Exogenous Melatonin mediates the regulation of endogenous nitric oxide in Glycine max L. to reduce effects of drought stress

脱落酸 一氧化氮 内生 抗氧化剂 耐旱性 活性氧 褪黑素 非生物胁迫 硝普钠 脂质过氧化 生物化学 甘氨酸 化学 生物 植物 基因 氨基酸 内分泌学 有机化学
作者
Muhammad Imran,Raheem Shazad,Saqib Bilal,Qari Muhammad Imran,Murtaza Khan,Sang‐Mo Kang,Abdul Latif Khan,Byung‐Wook Yun,In‐Jung Lee
出处
期刊:Environmental and Experimental Botany [Elsevier]
卷期号:188: 104511-104511 被引量:51
标识
DOI:10.1016/j.envexpbot.2021.104511
摘要

Drought stress retards plant growth and yield. Melatonin and nitric oxide (NO) have demonstrated their potential role against abiotic stresses; however, the underlying molecular mechanism by which they interact and extend drought stress tolerance has not been fully elucidated. Herein, the current study was performed to establish the optimum beneficial concentration of MT and NO in combating drought stress and later understand its responses at biochemical, and molecular levels. Results showed exogenous MT, and sodium nitroprusside (SNP as NO donor) have counteracted drought-induced growth inhibition of soybean (Glycine max L.) by increasing plant biomass, photosynthesis efficiency and water content and reducing reactive oxygen species accumulation. MT and NO treatments showed reduced lipid peroxidation and improved defense responses via significantly higher antioxidant enzyme activities than control during drought. Surprisingly, endogenous abscisic acid (ABA) contents and gene expression of its synthesis and ABA-responsive proteins and their promoters were significantly decreased in drought by MT + NO. This was coupled with an increase in endogenous MT levels. In endo-NO regulations, S-nitrosoglutathione was increased, but L-NAME (NO inhibitor) and cPTIO (NO scavenger) decreased the S-nitrosothiol (SNO) contents, which was followed by the increased expression of NO-synthesis-related-genes by MT + NO. Interestingly, MT + NO-induced drought stress tolerance was coupled with increased expression of transcription factors such as GmWRKY27 and GmMYB174. Conclusively, the physiological, antioxidant, and molecular analysis showed that MT triggers downregulated NO accumulation, promoting tolerance against drought stress.
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