首页> 外文期刊>Applied and Environmental Microbiology >Rhizosphere Microbial Community Composition Affects Cadmium and Zinc Uptake by the Metal-Hyperaccumulating Plant Arabidopsis halleri
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Rhizosphere Microbial Community Composition Affects Cadmium and Zinc Uptake by the Metal-Hyperaccumulating Plant Arabidopsis halleri

机译:根际微生物群落组成影响金属富集植物拟南芥对镉和锌的吸收。

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The remediation of metal-contaminated soils by phytoextraction depends on plant growth and plant metal accessibility. Soil microorganisms can affect the accumulation of metals by plants either by directly or indirectly stimulating plant growth and activity or by (im)mobilizing and/or complexing metals. Understanding the intricate interplay of metal-accumulating plants with their rhizosphere microbiome is an important step toward the application and optimization of phytoremediation. We compared the effects of a “native” and a strongly disturbed (gamma-irradiated) soil microbial communities on cadmium and zinc accumulation by the plant Arabidopsis halleri in soil microcosm experiments. A. halleri accumulated 100% more cadmium and 15% more zinc when grown on the untreated than on the gamma-irradiated soil. Gamma irradiation affected neither plant growth nor the 1 M HCl-extractable metal content of the soil. However, it strongly altered the soil microbial community composition and overall cell numbers. Pyrosequencing of 16S rRNA gene amplicons of DNA extracted from rhizosphere samples of A. halleri identified microbial taxa (Lysobacter, Streptomyces, Agromyces, Nitrospira, “Candidatus Chloracidobacterium”) of higher relative sequence abundance in the rhizospheres of A. halleri plants grown on untreated than on gamma-irradiated soil, leading to hypotheses on their potential effect on plant metal uptake. However, further experimental evidence is required, and wherefore we discuss different mechanisms of interaction of A. halleri with its rhizosphere microbiome that might have directly or indirectly affected plant metal accumulation. Deciphering the complex interactions between A. halleri and individual microbial taxa will help to further develop soil metal phytoextraction as an efficient and sustainable remediation strategy.
机译:通过植物提取对金属污染土壤的修复取决于植物的生长和植物金属的可及性。土壤微生物可通过直接或间接刺激植物的生长和活性或通过(不)动员和/或络合金属来影响植物中金属的积累。了解金属积累植物与其根际微生物组之间的复杂相互作用是迈向应用和优化植物修复的重要一步。我们在土壤微观实验中比较了植物原生拟南芥对“原生”和强烈干扰(γ辐照)土壤微生物群落对镉和锌积累的影响。与未经γ-射线辐照的土壤相比,在未经处理的土壤中生长的哈雷氏菌积累的镉多100%,锌多15%。伽马射线辐射既不影响植物生长,也不影响土壤中1 M HCl可提取的金属含量。但是,它极大地改变了土壤微生物群落组成和总细胞数。从H. Halleri的根际样品中提取的DNA的16S rRNA基因扩增子的焦磷酸测序确定了未经处理的H. Halleri植物的根际中相对序列丰度较高的微生物类群(Lysobacter,链霉菌,农杆菌,Nitrospira,“ Candidatus Chloracidobacterium”)。在γ射线照射的土壤上,可能导致它们对植物金属吸收的潜在影响。但是,还需要进一步的实验证据,因此,我们讨论了A. halleri与它的根际微生物组相互作用的不同机制,这可能直接或间接地影响了植物金属的积累。了解哈雷菌与单个微生物分类群之间的复杂相互作用,将有助于进一步发展土壤金属植物提取物,将其作为一种有效且可持续的修复策略。

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