Soil & Water Res., 2010, 5(1):21-27 | DOI: 10.17221/11/2009-SWR
The influence of heavy metals on soil biological and chemical propertiesOriginal Paper
- Crop Research Institute, Prague-Ruzyně, Czech Republic
Soil samples were collected at alluvial sites of the Litavka River, which flows through the Beroun and Příbram cities in Central Bohemia Region of the Czech Republic in 2005 and 2006. Higher heavy metal content in soils (Cd, Pb, Zn, Cu) is due to composition of the parent rock, emissions from lead processing industry and the leak of toxic material from the steel works sludge ponds in the 1970s and 1980s. The samples were collected from six sites located at different distances from the contamination source (the former sludge ponds) and chemical and biological properties were determined. The ratio of the microbial biomass carbon to oxidisable carbon content dropped down significantly on more heavily contaminated sites. Basal respiration activity did not correlate with the content of heavy metals in soil, but there was certain declining tendency with increasing intensity of soil contamination. Respiration activities significantly correlated with the total carbon, oxidisable carbon and the total nitrogen content. The metabolic quotient showed higher values with increasing contamination. Dehydrogenases and arylsulphatase activities decreased with increasing contamination. Urease activity has also a declining tendency but its relation to different intensity of contamination was not unambiguous. Urease activity has shown a relationship with the content of total nitrogen in soil. No relationship was found between the total sulphur content and arylsulphatase activity. Dehydrogenases, arylsulfatase and urease activities significantly correlated with the microbial biomass carbon.
Keywords: biological activities; carbon; enzymatic activities; heavy metals; metabolic quotient; nitrogen; respiration activity; soil; sulphur
Published: March 31, 2010 Show citation
References
- Alten F., Wandrowski B., Knippenberg E. (1935): Beitrag zur Humusbestimmung. Ergebniss der Agrikultuchemie 4: 61-69.
- Bååth E. (1989): Effects of heavy metals in soil on microbial processes and populations (a review). Water, Air and Soil Pollution, 47: 335-379.
Go to original source...
- Borůvka L., Huan-Wei CH., Kozák J., Krištoufková S. (1996): Heavy contamination of soil with cadmium, lead and zinc in the alluvium of the Litavka river. Rostlinná výroba, 42: 543-550.
- Brookes P.C. (1995): The use of microbiological parameters in monitoring soil pollution by heavy metals. Biology and Fertility of Soils, 19: 269-279.
Go to original source...
- Castaldi S., Rutigliano F.A., Virzo De Santo A. (2004): Suitability of soil microbial parameters as indicators of heavy metal pollution. Water, Air and Soil Pollution, 158: 21-35.
Go to original source...
- Dahlin S., Witter E., Mĺrtensson A.M., Turner A., Bååth E. (1997): Where's the limit? Changes in the microbial properties of agricultural soils at low levels of metal contamination. Soil Biology and Biochemistry, 29: 1405-1415.
Go to original source...
- Giller K.E., Witter E., McGrath S.P. (1998): Toxicity of heavy metals to microorganisms and microbial processes in agricultural soils. Soil Biology and Biochemistry, 30: 1389-1414.
Go to original source...
- Kandeler E., Gerber H. (1988): Short-term assay of soil urease activity using colorimetric determination of ammonium. Biology and Fertility of Soils, 6: 68-72.
Go to original source...
- Leita L., De Nobili M., Mondini C., Műhlbachová G., Marchiol L., Bragato G., Contin M. (1999): Influence of inorganic and organic fertilization on soil microbial biomass, metabolic quotient and heavy metal bioavailability. Biology and Fertility of Soils, 28: 371-376
Go to original source...
- Mikanová O. (2006): Effects of heavy metals on some soil biological parameters. Journal of Geochemical Exploration, 88: 220-223.
Go to original source...
- Nannipieri P., Badalucco L., Landi L., Pietramellara G. (1997): Measurement in assessing the risk of chemicals to the soil ecosystem. In: Zelikoff J.T. (ed.): Ecotoxicology: Responses, Biomarkers and Risk Assessment. OECD Workshop. SOS Publ. Fair Haven, New York, 507-534.
- Šantrůčková H. (1993): Soil respiration as a measure of soil biological activity. Rostlinná výroba, 39: 769-778. (in Czech)
- Šimon T. (1999): The effect of increasing rates of nickel and arsenic on the growth of radish and soil microflora. Rostlinná výroba, 45: 421-430. (in Czech)
- Šmejkalová M., Mikanová O., Borůvka L. (2003): Effects of heavy metal concentrations on biological activity of soils microorganisms. Plant, Soil and Environment, 49: 321-326.
Go to original source...
- Tabatabai M.A., Bremner J.B. (1970): Arylsulphatase activity of soils. Soil Science Society of America Proceedings, 34: 225-229.
Go to original source...
- Thalmann A. (1968): Zur Metodik der Bestimmung der Dehydrogenaseaktivität im Boden mittels Triphenyltetrazoliumchlorid (TTC). Landwirtschliche Forschung, 21: 249-258.
- Tobor-Kapłon M.A., Bloem J., Rőmkens P. F. A.M., Ruiter P. C. (2005): Functional stability of microbial communities in contaminated soils. Oikos, 111: 119-129.
Go to original source...
- Vance E.D., Brookes P.C., Jenkinson D.S. (1987): An extraction method for measuring soil microbial biomass. Soil Biology and Biochemistry, 19: 703-707.
Go to original source...
- Wood M. (1995): Environmental Soil Biology. The University Press, Cambridge, 1-150.
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.