Microbial growth strategies in soil aggregates under elevated CO2 as evaluated by Substrate Induced Growth Respiration approach (SIGR)

Maxim Dorodnikov1, Yakov Kuzyakov1, Evgenia Blagodatskaya2, Sergey Blagodatsky2, Sven Marhan3, Andreas Fangmeier4
1 Agroecosystem Research, University of Bayreuth, Germany
2 Institute of Physico-chemical and Biological Problems in Soil Science, RAS, Puschino, Russia
3 Institute of Soil Science and Land Evaluation (310), University of Hohenheim, Stuttgart, Germany
4 Institute of Landscape and Plant Ecology (320), University of Hohenheim, Stuttgart, Germany

Poster in Postersession

Microbial decomposition of soil organic matter is controlled by physico-chemical soil properties and by the amount and composition of plant deposits. Elevated atmospheric CO2 can alter plant residues composition and its amount, hence affecting the rates of microbial metabolism in soil. We investigated the effects of elevated CO2 on growth rates of soil microorganisms in bulk soil and in three aggregate-size classes.Soil samples from FACE plots (Hohenheim, Germany) under ambient (380 ppm) and elevated CO2 (540 ppm; for 5 years) were separated to aggregates using dry sieving. Bulk soil and isolated large macro- (>2 mm), small macro- (0.25-2) and microaggregates (<0.25) were amended with glucose and nutrients to stimulate unlimited microbial growth. Soil respiration was approximated based on microbial growth kinetic, and the maximal specific growth rates (μmax) and microbial biomass were calculated. The distribution of soil aggregates (>2 mm: 30%, 0.25-2 mm: 60%, and <0.25 mm: 10%) has not changed after 5 years of elevated CO2. μmax were significantly higher under elevated compared to ambient CO2. Under both CO2 treatments μmax increased in the following order: large macroaggregates < small macroaggregates < microaggregates. Total microbial biomass increased with decreasing aggregate size for both CO2 treatments. Increase of μmax under elevated CO2 indicates stimulation of fast growing microorganisms. This stimulation was especially pronounced in microaggregates.

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