Plant Soil Environ., 2011, 57(3):128-134 | DOI: 10.17221/225/2010-PSE

Influence of N, P, and K application on Zea mays L. growth and Cu and Pb accumulation

W.J. Xie1,2, H.Y. Wang2, J.B. Xia1, Z.G. Yao1
1 Shandong Key Laboratory of Eco-Environmental Science for the Yellow River Delta, Binzhou University, Binzhou, P.R. China
2 State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, P.R. China

Fertilization affects soil processes in many ways that remain unclear. The effects of N, P, and K application on plant growth and Cu and Pb accumulation were thus evaluated in a soil-maize system using five treatments: N, P, and K application; N and P application; N and K application; P and K application; and control (no fertilization). Compared to the control, fertilizer application treatments, especially N application, significantly increased maize photosynthetic rate, which further improved shoot biomass production. Root growth, root and shoot Cu and Pb concentrations, and Cu and Pb mobility also significantly altered with fertilizer application. Shoot Cu contents, root Cu uptake and translocation factors were significantly increased in the N-fertilized treatments. The significant decrease of shoot Pb concentration and root Pb uptake and increase of Cu and Pb immobilization were observed in theP-fertilized treatments. No significant correlation was observed between K application and Cu and Pb accumulation in maize. Our results show that an increase in P application and decrease in N application is recommended to reduce agro-ecological risks associated with Cu and Pb in soil-maize systems. However, the mechanisms governing the relationship between nutrients and heavy metal transformation in soil-plant systems needs further research.

Keywords: soil heavy metals; Cu and Pb mobility; ecological risk; translocation factor

Published: March 31, 2011  Show citation

ACS AIP APA ASA Harvard Chicago Chicago Notes IEEE ISO690 MLA NLM Turabian Vancouver
Xie WJ, Wang HY, Xia JB, Yao ZG. Influence of N, P, and K application on Zea mays L. growth and Cu and Pb accumulation. Plant Soil Environ. 2011;57(3):128-134. doi: 10.17221/225/2010-PSE.
Download citation

References

  1. Bordas F., Bourg A.M. (1998): A critical evaluation of sample pretreatment for storage of contaminated sediments to be investigated for the potential mobility of their heavy metal load. Water, Air and Soil Pollution, 103: 137-149. Go to original source...
  2. Blaylock M.J., Salt D.E., Dushenkov S., Zakharova O., Gussman C., Kapulnik Y., Ensley B.D., Raskin I. (1997): Enhanced accumulation of Pb in Indian mustard by soil applied chelating agents. Environmental Science and Technology, 31: 860-865. Go to original source...
  3. Chaignon V., Bedin F., Hinsinger P. (2002): Copper bioavailability and rhizosphere pH changes as affected by nitrogen supply for tomato and oilseed rape cropped on an acidic and a calcareous soil. Plant and Soil, 243: 219-228. Go to original source...
  4. Darilek J.L., Huang B., Wang Z.G., Qi Y.B., Zhao Y.C., Sun W.X., Gu Z.Q., Shi X.Z. (2009): Changes in soil fertility parameters and the environmental effects in a rapidly developing region of China. Agriculture, Ecosystems and Environment, 129: 286-292. Go to original source...
  5. Guo J.H., Liu X.J., Zhang Y., Shen J.L., Han W.X., Zhang W.F., Christie P., Goulding K.W.T., Vitousek P.M., Zhang F.S. (2010): Significant acidification in major Chinese croplands. Science, 327: 1008-1010. Go to original source... Go to PubMed...
  6. Jarvis S.C., Whitehead D.C. (1981): The influence of some soil and plant factors on the concentration of copper in perennial ryegrass. Plant and Soil, 60: 275-286. Go to original source...
  7. Jensen-Spaulding A., Shuler M.L., Lion L.W. (2004): Mobilization of adsorbed copper and lead from naturally aged soil by bacterial extracellular polymers. Water Research, 38: 1121-1128. Go to original source... Go to PubMed...
  8. Jones D.L. (1998): Organic acids in the rhizosphere - A critical review. Plant and Soil, 205: 25-44. Go to original source...
  9. Kim S., Lim H., Lee I. (2010): Enhanced heavy metal phytoextraction by Echinochloa crus-galli using root exudates. Journal of Bioscience and Bioengineering, 109: 47-50. Go to original source... Go to PubMed...
  10. Li J., Li S., Liu Y., Chen X. (2009): Effects of increased ammonia on root/shoot ratio, grain yield and nitrogen use efficiency of two wheat varieties with various N supply. Plant, Soil and Environment, 55: 273-280. Go to original source...
  11. Lin C., Zhu T., Liu L., Wang D. (2010): Influences of major nutrient elements on Pb accumulation of two crops from a Pb-contaminated soil. Journal of Hazardous Materials, 174: 202-208. Go to original source... Go to PubMed...
  12. Lu R.K. (2000): Soil Agro-chemical Analysis. Agricultural Scientech Press, Beijing.
  13. Ma L.Q., Rao G.N. (1997): Effects of phosphate rock on sequential chemical extraction of lead in contaminated soils. Journal of Environmental Quality, 26: 788-794. Go to original source...
  14. Ma Q.Y., Traina S.J., Logan T.J., Ryan J.A. (1993): In situ Pb immobilization by apatite. Environmental Science and Technology, 27: 1803-1810. Go to original source...
  15. Martínez-Alcalá I., Walker D.J., Bernal M.P. (2010): Chemical and biological properties in the rhizosphere of Lupinus albus alter soil heavy metal fractionation. Ecotoxicology and Environmental Safety, 73: 595-602. Go to original source... Go to PubMed...
  16. Martín-Olmedo P., Rees R.M. (1999): Short-term N availability in response to dissolved-organic-carbon from poultry manure, alone or in combination with cellulose. Biology and Fertility of Soils, 29: 386-393. Go to original source...
  17. Miller F.S., Kilminster K.L., Degens B., Firns G.W. (2010): Relationship between metals leached and soil type from potential acid sulphate soils under acidic and neutral conditions in Western Australia. Water, Air and Soil Pollution, 205: 133-147. Go to original source...
  18. Morgan J.A.W., Bending G.D., White P.J. (2005): Biological costs and benefits to plant-microbe interactions in the rhizosphere. Journal of Experimental Botany, 56: 1729-1739. Go to original source... Go to PubMed...
  19. Pérez-Novo C., Bermúdez-Couso A., López-Periago E., FernándezCalviño D., Arias-Estévez M. (2009): The effect of phosphate on the sorption of copper by acid soils. Geoderma, 150: 166-170. Go to original source...
  20. Quartacci M.F., Irtelli B., Gonnelli C., Gabbrielli R., Navari-Izzo F. (2009): Naturally-assisted metal phytoextraction by Brassica carinata: role of root exudates. Environmental Pollution, 157: 2697-2703. Go to original source... Go to PubMed...
  21. Rajkumar M., Ae N., Prasad M.N.V., Freitas H. (2010): Potential of siderophore-producing bacteria for improving heavy metal phytoextraction. Trends in Biotechnology, 28: 142-149. Go to original source... Go to PubMed...
  22. Ruley A.T., Sharma N.C., Sahi S.V., Singh S.R., Sajwan K.S. (2006): Effects of lead and chelators on growth, photosynthetic activity and Pb uptake in Sesbania drummondii grown in soil. Environmental Pollution, 144: 11-18. Go to original source... Go to PubMed...
  23. Salah S.A., Barrington S.F. (2006): Effect of soil fertility and transpiration rate on young wheat plants (Triticum aestivum) Cd/Zn uptake and yield. Agricultural Water Management, 82: 177-192. Go to original source...
  24. Su D.C., Wong J.W., Jagadeesan H. (2004): Implications of rhizospheric heavy metals and nutrients for the growth of alfalfa in sludge amended soil. Chemosphere, 56: 957-965. Go to original source... Go to PubMed...
  25. Takáč P., Szabová T., Kozáková Ľ., Benková M. (2009): Heavy metals and their bioavailability from soils in the long-term polluted Central Spiš region of SR. Plant, Soil and Environment, 55: 167-172. Go to original source...
  26. Violante A., Huang P.M., Gadd G.M. (2007): Biophysico-chemical Processes of Heavy Metals and Metalloids in Soil Environments. John Wiley and Sons, Hoboken, New Jersey. Go to original source...
  27. Wintz H., Vulpe C. (2002): Plant copper chaperones. Biochemical Society Transactions, 30: 732-735. Go to original source... Go to PubMed...
  28. Wong J.W.C., Li K.L., Zhou L.X., Selvam A. (2007): The sorption of Cd and Zn by different soils in the presence of dissolved organic matter from sludge. Geoderma, 137: 310-317. Go to original source...
  29. Wu C., Luo Y., Zhang L. (2010): Variability of copper availability in paddy fields in relation to selected soil properties in southeast China. Geoderma, 156: 200-206. Go to original source...
  30. Xie W.J., Zhou J.M., Wang H.Y., Chen X.Q. (2008): Effect of nitrogen on the degradation of cypermethrin and its metabolite 3-phenoxybenzoic acid in soil. Pedosphere, 18: 638-644. Go to original source...
  31. Zhang F.S., Ma J., Cao Y.E. (1997): Phosphorus deficiency enhances root exudation of low-molecular weight organic acids and utilization of sparingly soluble inorganic phophorus by radish (Raghanus sativus L.) and rape (Brassica napus L.) plants. Plant and Soil, 196: 26l-264. Go to original source...
  32. Zheng S.J., He Y.F., Arakawa Y., Masaoka Y., Tang C. (2005): A copper-deficiency-induced root reductase is different from the iron-deficiency-induced one in red clover (Trifolium pratense L.). Plant and Soil, 273: 69-76. Go to original source...
  33. Zhou Z.G., Zhou J.M., Li R.Y., Wang H.Y., Wang J.F. (2007): Effect of exogenous amino acids on Cu uptake and translocation in maize seedlings. Plant and Soil, 292: 105-117. Go to original source...

This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International (CC BY NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.