SHORT COMMUNICATION

Cleaning up of heavy metals-polluted water by a terrestrial hyperaccumulator Sedum alfredii Hance

  • Boxia CHEN ,
  • Wenli AI ,
  • Huan GONG ,
  • Xiang GAO ,
  • Baosheng QIU
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  • Hubei Key Laboratory of Genetic Regulation and Integrative Biology, College of Life Sciences, Central China Normal University, Wuhan 430079, China

Received date: 24 Apr 2013

Accepted date: 08 Jul 2013

Published date: 01 Dec 2013

Copyright

2014 Higher Education Press and Springer-Verlag Berlin Heidelberg

Abstract

Sedum alfredii Hance is a terrestrial zinc/cadmium (Zn/Cd)-hyperaccumulating and lead (Pb)-accumulating plant. Previous studies on S. alfredii were mostly focused on its physiological mechanism of heavy metal uptake and the application in phytoextraction of metals from contaminated soils. In this study, we evaluated the application potential of S. alfredii in the cleanup of heavy metals from contaminated lake water. Our research revealed that changing pH in lake water would not make particular difference on the final accumulation amount of heavy metals, because the acidic water environment negatively affected plant growth compared with the neutral and alkaline environments, but was more conducive for heavy metal absorption and accumulation. In addition, S. alfredii showed an increase of approximately 2.2-fold in dry weight (DW) when cultured with lake water for 25 d. At the same time, it accumulated approximately 5.0 mg/kg DW of Cd and 41.4 mg/kg DW of Pb. The absorption of heavy metals was highly effective during the first 10 d of culture. Also, the quality of lake water was greatly improved after only 2-d cleanup by S. alfredii. In general, this hyperaccumulator exhibits great potential for application in the cleanup of heavy metals-polluted waters.

Cite this article

Boxia CHEN , Wenli AI , Huan GONG , Xiang GAO , Baosheng QIU . Cleaning up of heavy metals-polluted water by a terrestrial hyperaccumulator Sedum alfredii Hance[J]. Frontiers in Biology, 2013 , 8(6) : 599 -605 . DOI: 10.1007/s11515-013-1274-y

Acknowledgements

This work was supported by Wuhan Chenguang Project for Youth Scholar (Nos. 201150431110 and 20045006071-24) and the Natural Science Foundation of Hubei Province (No. 2008CDB073).
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