Phytoremediation of cadmium from effected soil using maize plant (Zea mays L.)

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Research Paper 01/08/2014
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Phytoremediation of cadmium from effected soil using maize plant (Zea mays L.)

Muhammad Saleem Khan, Sajjad Ahmad Khan, Muhammad Anwar Sajad, Farooq Ali, Hazrat Ali, wisal Muhammad Khan, Sajjad Ali, Fida Hussain
J. Biodiv. & Environ. Sci. 5(2), 1-8, August 2014.
Copyright Statement: Copyright 2014; The Author(s).
License: CC BY-NC 4.0

Abstract

In present study, the soil and water were analyzed for cadmium metal. Its concentration in soil and water was 0.21 ml/kg and 0.001 mg/l respectively. For phytoextraction experiment pots were arranged in different groups such as Group A, B, C, D, E and F. To the soil of group A pots no metal was added and concentration of 100,200,300,400 and 500 ppm cadmium was added to the soil of group B, C, D, E and F respectively. The seeds of maize were sown in pots and observed its germination. Seed germination in group A was 5 while in group B, C, D, E and F was 5, 4.66, 4.33, 3.66, and 2.33 respectively. Cadmium metal decreased the rate of germination. The fresh and dry weigh of the plants were decreased with increase of cadmium concentration in the soil. The cadmium content in the root of group A was 5.263 mg/kg while that of group B, C, D, E and F was 19.47, 36.75, 42.36, 50.96 and 62.32mg/kg respectively. The concentration of cadmium metal found in the stem of group A plants was 1.64 mg/kg while in the stem group B, C, D, E and F was 4.4, 3.01, 1.66, 1.05 and 0.08 mg/kg respectively. The concentration of cadmium in the leaves of group A was 2.86 mg/kg while in group B, C, D, E and F was 7.08, 6.96, 5, 3.36, and 2.44 mg/kg respectively. Calculated bioconcentration and translocation factors of all groups showed that both of them of the plant for cadmium metal decreased due to increasing cadmium concentration in the soil.

Ali H, Khan E, Sajad MA. 2013. Phytoremediation of heavy metals- concepts and applications. Chemosphere. 91, 869-881

Ali H, Naseer M, Sajad MA. 2012. Phytoremediation of heavy metals by Trifolium alexandrinum. International Jourenal of Environmental Sciences. 2(3), 1459-1469.

Awofolu OR. 2005. A survey of trace metals in vegetation, soil, and lower animals along some selected major roads in metropolitan city of Lagos. Environ. Monit. Assess.105, 431-444.

Adesodum JK, Atyese MO, Agbaje TA, Osadiaye BA, Mafe OF, Soretire AA. 2010. Phytoremediation potential of sunflowers (Tithonia diversifolia and Helianthus annus) for metal in soil contaminated with zinc and lead nitrates. Water Air Soil Pollu. 207, 195-201.

Das P, Samantaray S, Rout GR. 1997. Study on cadmium toxicity in plants. A review. Environmental pollution. 98, 29-36.

Gardea Torresdey JL, Peralta-Videa JR, de la Rosa G, Parsons JG. 2005. Phytoremediation of heavy metals and study of the metal coordination by X-rays absorption spectroscopy, coordination chemistry reviews.

Jadia CD, Fulekar MH. 2008. Phytoremediation: the application of vermicompost to remove zink, cadmium, copper, nickel and lead by sunflower plant.Environmental Engineering and management journal. 7(5), 547-558

Lozano-Rodriguez E, Hernandez LE, Bonayand P, Carpena-Ruiz RO. 1997. Distribution of cadmium in shoot and root tissues of maize and pea plants:Physiological distriburbances. Journal of Experimental Botany. 48(306), 12-16.

Malik N, Biswas AK. 2012. Role of higher plants in remediation of metal contaminated sites. Sci. Rev. Chem. Commun. 2, 141–146.

Mench M, Schwitzguebel JP, Schroeder P, Bert V, Gawronski S, Gupta S. 2009. Assessment of successful experiments and limitations of phytotechnologies: contaminant uptake, detoxification and sequestration, and consequences for food safety. Environ. Sci. Pollut. Res. 16, 876–900.

Milic D, Lukovic J, Ninkov J, Zeremski-Skoric T, Zoric L, Vasin J, Milic S. 2012. Heavy metal content in halophytic plants from inland and maritime saline areas. Cent. Eur. J. Biol. 7, 307–317.

Rahimi B, and Nejatkhan MP. 2010. Availibility, Accumulation and Elimination of Cadmium by Artemia urmiana in different Salinities. J. Biol. Environ. Sci. 4(12), 149-157.

Sanita de Toppi L, Gabrielli 1999. Response to cadmium in higher plants. Environ. Exp. Bot. 41, 105-130.

Sharidah MMA. 1999. Heavy metals in mangrove sediment of the United Arab Emirates shoreline (Arabian Gulf). Water Air Soil Pollut.116, 523-534.

Sheoran V, Sheoran A, Poonia P. 2011. Role of hyperaccumulators in phytoextraction of metals from contaminated mining sites: a review. Crit. Rev. Environ. Sci. Technol. 41, 168–214.

Williams LE, Lemoine R, Sauer N. 2000. Sugar transporters in higher plants. A diversity of roles and complex regulation. Trends Plant Sci. 5, 283-290.

Vithanage M, Dabrowska BB, Mukherjee B, Sandhi A, Bhattacharya P. 2012. Arsenic uptake by plants and possible phytoremediation applications: a brief overview. Environ. Chem. Lett. 10, 217–224.

Xiao X, Tongbin C, Zhizhuang A, Mei L. 2008. Potential of Pteris vittata L. for phytoremediation of sites cocontaminated with cadmium and arsenic: the tolerance and accumulation. Journal of Environmental Sciences. 20, 62-67.

Zhuang P, Yang QW, Wang HB, Shu WS. 2007. “Phytoextraction of heavy Metals by eight plant species in the field”, Water, Air and Soil Pollution, 184, 235-242.

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