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高浓度的酚类和氨基酸赋予大麦(Hordeum vulagare)耐受钴铜复合胁迫的能力。

High accumulation of phenolics and amino acids confers tolerance to the combined stress of cobalt and copper in barley (Hordeum vulagare).

机构信息

Key Laboratory of Crop Germplasm Resource, Department of Agronomy, College of Agriculture and Biotechnology, Zhejiang University, Hangzhou, 310058, PR China; Department of Crops sciences, Faculty of Agronomy, Université de Lubumbashi, PO Box 1825, Lubumbashi, DR, Congo.

Key Laboratory of Crop Germplasm Resource, Department of Agronomy, College of Agriculture and Biotechnology, Zhejiang University, Hangzhou, 310058, PR China.

出版信息

Plant Physiol Biochem. 2020 Oct;155:927-937. doi: 10.1016/j.plaphy.2020.08.038. Epub 2020 Aug 19.

Abstract

Cobalt (Co) and copper (Cu) co-exist in the metal contaminated soils and cause the serious toxicity to crops, while their interactive effect on plant growth and development is still poorly understood. In this work, a hydroponic experiment was carried out to reveal the interactive effect of Co and Cu on photosynthesis and metabolite profiles of two barley genotypes differing in metal tolerance. The results showed that both single and combined treatments of Co and Cu caused a significant reduction in chlorophyll content and photosynthetic rate of the two barley (Hordeum vulgare) genotypes, with the effect being greater for the combined treatment and the sensitive genotype (Ea52) being more affected than the tolerant genotype (Yan66). Compared to Cu or Co treatment alone, the combined treatment significantly increased the levels of phenolic components, including cinnamic derivatives (caffeic, chlorogenic, ferullic, p-coumaric); benzoic derivatives (p-hydroxybenzoic, vanillic, syringic, sallicilic, protocatechuic acid) as well as free amino acids, with Yan66 having more accumulation than Ea52. Meanwhile, under the combined treatment, the phenylalanine ammonialyase-related gene (HvPAL) was highly regulated along with the genes involved in the synthesis of malate (HvMDH) and citrate (HvCSY), with Ya66 showing the higher expression of these genes than Ea52. It can be concluded that higher Cu and Co stress tolerance in Yan66 is attributed to more accumulation of the metabolites including phenolics and amino acids.

摘要

钴(Co)和铜(Cu)共存于金属污染的土壤中,对作物造成严重毒性,而它们对植物生长和发育的相互作用仍知之甚少。在这项工作中,进行了水培实验,以揭示 Co 和 Cu 对两种耐金属性不同的大麦基因型光合作用和代谢物谱的相互作用。结果表明,Co 和 Cu 的单一和组合处理均显著降低了两种大麦(Hordeum vulgare)基因型的叶绿素含量和光合速率,组合处理的效果更大,敏感基因型(Ea52)的影响大于耐受基因型(Yan66)。与单独处理 Cu 或 Co 相比,联合处理显著增加了酚类成分的水平,包括肉桂衍生物(咖啡酸、绿原酸、阿魏酸、对香豆酸);苯甲酸衍生物(对羟基苯甲酸、香草酸、丁香酸、水杨酸、原儿茶酸)以及游离氨基酸,其中 Yan66 的积累量高于 Ea52。同时,在联合处理下,苯丙氨酸氨裂解酶相关基因(HvPAL)与参与苹果酸(HvMDH)和柠檬酸(HvCSY)合成的基因一起被高度调控,与 Ea52 相比,Ya66 这些基因的表达更高。可以得出结论,Yan66 对 Cu 和 Co 胁迫的更高耐受性归因于包括酚类和氨基酸在内的代谢物的更多积累。

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