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Netherlands. Water Res 41(18):4251–4261
Ng JC, Wang JP, Shraim A (2003) A global health problem caused by arsenic from natural sources.
Chemosphere 52:1353–1359
Papoyan A, Piñeros M, Kochian LV (2007) Plant Cd
2+ and Zn
2+ status effects on root and shoot
heavy metal accumulation in Thlaspicaerulescens. New Phytol 175(1):51–58
Peng JF, Song YH, Yuan P, Cui XY, Qiu GL (2009) The remediation of heavy metals contaminated
sediment. J Hazard Mater 161(2–3):633–640
Pilon-Smits EAH, de Souza MP, Hong G, Amini A, Bravo RC (1999) Selenium volatilization and
accumulation by twenty aquatic plant species. J Environ Qual 28:1011–1017
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Punnam area of Karur district, Tamil Nadu, India. J Chem 2:473–478
Raskin I, Ensley BD (eds) (2000) Phytoremediation of toxic metals: using plants to clean up the
environment. Wiley, New York, p 352
Raskin I, Kumar PBAN, Dushenkov S, Salt DE (1994) Bioconcentration of heavy metals by plants.
Curr Opin Biotechnol 5:285–290
Raut N, Charif G, Al-Saadi A, Al-Aisri S, Al-Ajmi A (2012) A critical review of removal of Zinc
from wastewater. In: Proceedings of the world congress on Engineering 1, London, UK
Reboreda R, Caçador I (2007) Halophyte vegetation influences in salt marsh retention capacity for
heavy metals. Environ Pollut 146(1):147–154
Salt DE, Blaylock M, Kunmar NPBA, Dushenkov V, Ensley BD, Chet I (1995) Phytoremediation:
a novel strategy for the removal of toxic metals from the environment using plants. Biotechnology 13:468–474
Salt DE, Smith RD, Raskin I (1998) Phytoremediation. Annu Rev Plant Physiol Plant Mol Biol
49:643–668
Saxena G, Bharagava RN (2015) Persistent organic pollutants and bacterial communities present
during the treatment of tannery wastewater. In: Chandra R (ed) Environmental waste management, 1st edn. CRC Press, Taylor & Francis Group, Boca Raton, pp 217–247. https://doi.org/10.
1201/b19243-10
Saxena G, Bharagava RN (2017) Organic and inorganic pollutants in industrial wastes, their
ecotoxicological effects, health hazards and bioremediation approaches. In: Bharagava RN
(ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press, Taylor
& Francis Group, Boca Raton, pp 23–56. https://doi.org/10.1201/9781315173351-3
Saxena G, Chandra R, Bharagava RN (2016) Environmental pollution, toxicity profile and treatment approaches for tannery wastewater and its chemical pollutants. Rev Environ Contam
Toxicol 240:31–69. https://doi.org/10.1007/398_2015_5009
Saxena G, Purchase D, Mulla SI, Saratale GD, Bharagava RN (2019) Phytoremediation of heavy
metal-contaminated sites: eco-environmental concerns, field studies, sustainability issues and
future prospects. Rev Environ Contam Toxicol. https://doi.org/10.1007/398_2019_24
Sharma A, Johri BN (2003) BN growth promoting influence of siderophore-producing Pseudomonas strains GRP3A and PRS9 in maize (Zea mays L.) under iron limiting conditions. Microbiol
Res 158:243–248
Sheoran AS, Sheoran V (2006) Heavy metal removal mechanism of acid mine drainage in wetlands:
a critical review. Miner Eng 19(2):105–116
Silva Alves RI, Oliveira Cardoso O, Abreu Tonani KA, Julião FC, Trevilato TMB, Segura-Muñoz
SI (2012) Water quality of the Ribeirãopreto stream, a watercourse under anthropogenic
influence in the southeast of Brazil. Environ Monit Assess 185:1151–1161
11 Toxic Metals in Industrial Wastewaters and Phytoremediation Using. . .
281
their bioavailability. Mar Chem 46(1–2):1–6
Mroczek EK (2005) Contributions of arsenic and chloride from the Kawerau geothermal field to the
Tarawera River, New Zealand. Geothermics 34:218–233
Mukesh KR, Kumar P, Singh M, Singh A (2008) Toxic effect of heavy metals in livestock health.
Netherlands. Water Res 41(18):4251–4261
Ng JC, Wang JP, Shraim A (2003) A global health problem caused by arsenic from natural sources.
Chemosphere 52:1353–1359
Papoyan A, Piñeros M, Kochian LV (2007) Plant Cd
2+ and Zn
2+ status effects on root and shoot
heavy metal accumulation in Thlaspicaerulescens. New Phytol 175(1):51–58
Peng JF, Song YH, Yuan P, Cui XY, Qiu GL (2009) The remediation of heavy metals contaminated
sediment. J Hazard Mater 161(2–3):633–640
Pilon-Smits EAH, de Souza MP, Hong G, Amini A, Bravo RC (1999) Selenium volatilization and
accumulation by twenty aquatic plant species. J Environ Qual 28:1011–1017
Raja G, Venkatesan P (2010) Assessment of groundwater pollution and its impact in and around
Punnam area of Karur district, Tamil Nadu, India. J Chem 2:473–478
Raskin I, Ensley BD (eds) (2000) Phytoremediation of toxic metals: using plants to clean up the
environment. Wiley, New York, p 352
Raskin I, Kumar PBAN, Dushenkov S, Salt DE (1994) Bioconcentration of heavy metals by plants.
Curr Opin Biotechnol 5:285–290
Raut N, Charif G, Al-Saadi A, Al-Aisri S, Al-Ajmi A (2012) A critical review of removal of Zinc
from wastewater. In: Proceedings of the world congress on Engineering 1, London, UK
Reboreda R, Caçador I (2007) Halophyte vegetation influences in salt marsh retention capacity for
heavy metals. Environ Pollut 146(1):147–154
Salt DE, Blaylock M, Kunmar NPBA, Dushenkov V, Ensley BD, Chet I (1995) Phytoremediation:
a novel strategy for the removal of toxic metals from the environment using plants. Biotechnology 13:468–474
Salt DE, Smith RD, Raskin I (1998) Phytoremediation. Annu Rev Plant Physiol Plant Mol Biol
49:643–668
Saxena G, Bharagava RN (2015) Persistent organic pollutants and bacterial communities present
during the treatment of tannery wastewater. In: Chandra R (ed) Environmental waste management, 1st edn. CRC Press, Taylor & Francis Group, Boca Raton, pp 217–247. https://doi.org/10.
1201/b19243-10
Saxena G, Bharagava RN (2017) Organic and inorganic pollutants in industrial wastes, their
ecotoxicological effects, health hazards and bioremediation approaches. In: Bharagava RN
(ed) Environmental pollutants and their bioremediation approaches, 1st edn. CRC Press, Taylor
& Francis Group, Boca Raton, pp 23–56. https://doi.org/10.1201/9781315173351-3
Saxena G, Chandra R, Bharagava RN (2016) Environmental pollution, toxicity profile and treatment approaches for tannery wastewater and its chemical pollutants. Rev Environ Contam
Toxicol 240:31–69. https://doi.org/10.1007/398_2015_5009
Saxena G, Purchase D, Mulla SI, Saratale GD, Bharagava RN (2019) Phytoremediation of heavy
metal-contaminated sites: eco-environmental concerns, field studies, sustainability issues and
future prospects. Rev Environ Contam Toxicol. https://doi.org/10.1007/398_2019_24
Sharma A, Johri BN (2003) BN growth promoting influence of siderophore-producing Pseudomonas strains GRP3A and PRS9 in maize (Zea mays L.) under iron limiting conditions. Microbiol
Res 158:243–248
Sheoran AS, Sheoran V (2006) Heavy metal removal mechanism of acid mine drainage in wetlands:
a critical review. Miner Eng 19(2):105–116
Silva Alves RI, Oliveira Cardoso O, Abreu Tonani KA, Julião FC, Trevilato TMB, Segura-Muñoz
SI (2012) Water quality of the Ribeirãopreto stream, a watercourse under anthropogenic
influence in the southeast of Brazil. Environ Monit Assess 185:1151–1161
11 Toxic Metals in Industrial Wastewaters and Phytoremediation Using. . .
281
