Literature DB >> 15260342

Phytofiltration of arsenic from drinking water using arsenic-hyperaccumulating ferns.

Jianwei W Huang1, Charissa Y Poynton, Leon V Kochian, Mark P Elless.   

Abstract

Arsenic contamination of drinking water poses serious health risks to millions of people worldwide. Current technologies used to clean arsenic-contaminated water have significant drawbacks, such as high cost and generation of large volumes of toxic waste. In this study, we investigated the potential of using recently identified arsenic-hyperaccumulating ferns to remove arsenic from drinking water. Hydroponically cultivated, two arsenic-hyperaccumulating fern species (Pteris vittata and Pteris cretica cv. Mayii) and a nonaccumulating fern species (Nephrolepis exaltata) were suspended in water containing 73As-labeled arsenic with initial arsenic concentrations ranging from 20 to 500 microg L(-1). The efficiency of arsenic phytofiltration by these fern species was determined by continuously monitoring the depletion of 73As-labeled arsenic concentration in the water. With an initial water arsenic concentration of 200 microg L(-1), P. vittata reduced the arsenic concentration by 98.6% to 2.8 microg L(-1) in 24 h. When the initial water arsenic was 20 microg L(-1), P. vittata reduced the arsenic concentration to 7.2 microg L(-1) in 6 h and to 0.4 microg L(-1) in 24 h. At similar plant ages, both P. vittata and P. cretica had similar arsenic phytofiltration efficiency and were able to rapidly remove arsenic from water to achieve arsenic levels below the new drinking water limit of 10 microg L(-1). However, N. exaltata failed to reduce water arsenic to achieve the limit under the same experimental conditions. The significantly higher efficiency of arsenic phytofiltration by arsenic-hyperaccumulating fern species is associated with their ability to rapidly translocate absorbed arsenic from roots to shoots. The nonaccumulating fern N. exaltata was unable to translocate the absorbed arsenic to the shoots. Our results demonstrate that the arsenic-phytofiltration technique may provide the basis for a solar-powered hydroponic technique that enables small-scale cleanup of arsenic-contaminated drinking water.

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Year:  2004        PMID: 15260342     DOI: 10.1021/es0351645

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  5 in total

1.  Arsenic resistance in Pteris vittata L.: identification of a cytosolic triosephosphate isomerase based on cDNA expression cloning in Escherichia coli.

Authors:  Bala Rathinasabapathi; Shan Wu; Sabarinath Sundaram; Jean Rivoal; Mrittunjai Srivastava; Lena Q Ma
Journal:  Plant Mol Biol       Date:  2006-08-29       Impact factor: 4.076

2.  Arsenic speciation in phloem and xylem exudates of castor bean.

Authors:  Wen-Ling Ye; B Alan Wood; Jacqueline L Stroud; P John Andralojc; Andrea Raab; Steve P McGrath; Jörg Feldmann; Fang-Jie Zhao
Journal:  Plant Physiol       Date:  2010-09-24       Impact factor: 8.340

3.  Soil biological attributes in arsenic-contaminated gold mining sites after revegetation.

Authors:  Jessé Valentim Dos Santos; Wesley de Melo Rangel; Amanda Azarias Guimarães; Paula Marcela Duque Jaramillo; Márcia Rufini; Leandro Marciano Marra; Maryeimy Varón López; Michele Aparecida Pereira da Silva; Cláudio Roberto Fonsêca Sousa Soares; Fatima Maria de Souza Moreira
Journal:  Ecotoxicology       Date:  2013-10-11       Impact factor: 2.823

4.  Hyperaccumulation of arsenic by callus, sporophytes and gametophytes of Pteris vittata cultured in vitro.

Authors:  Xuexi Yang; Hui Chen; Wenzhong Xu; Zhenyan He; Mi Ma
Journal:  Plant Cell Rep       Date:  2007-06-23       Impact factor: 4.570

Review 5.  Application of Polypodiopsida Class in Nanotechnology-Potential towards Development of More Effective Bioactive Solutions.

Authors:  Irina Fierascu; Radu Claudiu Fierascu; Camelia Ungureanu; Oana Alexandra Draghiceanu; Liliana Cristina Soare
Journal:  Antioxidants (Basel)       Date:  2021-05-08
  5 in total

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