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Effect of Antimony on Physiological Responses of Green Chinese Cabbage and Enzyme Activities of Allitic Udic Ferrisols

Effect of Antimony on Physiological Responses of Green Chinese Cabbage and Enzyme Activities of Allitic Udic Ferrisols
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摘要 High concentrations of antimony(Sb) in soils and vegetables can cause potential health risk. However, the effect of Sb on the growth and response of crops are not well known and to date, there is still no Sb limit standard for Allitic Udic Ferrisols in China. In this study, a greenhouse experiment was carried out to investigate the effect of antimony(Sb) on biomass, physiological performances,and macro- and micronutrient element concentrations of green Chinese cabbage(Brassica chinensis L.), as well as enzyme activities,in Allitic Udic Ferrisols from Hunan Province, China. Antimony was supplied at rates of 0(control), 2, 5, 10, 20, and 50 mg kg-1and thus with the background value of 1.0 mg kg-1, the Sb concentrations in the treated soil samples were 1, 3, 6, 11 21, and 51 mg kg-1, respectively. The results showed the leaf biomass and ascorbic acid content of cabbage significantly(P < 0.05) decreased by 30.6% and 48.3%, respectively, and soil urease and dehydrogenase activities also significantly(P < 0.05) decreased by 33.6%and 32.5%, respectively, when soil Sb concentration was 21 mg kg-1as compared with the control. The uptake of essential nutrient elements such as Mg, Cu, and Zn by cabbage was obviously affected, while the leaf soluble sugar content slightly changed when the soil Sb concentration exceeded 21 mg kg-1. Based on cabbage physiological responses and soil enzyme activities, the permissible concentration of 21 mg kg-1for Sb in Allitic Udic Ferrisols should be recommended. High concentrations of antimony(Sb) in soils and vegetables can cause potential health risk. However, the effect of Sb on the growth and response of crops are not well known and to date, there is still no Sb limit standard for Allitic Udic Ferrisols in China. In this study, a greenhouse experiment was carried out to investigate the effect of antimony(Sb) on biomass, physiological performances,and macro- and micronutrient element concentrations of green Chinese cabbage(Brassica chinensis L.), as well as enzyme activities,in Allitic Udic Ferrisols from Hunan Province, China. Antimony was supplied at rates of 0(control), 2, 5, 10, 20, and 50 mg kg^-1and thus with the background value of 1.0 mg kg^-1, the Sb concentrations in the treated soil samples were 1, 3, 6, 11 21, and 51 mg kg^-1, respectively. The results showed the leaf biomass and ascorbic acid content of cabbage significantly(P 〈 0.05) decreased by 30.6% and 48.3%, respectively, and soil urease and dehydrogenase activities also significantly(P 〈 0.05) decreased by 33.6%and 32.5%, respectively, when soil Sb concentration was 21 mg kg^-1as compared with the control. The uptake of essential nutrient elements such as Mg, Cu, and Zn by cabbage was obviously affected, while the leaf soluble sugar content slightly changed when the soil Sb concentration exceeded 21 mg kg^-1. Based on cabbage physiological responses and soil enzyme activities, the permissible concentration of 21 mg kg^-1for Sb in Allitic Udic Ferrisols should be recommended.
出处 《Pedosphere》 SCIE CAS CSCD 2015年第1期124-129,共6页 土壤圈(英文版)
基金 supported by the National Natural Science Foundation of China(No.41201492) the Science and Technology Project of Changsha City,China(No.K1003056-31)
关键词 ascorbic acid biomass DEHYDROGENASE nutrient elements permissible Sb concentration soluble sugar UREASE 脱氢酶活性 生理反应 富铁土 小白菜 中国 富铝 元素浓度
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参考文献30

  • 1An, Y. J. and Kim, M. 2009. Effect of antimony on the microbial growth and the activities of soil enzymes. Chemosphere. 74: 654-659. 被引量:1
  • 2Chang, A. C., Pan, G. X., Page, A. L. and Asano, T. 2002. Developing Human Health-Related Chemical Guidelines for Reclaimed Water and Sewage Sludge Applications in Agricul- ture. World Health Organization, Division of Environmental Health, Geneva. 被引量:1
  • 3China National Environmental Monitoring Center (CNEMC). 1990. Chinese Soil Element Background Values (in Chinese). China Environmental Science Press, Beijing. 被引量:1
  • 4Crommentuijn, T., Sijm, D., de Bruijn, J., van den Hoop, M., van Leeuwen, K. and van de Plassche, E. 2000. Maximum permissible and negligible concentrations for metals and me- talloids in the Netherlands, taking into account background concentrations. J. Environ. Manage. 60: 121-143. 被引量:1
  • 5Hammel, W., Debus, R. and Steubing, L. 2000. Mobility of anti- mony in soil and its availability to plants. Chemospherc. 41: 1791-1798. 被引量:1
  • 6He, M. C., Wang, X. Q., Wu, F. C. and Fu, Z. Y. 2012. Antimony pollution in China. Sci. Total Environ. 421-422: 41-50. 被引量:1
  • 7He, M. C. and Yang, J. R. 1999. Effects of different forms of an- timony on rice during the period of germination and growth and antimony concentration in rice tissue. Sci. Total Envi- ron. 243-244: 149-155. 被引量:1
  • 8Hozhina, E. I., Khramov, A. A., Gerasimov, P. A. and Kuma- rkov, A. A. 2001. Uptake of heavy metals, arsenic, and an- timony by aquatic plants in the vicinity of ore mining and processing industries. J. Geochem. Explor. 74:153-162. 被引量:1
  • 9Gong, Z. T. 1999. Chinese Soil Taxonomy: Theories, Methods and Practices (in Chinese). Science Press, Beijing. 被引量:1
  • 10Johnson, C. A., Moench, H., Wersin, P., Kugler, P. and Wenger, C. 2005. Solubility of antimony and other elements in sam- ples taken from shooting ranges. J. Environ. Qual. 34: 248- 254. 被引量:1

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