Scinovex
articleTop 10% cited

Compositional and Functional Shifts in Microbial Communities Due to Soil Warming

Soil Science Society of America Journal · 1997 · Vol. 61(2) · pp. 475–481
Gregory P. ZoggDonald R. ZakDavid B. RingelbergDavid C. WhiteNeil W. MacDonaldKurt S. Pregitzer

Abstract

Abstract Microbial decomposition processes are typically described using first‐order kinetics, and the effect of elevated temperature is modeled as an increase in the rate constant. However, there is experimental data to suggest that temperature increases the pool size of substrate C available for microbial respiration with little effect on first‐order rate constants. We reasoned that changes in soil temperature alter the composition of microbial communities, wherein dominant populations at higher temperatures have the ability to metabolize substrates that are not used by members of the microbial community at lower temperatures. To gain insight into changes in microbial community composition and function following soil warming, we used molecular techniques of phospholipid fatty acid (PLFA) and lipopolysaccharide fatty acid (LPS‐OHFA) analysis and compared the kinetics of microbial respiration for soils incubated from 5 to 25°C. Substrate pools for microbial respiration and the abundance of PLFA and LPS‐OHFA biomarkers for Gram‐positive and Gram‐negative bacteria differed significantly among temperature treatments, providing evidence for a shift in the function and composition of microbial communities related to soil warming. We suggest that shifts in microbial community composition following either large seasonal variation in soil temperature or smaller annual increases associated with global climate change have the potential to alter patterns of soil organic matter decomposition by a mechanism that is not considered by current simulation models.

Microbial Community Ecology and PhysiologyGut microbiota and healthMetabolomics and Mass Spectrometry StudiesMicrobial population biologyOrganic matterRespirationSoil waterMicroorganismChemistrySoil microbiologyEnvironmental chemistrySubstrate (aquarium)Composition (language)
Citations
761
FWCI
9.09
field-weighted impact
References
0
Percentile
99%
vs. same field & year
Citations per year
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.