Page 88 - Plant-Based Remediation Processes
P. 88
76 O.P. Abioye et al.
Maestri E, Marmiroli M, Visioli G, Marmiroli N (2010) Metal tolerance and hyperaccumulation:
costs and trade-offs between traits and environment. Environ Exp Bot 68:1–13
Małecka A, Piechalak A, Morkunas I, Tomaszewska B (2008) Accumulation of lead in root cells
of Pisum sativum. Acta Physiol Planta 30:629–637
Malone C, Koeppe DE, Miller RJ (1974) Localization of lead accumulated by corn plants.
Plant Physiol 53:388–394
McGrath SP, Zhao E (2003) Plant and rhizosphere processes involved in phytoremediation of
metal-contaminated soils. Plant Soil 232:207–214
McLaughlin MJ, Zarcinas BA, Stevens DP, Cook N (2000) Soil testing for heavy metals. Commun
Soil Sci Plant Anal 31(11–14):1661–1700
Meyers DER, Auchterlonie GJ, Webb RI, Wood B (2008) Uptake and localization of lead in the
root system of Brassica juncea. Environ Pollut 153:323–332
Mishra S, Srivastava S, Tripathi RD, Kumar R, Seth C, Gupta DK (2006) Lead detoxification by
coontail (Ceratophyllum demersum L.) involves induction of phytochelatins and antioxidant
system in response to its accumulation. Chemosphere 65:1027–1039
Munzuroglu O, Geckil H (2002) Effects of metals on seed germination, root elongation, and
coleoptile and hypocotyl growth in Triticum aestivum and Cucumis sativus. Arch Environ
Contam Toxicol 43:203–213
Nanda-Kumar PBA, Dushenkov V, Motto H, Raskin I (1995) Phytoextraction: the use of plants to
remove heavy metals from soils. Environ Sci Technol 29:1232–1238
Piechalak A, Tomaszewska B, Baralkiewicz D, Malecka A (2002) Accumulation and detoxifica-
tion of lead ions in legumes. Phytochemistry 60(2):153–162
Piotrowska A, Bajguz A, Godlewska-Zylkiewicz B, Czerpak R, Kaminska M (2009) Jasmonic
acid as modulator of lead toxicity in aquatic plant Wolffia arrhiza (Lemnaceae). Environ Exp
Bot 66(3):507–513
Pourrut B, Perchet G, Silvestre J, Cecchi M, Guiresse M, Pinelli E (2008) Potential role of
NADPH-oxidase in early steps of lead-induced oxidative burst in Vicia faba roots. J Plant
Physiol 165:571–579
Prueb A (1997) Action values for mobile (NH4NO3) trace elements in soils based on the German
National Standard DIN 19730. In: Prost R (ed) Contaminated soils. Proceedings of third
international conference on the biogeochemistry of trace elements, INRA, Paris, France
Punamiya P, Datta R, Sarkar D, Barber S, Patel M, Das P (2010) Symbiotic role of glomus
mosseae in phytoextraction of lead in vetiver grass [Chrysopogon zizanioides (L.)]. J Hazard
Mater 177(1–3):465–474
Raskin I, Ensley BD (2000) Phytoremediation of toxic metals: using plants to clean up the
environment. Wiley, New York
Raskin I, Smith RD, Salt DE (1997) Phytoremediation of metals: using plants to remove pollutants
from the environment. Curr Opin Biotech 8:221–226
Rattan RK, Datta SP, Singh AK, (1997) Effect of long term application of sewage effluents on
United States Protection Agency (USEPA) (1992). Selection of control technologies for
remediation of lead battery recycling sites, EPA/540/S-92/011 US. Accessed 19 Jul 2012
Rehren TH (2007) A review of factors affecting the composition of early Egyptian glasses and
faience: alkali and alkali earth oxides. J Archeol Sci 35:1345–1354
Reuther C (1998) Growing cleaner: phytoremediation goes commercial, but many questions
remain. http://www.sapphire.acnatsci.org/erd/ea/phyto.html. Accessed 19 July 2012
Rosselli W, Keller C, Boschi K (2003) Phytoextraction capacity of tree growing on a metal
contaminated soil. Plant Soil 256:265–272
Salt DE, Smith RD, Raskin I (1998) Phytoremediation. Sci Total Environ 49:643–668
Sammut M, Noack Y, Rose J, Hazemann J, Proux O, Depoux ZM, Fiani E (2010) Speciation of Cd
and Pb in dust emitted from sinter plant. Chemosphere 78:445–450
Seregin IV, Ivanov VB (2001) Physiological aspects of cadmium and lead toxic effects on higher
plants. Russ J Plant Physiol 48:523–544