Kumari S, Kumar B, Sheel R (2016) Bioremediation of heavy metals by serious aquatic weed,
Salvinia. Int J Curr Microbiol Appl Sci 5(9):355–368
Kunito T, Saeki K, Oyaizu K, Mutsumoto S (2001) Characterization of copper resistant bacteria
communities in copper contaminated soils. Eur J Soil Biol 37:95–102
Ladislas L, El-Mufleh A, Gérente C, Chazarenc F, Andrès Y, Bechet B (2012) Potential of aquatic
macrophytes as bioindicators of heavy metal pollution in urban stormwater runoff. Water, Air,
and Soil Pollut 223(2):877–888. https://doi.org/10.1007/s11270-011-0909-3
Lewis S, Handy RD, Cordi B, Billinghurst Z, Depledge MH (1999) Stress proteins (HSPs): methods
of detection and their use as an environmental biomarker. Ecotoxicology 8:351–368
Liao S, Chang N (2004) Heavy metal phytoremediation by water hyacinth at constructed wetlands
in Taiwan. J Aquatic Plant Manag 42:60–68
Lightfoot PC (2017) Petrology and geochemistry of the Sudbury igneous complex Nickel Sulfide
Ores and Impact Melts: Origin of the Sudbury Igneous Complex presents a current state of
understanding on the geology and ore deposits of the Sudbury Igneous Complex. Elsevier, pp
190–295
Liguori Bianca TP, Almeida Marcelo GDE, Rezende CEDE (2016) Barium and its importance as an
Indicator of (Paleo) productivity. An Acad Bras Ciênc 88(4):2093–2103. (Annals of the
Brazilian Academy of Sciences). https://doi.org/10.1590/0001-3765201620140592
Liu M, Zhong J, Zheng X, Yu J, Liu D, Fan C (2018) Fraction distribution and leaching behaviour
of heavy metals in dredged sediment disposal sites around Meiliang Bay, Lake Taihu (China).
Environ Sci Pollut Res 25:9737–9744
Masindi V, Khathutshelo LM (2018) Chapter: Heavy metals. In: Environmental contamination by
heavy metals. Intech Open Publisher
Mazhoudi S, Chaoui A, Ghorbal MH, Ferjani E (1997) Response of antioxidant enzymes to excess
copper in tomato (Lycopersicon esculentum, Mill). Plant Sci 127:129–137
Miretzky P, Saralegui A, Cirelli AF (2004) Aquatic macrophytes potential for the simultaneous
removal of heavy metals (Buenos Aires, Argentina). Chemosphere 57(8):997–1005
Mishra VK, Tripathi VD (2009) Accumulation of chromium and zones from aqueous solution using
water hyacinth. J Hazard Mater 164(2–3):1059–1063
Nayek S, Gupta S, Saha R (2010) Effects of metal stress on biochemical response of some aquatic
macrophytes growing along an industrial waste discharge channel. J Plant Interact 5(2):91–99
Newman LA, Reynolds CM (2004) Phytodegradation of organic compounds. Curr Option
Biotechnol 15:225–230
Obermeier M, Schroder CA, Helmreich A, Schroder BA (2015) The enzymatic and antioxidative
stress response of Lemna minor to copper and a chloroacetamide herbicide. Environ Sci Pollut
Res 22(23):18495–18507
Odjegba VJ, Fasidi IO (2004) Accumulation of trace elements by Pistia stratiotes: implications for
phytoremediation. Ecotoxicology 13(7):637–646
Pal P (2015) Introduction to the arsenic contamination problem. In: Groundwater arsenic remediation: treatment technology and scale
Peter R, Tharsika T (2017) Articles Earth sciences museum resources rocks and Minerals British
Geological Survey, NERC
Phatak VG, Satakopan S (1957) Plant types of the ponds of the plains around Baroda. I- pond
vegetation at harni (Baroda). J M.S. Univ Baroda 6:11–40
Polechonska L, Klink A, Dambiec M (2019) Trace element accumulation in Salvinia natans from
areas of various land use types. Environ Sci Pollut Res 26:30242–30251
Prasad SN, Ramachandra TV, Ahalya N, Sengupta TA, Kumar AK, Tiwari VS, Vijayan L (2002)
Conservation of wetlands of India – a review. Trop Ecol 43(1):173–186
Radu VM, Ionesscu P, Diacu E, Ivanov AA (2018) Removal of heavy metals from aquatic
environments using water hyacinth and water lettuce. Rev Chim (Bucharest) 68(12):2765–2767
Ramsar S (2013) The list of wetlands of international importance. The Secretariat of the Convention
on Wetlands, Gland, Switzerland
334
P. Parikh and K. Unadkat
Salvinia. Int J Curr Microbiol Appl Sci 5(9):355–368
Kunito T, Saeki K, Oyaizu K, Mutsumoto S (2001) Characterization of copper resistant bacteria
communities in copper contaminated soils. Eur J Soil Biol 37:95–102
Ladislas L, El-Mufleh A, Gérente C, Chazarenc F, Andrès Y, Bechet B (2012) Potential of aquatic
macrophytes as bioindicators of heavy metal pollution in urban stormwater runoff. Water, Air,
and Soil Pollut 223(2):877–888. https://doi.org/10.1007/s11270-011-0909-3
Lewis S, Handy RD, Cordi B, Billinghurst Z, Depledge MH (1999) Stress proteins (HSPs): methods
of detection and their use as an environmental biomarker. Ecotoxicology 8:351–368
Liao S, Chang N (2004) Heavy metal phytoremediation by water hyacinth at constructed wetlands
in Taiwan. J Aquatic Plant Manag 42:60–68
Lightfoot PC (2017) Petrology and geochemistry of the Sudbury igneous complex Nickel Sulfide
Ores and Impact Melts: Origin of the Sudbury Igneous Complex presents a current state of
understanding on the geology and ore deposits of the Sudbury Igneous Complex. Elsevier, pp
190–295
Liguori Bianca TP, Almeida Marcelo GDE, Rezende CEDE (2016) Barium and its importance as an
Indicator of (Paleo) productivity. An Acad Bras Ciênc 88(4):2093–2103. (Annals of the
Brazilian Academy of Sciences). https://doi.org/10.1590/0001-3765201620140592
Liu M, Zhong J, Zheng X, Yu J, Liu D, Fan C (2018) Fraction distribution and leaching behaviour
of heavy metals in dredged sediment disposal sites around Meiliang Bay, Lake Taihu (China).
Environ Sci Pollut Res 25:9737–9744
Masindi V, Khathutshelo LM (2018) Chapter: Heavy metals. In: Environmental contamination by
heavy metals. Intech Open Publisher
Mazhoudi S, Chaoui A, Ghorbal MH, Ferjani E (1997) Response of antioxidant enzymes to excess
copper in tomato (Lycopersicon esculentum, Mill). Plant Sci 127:129–137
Miretzky P, Saralegui A, Cirelli AF (2004) Aquatic macrophytes potential for the simultaneous
removal of heavy metals (Buenos Aires, Argentina). Chemosphere 57(8):997–1005
Mishra VK, Tripathi VD (2009) Accumulation of chromium and zones from aqueous solution using
water hyacinth. J Hazard Mater 164(2–3):1059–1063
Nayek S, Gupta S, Saha R (2010) Effects of metal stress on biochemical response of some aquatic
macrophytes growing along an industrial waste discharge channel. J Plant Interact 5(2):91–99
Newman LA, Reynolds CM (2004) Phytodegradation of organic compounds. Curr Option
Biotechnol 15:225–230
Obermeier M, Schroder CA, Helmreich A, Schroder BA (2015) The enzymatic and antioxidative
stress response of Lemna minor to copper and a chloroacetamide herbicide. Environ Sci Pollut
Res 22(23):18495–18507
Odjegba VJ, Fasidi IO (2004) Accumulation of trace elements by Pistia stratiotes: implications for
phytoremediation. Ecotoxicology 13(7):637–646
Pal P (2015) Introduction to the arsenic contamination problem. In: Groundwater arsenic remediation: treatment technology and scale
Peter R, Tharsika T (2017) Articles Earth sciences museum resources rocks and Minerals British
Geological Survey, NERC
Phatak VG, Satakopan S (1957) Plant types of the ponds of the plains around Baroda. I- pond
vegetation at harni (Baroda). J M.S. Univ Baroda 6:11–40
Polechonska L, Klink A, Dambiec M (2019) Trace element accumulation in Salvinia natans from
areas of various land use types. Environ Sci Pollut Res 26:30242–30251
Prasad SN, Ramachandra TV, Ahalya N, Sengupta TA, Kumar AK, Tiwari VS, Vijayan L (2002)
Conservation of wetlands of India – a review. Trop Ecol 43(1):173–186
Radu VM, Ionesscu P, Diacu E, Ivanov AA (2018) Removal of heavy metals from aquatic
environments using water hyacinth and water lettuce. Rev Chim (Bucharest) 68(12):2765–2767
Ramsar S (2013) The list of wetlands of international importance. The Secretariat of the Convention
on Wetlands, Gland, Switzerland
334
P. Parikh and K. Unadkat
