B13D-0646
Field measures show methanotroph sensitivity to soil moisture follows precipitation regime of the grassland sites across the US Great Plains
Monday, 14 December 2015
Poster Hall (Moscone South)
Akihiro Koyama1, Nels G. Johnson2, Paul E Brewer3, Colleen T. Webb1 and Joseph C von Fischer1, (1)Colorado State University, Fort Collins, CO, United States, (2)University of Tennessee, National Institute for Mathematical and Biological Synthesis, Knoxville, TN, United States, (3)Graduate Degree Program in Ecology, Colorado State University, Fort Collins, CO, United States
Abstract:
Methane uptake rates are known to have temporal variation in response to changing soil moisture levels. However, the relative importance of soil diffusivity vs. methanotroph physiology has not been disentangled to date. Testing methanotroph physiology in the laboratory can lead to misleading results due to changes in the fine-scale habitat where methanotrophs reside. To assay the soil moisture sensitivity of methanotrophs under field conditions, we studied 22 field plots scattered across eight Great Plains grassland sites that differed in precipitation regime and soil moisture, making ca. bi-weekly measures during the growing seasons over three years. Quantification of methanotroph activity was achieved from chamber-based measures of methane uptake coincident with SF6-derived soil diffusivity, and interpretation in a reaction-diffusion model. At each plot, we also measured soil water content (SWC), soil temperature and inorganic nitrogen (N) contents. We also assessed methanotroph community composition via 454 sequencing of the pmoA gene. Statistical analyses showed that methanotroph activity had a parabolic response with SWC (concave down), and significant differences in the shape of this response among sites. Moreover, we found that the SWC at peak methanotroph activity was strongly correlated with mean annual precipitation (MAP) of the site. The sequence data revealed distinct composition patterns, with structure that was associated with variation in MAP and soil texture. These results suggest that local precipitation regime shapes methanotroph community composition, which in turn lead to unique sensitivity of methane uptake rates with soil moisture. Our findings suggest that methanotroph activity may be more accurately modeled when the biological and environmental responses are explicitly described.