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Challenges in microbial ecology: building predictive understanding of community function and dynamics

The ISME Journal · 2016 · Vol. 10(11) · pp. 2557–2568
Stefanie WidderRosalind J. AllenThomas PfeifferThomas P. CurtisCarsten WiufWilliam T. SloanOtto X. CorderoSam P. BrownBabak MomeniWenying ShouHelen KettleHarry J. FlintAndreas F. HaasBéatrice LarocheJan‐Ulrich KreftPaul B. RaineyShiri FreilichStefan SchusterKim MilferstedtJan Roelof van der MeerTobias GroβkopfJef HuismanAndrew FreeCristian PicioreanuChristopher QuinceIsaac KlapperSimon LabartheBarth F. SmetsHarris H. WangOrkun S. Soyer

Abstract

The importance of microbial communities (MCs) cannot be overstated. MCs underpin the biogeochemical cycles of the earth's soil, oceans and the atmosphere, and perform ecosystem functions that impact plants, animals and humans. Yet our ability to predict and manage the function of these highly complex, dynamically changing communities is limited. Building predictive models that link MC composition to function is a key emerging challenge in microbial ecology. Here, we argue that addressing this challenge requires close coordination of experimental data collection and method development with mathematical model building. We discuss specific examples where model-experiment integration has already resulted in important insights into MC function and structure. We also highlight key research questions that still demand better integration of experiments and models. We argue that such integration is needed to achieve significant progress in our understanding of MC dynamics and function, and we make specific practical suggestions as to how this could be achieved.

Microbial Community Ecology and PhysiologyMicrobial Metabolic Engineering and BioproductionGut microbiota and healthBiologyEcologyMicrobial ecologyFunction (biology)Microbial population biologyFunctional ecologyEvolutionary biologyEcosystemBacteria

MeSH terms

Air MicrobiologyAnimalsHumansModels, TheoreticalSeawaterSoil MicrobiologyEcosystem

Funding

  • Division of Mathematical Sciences
  • Army Research Office
  • Isaac Newton Institute for Mathematical Sciences
  • Directorate for Biological Sciences
  • Medical Research Council
  • Engineering and Physical Sciences Research Council
  • Biotechnology and Biological Sciences Research Council
Citations
767
FWCI
86.62
field-weighted impact
References
78
Percentile
100%
vs. same field & year
Citations per year
References
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Nature Reviews Microbiology · 2009 · 2,692 citations
What is flux balance analysis?
Nature Biotechnology · 2010 · 4,019 citations
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Nature Reviews Drug Discovery · 2003 · 2,729 citations
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