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超富集植物蜈蚣草和非超富集植物凤尾蕨对砷的根系吸收、转运及耐受性比较

Comparison of root absorption, translocation and tolerance of arsenic in the hyperaccumulator Pteris vittata and the nonhyperaccumulator Pteris tremula.

作者信息

Caille N, Zhao F J, McGrath S P

机构信息

Agriculture and Environment Division, Rothamsted Research, Harpenden, Hertfordshire AL5 2JQ, UK.

出版信息

New Phytol. 2005 Mar;165(3):755-61. doi: 10.1111/j.1469-8137.2004.01239.x.

DOI:10.1111/j.1469-8137.2004.01239.x
PMID:15720686
Abstract
  • Several fern species can hyperaccumulate arsenic, although the mechanisms are not fully understood. Here we investigate the roles of root absorption, translocation and tolerance in As hyperaccumulation by comparing the hyperaccumulator Pteris vittata and the nonhyperaccumulator Pteris tremula. * The two species were grown in a pot experiment with 0-500 mg As kg-1 added as arsenate, and in a short-term (8 h) uptake experiment with 5 microM arsenate under phosphorus-sufficient conditions. * In the pot experiment, P. vittata accumulated up to 2500 mg As kg-1 frond d. wt and suffered no phytotoxicity. P. tremula accumulated<100 mg As kg-1 frond d. wt and suffered severe phytotoxicity with additions of >or=25 mg As kg-1. In the short-term uptake experiment, P. vittata had a 2.2-fold higher rate of arsenate uptake than P. tremula, and distributed more As taken up to the fronds (76%) than did P. tremula (9%). * Our results show that enhanced root uptake, efficient root-to-shoot translocation, and a much elevated tolerance through internal detoxification all contribute to As hyperaccumulation in P. vittata.
摘要

几种蕨类植物能够超积累砷,尽管其机制尚未完全明确。在此,我们通过比较超积累植物蜈蚣草和非超积累植物华东凤尾蕨,研究根系吸收、转运及耐受性在砷超积累过程中的作用。这两种植物进行了盆栽试验,添加0至500毫克/千克的砷酸盐,同时在磷充足的条件下进行了为期8小时的5微摩尔砷酸盐短期吸收试验。在盆栽试验中,蜈蚣草每克叶干重积累高达2500毫克砷且未遭受任何植物毒性。华东凤尾蕨每克叶干重积累的砷小于100毫克,添加25毫克/千克及以上的砷时会遭受严重的植物毒性。在短期吸收试验中,蜈蚣草对砷酸盐的吸收速率比华东凤尾蕨高2.2倍,并且与华东凤尾蕨(9%)相比,蜈蚣草将更多吸收的砷分配到叶片中(76%)。我们的结果表明,根系吸收增强、根到地上部的高效转运以及通过内部解毒实现的更高耐受性,均有助于蜈蚣草对砷的超积累。

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