Related Experiment Video
Updated: Apr 23, 2026

Monitoring Spatial Segregation in Surface Colonizing Microbial Populations
Published on: October 29, 2016
Erosion of functional independence early in the evolution of a microbial mutualism
Kristina L Hillesland1, Sujung Lim2, Jason J Flowers3
1Biological Sciences, University of Washington Bothell, Bothell, WA 98011; hilleskl@uw.edu.
Abstract:
Many species have evolved to function as specialized mutualists, often to the detriment of their ability to survive independently. However, there are few, if any, well-controlled observations of the evolutionary processes underlying the genesis of new mutualisms. Here, we show that within the first 1,000 generations of initiating independent syntrophic interactions between a sulfate reducer (Desulfovibrio vulgaris) and a hydrogenotrophic methanogen (Methanococcus maripaludis), D. vulgaris frequently lost the capacity to grow by sulfate respiration, thus losing the primary physiological attribute of the genus. The loss of sulfate respiration was a consequence of mutations in one or more of three key genes in the pathway for sulfate respiration, required for sulfate activation (sat) and sulfate reduction to sulfite (apsA or apsB). Because loss-of-function mutations arose rapidly and independently in replicated experiments, and because these mutations were correlated with enhanced growth rate and productivity, gene loss could be attributed to natural selection, even though these mutations should significantly restrict the independence of the evolved D. vulgaris. Together, these data present an empirical demonstration that specialization for a mutualistic interaction can evolve by natural selection shortly after its origin. They also demonstrate that a sulfate-reducing bacterium can readily evolve to become a specialized syntroph, a situation that may have often occurred in nature.
More Related Videos
05:58Author Spotlight: Axenic Rearing of Delia antiqua to Detect the Impact of Intestinal Microbes on Its Growth and Development
Published on: December 22, 2023
04:29Author Spotlight: Developing Synthetic Microbial Communities for Generating Second-Generation Biofertilizers
Published on: May 24, 2024
Related Concept Videos
Microbial Interactions: Mutualism
Microbial Interactions: Cooperation
Microbial Interactions: Parasitism
Microbial Interactions: Competition
Evolution of New Traits in Microbes
Introduction to Microbial Ecology