期刊文献+

镉污染对水稻土微生物量、酶活性及水稻生理指标的影响 被引量:76

Effects of Cd contamination on paddy soil microbial biomass and enzyme activities and rice physiological indices
下载PDF
导出
摘要 水稻盆栽条件下,研究了外源Cd不同处理对土壤微生物学指标、土壤酶活性及部分水稻生理指标的影响.结果表明,土壤微生物量C和N开始随Cd浓度增加而上升,到一定浓度时则随Cd浓度增加而下降,其转折点因土壤性质有所差异.同时土壤酶活性变化规律与土壤微生物量C、N变化规律相似,但其转折点浓度因土壤类型及土壤酶种类不同而有差异.Cd污染后的变异系数依次为:脱氢酶>酸性磷酸酶>脲酶.土壤呼吸作用强度和代谢熵都随Cd浓度增大而缓慢增加.水稻叶绿素含量随Cd处理浓度增加表现出先上升后下降,其转折点受供试土壤性质不同而不同;脯氨酸含量与过氧化物酶活性随着Cd处理浓度增大而增加.Cd污染后水稻生理指标的变异系数在黄松田水稻土中依次为过氧化物酶活性>叶绿素含量>脯氨酸含量;黄红壤性水稻土中依次为过氧化物酶活性>脯氨酸含量>叶绿素含量.相关分析表明,种植水稻条件下Cd污染对土壤微生物量、酶活性及水稻生理指标的影响是相辅相成的. A pot experiment with rice under submerged condition showed that with the increase of Cd concentration, soil microbial biomass carbon(Cmic)and nitrogen(Nmic) increased initially but decreased at a certain concentration, and the turning points varied with different soil types. Soil enzyme activities had the similar variation trend with soil Cmic and Nmic, and the turning points varied with different soil types and soil enzymes. The variation coefficients were in order of dehydrogenase activity 〉 acid phosphatase activity 〉 urease activity. Soil respiration rate and metabolic quotient increased tardily with increasing cadmium concentration. The chlorophyll content of rice increased initially but decreased then with the increase of Cd contamination, and the turning points differed with different soil types. Rice proline content and peroxidase activity were enhanced gradually with increasing cadmium concentration. The variation coefficients of rice physiological indices on paddy soils derived from silty loam and clayed red earth were in order of peroxidase activity 〉 chlorophyll content 〉 proline content, and peroxidase activity 〉 proline content 〉 chlorophyll content, respectively. Correlation analysis indicated that there was a close correlation between the variations of soil microbial biomass and enzymatic activities and rice physiological indices under Cd contamination.
出处 《应用生态学报》 CAS CSCD 北大核心 2005年第11期2162-2167,共6页 Chinese Journal of Applied Ecology
基金 国家自然科学基金项目(40201026 40371063) 国家重点基础研究发展规划资助项目(2002CB410804).
关键词 水稻土 CD污染 土壤微生物量 土壤酶活性 水稻生理指标 Paddy soil, Cd contamination, Soil microbial biomass, Soil enzymatic activity, Rice physiological indices.
  • 相关文献

参考文献28

  • 1Alvarez R, Diaz RA, Barbero N, et al. 1995. Soil organic carbon,microbial biomass and CO2-C production from three tillage systems.Soil Tillage Res, 33:17 ~ 28.
  • 2Aoyama M, Nagumo T. 1996. Factors affecting microbial biomass and dehydrogenase activity in apple orchard soils with heavy metal accumulation. Sol Sci Plant Nutr, 42: 821 ~ 831.
  • 3Brookes PC, Landman A, Pruden G. 1985. Chloroform fumigation and the release of soil nitrogen: A rapid extraction method to measure microbial biomazs nitrogen in soil. Soil Biol Biochem, 17(6):837 ~ 842.
  • 4Chander K, Brookes PC. 1995. Microbial biomass dynamics following addition of metal enriched sewage sludge to a sandy loam. Soil Biol Biochem, 27:1409~ 1421.
  • 5陈怀满.1996.Heavy Metal Contamination in SoilPlant System.Beijing:Science Press.112~189.
  • 6陈素华,孙铁珩,周启星,吴国平.微生物与重金属间的相互作用及其应用研究[J].应用生态学报,2002,13(2):239-242. 被引量:140
  • 7Chien HF, Kao CH. 2000. Accumulation of ammonium in rice leaves in response to excess cadmium. Plant Sci, 156:111 ~ 115.
  • 8关松荫. 1987. Soil Enzyme and Its Research Methods.Beijing:Agricultural Press. 274~339.
  • 9黄昌勇. 2000. Soil Science. Beijing: China Agricultural Press 192~214.
  • 10Huang CY, Khan KS, Xie ZM. 1998. Effects of cadmium lead and their interaction on the size of microbial biomass in a red soil. Soil Environ, 1(3) :227~236.

二级参考文献78

  • 1张春桂,许华夏,姜晴楠,张素纯,李琳,刘期松.高浓度Cd、Pb污染水域中的微生物生态[J].应用生态学报,1993,4(4):423-429. 被引量:1
  • 2杨居荣,任燕,刘虹,王力平.砷对土壤微生物及土壤生化活性的影响[J].土壤,1996,28(2):101-104. 被引量:32
  • 3陈祖义,程薇,成冰.^(14)C-绿磺隆的土壤结合残留及其有效性[J].南京农业大学学报,1996,19(2):78-83. 被引量:26
  • 4华小梅,单正军.我国农药的生产,使用状况及其污染环境因子分析[J].环境科学进展,1996,4(2):33-45. 被引量:262
  • 5[25]Fritze H, Pennanen T, Vanhala P,et al.1997.Impact of fertilizers on the humus layer microbial community of scots pine stands growing along a gradient of heavy metal pollution.In:Insam H,Raugger A,eds.Microbial Communities:Functional Versus Structural Approaches.Heidelberg,Germany:Springer-Verlag.68~83
  • 6[26]Giller KE, Witter E, McGrath SP.1998.Toxicity of heavy metals to microorganisms and microbial processes in agricultural soils: a review.Soil Biol Biochem,30(10~11): 1389~1414
  • 7[27]Glockemann B, Larink O.1989.The effect of sewage sludge manures and heavy metals on mites (Gamasida) in an agricultural soil.Pedobiologia,33(4): 237~246
  • 8[28]Griffiths BS, Diaz Ravina M, Ritz K,et al.1997.Community DNA hybridisation and %G+C profiles of microbial communities from heavy metal polluted soils. FEMS Microbiol Ecol,24(2):103~112
  • 9[29]Haanstra L, Doelman P.1984.Glutamic acid decomposition as a sensitive measure of heavy metal pollution in soil.Soil Biol Biochem,16(6): 595~600
  • 10[30]Haanstra L, Doelman P.1991.An ecological dose-response model approach to short- and long-term effects of heavy metals on arylsulphatase activity in soil.Biol Ferti Soils,11(1): 18~23

共引文献273

同被引文献1228

引证文献76

二级引证文献531

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部