Singh Vikram, Gupta Khushboo, Singh Shubhangi, Jain Mukesh, Garg Rohini
School of Computational & Integrative Sciences, Jawaharlal Nehru University, New Delhi, India.
Department of Life Sciences, Shiv Nadar Institution of Eminence, Gautam Buddha Nagar, Uttar Pradesh, India.
Front Plant Sci. 2023 May 23;14:1156606. doi: 10.3389/fpls.2023.1156606. eCollection 2023.
Drought stress affects growth and productivity significantly in chickpea. An integrated multi-omics analysis can provide a better molecular-level understanding of drought stress tolerance. In the present study, comparative transcriptome, proteome and metabolome analyses of two chickpea genotypes with contrasting responses to drought stress, ICC 4958 (drought-tolerant, DT) and ICC 1882 (drought-sensitive, DS), was performed to gain insights into the molecular mechanisms underlying drought stress response/tolerance. Pathway enrichment analysis of differentially abundant transcripts and proteins suggested the involvement of glycolysis/gluconeogenesis, galactose metabolism, and starch and sucrose metabolism in the DT genotype. An integrated multi-omics analysis of transcriptome, proteome and metabolome data revealed co-expressed genes, proteins and metabolites involved in phosphatidylinositol signaling, glutathione metabolism and glycolysis/gluconeogenesis pathways, specifically in the DT genotype under drought. These stress-responsive pathways were coordinately regulated by the differentially abundant transcripts, proteins and metabolites to circumvent the drought stress response/tolerance in the DT genotype. The associated genes, proteins and transcription factors may further contribute to improved drought tolerance in the DT genotype. Altogether, the multi-omics approach provided an in-depth understanding of stress-responsive pathways and candidate genes involved in drought tolerance in chickpea.
干旱胁迫对鹰嘴豆的生长和生产力有显著影响。综合多组学分析能够在分子水平上更好地理解干旱胁迫耐受性。在本研究中,对两种对干旱胁迫反应不同的鹰嘴豆基因型ICC 4958(耐旱型,DT)和ICC 1882(干旱敏感型,DS)进行了比较转录组、蛋白质组和代谢组分析,以深入了解干旱胁迫反应/耐受性的分子机制。对差异丰富的转录本和蛋白质进行的通路富集分析表明,糖酵解/糖异生、半乳糖代谢以及淀粉和蔗糖代谢参与了DT基因型。对转录组、蛋白质组和代谢组数据的综合多组学分析揭示了参与磷脂酰肌醇信号传导、谷胱甘肽代谢和糖酵解/糖异生途径的共表达基因、蛋白质和代谢物,特别是在干旱条件下的DT基因型中。这些应激反应途径由差异丰富的转录本、蛋白质和代谢物协同调节,以规避DT基因型中的干旱胁迫反应/耐受性。相关的基因、蛋白质和转录因子可能进一步有助于提高DT基因型的耐旱性。总之,多组学方法提供了对鹰嘴豆干旱耐受性中应激反应途径和候选基因的深入理解。