Metabolism and the evolution of social behavior Journal Article


Authors: Boyle, K. E.; Monaco, H. T.; Deforet, M.; Yan, J.; Wang, Z.; Rhee, K.; Xavier, J. B.
Article Title: Metabolism and the evolution of social behavior
Abstract: How does metabolism influence social behavior? This fundamental question at the interface of molecular biology and social evolution is hard to address with experiments in animals, and therefore, we turned to a simple microbial system: swarming in the bacterium Pseudomonas aeruginosa. Using genetic engineering, we excised a locus encoding a key metabolic regulator and disrupted P. aeruginosa's metabolic prudence, the regulatory mechanism that controls expression of swarming public goods and protects this social behavior from exploitation by cheaters. Then, using experimental evolution, we followed the joint evolution of the genome, the metabolome and the social behavior as swarming re-evolved. New variants emerged spontaneously with mutations that reorganized the metabolome and compensated in distinct ways for the disrupted metabolic prudence. These experiments with a unicellular organism provide a detailed view of how metabolism-currency of all physiological processes-can determine the costs and benefits of a social behavior and ultimately influence how an organism behaves towards other organisms of the same species. © The Author 2017. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution.
Keywords: genetics; mutation; metabolism; transcription factor; transcription factors; bacterial protein; bacterial proteins; social behavior; genome sequencing; pseudomonas aeruginosa; bacteria; metabolomics; procedures; swarming; experimental evolution; directed molecular evolution; social evolution theory; cbra protein, pseudomonas aeruginosa
Journal Title: Molecular Biology and Evolution
Volume: 34
Issue: 9
ISSN: 0737-4038
Publisher: Oxford University Press  
Date Published: 2017-09-01
Start Page: 2367
End Page: 2379
Language: English
DOI: 10.1093/molbev/msx174
PUBMED: 28595344
PROVIDER: scopus
PMCID: PMC5850603
DOI/URL:
Notes: Article -- Export Date: 2 January 2018 -- Source: Scopus
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  1. Joao Debivar Xavier
    97 Xavier
  2. Maxime Jean-Marie Deforet
    10 Deforet
  3. Kerry Eileen Boyle
    7 Boyle
  4. Jinyuan Yan
    9 Yan
  5. Hilary Taylor Monaco
    4 Monaco