340
Views
16
CrossRef citations to date
0
Altmetric
Original Articles

Evaluation of Cajanus cajan (pigeon pea) for phytoremediation of landfill leachate containing chromium and lead

&

References

  • Adelekan B, Abegunde K. 2011. Heavy metal contamination of soil and groundwater at automobile mechanic villages in Ibadan, Nigeria. Int J Phys Sci 6(5):1045–1058.
  • Aggarwal N, Laura J, Sheoran I. 1990. Effect of cadmium and nickel on germination, early seedling growth and photosynthesis of wheat and pigeon pea. Int J Trop Agric 8:141–147.
  • Ali H, Khan E, Anwar M. 2013. Phytoremediation of heavy metals—concepts and applications. Chemosphere 91(7):869–881.
  • Almendras M, Carballa M, Diels L, Van Broekhoven K, Chamy R. 2009. Prediction of heavy metal mobility and bioavailability in contaminated soil using sequential extraction and biosensors. J Environ Eng 135(9):839–844.
  • Axtell N, Sternberg P, Claussen K. 2003. Lead and nickel removal using Microspora and Lemna minor. Bioresource Technol 89:41–48.
  • Azevedo M, Ferracciú L, Guimarães L. 2003. Biosolids and heavy metals in soils. Sci Agric 60(4):793–806.
  • Bennicelli R, Stepniewska Z, Banach A, Szajnocha K, Ostrowski J. 2004. The ability of Azolla caroliniana to remove heavy metals (Hg (II), Cr (III), Cr (VI)) from municipal waste water. Chemosphere 55:141–146.
  • Cedano J. 2006. Guía técnica cultivo de guandul, 1st ed. Santo Domingo, República Dominicana: CEDAF. p. 14–15.
  • Chandra V, Abhilash P, Narayan R, Tewari D. 2009. Application of fly ash on the growth performance, and translocation of toxic heavy metals within Cajanus cajan L.: implication for safe utilization of fly ash for agricultural production. J Hazard Mater 166(1):255–259.
  • Chaney R, Malik M, Li Y, Brown S, Brewer E, Angle J, Baker A. 1997. Phytoremediation of soil metals. Curr Opin Biotechnol 8(3):279–284.
  • Conley D, Paerl H, Howarth R, Boesch D, Seitzinger S, Havens K, Lancelot C, Likens G. 2009. Controlling eutrophication: nitrogen and phosphorus. Science 323:1014–1015.
  • Delgadillo A, González C, Prieto F, Villagómez J, Acevedo O. 2011. Fitorremediación: Una alternativa para eliminar la contaminación. Trop Subtrop Agroecosyt 14(2):597–612.
  • Divya L, George J, Midhun G, Magesh SB, Suriyanarayanan S. 2015. Impacts of treated sewage effluent on seed germination and vigour index of monocots and dicot seeds. Russ Agric Sci 41(4):252–257.
  • Dotaniya ML, Meena VD, Das H. 2014. Chromium toxicity on seed germination, root elongation and coleoptile growth of pigeon pea (Cajanus cajan). Legume Res 37(2):227–229.
  • Dube A, Zbytniewski R, Kowalkowski T, Cukrowska E, Buszewski B. 2001. Adsorption and migration of heavy metals in soil. Pol J Environ Stud 10(1):1–10.
  • El-Gendy A. 2008. Modeling of heavy metals removal from municipal landfill leachate using living biomass of water hyacinth. Int J Phytorem 10(1):14–30.
  • Ernst W. 1996. Bioavailability of heavy metals and decontamination of soils by plants. Appl Geochem 11(1–2):163–167.
  • Farid M, Ali S, Shakoor M, Bharwana S, Rizvi H, Ehsan S, Tauqeer H, Iftikhar U, Hannan F. 2013. EDTA-assisted phytoremediation of cadmium, lead and zinc. Int J Agron Plant Prod 4(11):2833–2846.
  • Fei X. 2004. Solving the coastal eutrophication problem by large-scale seaweed cultivation. Hydrobiologia 512(1):145–151.
  • Gad S. 1989. Acute and chronic systemic chromium toxicity. Sci Total Environ 86:149–157.
  • Garg N, Aggarwal N. 2011. Effects of interactions between cadmium and lead on growth, nitrogen fixation, phytochelatin and glutathione production in mycorrhizal Cajanus cajan (L.) Millsp. J Plant Growth Regul 30:286–300.
  • Garg N, Aggarwal N. 2012. Effect of mycorrhizal inoculations on heavy metal uptake and stress alleviation of Cajanus cajan (L.) Millsp. Genotypes grown in cadmium and lead contaminated soils. J Plant Growth Regul 66:9–26.
  • Garg N, Bhandari P. 2012. Influence of cadmium stress and arbuscular mycorrhizal fungi on nodule senescence in Cajanus cajan(L.) Millsp. Int J Phytorem 14(1):62–74.
  • Garg N, Kaur H. 2013. Response of antioxidant enzymes, phytochelatins and glutathione production towards Cd and Zn stresses in Cajanus cajan (L.) Millsp. Genotypes colonized by arbuscular mycorrhizal fungi. J Agron Crop Sci 199(2):118–133.
  • Ghosh M, Singh S. 2005. A review of phytoremediation of heavy metals and utilization of its by products. Appl Ecol Environ Res 3(1):1–18.
  • Goyer R. 1993. Lead toxicity: current concerns. Environ Health Perspect 100(1):177–187.
  • Graeme K, Pollack C. 1998a. Heavy-metal toxicity, Part I: arsenic and mercury. J Emerg Med 16(1):45–56.
  • Graeme K, Pollack C. 1998b. Heavy-metal toxicity, Part II: lead and metal fume fever. J Emerg Med 16(2):171–177.
  • Hernández M, Jiménez J. 2012. Effects of soil water content and organic matter addition on the speciation and bioavailability of heavy metals. Sci Total Environ 423:55–61.
  • Järup L. 2003. Hazards of heavy metal contamination. Br Med Bull 68(1):167–182.
  • Laghlimi M, Baghdad B, El Hadi H, Bouabdli A. 2015. Phytoremediation mechanisms of heavy-metal-contaminated soils: a review. Open J of Ecol. 5(1):375–388.
  • Lal R. 2005. Encyclopedia of Soil Science. 2nd ed. Boca Raton (FL): CRC Press. p. 817.
  • Madera-Parra C, Peña-Salamanca E, Peña M, Rousseau D, Lens PN. 2015. Phytoremediation of landfill leachate with Colocasia esculenta, Gynerium sagittatum and Heliconia psittacorum in constructed wetlands. Int J Phytorem 17(1–6):16–24.
  • Mant C, Costa S, Williams J, Tambourgi E. 2006. Phytoremediation of chromium by model constructed wetland. Bioresour Technol 97:1767–1772.
  • Miller J, Miller C. 2002. Estadística y quimiometría para química analítica. España: Pearson Education. p. 111–125.
  • Mojiri A, Aziz H, Tajuddin R, Gavanji S, Gholami A. 2015. Heavy-metal phytoremediation from urban waste leachate by the common reed (Phragmites australis). In: Ansari A, Gill S, Gill R, Lanza G, Newman L, editors. Management of Environmental Contaminants, Vol. 2. Switzerland: Springer International Publishing. p. 75–76.
  • Nordberg G, Fowler B, Nordberg M, Friberg L. 2007. Handbook of the Toxicology of Metals, 3rd ed. USA: Academic Press. p. 163–176.
  • Paz-Alberto A, Sigua G. 2013. Phytoremediation: a green technology to remove environmental pollutants. Am J Clim Change 2(1):71–86.
  • Petruzzelli G, Pedron F, Rosellini I, Barbafieri M. 2015. The bioavailability processes as a key to evaluate phytoremediation efficiency. In: Ansari A, Gill S, Gill R, Lanza G, Newman L, editors. Management of Environmental Contaminants, Vol. 1. Switzerland: Springer. p. 31–43.
  • Pinto A, Varennes A, Fonseca R, Martins D. 2015. Phytoremediation of soils contaminated with heavy metals: techniques and strategies. In: Ansari A, Gill S, Gill R, Lanza G, Newman L, editors. Management of Environmental Contaminants, Vol. 1. Switzerland: Springer. p. 133–155.
  • Pollard A, Reeves R, Baker A. 2014. Facultative hyperaccumulation of heavy metals and metalloids. Plant Sci 217:8–17.
  • Prato E, Parlapiano I, Biandolino F. 2013. Assessment of individual and combined toxicities of three heavy metals (Cu, Cd and Hg) using Tigriopus fulvus. Chem Ecol 29(7):635–642.
  • Rao S, Kumar PN, Reddy PH, Inayat M. 2014. Study on effect of raw and diluted tannery effluent on the seed germination and seedling growth of selected crops. Eur J Biotechnol Biosci 2(3):1–4.
  • Rascio N, Navari-Izzo F. 2011. Heavy-metal hyperaccumulating plants: how and why do they do it? And what makes them so interesting? Plant Sci 180(2):169–181.
  • Rodríguez J, Valdez R, Alcalá J, García L, Rodríguez H, Tapia J, Pérez J, Woo, J. 2009. Relaciones entre Cd, Pb y elementos esenciales en el proceso de fitoacumulación en Nicotiana tabacum. Rev Latinoam Rec Nat 5(3):205–211.
  • Rodríguez-Elizalde M, Delgado-Alvarado A, González-Chávez M, Carrillo-González R, Mejía-Muñoz J, Vargas-Hernández M. 2010. Emergencia y crecimiento de plantas ornamentales en sustratos contaminados con residuos de mina. Interciencia 35(1):26–32.
  • Sampanpanish P, Pongsapich W, Khaodhiar S, Khan E. 2006. Chromium removal from soil by phytoremediation with weed plant species in Thailand. Water Air Soil Pollut: Focus 6:191–206.
  • Sivasankar R, Kalaikandhan R, Vijayarengan P. 2012. Phytoremediating capability of four plant species under zinc stress. Int J Res Environ Sci Tech 2 (1):1–9.
  • Soda S, Hamada T, Yamaoka Y, Ike M, Nakazato H, Saeki Y, Kasamatsu T, Sakurai Y. 2012. Constructed wetlands for advanced treatment of wastewater with a complex matrix from a metal—processing plant: bioconcentration and translocation factors of various metals in Acorus gramineus and Cyperus alternifolius. Ecol Eng 39:63–70.
  • Sögüt Z, Zaimoglu B, Erdogan R, Sucu M. 2005. Phytoremediation of landfill leachate using Pennisetum clandestinum. J Environ Biol 26(1):13–20.
  • Tang Y, Qiu RL, Zeng XW, Ying RR, Yu FM, Zhou XY. 2009. Lead, zinc, cadmium hyperaccumulation and growth stimulation in Arabis paniculata Franch. Environ Exp Bot 66(1):126–134.
  • Wuana R, Okieimen F. 2011. Heavy metals in contaminated soils: a review of sources, chemistry, risks and best available strategies for remediation. ISRN Ecol 2011:1–20.
  • Yankov B, Tahsin N. 2001. Accumulation and distribution of Pb, Cu, Zn and Cd in sunflower (Helianthus annuus L.) grown in an industrially polluted region. Helia 24(34):131–136.
  • Zhang XH, Liu J, Huang HT, Chen J, Zhu YN, Wang DQ. 2007. Chromium accumulation by the hyperaccumulator plant Leersia hexandra Swartz. Chemosphere 67:1138–1143.
  • Zheng L, Lütz-Meindl U, Peer T. 2013. Chelate-assisted phytoremediation of lead. In: Leung DWM, editor. Recent Advances Towards Improved Phytoremediation of Heavy Metal Pollution. Sharjah: Bentham Science Publishers. p. 40–54.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.