Integrative Multi-omics Analyses of Barley Rootzones under Salinity Stress Reveal Two Distinctive Salt Tolerance Mechanisms

被引:32
|
作者
Ho, William Wing Ho [1 ]
Hill, Camilla B. [1 ,2 ]
Doblin, Monika S. [3 ]
Shelden, Megan C. [4 ]
van de Meene, Allison [1 ]
Rupasinghe, Thusitha [1 ]
Bacic, Antony [3 ]
Roessner, Ute [1 ,5 ]
机构
[1] Univ Melbourne, Sch Biosci, Parkville, Vic 3010, Australia
[2] Murdoch Univ, Sch Vet & Life Sci, Murdoch, WA 6150, Australia
[3] La Trobe Univ, La Trobe Inst Agr & Food, Dept Anim Plant & Soil Sci, Bundoora, Vic 3086, Australia
[4] Univ Adelaide, Arc Ctr Excellence Plant Energy Biol, Sch Agr Food & Wine, Glen Osmond, SA 5064, Australia
[5] Univ Melbourne, Metabol Australia, Parkville, Vic 3010, Australia
基金
澳大利亚研究理事会;
关键词
barley root; transcriptomics; metabolomics; lipidomics; omics integration; salinity stress; CONTRASTING RESPONSES; ARABIDOPSIS; GENOTYPES; SUBERIN; LIGNIN; GROWTH; ROOTS; TRANSPORT; BIOSYNTHESIS; METABOLITES;
D O I
10.1016/j.xplc.2020.100031
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The mechanisms underlying rootzone-localized responses to salinity during early stages of barley development remain elusive. In this study, we performed the analyses of multi-root-omes (transcriptomes, metabolomes, and lipidomes) of a domesticated barley cultivar (Clipper) and a landrace (Sahara) that maintain and restrict seedling root growth under salt stress, respectively. Novel generalized linear models were designed to determine differentially expressed genes (DEGs) and abundant metabolites (DAMs) specific to salt treatments, genotypes, or rootzones (meristematic Z1, elongation Z2, and maturation Z3). Based on pathway over-representation of the DEGs and DAMs, phenylpropanoid biosynthesis is the most statistically enriched biological pathway among all salinity responses observed. Together with histological evidence, an intense salt-induced lignin impregnation was found only at stelic cell wall of Clipper Z2, compared with a unique elevation of suberin deposition across Sahara Z2. This suggests two differential salt-induced modulations of apoplastic flow between the genotypes. Based on the global correlation network of the DEGs and DAMs, callose deposition that potentially adjusted symplastic flow in roots was almost independent of salinity in rootzones of Clipper, and was markedly decreased in Sahara. Taken together, we propose two distinctive salt tolerance mechanisms in Clipper (growth-sustaining) and Sahara (salt-shielding), providing important clues for improving crop plasticity to cope with deteriorating global soil salinization.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Integrated multi-omics analyses reveal the biochemical mechanisms and phylogenetic relevance of anaerobic androgen biodegradation in the environment
    Yang, Fu-Chun
    Chen, Yi-Lung
    Tang, Sen-Lin
    Yu, Chang-Ping
    Wang, Po-Hsiang
    Ismail, Wael
    Wang, Chia-Hsiang
    Ding, Jiun-Yan
    Yang, Cheng-Yu
    Yang, Chia-Ying
    Chiang, Yin-Ru
    ISME JOURNAL, 2016, 10 (08): : 1967 - 1983
  • [22] Multi-omics analyses of red blood cell reveal antioxidation mechanisms associated with hemolytic toxicity of gossypol
    Tang, Chaohua
    Meng, Qingshi
    Zhang, Kai
    Zhan, Tengfei
    Zhao, Qingyu
    Zhang, Sheng
    Zhang, Junmin
    ONCOTARGET, 2017, 8 (61) : 103693 - 103709
  • [23] Multi-omics analyses reveal molecular mechanisms for the antagonistic toxicity of carbon nanotubes and ciprofloxacin to Escherichia coli
    Deng, Rui
    Gao, Xuan
    Hou, Jie
    Lin, Daohui
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 726
  • [24] Integrated multi-omics analyses reveal the biochemical mechanisms and phylogenetic relevance of anaerobic androgen biodegradation in the environment
    Fu-Chun Yang
    Yi-Lung Chen
    Sen-Lin Tang
    Chang-Ping Yu
    Po-Hsiang Wang
    Wael Ismail
    Chia-Hsiang Wang
    Jiun-Yan Ding
    Cheng-Yu Yang
    Chia-Ying Yang
    Yin-Ru Chiang
    The ISME Journal, 2016, 10 : 1967 - 1983
  • [25] Proteomic and metabolomic analyses uncover integrative mechanisms in Sesuvium portulacastrum tolerance to salt stress
    Cao, Dingding
    Zhang, Wenbin
    Yang, Nan
    Li, Ziling
    Zhang, Chaoyue
    Wang, Dan
    Ye, Guiping
    Chen, Jianjun
    Wei, Xiangying
    FRONTIERS IN PLANT SCIENCE, 2023, 14
  • [26] Multi-omics analyses reveal impaired lipid metabolism and oxidative stress in a zebrafish model of Alexander disease
    Bellitto, D.
    Bozzo, M.
    Ravera, S.
    Bertola, N.
    Rosamilia, F.
    Barboro, P.
    Vargas, G. Coronel
    Iervasi, E.
    Ponassi, M.
    Profumo, A.
    Romano, P.
    Rosano, C.
    Bachetti, T.
    Candiani, S.
    GLIA, 2023, 71 : E374 - E374
  • [27] Integrative omics analyses of tea (Camellia sinensis) under glufosinate stress reveal defense mechanisms: A trade-off with flavor loss
    Yu, Huan
    Li, Dong
    Wu, Yangliu
    Miao, Peijuan
    Zhou, Chunran
    Cheng, Haiyan
    Dong, Qinyong
    Zhao, Yingjie
    Liu, Zhusheng
    Zhou, Li
    Pan, Canping
    JOURNAL OF HAZARDOUS MATERIALS, 2024, 473
  • [28] Integrative Multi-Omics Analyses Reveal Molecular Subtypes with Distinct Prognosis of Early-Stage HighGrade Lung Adenocarcinoma
    Liu, B.
    Shi, Y.
    Wu, N.
    JOURNAL OF THORACIC ONCOLOGY, 2023, 18 (11) : S142 - S143
  • [29] Multi-omics and biochemical analyses provide insights into hepatic glucolipid metabolism in red tilapia ( Oreochromis spp.) under salinity stress
    Jiang, Bingjie
    Huang, Renshan
    Tao, Yifan
    Lu, Siqi
    Hua, Jixiang
    Li, Yan
    Dong, Yalun
    Xu, Pao
    Qiang, Jun
    AQUACULTURE, 2025, 599
  • [30] Integrative Multi-Omics Approaches Reveal Selectivity Profiles and Molecular Mechanisms of FIIN-2, a Covalent FGFR Inhibitor
    Fu, Ying
    Zhu, Dandan
    Chen, Xiaojuan
    Qu, Lingzhi
    Guo, Ming
    Zhang, Shuhong
    Xu, Guangyu
    Chen, Zhuchu
    Li, Maoyu
    Chen, Yongheng
    ADVANCED SCIENCE, 2025,