Unravelling the molecular mechanism underlying drought stress response in chickpea via integrated multi-omics analysis

被引:13
|
作者
Singh, Vikram [1 ]
Gupta, Khushboo [2 ]
Singh, Shubhangi [2 ]
Jain, Mukesh [1 ]
Garg, Rohini [2 ]
机构
[1] Jawaharlal Nehru Univ, Sch Computat & Integrat Sci, New Delhi, India
[2] Shiv Nadar Inst Eminence, Dept Life Sci, Gautam Buddha Nagar, Uttar Pradesh, India
来源
关键词
chickpea; drought; metabolome; proteome; transcriptome; co-expression; WGCNA; CICER-ARIETINUM L; AVOIDANCE ROOT TRAITS; TRANSCRIPTION FACTOR; ABSCISIC-ACID; EXPRESSION ANALYSIS; PROTEIN-KINASE; TOLERANCE; GENE; TOBACCO; GROWTH;
D O I
10.3389/fpls.2023.1156606
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
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 QTL-hotspot 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.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Integrated multi-omics analysis reveals drought stress response mechanism in chickpea (Cicer arietinum L.)
    Kudapa, Himabindu
    Ghatak, Arindam
    Barmukh, Rutwik
    Chaturvedi, Palak
    Khan, Aamir
    Kale, Sandip
    Fragner, Lena
    Chitikineni, Annapurna
    Weckwerth, Wolfram
    Varshney, Rajeev K. K.
    PLANT GENOME, 2024, 17 (01):
  • [2] Integrated multi-omics analysis reveals the underlying molecular mechanism for the neurotoxicity of triclosan in zebrafish
    Zhao, Shasha
    Ling, Yuhang
    Zhang, Baohua
    Wang, Danting
    Sun, Limei
    ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2025, 290
  • [3] Integrated Multi-Omics Analysis to Investigate the Molecular Mechanisms Underlying the Response of Auricularia heimuer to High-Temperature Stress
    Lu, Fang
    Sun, Xin
    Dai, Xiaodong
    Zhang, Piqi
    Ma, Yinpeng
    Xu, Yafei
    Wang, Lei
    Zhang, Jiechi
    JOURNAL OF FUNGI, 2025, 11 (03)
  • [4] Integrated multi-omics analysis reveals the underlying molecular mechanism for developmental neurotoxicity of perfluorooctanesulfonic acid in zebrafish
    Lee, Hyojin
    Sung, Eun Ji
    Seo, Seungwoo
    Min, Eun Ki
    Lee, Ji-Young
    Shim, Ilseob
    Kim, Pilje
    Kim, Tae-Young
    Lee, Sangkyu
    Kim, Ki-Tae
    ENVIRONMENT INTERNATIONAL, 2021, 157
  • [5] Utilizing Multi-Omics Analysis to Elucidate the Molecular Mechanisms of Oat Responses to Drought Stress
    Chen, Xiaojing
    Liu, Jinghui
    Zhao, Baoping
    Mi, Junzhen
    Xu, Zhongshan
    PLANTS-BASEL, 2025, 14 (05):
  • [6] Multi-omics analysis of response mechanism of programmed cell death in wheat endosperm to post-anthesis drought stress
    Li, Chao
    Bao, Yidan
    Guo, Wenting
    Li, Cheng
    Li, Chunyan
    ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2024, 218
  • [7] Multi-omics analysis reveals the molecular response to heat stress in a "red tide" dinoflagellate
    Dougan, Katherine E.
    Deng, Zhi-Luo
    Woehlbrand, Lars
    Reuse, Carsten
    Bunk, Boyke
    Chen, Yibi
    Hartlich, Juliane
    Hiller, Karsten
    John, Uwe
    Kalvelage, Jana
    Mansky, Johannes
    Neumann-Schaal, Meina
    Overmann, Joerg
    Petersen, Joern
    Sanchez-Garcia, Selene
    Schmidt-Hohagen, Kerstin
    Shah, Sarah
    Sproeer, Cathrin
    Sztajer, Helena
    Wang, Hui
    Bhattacharya, Debashish
    Rabus, Ralf
    Jahn, Dieter
    Chan, Cheong Xin
    Wagner-Doebler, Irene
    GENOME BIOLOGY, 2023, 24 (01)
  • [8] Multi-omics analysis reveals the molecular response to heat stress in a “red tide” dinoflagellate
    Katherine E. Dougan
    Zhi-Luo Deng
    Lars Wöhlbrand
    Carsten Reuse
    Boyke Bunk
    Yibi Chen
    Juliane Hartlich
    Karsten Hiller
    Uwe John
    Jana Kalvelage
    Johannes Mansky
    Meina Neumann-Schaal
    Jörg Overmann
    Jörn Petersen
    Selene Sanchez-Garcia
    Kerstin Schmidt-Hohagen
    Sarah Shah
    Cathrin Spröer
    Helena Sztajer
    Hui Wang
    Debashish Bhattacharya
    Ralf Rabus
    Dieter Jahn
    Cheong Xin Chan
    Irene Wagner-Döbler
    Genome Biology, 24
  • [9] Unravelling the molecular mechanism underlying drought stress tolerance in Dinanath (Pennisetum pedicellatum Trin.) grass via integrated transcriptomic and metabolomic analyses
    Puttamadanayaka, Shashikumara
    Emayavaramban, Priyadarshini
    Yadav, Praveen Kumar
    Radhakrishna, Auji
    Mehta, Brijesh Kumar
    Chandra, Amaresh
    Ahmad, Shahid
    Sanivarapu, Hemalatha
    Siddaiah, Chandra Nayak
    Yogendra, Kalenahalli
    BMC PLANT BIOLOGY, 2024, 24 (01):
  • [10] Unravelling the molecular regulation network of carbon metabolism and lipid metabolism during seed development in Akebia trifoliata via integrated multi-omics analysis
    Liu, Huijuan
    Li, Jinling
    Xu, Cunbin
    Liu, Hongchang
    Zhao, Zhi
    SCIENTIFIC REPORTS, 2024, 14 (01):