for environmental safety. Arch Environ Contam Toxicol. https://doi.org/10.1007/s00244-0170490-x
Bharagava RN, Saxena G, Chowdhary P (2017b) Constructed wetlands: An emerging
phytotechnology for degradation and detoxification of industrial wastewaters. In: Bharagava
RN (ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press/
Taylor & Francis, San Diego, pp 397–426. https://doi.org/10.1201/9781315173351-15
Bharagava RN, Chowdhary P, Saxena G (2017c) Bioremediation: An ecosustainable green technology: Its applications and limitations. In: Bharagava RN (ed) Environmental pollutants and
their bioremediation approaches, 1st edn. CRC Press/Taylor & Francis Group, Boca Raton, pp
1–22. https://doi.org/10.1201/9781315173351-2
Bharagava RN, Purchase D, Saxena G, Mulla SI (2018) Applications of metagenomics in microbial
bioremediation of pollutants: From genomics to environmental cleanup. In: Das S, Dash H (eds)
Microbial diversity in the genomic era, 1st edn. Academic Press/Elsevier, San Diego. https://doi.
org/10.1016/B978-0-12-814849-5.00026-5
Bharagava RN, Saxena G, Mulla SI (2019) Introduction to industrial wastes containing organic and
inorganic pollutants and bioremediation approaches for environmental management. In: Saxena
G, Bharagava RN (eds) Bioremediation of industrial waste for environmental safety: volume I:
industrial waste and its management. Springer Nature, Singapore. https://doi.org/10.1007/978981-13-1891-7_1
Bhuiyan MSU, Min SR, Jeong WJ, Sultana S, Choi KS, Song WY, Lee Y, Lim TP, Liu JR (2011)
Overexpression of a yeast cadmium factor 1 (YCF1) enhances heavy metal tolerance and
accumulation in Brassica juncea. Plant Cell Tissue Organ Cult 105:85–91
Brim H, McFarlan SC, Fredrickson JK, Minton KW, Zhai M, Wackett LP, Daly MJ (2000)
Engineering Deinococcus radiodurans for metal remediation in radioactive mixed waste environments. Nat Biotechnol 18:85–90
Burken JG, Schnoor JL (1998) Uptake and fate of organic contaminants by hybrid poplar trees.
Abstracts of Papers of the American Chemical Society 213, 106-ENVR
Chandra R, Saxena G, Kumar V (2015) Phytoremediation of environmental pollutants: an
eco-sustainable green technology to environmental management. In: Chandra R
(ed) Advances in biodegradation and bioremediation of industrial waste, 1st edn. CRC Press/
Taylor & Francis, San Diego, pp 1–30. https://doi.org/10.1201/b18218-2
Cherian S, Oliveira MM (2005) Transgenic plants in phytoremediation: recent advances and new
possibilities. Environ Sci Technol 39:9377–9390
de Araujo BS, Charlwood BV, Pletsch M (2002) Tolerance and metabolism of phenol and
chloroderivatives by hairy root cultures of Daucus carota L. Environ Pollut 117:329–335
Deng X, Wilson DB (2001) Bioaccumulation of mercury from wastewater by genetically
engineered Escherichia coli. Appl Microbiol Biotechnol 56:276–279
Deng X, Li QB, Lu YH, Sun DH, Huang YL, Chen XR (2003) Bioaccumulation of nickel from
aqueous solutions by genetically engineered Escherichia coli. Water Res 37:2505–2511
Deng X, Li QB, Lu YH, Sun DH, He N (2005) Genetic engineering of Escherichia coli SE5000 and
its potential for Ni2+ bioremediation. Process Biochem 40:425–430
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
Dixit P, Singh S, Vanchesswaran R, Patnala K, Eapen S (2010) Expression of a Neurospora crassa
zinc transporter gene in transgenic Nicotiana tabacum enhances plant zinc accumulation
without co-transport of cadmium. Plant Cell Environ 35(10):1696–1707
Doty SL (2008) Enhancing phytoremediation through the use of transgenics and endophytes. New
Phytol 179:318–333
Doty SL, Shang QT, Wilson AM, Moore AL, Newman LA, Strand SE, Gordon MP (2000)
Enhanced metabolism of halogenated hydrocarbons in transgenic plants contain mammalian
P450 2E1. Proc Natal Acad Sci USA 97:6287–6629
1 Genetically Modified Organisms (GMOs) and Their Potential in. . .
13
Bharagava RN, Saxena G, Chowdhary P (2017b) Constructed wetlands: An emerging
phytotechnology for degradation and detoxification of industrial wastewaters. In: Bharagava
RN (ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press/
Taylor & Francis, San Diego, pp 397–426. https://doi.org/10.1201/9781315173351-15
Bharagava RN, Chowdhary P, Saxena G (2017c) Bioremediation: An ecosustainable green technology: Its applications and limitations. In: Bharagava RN (ed) Environmental pollutants and
their bioremediation approaches, 1st edn. CRC Press/Taylor & Francis Group, Boca Raton, pp
1–22. https://doi.org/10.1201/9781315173351-2
Bharagava RN, Purchase D, Saxena G, Mulla SI (2018) Applications of metagenomics in microbial
bioremediation of pollutants: From genomics to environmental cleanup. In: Das S, Dash H (eds)
Microbial diversity in the genomic era, 1st edn. Academic Press/Elsevier, San Diego. https://doi.
org/10.1016/B978-0-12-814849-5.00026-5
Bharagava RN, Saxena G, Mulla SI (2019) Introduction to industrial wastes containing organic and
inorganic pollutants and bioremediation approaches for environmental management. In: Saxena
G, Bharagava RN (eds) Bioremediation of industrial waste for environmental safety: volume I:
industrial waste and its management. Springer Nature, Singapore. https://doi.org/10.1007/978981-13-1891-7_1
Bhuiyan MSU, Min SR, Jeong WJ, Sultana S, Choi KS, Song WY, Lee Y, Lim TP, Liu JR (2011)
Overexpression of a yeast cadmium factor 1 (YCF1) enhances heavy metal tolerance and
accumulation in Brassica juncea. Plant Cell Tissue Organ Cult 105:85–91
Brim H, McFarlan SC, Fredrickson JK, Minton KW, Zhai M, Wackett LP, Daly MJ (2000)
Engineering Deinococcus radiodurans for metal remediation in radioactive mixed waste environments. Nat Biotechnol 18:85–90
Burken JG, Schnoor JL (1998) Uptake and fate of organic contaminants by hybrid poplar trees.
Abstracts of Papers of the American Chemical Society 213, 106-ENVR
Chandra R, Saxena G, Kumar V (2015) Phytoremediation of environmental pollutants: an
eco-sustainable green technology to environmental management. In: Chandra R
(ed) Advances in biodegradation and bioremediation of industrial waste, 1st edn. CRC Press/
Taylor & Francis, San Diego, pp 1–30. https://doi.org/10.1201/b18218-2
Cherian S, Oliveira MM (2005) Transgenic plants in phytoremediation: recent advances and new
possibilities. Environ Sci Technol 39:9377–9390
de Araujo BS, Charlwood BV, Pletsch M (2002) Tolerance and metabolism of phenol and
chloroderivatives by hairy root cultures of Daucus carota L. Environ Pollut 117:329–335
Deng X, Wilson DB (2001) Bioaccumulation of mercury from wastewater by genetically
engineered Escherichia coli. Appl Microbiol Biotechnol 56:276–279
Deng X, Li QB, Lu YH, Sun DH, Huang YL, Chen XR (2003) Bioaccumulation of nickel from
aqueous solutions by genetically engineered Escherichia coli. Water Res 37:2505–2511
Deng X, Li QB, Lu YH, Sun DH, He N (2005) Genetic engineering of Escherichia coli SE5000 and
its potential for Ni2+ bioremediation. Process Biochem 40:425–430
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
Dixit P, Singh S, Vanchesswaran R, Patnala K, Eapen S (2010) Expression of a Neurospora crassa
zinc transporter gene in transgenic Nicotiana tabacum enhances plant zinc accumulation
without co-transport of cadmium. Plant Cell Environ 35(10):1696–1707
Doty SL (2008) Enhancing phytoremediation through the use of transgenics and endophytes. New
Phytol 179:318–333
Doty SL, Shang QT, Wilson AM, Moore AL, Newman LA, Strand SE, Gordon MP (2000)
Enhanced metabolism of halogenated hydrocarbons in transgenic plants contain mammalian
P450 2E1. Proc Natal Acad Sci USA 97:6287–6629
1 Genetically Modified Organisms (GMOs) and Their Potential in. . .
13
