Comprehensive dissection of primary metabolites in response to diverse abiotic stress in barley at seedling stage

非生物胁迫 非生物成分 脯氨酸 代谢物 生物 代谢组学 营养物 渗透性休克 初级代谢物 盐度 植物 苗木 食品科学 生物化学 化学 氨基酸 生态学 生物信息学 基因
作者
Huifang Zhao,Shengjing Ni,Shengguan Cai,Guoping Zhang
出处
期刊:Plant Physiology and Biochemistry [Elsevier]
卷期号:161: 54-64 被引量:46
标识
DOI:10.1016/j.plaphy.2021.01.048
摘要

Plants will meet various abiotic stresses during their growth and development. One of the important strategies for plants to deal with the stress is involved in metabolic regulation, causing the dramatic changes of metabolite profiles. Metabolomic studies have been intensively conducted to reveal the responses of plants to abiotic stress, but most of them were limited to one or at most two abiotic stresses in a single experiment. In this study, we compared the metabolite profiles of barley seedlings exposed to seven abiotic stresses, including drought, salt stress, aluminum (Al), cadmium (Cd), deficiency of nitrogen (N), phosphorus (P) and potassium (K). The results showed that metabolite profiles of barley under these stresses could be classified into three groups: osmotic stresses (drought and salt); metal stresses (Al and Cd) and nutrient deficiencies (N, P and K deficiencies). Compared with the control, some metabolites (including polyamines, raffinose and pipecolic acid) in plants exposed to all abiotic stresses changed significantly, while some other metabolites showed the specific change only under a certain abiotic stress, such as proline being largely increased by osmotic stress (drought and salinity), the P-containing metabolites being largely decreased under P deficiency, some amino acids (lysine, tyrosine, threonine, ornithine, glutamine and so on) showing the dramatic reduction in the plants exposed to N deficiencies, respectively. The current meta-analysis obtained a comprehensive view on the metabolic responses to various abiotic stress, and improved the understanding of the mechanisms for tolerance of barley to abiotic stress.
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