Transgenic plants in phytoremediation: Recent advances and new possibilities

被引:200
作者
Cherian, S
Oliveira, MM
机构
[1] Inst Tecnoll Quim & Biol, Dept Bioquim Vegetal, P-2781901 Oeiras, Portugal
[2] Univ Lisbon, Fac Ciencias, Dept Biol Vegetal, P-1749016 Lisbon, Portugal
关键词
D O I
10.1021/es051134l
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Phytoremediation, the use of plants and their associated microbes to remedy contaminated soils, sediments, and groundwater, is emerging as a cost-effective and environmentally friendly technology. Due in large part to its aesthetic appeal, this technology has gained increasing attention over the past 10 years. Phytoremediation uses different plant processes and mechanisms normally involved in the accumulation, complexation, volatilization, and degradation of organic and inorganic pollutants. Certain plants, called hyperaccumulators, are good candidates in phytoremediation, particularly for the removal of heavy metals. Phytoremediation efficiency of plants can be substantially improved using genetic engineering technologies. Recent research results, including overexpression of genes whose protein products are involved in metal uptake, transport, and sequestration, or act as enzymes involved in the degradation of hazardous organics, have opened up new possibilities in phytoremediation. This paper provides a critical review of the recent progress made toward the development of transgenic plants with improved phytoremediation capabilities and their potential use in environmental cleanup.
引用
收藏
页码:9377 / 9390
页数:14
相关论文
共 136 条
[11]   Analysis of transgenic Indian mustard plants for phytoremediation of metal-contaminated mine tailings [J].
Bennett, LE ;
Burkhead, JL ;
Hale, KL ;
Terry, N ;
Pilon, M ;
Pilon-Smits, EAH .
JOURNAL OF ENVIRONMENTAL QUALITY, 2003, 32 (02) :432-440
[12]  
Berti WR, 2000, PHYTOREMEDIATION OF TOXIC METALS, P71
[13]   Ability of transgenic poplars with elevated glutathione content to tolerate zinc(2+) stress [J].
Bittsánszky, A ;
Kömives, T ;
Gullner, G ;
Gyulai, G ;
Kiss, J ;
Heszky, L ;
Radimszky, L ;
Rennenberg, H .
ENVIRONMENT INTERNATIONAL, 2005, 31 (02) :251-254
[14]   Phytoremediation of methylmercury pollution:: merB expression in Arabidopsis thaliana confers resistance to organomercurials [J].
Bizily, SP ;
Rugh, CL ;
Summers, AO ;
Meagher, RB .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (12) :6808-6813
[15]   Subcellular targeting of methylmercury lyase enhances its specific activity for organic mercury detoxification in plants [J].
Bizily, SP ;
Kim, T ;
Kandasamy, MK ;
Meagher, RB .
PLANT PHYSIOLOGY, 2003, 131 (02) :463-471
[16]   Phytodetoxification of hazardous organomercurials by genetically engineered plants [J].
Bizily, SP ;
Rugh, CL ;
Meagher, RB .
NATURE BIOTECHNOLOGY, 2000, 18 (02) :213-217
[17]   Biotransformation of atrazine in transgenic tobacco cell culture expressing human P450 [J].
Bode, M ;
Stöbe, P ;
Thiede, B ;
Schuphan, I ;
Schmidt, B .
PEST MANAGEMENT SCIENCE, 2004, 60 (01) :49-58
[18]   Cadmium tolerance and antioxidative defenses in hairy roots of the cadmium hyperaccumulator, Thlaspi caerulescens [J].
Boominathan, R ;
Doran, PM .
BIOTECHNOLOGY AND BIOENGINEERING, 2003, 83 (02) :158-167
[19]   RELATIONSHIPS BETWEEN LIPOPHILICITY AND ROOT UPTAKE AND TRANSLOCATION OF NON-IONIZED CHEMICALS BY BARLEY [J].
BRIGGS, GG ;
BROMILOW, RH ;
EVANS, AA .
PESTICIDE SCIENCE, 1982, 13 (05) :495-504
[20]   PHYTOREMEDIATION POTENTIAL OF THLASPI-CAERULESCENS AND BLADDER CAMPION FOR ZINC-CONTAMINATED AND CADMIUM-CONTAMINATED SOIL [J].
BROWN, SL ;
CHANEY, RL ;
ANGLE, JS ;
BAKER, AJM .
JOURNAL OF ENVIRONMENTAL QUALITY, 1994, 23 (06) :1151-1157