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Formation off Metallic Copper Nanoparticles at the Soil-Root Interface

机译:在土壤-根部界面处形成金属铜纳米颗粒

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Copper is an essential element in the cellular electron-transport chain, but as a free ion it can catalyze production of damaging radicals. Thus, all life forms attempt to prevent copper toxicity. Plants diminish excess copper in two structural regions: rare hyperaccumulators bind cationic copper to organic ligands in subaerial tissues, whereas widespread metal-tolerant plants segregate copper dominantly in roots by mechanisms thought to be analogous. Here we show using synchrotron microanalyses that common wetlands plants Phragmites australis and Iris pseudoacorus can transform copper into metallic nanoparticles in and near roots with evidence of assistance by endomycorrhizal fungi when grown in contaminated soil in the natural environment. Biomolecular responses to oxidative stress, similarto reactions used to abiotically synthesize Cu~0 nanostructures of controlled size and shape, likely cause the transformation. This newly identified mode of copper biomineralization by plant roots under copper stress may be common in oxygenated environments.
机译:铜是细胞电子传输链中必不可少的元素,但作为自由离子,它可以催化有害自由基的产生。因此,所有生命形式都试图防止铜的毒性。植物会减少两个结构区域中的过量铜:稀有的超富集物质将阳离子铜与空中组织中的有机配体结合,而广泛的金属耐受性植物则通过被认为是相似的机制在根部主要分离铜。在这里,我们使用同步加速器显微分析显示,常见的湿地植物芦苇和鸢尾鸢尾可以在自然环境中被污染的土壤中生长时,将铜转化为根内及根附近的金属纳米颗粒,并有内生菌根真菌的帮助。对氧化应激的生物分子反应,类似于用于非生物合成尺寸和形状受控的Cu〜0纳米结构的反应,很可能引起转化。这种新近确定的在铜胁迫下植物根部生物铜矿化的模式在含氧环境中可能很常见。

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