Page 89 - Plant-Based Remediation Processes
P. 89

4 Remediation Mechanisms of Tropical Plants for Lead-Contaminated Environment  77

            Seregin IV, Shpigun LK, Ivanov VB (2004) Distribution and toxic effects of cadmium and lead on
              maize roots. Russ J Plant Physiol 51:525–533
            Shahid M, Pinelli E, Pourrut B, Silvestre J, Dumat C (2011) Lead-induced genotoxicity to Vicia
              faba L. roots in relation with metal cell uptake and initial speciation. Ecotoxicol Environ Saf
              74:78–84
            Sharma P, Dubey RS (2005) Lead toxicity in plants. Braz J Plant Physiol 17:35–52
            Shu WS, Xia HP, Zhang ZQ, Lan CY, Wong MH (2002) Use of vetiver and three other grasses for
              revegetation of Pb/Zn mine tailings: field experiment. Int J Phytoremediation 4:47–57
            Singh R, Tripathi RD, Dwivedi S, Kumar A, Trivedi PK, Chakrabarty D (2010) Lead
              bioaccumulation potential of an aquatic macrophyte Najas indica are related to antioxidant
              system. Bioresour Technol 101:3025–3032
            Tung G, Temple PJ (1996) Uptake and localization of lead in corn (Zea mays L.) seedlings: a study
              by histochemical and electron microscopy. Sci Total Environ 188:71–85
            United States Environmental Protection Agency (2000a) Electro kinetic and phytoremediation in
              situ treatment of metal-contaminated soil: state-of-the-practice. Office of Solid Waste and
              Emergency Response, Washington, DC
            United States Environmental Protection Agency (2000b) Lead and human health. http://www.epa.
              gov/superfund/programs/lead/lead.html. Accessed 19 July 2012
            United States Environmental Protection Agency (2000c) Introduction to phytoremediation, EPA
              600/R-99/107. US Environmental Protection Agency, Office of Research and Development,
              Cincinnati, OH
            Uzu G, Sobanska S, Aliouane Y, Pradere P, Dumat C (2009) Study of lead phytoavailability for
              atmospheric industrial micronic and sub-micronic particles in relation with lead speciation.
              Environ Pollut 157:1178–1185
            Uzu G, Sobanska S, Sarret G, Munoz M, Dumat C (2010) Foliar lead uptake by lettuce exposed to
              atmospheric fallouts. Environ Sci Technol 44:1036–1042
            Vadas TM, Ahner BA (2009) Cysteine- and glutathione-mediated uptake of lead and cadmium
              into Zea mays and Brassica napus roots. Environ Pollut 157:2558–2563
            Verbruggen N, Hermans C, Schat H (2009) Molecular mechanisms of metal hyperaccumulation in
              plants. New Phytol 181:759–776
            Wang H, Shan X, Wen B, Owens G, Fang J, Zhang S (2007) Effect of indole-3-acetic acid on
              lead accumulation in maize (Zea mays L.) seedlings and the relevant antioxidant response.
              Environ Exp Bot 61:246–253
                                                                      +
            Wojas S, Ruszczynska A, Bulska E, Wojciechowski M, Antosiewicz DM (2007) Ca2 -dependent
              plant response to Pb 2+  is regulated by LCT1. Environ Pollut 147(3):584–592
            Wierzbicka M (1998) Lead in the apoplast of Allium cepa L. root tips–ultrastructural studies.
              Plant Sci 133:105–119
            Wierzbicka MH, Przedpełska E, Ruzik R, Ouerdane L, Połe´c-Pawlak K, Jarosz M, Szpunar J,
              Szakiel A (2007) Comparison of the toxicity and distribution of cadmium and lead in plant
              cells. Protoplasma 231(1):99–111
            Xiong ZT (1997) Bioaccumulation and physiological effects of excess lead in a roadside pioneer
              species Sonchus oleraceus L. Environ Pollut 97:275–279
            Yadav S (2010) Heavy metals toxicity in plants: an overview on the role of glutathione and
              phytochelatins in heavy metal stress tolerance of plants. S Afr J Bot 76(2):167–179
            Yang XE, Long XX, Ni WZ, Fu CX (2005) Sedum alfredii H: a new Zn hyperaccumulating plant
              first found in China. Chin Sci Bull 47:1634–1637
            Zhou QX, Song YF (2004) Principal and methods of contaminate soil remediation. Science,
              Beijing, 75 pp
   84   85   86   87   88   89   90   91   92   93   94