Comparative metabolomics analysis of tolerant and sensitive genotypes of rapeseed (Brassica napus L.) seedlings under drought stress

被引:7
作者
Zhi, Ximin [1 ,3 ]
Bian, Xiaohua [1 ]
Yu, Jinlong [1 ]
Xiao, Xiaolu [1 ]
Duan, Bo [1 ]
Huang, Fangyuan [1 ]
Jiang, Zhan [1 ]
Zhou, Guangsheng [3 ]
Ma, Ni [1 ,2 ]
机构
[1] Chinese Acad Agr Sci, Oil Crops Res Inst, Wuhan 430062, Peoples R China
[2] Minist Agr, Key Lab Oil Crop Biol, Wuhan 430062, Peoples R China
[3] Huazhong Agr Univ, Coll Plant Sci & Technol, Wuhan 430070, Peoples R China
基金
中国国家自然科学基金;
关键词
Drought stress; Oilseed rape; Genotypes; Phenotypic characteristics; Photosynthetic physiology; Metabolic network; RESPONSES; PHOTOSYNTHESIS; TRANSCRIPTOME; ACCUMULATION; METABOLISM; RESISTANCE; SYSTEM; GROWTH; MAIZE;
D O I
10.1016/j.agwat.2024.108797
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Drought stress is a major abiotic stress that poses serious threats to the yield and quality of rapeseed. Understanding the mechanisms underlying the drought tolerance of rapeseed is of great importance for the breeding of drought-resistant rapeseed varieties. Here, we compared the phenotypic characteristics, photosynthetic physiology, specific metabolites and related metabolic pathways between the drought-tolerant genotype (Q2) and drought-sensitive genotype (Q8) of rapeseed under drought stress using gas chromatography and liquid chromatography-mass spectrometry. The results indicated that drought stress decreased the total biomass and photosynthesis of both genotypes, particularly those of Q8, and the reduction was substantially lower in the root surface area, root volume and root diameter of Q2 than in those of Q8 under drought stress. The adverse effect on Q2 could be improved by increasing the specific leaf area, root length, and non-photochemical quenching. Furthermore, four metabolic pathways (galactose metabolism, TCA cycle, aminoacyl-tRNA biosynthesis as well as nicotinate and nicotinamide metabolisms) were greatly activated in Q2 compared with those in Q8 under drought stress. Metabolic profiling revealed 17 differential metabolites between the two genotypes, including carbohydrates, amino acids and organic acids and the increase in tagatose was accompanied by the accumulation of fumaric acid in the roots of Q2 under drought stress. The drought resistance of Q2 could be attributed to the accumulation of more metabolites, such as galactose, tagatose, glycerone and fumaric acid. Our results provide valuable insights into the growth characteristics, physiological changes and metabolic regulation mechanism of rapeseed under drought stress as well as a theoretical basis for the breeding of drought-resistant rapeseed varieties.
引用
收藏
页数:18
相关论文
共 72 条
[11]   Cowpea (Vigna unguiculata L. Walp.) Metabolomics: Osmoprotection as a Physiological Strategy for Drought Stress Resistance and Improved Yield [J].
Goufo, Piebiep ;
Moutinho-Pereira, Jose M. ;
Jorge, Tiago F. ;
Correia, Carlos M. ;
Oliveira, Manuela R. ;
Rosa, Eduardo A. S. ;
Antonio, Carla ;
Trindade, Henrique .
FRONTIERS IN PLANT SCIENCE, 2017, 8
[12]   Metabolomic Profiling of Drought-Tolerant and Susceptible Peanut (Arachis hypogaea L.) Genotypes in Response to Drought Stress [J].
Gundaraniya, Srutiben A. ;
Ambalam, Padma S. ;
Tomar, Rukam S. .
ACS OMEGA, 2020, 5 (48) :31209-31219
[13]   Transcription-associated metabolomic adjustments in maize occur during combined drought and cold stress [J].
Guo, Qianqian ;
Li, Xia ;
Li Niu ;
Jameson, Paula E. ;
Zhou, Wenbin .
PLANT PHYSIOLOGY, 2021, 186 (01) :677-695
[14]   Metabolic responses to drought stress in the tissues of drought-tolerant and drought-sensitive wheat genotype seedlings [J].
Guo, Rui ;
Shi, LianXuan ;
Jiao, Yang ;
Li, MingXia ;
Zhong, Xiuli ;
Gu, FengXue ;
Liu, Qi ;
Xia, Xu ;
Li, Haoru .
AOB PLANTS, 2018, 10 (02)
[15]   The physiology of plant responses to drought [J].
Gupta, Aditi ;
Rico-Medina, Andres ;
Cano-Delgado, Ana I. .
SCIENCE, 2020, 368 (6488) :266-269
[16]   Transcriptome and metabolome profiling of interspecific CSSLs reveals general and specific mechanisms of drought resistance in cotton [J].
Han, Bei ;
Wang, Fengjiao ;
Liu, Zhilin ;
Chen, Lin ;
Yue, Dandan ;
Sun, Weinan ;
Lin, Zhongxu ;
Zhang, Xianlong ;
Zhou, Xiaofeng ;
Yang, Xiyan .
THEORETICAL AND APPLIED GENETICS, 2022, 135 (10) :3375-3391
[17]   Drought stress drives sex-specific differences in plant resistance against herbivores between male and female poplars through changes in transcriptional and metabolic profiles [J].
He, Fang ;
Wu, Zhengqin ;
Zhao, Zhengbao ;
Chen, Gang ;
Wang, Xuegui ;
Cui, Xinglei ;
Zhu, Tianhui ;
Chen, Lianghua ;
Yang, Peng ;
Bi, Lingfeng ;
Lin, Tiantian .
SCIENCE OF THE TOTAL ENVIRONMENT, 2022, 845
[18]   Transcriptome and metabolome analysis reveals regulatory networks and key genes controlling barley malting quality in responses to drought stress [J].
Hong, Ye ;
Ni, Sheng-Jing ;
Zhang, Guo-Ping .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2020, 152 :1-11
[19]   The effects of high temperature, drought, and their combined stresses on the photosynthesis and senescence of summer maize [J].
Hu, Juan ;
Zhao, Xinyu ;
Gu, Liming ;
Liu, Peng ;
Zhao, Bin ;
Zhang, Jiwang ;
Ren, Baizhao .
AGRICULTURAL WATER MANAGEMENT, 2023, 289
[20]   Exogenous Melatonin Alleviates Oxidative Damages and Protects Photosystem II in Maize Seedlings Under Drought Stress [J].
Huang, Bo ;
Chen, Yang-Er ;
Zhao, Yu-Qing ;
Ding, Chun-Bang ;
Liao, Jin-Qiu ;
Hu, Chao ;
Zhou, Li-Jun ;
Zhang, Zhong-Wei ;
Yuan, Shu ;
Yuan, Ming .
FRONTIERS IN PLANT SCIENCE, 2019, 10