BR regulates wheat root salt tolerance by maintaining ROS homeostasis.

IF 3.6 3区 生物学 Q1 PLANT SCIENCES
Planta Pub Date : 2024-05-22 DOI:10.1007/s00425-024-04429-8
Lijiang Hou, Zihui Liu, Dongzhi Zhang, Shuhan Liu, Zhenzhen Chen, Qiufang Wu, Zengzhen Shang, Jingshun Wang, Junwei Wang
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Abstract

Main conclusion: Trace amounts of epibrassinolide (EpiBL) could partially rescue wheat root length inhibition in salt-stressed situation by scavenging ROS, and ectopic expression of TaDWF4 or TaBAK1 enhances root salt tolerance in Arabidopsis by balancing ROS level. Salt stress often leads to ion toxicity and oxidative stress, causing cell structure damage and root development inhibition in plants. While prior research indicated the involvement of exogenous brassinosteroid (BR) in plant responses to salt stress, the precise cytological role and the function of BR in wheat root development under salt stress remain elusive. Our study demonstrates that 100 mM NaCl solution inhibits wheat root development, but 5 nM EpiBL partially rescues root length inhibition by decreasing H2O2 content, oxygen free radical (OFR) content, along with increasing the peroxidase (POD) and catalase (CAT) activities in salt-stressed roots. The qRT-PCR experiment also shows that expression of the ROS-scavenging genes (GPX2 and CAT2) increased in roots after applying BR, especially during salt stress situation. Transcriptional analysis reveals decreased expression of BR synthesis and root meristem development genes under salt stress in wheat roots. Differential expression gene (DEG) enrichment analysis highlights the significant impact of salt stress on various biological processes, particularly "hydrogen peroxide catabolic process" and "response to oxidative stress". Additionally, the BR biosynthesis pathway is enriched under salt stress conditions. Therefore, we investigated the involvement of wheat BR synthesis gene TaDWF4 and BR signaling gene TaBAK1 in salt stress responses in roots. Our results demonstrate that ectopic expression of TaDWF4 or TaBAK1 enhances salt tolerance in Arabidopsis by balancing ROS (Reactive oxygen species) levels in roots.

Abstract Image

BR 通过维持 ROS 的平衡来调节小麦根系的耐盐性。
主要结论痕量表紫苏内酯(EpiBL)可通过清除ROS部分缓解小麦根长在盐胁迫情况下受到的抑制,异位表达TaDWF4或TaBAK1可通过平衡ROS水平增强拟南芥根的耐盐性。盐胁迫通常会导致离子毒性和氧化应激,造成植物细胞结构损伤和根系发育受抑制。虽然之前的研究表明外源类黄铜激素(BR)参与了植物对盐胁迫的响应,但BR在盐胁迫下小麦根系发育中的精确细胞学作用和功能仍未确定。我们的研究表明,100 mM NaCl 溶液会抑制小麦根的发育,但 5 nM EpiBL 可通过降低盐胁迫根中 H2O2 含量、氧自由基(OFR)含量以及提高过氧化物酶(POD)和过氧化氢酶(CAT)活性,部分缓解根长抑制作用。qRT-PCR 实验还表明,施用 BR 后,特别是在盐胁迫情况下,根中 ROS 清除基因(GPX2 和 CAT2)的表达量增加。转录分析表明,在盐胁迫下,小麦根系中 BR 合成基因和根分生组织发育基因的表达量减少。差异表达基因(DEG)富集分析表明,盐胁迫对各种生物过程,尤其是 "过氧化氢分解过程 "和 "对氧化胁迫的响应 "有显著影响。此外,在盐胁迫条件下,BR 生物合成途径也会富集。因此,我们研究了小麦BR合成基因TaDWF4和BR信号转导基因TaBAK1参与根系盐胁迫响应的情况。我们的研究结果表明,异位表达 TaDWF4 或 TaBAK1 可通过平衡根中的 ROS(活性氧)水平来增强拟南芥的耐盐性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Planta
Planta 生物-植物科学
CiteScore
7.20
自引率
2.30%
发文量
217
审稿时长
2.3 months
期刊介绍: Planta publishes timely and substantial articles on all aspects of plant biology. We welcome original research papers on any plant species. Areas of interest include biochemistry, bioenergy, biotechnology, cell biology, development, ecological and environmental physiology, growth, metabolism, morphogenesis, molecular biology, new methods, physiology, plant-microbe interactions, structural biology, and systems biology.
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