Soil microbial biomass and activity under a potato crop fertilised with N with and without C

Biology and Fertility of Soils - Tập 12 - Trang 265-271 - 1992
K. Ritz1, B. S. Griffiths1, R. E. Wheatley
1Soil-Plant Dynamics Group, Cellular and Environmental, Physiology Department, Scottish Crop Research Institute, Dundee, UK

Tóm tắt

A range of soil microbiological parameters were measured at intervals throughout the growing season of a potato crop. Treatments applied to the soil at sowing were zero N fertilisation of N fertilisation at 120 kg N ha−1, either alone or supplemented with straw or sucrose at 1200 kg C ha−1. C and N flushes determined by fumigation-incubation and fumigation-extraction, and substrate-induced respiration, were measured as indicators of microbial biomass. Microbial activity was measured as respiration (CO2 production) and dehydrogenase activity (formazan production). The greatest effects were obtained from the addition of N plus sucrose. Both biomass size and activity were significantly stimulated for up to 25 days after incorporation, with the magnitude of the effects consistently diminishing over time. By 125 days after planting, there was no detectable legacy from any of the treatmentson any of the biomass parameters that were measured, and all values had reverted to those prevalent at planting. There was no consistent effect from adding N, either alone or supplemented with straw, on any of the biomass parameters. There was no evidence for crop-induced stimulation of the biomass. The experiment demonstrates that biomass is only influenced where the quantity, quality, and rate of incorporation of C into the soil is appropriate, in this case, only by adding C as a pulse of sucrose.

Tài liệu tham khảo

Amato M, Ladd JN (1988) Assay for microbial biomass based on ninhydrin-reactive nitrogen in extracts of fumigated soils. Soil Biol Biochem 20:107–114 Anderson T-H (1991) The influence of soil organic carbon on microbial growth and survival. In: Advances in soil organic matter research and the impact of agriculture on the environment. Royal Society of Chemistry, London (in press) Ayanaba A, Tuckwell SB, Jenkinson DS (1976) The effects of clearing and cropping on the organic reserves and biomass of tropical forest soils. Soil Biol Biochem 8:519–525 Brookes PC, Landman A, Pruden G, Jenkinson DS (1985) Chloroform fumigation and the release of soil nitrogen: A rapid direct extraction method to measure microbial biomass nitrogen in soil. Soil Biol Biochem 17:837–842 Chapman SJ (1986) Inoculation in the fumigation method for soil biomass determinations. Soil Biol Biochem 19:83–87 Cochran VL, Horton KA, Cole CV (1988) An estimation of microbial death rate and limitations of N or C during wheat straw decomposition. Soil Biol Biochem 20:293–298 Griffiths BS (1989) Improved extraction of iodonitrotetrazolium-formazan from soil with dimethylformamide. Soil Biol Biochem 21:179–180 Helal HM, Sauerbeck DY (1986) Effect of plant roots on carbon metabolism and soil microbial biomass. Z Pflanzenernaehr Bodenkd 149:181–188 Jenkinson DS (1988) Determination of microbial biomass carbon and nitrogen in soil. In: Wilson JR (ed) Advances in N cycling in agricultural ecosystems. Commonwealth Agricultural Bureau, Wallingford, pp 368–386 Jenkinson DS, Powlson DA (1976) The effects of biocidal treatments on metabolism in soil — V. A method for measuring soil biomass. Soil Biol Biochem 8:209–213 Knapp EB, Elliott LF, Campbell GS (1983) Microbial respiration and growth during the decomposition of wheat straw. Soil Biol Biochem 15:319–323 Lynch JM, Panting LM (1980) Cultivation and the soil microbial biomass. Soil Biol Biochem 12:29–33 Lynch JM, Panting LM (1982) Effects of season, cultivation and nitrogen fertiliser on the size of the soil microbial biomass. J Sci Food Agric 33:249–252 Martens R (1990) Contribution of rhizodeposits to the maintenance and growth of soil microbial biomass. Soil Biol Biochem 22:141–147 Merckx R, Dijkstra A, den Hartog A, van Veen JA (1987) Production of root-derived material and associated microbial growth in soil at different nutrient levels. Biol Fertil Soils: 5:126–132 Ocio JA, Brookes PC (1990) An evaluation of methods for measuring the microbial biomass in soils following recent additions of wheat straw and the characterisation of the biomass that develops. Soil Biol Biochem 22:685–694 Ocio JA, Brookes PC, Jenkinson DS (1991) Field incorporation of straw and its effects on soil microbial biomass and soil inorganic N. Soil Biol Biochem 23:171–176 Powlson DS, Brookes PC, Christensen BT (1987) Measurement of soil microbial biomass provides an early indication of changes in total soil organic matter due to straw incorporation. Soil Biol Biochem 19:159–164 Reinertsen SA, Elliott LF, Cochran VL, Campbell GS (1984) Role of available carbon and nitrogen in determining the rate of wheat straw decomposition. Soil Biol Biochem 16:459–464 Ritz K, Robinson D (1988) Temporal variations in soil microbial biomass C and N under a spring barley crop. Soil Biol Biochem 20:625–630 Ritz K, Wheatley RE (1989) Freezing as a means of preserving samples in soil respiration studies. Biol Fertil Soils 8:95–96 Roberge MR (1978) Methodology of soil enzyme measurement and extraction. In: Burns RG (ed) Soil enzymes. Academic Press, London, pp 341–370 Ross DJ (1987) Soil microbial biomass estimated by the fumigation-incubation procedure: Seasonal fluctuations and influence of soil moisture content. Soil Biol Biochem 19:397–404 Ross DJ, Orchard VA, Rhoades DA (1984) Temporal fluctuations in biochemical properties of soil under pasture: I Respiratory activity and microbial biomass. Aust J Soil Res 22:303–317 Sarathchandra SU, Perrott KW, Boase MR, Waller JE (1988) Seasonal changes and the effects of fertiliser on some chemical, biochemical and microbiological characteristics of high-producing pastoral soil. Biol Fertil Soils 6:328–335 Schnürer J, Clarholm M, Rosswall T (1986) Fungi, bacteria and protozoa in soil from four arable cropping systems. Biol Bertil Soils 2:119–126 Shan-Min S, Brookes PC, Jenkinson DS (1987) Soil respiration and the measurement of microbial biomass C by the fumigation technique in fresh and air-dried soil. Soil Biol Biochem 19:153–158 Theander O, Åman P (1978) Chemical composition of some Swedish cereal straws. Swed J Agric Res 8:189–194 Van der Werf H, Verstraete W (1987) Estimation of active soil microbial biomass by mathematical analysis of respiration curves: Calibration of the test procedure. Soil Biol Biochem 19:261–265 Van Veen JA, Merckx R, van de Geijn SC (1989), Plant- and soil related controls on the flow of carbon from roots through the soil microbial biomass. Plant and Soil 115:179–188 Vance ED, Brookes PC, Jenkinson DS (1987) An extraction method for measuring soil microbial biomass C. Soil Biol Biochem 19:703–707 Wessén B, Berg B (1986) Long-term decomposition of barley straw: Chemical changes and ingrowth of fungal mycelium. Soil Biol Biochem 18:53–59 West AW, Sparling GP (1986) Modifications to the substrate-induced respiration method to permit measurements of microbial biomass in soils of differing water contents. J Microbiol Methods 5:177–189 West AW, Sparling GP, Grant WD (1986) Correlation between four methods to estimate total microbial biomass in stored, air-dried and glucose amended soils. Soil Biol Biochem 18:569–576 Wheatley RE, Ritz K, Griffiths BS (1990) Microbial biomass and mineral N transformations in soil planted with barley, ryegrass, pea or turnip. Plant and Soil 127:157–167 Wheatley RE, Griffiths BS, Ritz K (1991) Variations in the rates of nitrification and denitrification during the growth of potatoes (Solanum tuberosum L.) in soil with different carbon inputs and the effect of these inputs on soil nitrogen and plant yield. Biol Fertil Soils 11:157–162 Whipps J (1990) Carbon economy. In: Lynch JM (ed) The rhizosphere. John Wiley, Chichester, pp 59–98 Widmer P, Brookes PC, Parry LC (1989) Microbial biomass nitrogen measurements in soils containing large amounts of inorganic nitrogen. Soil Biol Biochem 21:865–867