Page 27 - Plant-Based Remediation Processes
P. 27
14 S. Chatterjee et al.
Anderson TA, Kruger EL, Coats JR (1994) Enhanced degradation of a mixture of three herbicides
in the rhizosphere of an herbicide-tolerant plant. Chemosphere 28:1551–1557
Azadpour A, Matthews JE (1996) Remediation of metal-contaminated sites using plants. Remedi-
ation 6:1–18
Banuelos G, Terry N, Leduc DL, Pilon Smits EA, Mackey B (2005) Field trial of transgenic
Indian mustard plants shows enhanced phytoremediation of selenium contaminated sediment.
Environ Sci Technol 39:1771–1777
Bennett LE, Burkhead JL, Hale KL, Terry N, Pilon M, Pilon-Smits EA (2003) Analysis of
transgenic Indian mustard plants for phytoremediation of metal contaminated mine tailings.
J Environ Qual 32:432–440
Bhargava A, Carmona F, Bhargava M, Srivastava S (2012) Approaches for enhanced
phytoextraction of heavy metals. J Environ Manage 105:103–120
Bizily SP, Rugh CL, Meagher RB (2000) Phytodetoxification of hazardous organomercurials by
genetically engineered plants. Nat Biotechnol 18:213–217
Bizily SP, Kim T, Kandasamy MK, Meagher RB (2003) Subcellular targeting of methyl Hg lyase
enhances its specific activity for organic Hg detoxification in plants. Plant Physiol 131: 463–471
Boyajian GE, Carreira LH (1997) Phytoremediation: a clean transition from laboratory to market-
place? Nat Biotechnol 15:127–128
Brooks RR, Robinson BH (1998) Aquatic phytoremediation by accumulator plants. In: Brooks RR
(ed) Plants that hyperaccumulate heavy metals: their role in archaeology, microbiology,
mineral exploration, phytomining and phytoremediation. CAB International, Wallingford
Brunner I, Lustera J, Gunthardt-Goerga MS, Frey B (2008) Heavy metal accumulation and
phytostabilisation potential of tree fine roots in a contaminated soil. Environ Pollut 152: 559–568
Carreira LH, Wolfe NL (1996) Isolation of a sediment nitroreductase, antibody production, and
identification of possible plant sources. Presented at IBC international symposium
phytomedicine, Arington, VA
Chaney RL, Angle JS, McIntosh MS, Reeves RD, Li YM, Brewer EP (2005) Using
hyperaccumulator plants to phytoextract soil Ni and Cd. Z Naturforsch C 60:190–198
Clemens S, Palmgren MG, Kraemer U (2002) A long way ahead: understanding and engineering
plant metal accumulation. Trends Plant Sci 7:309–315
Cooney CM (1996) News: Sunflowers remove radionuclides from water on ongoing
phytoremediation field tests. Environ Sci Technol 30:194A
Cotter-Howells JD, Capom S (1996) Remediation of contaminated land by formation of heavy
metal phosphates. Appl Geochem 11:335–342
Cunningham SD, Anderson TA, Schwab P, Hsu FC (1996) Phytoremediation of soils
contaminated with organic pollutants. Adv Agron 56:55–114
Czako M, Feng X, He Y, Liang D, Marton L (2006) Transgenic Spartina alterniflora for
phytoremediation. Environ Geochem Health 28:103–110
Dec J, Bollag JM (1994) Use of plant material for the decontamination of water polluted with
phenols. Biotechnol Bioeng 44:1132–1139
Deng D, Deng J, Li J, Zhang J, Hu M, Lin Z (2008) Accumulation of zinc, cadmium, and lead in
four populations of Sedum alfredii growing on lead/zinc mine spoils. J Integr Plant Biol 50:
691–698
Dhankher OP, Li Y, Rosen BP, Shi J, Salt D, Senecoff JF (2002) Engineering tolerance and
hyperaccumulation of arsenic in plants by combining arsenate reductase and γ- glutamylcysteine
synthetase expression. Nat Biotechnol 20:1140–1145
Doty SL (2008) Enhancing phytoremediation through the use of transgenic and endophytes.
New Phytol 179:318–333
Doty S, Shang Q, Wilson A, Moore A, Newman L, Strand S, Gordon M (2000) Enhanced
metabolism of halogenated hydrocarbons in transgenic plants contain mammalian P450 2E1.
Proc Nat Acad Sci USA 97:6287–6291
Duran N, Esposito E (2002) Potential applications of oxidative enzymes and phenoloxidase-like
compounds in wastewater and soil treatment: a review. App Catal B Environ 28:83–99