首页> 外文期刊>Environmental Pollution >Ralstonia eutropha Q2-8 reduces wheat plant above-ground tissue cadmium and arsenic uptake and increases the expression of the plant root cell wall organization and biosynthesis-related proteins
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Ralstonia eutropha Q2-8 reduces wheat plant above-ground tissue cadmium and arsenic uptake and increases the expression of the plant root cell wall organization and biosynthesis-related proteins

机译:Ralstonia eutropha Q2-8减少小麦植物地上组织镉和砷的吸收,并增加植物根细胞壁组织和生物合成相关蛋白的表达

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摘要

In this study, the molecular mechanisms involved in Ralstonia eutropha Q2-8-induced increased biomass and reduced cadmium (Cd) and arsenic (As) uptake in wheat plants (Triticum aestivum cv. Yangmai 16) were investigated in growth chambers. Strain Q2-8 significantly increased plant biomass (22-75%) without and with Cd (5 mu M) + As (10 mu M) stress and reduced plant above-ground tissue Cd (37%) and As (34%) contents compared to those in the controls. Strain Q2-8 significantly increased the proportions of Cd and As in wheat root cell walls. Under Cd and As stress,109 root proteins were differentially expressed among which those involved in metabolisms, stress and defence, and energy were dominant in the presence of strain Q2-8. Furthermore, energy-, defence-, and cell wall biosynthesis-related proteins were found to be up-regulated. Notably, differentially expressed cell wall biosynthesis-related proteins in roots were only found in bacteria-inoculated plants under Cd and As stress. The results suggest that strain Q28 can alleviate Cd and As toxicity to wheat plant seedlings and reduce above-ground tissue Cd and As uptake by increasing the efficiency of root energy metabolism, defence, and cell wall biosynthesis under Cd and As stress. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在这项研究中,在生长室中研究了富营养小球藻(Ralstonia eutropha Q2-8)诱导小麦植物(Triticum aestivum cv。Yangmai 16)中生物量增加以及镉(Cd)和砷(As)吸收减少的分子机制。 Q2-8菌株在无和有Cd(5μM)+ As(10μM)胁迫的情况下显着增加了植物生物量(22-75%),并降低了植物地上组织Cd(37%)和As(34%)的含量与对照组相比。 Q2-8菌株显着增加了小麦根细胞壁中Cd和As的比例。在镉和砷胁迫下,109个根蛋白差异表达,其中Q2-8菌株在代谢,胁迫,防御和能量中占主导地位。此外,发现能量,防御和细胞壁生物合成相关蛋白被上调。值得注意的是,仅在Cd和As胁迫下接种细菌的植物中才发现根中差异表达的细胞壁生物合成相关蛋白。结果表明,Q28菌株通过提高Cd和As胁迫下根系能量代谢,防御和细胞壁生物合成的效率,可以减轻Cd和As对小麦幼苗的毒性,并减少地上组织对Cd和As的吸收。 (C)2018 Elsevier Ltd.保留所有权利。

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