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Prospecting for hyperaccumulators of trace elements: a review

机译:探寻微量元素的超积累者:回顾

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Specific plant species that can take up and accumulate abnormally high concentrations of elements in their aboveground tissues are referred to as hyperaccumulators. The use of this term is justified in the case of enormous element-binding capacity of plants growing in their natural habitats and showing no toxicity symptoms. An increasing interest in the study of hyperaccumulators results from their potential applications in environmental biotechnology (phytoremediation, phytomining) and their emerging role in nanotechnology. The highest number of plant species with confirmed hyperaccumulative properties has been reported for hyperaccumulators of nickel, cadmium, zinc, manganese, arsenic and selenium. More limited data exist for plants accumulating other elements, including common pollutants (chromium, lead and boron) or elements of commercial value, such as copper, gold and rare earth elements. Different approaches have been used for the study of hyperaccumulators - geobotanical, chemical, biochemical and genetic. The chemical approach is the most important in screening for new hyperaccumulators. This article presents and critically reviews current trends in new hyperaccumulator research, emphasizing analytical methodology that is applied in identification of new hyperaccumulators of trace elements and its future perspectives.
机译:可以在其地上组织中吸收并累积异常高浓度元素的特定植物物种称为超积累物。如果在自然栖息地中生长的植物具有巨大的元素结合能力且没有任何毒性症状,则可以使用该术语。人们对超级蓄能器的研究越来越感兴趣,这是由于它们在环境生物技术(植物修复,植物采矿)中的潜在应用及其在纳米技术中的新兴作用。据报道,镍,镉,锌,锰,砷和硒的高蓄积性植物具有最高的高蓄积性。对于积累其他元素(包括常见污染物(铬,铅和硼)或具有商业价值的元素,例如铜,金和稀土元素)的植物而言,存在的数据更为有限。用于研究超级蓄积物的方法多种多样-地质植物学,化学,生物化学和遗传学。在筛选新的超蓄积剂时,化学方法是最重要的。本文介绍并批判性地回顾了新的超级蓄积剂研究的当前趋势,重点介绍了用于识别微量元素的新型超级蓄积剂的分析方法及其未来前景。

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