, Chengdu, 610065, China.
Plant Mol Biol. 2024 Mar 19;114(2):30. doi: 10.1007/s11103-024-01428-x.
To cope with flooding-induced hypoxia, plants have evolved different strategies. Molecular strategies, such as the N-degron pathway and transcriptional regulation, are known to be crucial for Arabidopsis thaliana's hypoxia response. Our study uncovered a novel molecular strategy that involves a single transcription factor interacting with two identical cis-elements, one located in the promoter region and the other within the intron. This unique double-element adjustment mechanism has seldom been reported in previous studies. In humid areas, WRKY70 plays a crucial role in A. thaliana's adaptation to submergence-induced hypoxia by binding to identical cis-elements in both the promoter and intron regions of WRKY33. This dual binding enhances WRKY33 expression and the activation of hypoxia-related genes. Conversely, in arid regions lacking the promoter cis-element, WRKY70 only binds to the intron cis-element, resulting in limited WRKY33 expression during submergence stress. The presence of a critical promoter cis-element in humid accessions, but not in dry accessions, indicates a coordinated regulation enabling A. thaliana to adapt and thrive in humid habitats.
为了应对洪水引发的缺氧,植物已经进化出不同的策略。众所周知,分子策略,如 N-降解途径和转录调控,对拟南芥的缺氧反应至关重要。我们的研究揭示了一种新的分子策略,涉及一个单一的转录因子与两个相同的顺式元件相互作用,一个位于启动子区域,另一个位于内含子中。这种独特的双元件调节机制在以前的研究中很少有报道。在潮湿地区,WRKY70 通过与 WRKY33 启动子和内含子区域中的相同顺式元件结合,在拟南芥适应淹没诱导的缺氧中发挥关键作用。这种双重结合增强了 WRKY33 的表达和与缺氧相关基因的激活。相反,在干旱地区缺乏启动子顺式元件的情况下,WRKY70 仅与内含子顺式元件结合,导致淹没胁迫期间 WRKY33 的表达有限。在潮湿品系中存在关键的启动子顺式元件,而在干燥品系中不存在,这表明协调调节使拟南芥能够适应和在潮湿生境中茁壮成长。