PLFA Analysis of Soil Microbial Community Structure in Different Forest Types
- 1 Jiangxi Provincial Key Laboratory of Soil Erosion and Prevention, Nanchang, China
- 2 College of Life Sciences, Key Laboratory of Poyang Lake Wetland and Watershed Research, Ministry of Education, Jiangxi Normal University, Nanchang, China
- 3 College of Foreign Languages, Jiangxi Agricultural University, Nanchang, China
- 4 Jiangxi Provincial Key Laboratory of Soil Erosion and Prevention, Nanchang, China
- 5 College of Life Sciences, Key Laboratory of Poyang Lake Wetland and Watershed Research, Ministry of Education, Jiangxi Normal University, Nanchang, China
Abstract
Soil soluble organic matter is an important component in the study of carbon and nitrogen cycling in terrestrial ecosystems. Soil microorganisms, as soil decomposers, participate in soil biogeochemical processes and play an important role in maintaining the balance of soil ecosystems. As a typical subtropical regional unit, Queensland, Australia, is a relatively concentrated distribution area of forests in Australia. It is very sensitive to climate change and plays an important role in Australian climate and even global climate change. Its unique natural environment and ecosystem occupy a special position in the world. However, the knowledge of available carbon and nitrogen pool and microbial activity in forest soil is still very limited. Pinus elliottii , Araucaria cunninghamii and Agathis australis are the three most important forest types in southern Queensland, Australia. In our research, the function and structural diversity of soil microbial communities of these three forest types were studied using biochemical and molecular biological methods, and the effective carbon and nitrogen pools of soil of different forest types and related microbial processes were discussed, which has important theoretical guiding significance for further research on the structure and function of soil ecosystem. The number of PLFAs in the soil of P. elliottii was 45, the number of PLFAs in the soil of Araucaria cunninghamii and Agathis australis was 39 and 35, respectively. The number and content of PLFAs monomer in P. elliottii were higher than those in the other two kinds of forest soil.
- Nannipieri, P., Ascher, J., Ceccherini, M.T., Landi, L., Pietramellara, G. and Renella, G. (2003) Microbial Diversity and Soil Functions. European Journal of Soil Science , 54, 655-670. https://doi.org/10.1046/j.1351-0754.2003.0556.x
- Tunlid, A., Baird, B.H., Trexler, M.B., Olsson, S., Findlay, R.H., Odham, G., et al . (1985) Determination of Phospholipid Ester-Linked Fatty Acids and Poly Β-Hydroxybutyrate for the Estimation of Bacterial Biomass and Activity in the Rhizosphere of the Rape Plant Brassica napus (L.). Canadian Journal of Microbiology , 31, 1113-1119. https://doi.org/10.1139/m85-210
- Haack, S.K., Garchow, H., Odelson, D.A., Forney, L.J. and Klug, M.J. (1994) Accuracy, Reproducibility, and Interpretation of Fatty Acid Methyl Ester Profiles of Model Bacterial Communities. Applied and Environmental Microbiology , 60, 2483-2493. https://doi.org/10.1128/aem.60.7.2483-2493.1994
- Haldeman, D.L., Amy, P.S., Ringelberg, D., White, D.C., Garen, R.E. and Ghiorse, W.C. (1995) Microbial Growth and Resuscitation Alter Community Structure after Perturbation. FEMS Microbiology Ecology , 17, 27-38. https://doi.org/10.1111/j.1574-6941.1995.tb00124.x
- Lundquist, E.J., Scow, K.M., Jackson, L.E., Uesugi, S.L. and Johnson, C.R. (1999) Rapid Response of Soil Microbial Communities from Conventional, Low Input, and Organic Farming Systems to a Wet/Dry Cycle. Soil Biology and Biochemistry , 31, 1661-1675. https://doi.org/10.1016/s0038-0717(99)00080-2
- White, D.C., Davis, W.M., Nickels, J.S., King, J.D. and Bobbie, R.J. (1979) Determination of the Sedimentary Microbial Biomass by Extractible Lipid Phosphate. Oecologia , 40, 51-62. https://doi.org/10.1007/bf00388810
- Frostegård, Å., Tunlid, A. and Bååth, E. (1993) Phospholipid Fatty Acid Composition, Biomass, and Activity of Microbial Communities from Two Soil Types Experimentally Exposed to Different Heavy Metals. Applied and Environmental Microbiology , 59, 3605-3617. https://doi.org/10.1128/aem.59.11.3605-3617.1993
- Kasurinen, A., Keinänen, M.M., Kaipainen, S., Nilsson, L., Vapaavuori, E., Kontro, M.H., et al . (2005) Below-Ground Responses of Silver Birch Trees Exposed to Elevated CO 2 and O 3 Levels during Three Growing Seasons. Global Change Biology , 11, 1167-1179. https://doi.org/10.1111/j.1365-2486.2005.00970.x
- Balkwill, D.L., Leach, F.R., Wilson, J.T., McNabb, J.F. and White, D.C. (1988) Equivalence of Microbial Biomass Measures Based on Membrane Lipid and Cell Wall Components, Adenosine Triphosphate, and Direct Counts in Subsurface Aquifer Sediments. Microbial Ecology , 16, 73-84. https://doi.org/10.1007/bf02097406