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Quantifying community assembly processes and identifying features that impose them

The ISME Journal · 2013 · Vol. 7(11) · pp. 2069–2079
James StegenXueju LinJim FredricksonXingyuan ChenDavid W. KennedyChristopher MurrayMark RockholdAllan Konopka

Abstract

Spatial turnover in the composition of biological communities is governed by (ecological) Drift, Selection and Dispersal. Commonly applied statistical tools cannot quantitatively estimate these processes, nor identify abiotic features that impose these processes. For interrogation of subsurface microbial communities distributed across two geologically distinct formations of the unconfined aquifer underlying the Hanford Site in southeastern Washington State, we developed an analytical framework that advances ecological understanding in two primary ways. First, we quantitatively estimate influences of Drift, Selection and Dispersal. Second, ecological patterns are used to characterize measured and unmeasured abiotic variables that impose Selection or that result in low levels of Dispersal. We find that (i) Drift alone consistently governs ∼25% of spatial turnover in community composition; (ii) in deeper, finer-grained sediments, Selection is strong (governing ∼60% of turnover), being imposed by an unmeasured but spatially structured environmental variable; (iii) in shallower, coarser-grained sediments, Selection is weaker (governing ∼30% of turnover), being imposed by vertically and horizontally structured hydrological factors;(iv) low levels of Dispersal can govern nearly 30% of turnover and be caused primarily by spatial isolation resulting from limited exchange between finer and coarser-grain sediments; and (v) highly permeable sediments are associated with high levels of Dispersal that homogenize community composition and govern over 20% of turnover. We further show that our framework provides inferences that cannot be achieved using preexisting approaches, and suggest that their broad application will facilitate a unified understanding of microbial communities.

Microbial Community Ecology and PhysiologySoil and Water Nutrient DynamicsGut microbiota and healthBiological dispersalAbiotic componentEcologySelection (genetic algorithm)BiologyMetacommunitySpatial ecologyComputer sciencePopulation

MeSH terms

EcologyEnvironmental MicrobiologyModels, BiologicalWashingtonGeologic SedimentsBiodiversity

Funding

  • U.S. Department of Energy
  • Battelle
  • Biological and Environmental Research
  • Pacific Northwest National Laboratory
Citations
2,420
FWCI
13.16
field-weighted impact
References
49
Percentile
99%
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References
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Microbial biogeography: putting microorganisms on the map
Nature Reviews Microbiology · 2006 · 2,993 citations
FORWARD SELECTION OF EXPLANATORY VARIABLES
Ecology · 2008 · 2,101 citations
Disentangling the importance of ecological niches from stochastic processes across scales
Philosophical Transactions of the Royal Society B Biological Sciences · 2011 · 1,625 citations
The merging of community ecology and phylogenetic biology
Ecology Letters · 2009 · 2,311 citations
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