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Articles

Lead Phytostabilization and Cationic Micronutrient Uptake by Maize as Influenced by Pb Levels and Application of Low Molecular Weight Organic Acids

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Pages 1887-1896 | Received 01 Dec 2018, Accepted 27 Jun 2019, Published online: 29 Jul 2019

References

  • Adhikari, T., A. Kumar, M. V. Singh, and A. S. Rao. 2010. Phytoaccumulation of lead by selected wetland plant species. Communications in Soil Science and Plant Analysis 41:2623–32. doi:10.1080/00103624.2010.517879.
  • Adriano, D. C., W. W. Wenzel, J. Vangronsveld, and N. S. Bolan. 2004. Role of assisted natural remediation in environmental cleanup. Geoderma 122:121–42.
  • Agnello, A. C., D. Huguenot, E. D. Van Hullebusch, and G. Esposito. 2014. Enhanced phytoremediation: A review of low molecular weight organic acids and surfactants used as amendments. Critical Reviews in Environmental Science and Technology 44:2531–76. doi:10.1080/10643389.2013.829764.
  • Allison, L. E., and C. D. Moodie. 1965. Carbonate. In Methods of soil analysis part 2. Chemical and microbiological properties. Monogr. 9, ed. C. A. Black, D. D. Evans, L. E. Ensminger, J. L. White, and F. E. Clark, 1379–96. 2nd ed. Madison WI: Agronomy Society of America and Soil Science Society of America.
  • Asilian, E., R. Ghasemi-Fasaei, A. Ronaghi, M. Sepehri, and A. Niazi. 2018. Effects of microbial inoculations and surfactant levels on biologically and chemically-assisted phytoremediation of lead-contaminated soil by maize (Zea Mays L.). Chemistry and Ecology. doi:10.1080/02757540.2018.1520844.
  • Bahraminia, M., M. Zarei, A. Ronaghi, and R. Ghasemi-Fasaei. 2016. Effectiveness of arbuscular mycorrhizal fungi in phytoremediation of lead-contaminated soil by vetiver grass. International Journal of Phytpremediation 18:730–37.
  • Bouyoucos, G. J. 1962. Hydrometer method improved for making particle size analysis of soil. Agronomy Journal 54:464–65.
  • Brynhildsen, L., and T. Rosswall. 1997. Effects of metals on the microbial mineralization of organic acids. Water, Air and Soil Pollution 94:45–57.
  • Bulak, P., A. Walkiewicz, and M. Brzezinska. 2014. Plant growth regulators-assisted phytoextraction. Biological Plantarum 58:1–8.
  • Cannata, M. G., R. Carvalho, A. C. Bertoli, A. R. R. Bastos, J. G. Carvalho, M. P. Freitas, and A. S. Augusto. 2013. Effects of lead on the content, accumulation, and translocation of nutrients in bean plant cultivated in nutritive solution. Communications in Soil Science and Plant Analysis 44:939–51. doi:doi:10.1080/00103624.2012.747605.
  • Chapman, H. D. 1965. Cation exchange capacity. In Methods of soil analysis part 2. Chemical and microbiological properties. Monogr. 9, ed. C. A. Black, D. D. Evans, L. E. Ensminger, J. L. White, and F. E. Clark, 891–901. 2nd ed. Madison WI: Agronomy Society of America and Soil Science Society of America.
  • Chatterjee, C., B. K. Dube, P. Sinha, and P. Srivastava. 2004. Detrimental effects of lead phytotoxicity on growth, yield, and metabolism of rice. Communications in Soil Science and Plant Analysis 35:255–65. doi:10.1081/CSS-120027648.
  • Chen, B. D., Y. G. Zhu, and F. A. Smith. 2006. Effects of arbuscular mycorrhizal inoculation on uranium and arsenic accumulation by Chinese brake fern (Pterisvittata L.) from a uranium mining-impacted soil. Chemosphere 62:1464–73.
  • Cheng, G., Z. Ma, and Q. Wang. 2011. Effects of natural organic acids on growth of maize and uptake of chromium by maize in chromium contaminated soil. Advanced Material Research 281:21–24.
  • Guo, X., G. Zhao, G. Zhang, Q. He, Z. Wei, W. Zheng, T. Qian, and Q. Wu. 2018. Effect of mixed chelators of EDTA, GLDA, and citric acid on bioavailability of residual heavy metals in soils and soil properties. Chemosphere 209:776–82.
  • Han, Y., L. Zhang, J. Gu, J. Zhao, and J. Fu. 2018. Citric acid and EDTA on the growth, photosynthetic properties and heavy metal accumulation of Iris halophila Pall. Cultivated in Pb mine tailings. International Biodeterioration & Biodegradation 128:15–21.
  • Houa, X., H. Hana, L. Caia, A. Liua, X. Maa, C. G. Zhoua, and W. F. Meng. 2018. Pb stress effects on leaf chlorophyll fluorescence, antioxidative enzyme activities, and organic acid contents of Pogonatherum crinitum seedlings. Flora 240:82–88.
  • Huang, J. W., J. Chen, W. B. Berti, and S. D. Cunningham. 1997. Phytoextraction of lead-contaminated soils: Role of synthetic in lead phytoextraction. Environmental Science and Technology 31:800–05.
  • ISO (International Standardization Organization). 2002. Soil quality-sampling-Part 1: Guidance on the design of sampling programmes. ISO 10381–1: 2002. Geneva: ISO.
  • Jackson, M. L. 1958. Soil chemical analysis. Englewood Cliffs (NJ): Prentice-Hall.
  • Jankong, P., and P. Visoottiviseth. 2008. Effects of arbuscular mycorrhizal inoculation on plants growing on arsenic contaminated soil. Chemosphere 72:1092–97.
  • Jarrah, M., R. Ghasemi-Fasaei, N. Karimian, A. Ronaghi, M. Zarei, and S. Mayel. 2014. Investigation of arbuscular mycorrhizal fungus and EDTA efficiencies on lead phytoremediation by sunflower in a calcareous soil. Bioremediation Journal 18:71–79.
  • Komárek, M., P. Tlustoš, J. Száková, V. Chrastný, and V. Ettle. 2007. The use of maize and poplar in chelant-enhanced phytoextraction of lead from contaminated agricultural soils. Chemosphere 67:640–51.
  • Lehoczky, E., Z. Kiss, and T. Németh. 2006. Study of the transfer coefficient of cadmium and lead in ryegrass and lettuce. Communications in Soil Science and Plant Analysis 37:2531–39. doi:10.1080/00103620600822986.
  • Lindsay, W. L., and W. A. Norvell. 1978. Development of a DTPA test for zinc, iron, manganese, and copper. Soil Science Society of America Journal 42:421–28.
  • Liu, D., X. Liu, Z. Chen, H. Xu, and X. Ding. 2010. Bioaccumulation of lead and the effects of lead on catalase activity, glutathione levels, and chlorophyll content in the leaves of wheat. Communications in Soil Science and Plant Analysis 41:935–44.
  • Onireti, O. O., C. Lin, and J. Qin. 2017. Combined effects of low-molecular-weight organic acids on mobilization of arsenic and lead from multi-contaminated soils. Chemosphere 170:161–68.
  • Oral, A., and V. Uygur. 2018. Effects of low-molecular-mass organic acids on P nutrition and some plant properties of Hordeum vulgare. Journal of Plant Nutrition. doi:doi:10.1080/01904167.2018.1458866.
  • Perelomov, L., B. Sarkar, M. M. Rahman, A. Goryacheva, and R. Naidu. 2016. Uptake of lead by Na-exchanged and Al-pillared bentonite in the presence of organic acids with different functional groups. Applied Clay Science 119:417–23.
  • Shafigh, M., R. Ghasemi-Fasaei, and A. Ronaghi. 2016. Influence of plant growth regulators and humic acid on the phytoremediation of lead by maize in a Pb-polluted calcareous soil. Archives of Agronomy and Soil Science 62:1733–40.
  • Sikka, R., V. Nayyar, and S. S. Sidhu. 2010. Bioaccumulation of lead by Indian mustard in a loamy sand soil artificially contaminated with lead: Impact on plant growth and uptake of metal. Communications in Soil Science and Plant Analysis 41:1257–70. doi:10.1080/00103621003722807.
  • Solhi, M., M. A. Hajabbasi, and H. Shareatmadari. 2005. Heavy metals extraction potential of sunflower (Helianthus annuus) and canola (Brassica napus). Caspian Journal of Environmental Science 3:35–42.
  • Tafvizi, M., and B. Motesharezadeh. 2014. Effects of lead on iron, manganese, and zinc concentrations in different varieties of maize (Zea mays). Communications in Soil Science and Plant Analysis 45:1853–65. doi:10.1080/00103624.2014.912287.
  • Wang, L., J. Tang, B. Xiao, Y. Yang, and Y. Yu. 2013. Enhanced release of fluoride from rhizosphere soil of tea plants by organic acids and reduced secretion of organic acids by fluoride supply. Acta Agriculturae Scandinavica, Section B — Soil & Plant Science 63:426–32. doi:10.1080/09064710.2013.795995.
  • Wuana, R. A., and F. E. Okieimen. 2010. Phytoremediation potential of maize (Zea mays L.). A review. African Journal of General Agriculture 6:275–88.
  • Yang, X., V. C. Baligar, D. C. Martens, and R. B. Clark. 1996. Plant tolerance to nickel toxicity, II: Nickel effects on influx and transport of mineral nutrients in four plant species. Journal of Plant Nutrition 19:265–79.

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