Identifying Signal‐Crosstalk Mechanism in Maize Plants during Combined Salinity and Boron Stress Using Integrative Systems Biology Approaches

串扰 机制(生物学) 盐度 系统生物学 硼 生物 计算生物学 植物 生物技术 生物信息学 生物系统 化学 生态学 物理 工程类 电子工程 量子力学 有机化学
作者
Drishtee Barua,Asutosh Mishra,Pulugurtha Bharadwaja Kirti,Pankaj Barah
出处
期刊:BioMed Research International [Hindawi Publishing Corporation]
卷期号:2022 (1): 1027288-1027288 被引量:17
标识
DOI:10.1155/2022/1027288
摘要

Combined stress has been seen as a major threat to world agriculture production. Maize is one of the leading cereal crops of the world due to its wide spectrum of growth conditions and is moderately sensitive to salt stress. A saline soil environment is a major factor that hinders its growth and overall yield and causes an increase in the concentration of micronutrients like boron, leading to excess over the requirement of the plant. Boron toxicity combined with salinity has been reported to be a serious threat to the yield and quality of maize. The response signatures of the maize plants to the combined effect of salinity and boron stress have not been studied well. We carried out an integrative systems‐level analysis of the publicly available transcriptomic data generated on tolerant maize (Lluteño maize from the Atacama Desert, Chile) landrace under combined salt and boron stress. We identified significant biological processes that are differentially regulated in combined salt and boron stress in the leaves and roots of maize, respectively. Protein‐protein interaction network analysis identified important roles of aldehyde dehydrogenase (ALDH), galactinol synthase 2 (GOLS2) proteins of leaf and proteolipid membrane potential regulator (pmpm4), metallothionein lea protein group 3 (mlg3), and cold regulated 410 (COR410) proteins of root in salt tolerance and regulating boron toxicity in maize. Identification of transcription factors coupled with regulatory network analysis using machine learning approach identified a few heat shock factors (HSFs) and NAC ( NAM (no apical meristem, Petunia), ATAF1–2 ( Arabidopsis thaliana activating factor), and CUC2 (cup‐shaped cotyledon, Arabidopsis )) family transcription factors (TFs) to play crucial roles in salt tolerance, maintaining reactive oxygen species (ROS) levels and minimizing oxidative damage to the cells. These findings will provide new ways to design targeted functional validation experiments for developing multistress‐resistant maize crops.

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