Afforestation Alters the Composition of Functional Genes in Soil and Biogeochemical Processes in South American Grasslands
- 1 October 2009
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 75 (19), 6240-6248
- https://doi.org/10.1128/aem.01126-09
Abstract
Soil microbes are highly diverse and control most soil biogeochemical reactions. We examined how microbial functional genes and biogeochemical pools responded to the altered chemical inputs accompanying land use change. We examined paired native grasslands and adjacent Eucalyptus plantations (previously grassland) in Uruguay, a region that lacked forests before European settlement. Along with measurements of soil carbon, nitrogen, and bacterial diversity, we analyzed functional genes using the GeoChip 2.0 microarray, which simultaneously quantified several thousand genes involved in soil carbon and nitrogen cycling. Plantations and grassland differed significantly in functional gene profiles, bacterial diversity, and biogeochemical pool sizes. Most grassland profiles were similar, but plantation profiles generally differed from those of grasslands due to differences in functional gene abundance across diverse taxa. Eucalypts decreased ammonification and N fixation functional genes by 11% and 7.9% ( P < 0.01), which correlated with decreased microbial biomass N and more NH 4 + in plantation soils. Chitinase abundance decreased 7.8% in plantations compared to levels in grassland ( P = 0.017), and C polymer-degrading genes decreased by 1.5% overall ( P < 0.05), which likely contributed to 54% ( P < 0.05) more C in undecomposed extractable soil pools and 27% less microbial C ( P < 0.01) in plantation soils. In general, afforestation altered the abundance of many microbial functional genes, corresponding with changes in soil biogeochemistry, in part through altered abundance of overall functional gene types rather than simply through changes in specific taxa. Such changes in microbial functional genes correspond with altered C and N storage and have implications for long-term productivity in these soils.Keywords
This publication has 43 references indexed in Scilit:
- A global meta‐analysis of soil exchangeable cations, pH, carbon, and nitrogen with afforestationEcological Applications, 2009
- Differential Responses of Nitrate Reducer Community Size, Structure, and Activity to Tillage SystemsApplied and Environmental Microbiology, 2009
- Sediment denitrifier community composition and nirS gene expression investigated with functional gene microarraysEnvironmental Microbiology, 2008
- The Microbial Engines That Drive Earth's Biogeochemical CyclesScience, 2008
- Timber investment returns for selected plantations and native forests in South America and the Southern United StatesNew Forests, 2006
- Amino acid cycling in three cold-temperate forests of the northeastern USASoil Biology and Biochemistry, 2006
- mRNA Extraction and Reverse Transcription-PCR Protocol for Detection of nifH Gene Expression by Azotobacter vinelandii in SoilApplied and Environmental Microbiology, 2003
- Terminal Restriction Fragment Length Polymorphism Data Analysis for Quantitative Comparison of Microbial CommunitiesApplied and Environmental Microbiology, 2003
- Cluster analysis and display of genome-wide expression patternsProceedings of the National Academy of Sciences, 1998
- Recent advances in BNF with non-legume plantsSoil Biology and Biochemistry, 1997