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Microbial regulation of the soil carbon cycle: evidence from gene–enzyme relationships

The ISME Journal · 2016 · Vol. 10(11) · pp. 2593–2604
Pankaj TrivediManuel Delgado‐BaquerizoChanda TrivediHang‐Wei HuIan C. AndersonThomas C. JeffriesJizhong ZhouBrajesh K. Singh

Abstract

A lack of empirical evidence for the microbial regulation of ecosystem processes, including carbon (C) degradation, hinders our ability to develop a framework to directly incorporate the genetic composition of microbial communities in the enzyme-driven Earth system models. Herein we evaluated the linkage between microbial functional genes and extracellular enzyme activity in soil samples collected across three geographical regions of Australia. We found a strong relationship between different functional genes and their corresponding enzyme activities. This relationship was maintained after considering microbial community structure, total C and soil pH using structural equation modelling. Results showed that the variations in the activity of enzymes involved in C degradation were predicted by the functional gene abundance of the soil microbial community (R<sup>2</sup>>0.90 in all cases). Our findings provide a strong framework for improved predictions on soil C dynamics that could be achieved by adopting a gene-centric approach incorporating the abundance of functional genes into process models.

Microbial Community Ecology and PhysiologySoil Carbon and Nitrogen DynamicsGut microbiota and healthBiologyMicrobial population biologyAbundance (ecology)GeneEnzymeEcosystemEcologySoil microbiologyMicrobial ecologySoil carbon

MeSH terms

AustraliaBacteriaBacterial ProteinsCarbonSoilSoil MicrobiologyEcosystemCarbon Cycle

Funding

  • Grains Research and Development Corporation
Citations
588
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Cited by
Microbial necromass as the source of soil organic carbon in global ecosystems
Soil Biology and Biochemistry · 2021 · 816 citations
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