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Evolution induced state shifts in a long-term microbial community experiment

Kivikoski, Mikko ; Cairns, Johannes LU orcid ; Hogle, Shane L ; Pausio, Sanna ; Becks, Lutz ; Mustonen, Ville and Hiltunen, Teppo (2026) In Proceedings of the National Academy of Sciences of the United States of America 123(22). p.1-9
Abstract

Biological communities are complex, dynamic systems that underpin ecosystem functionality, yet their long-term dynamics and predictability remain poorly understood. Understanding how Darwinian evolution shapes these systems through eco-evolutionary feedback is a central challenge in ecology and evolution. Experimental studies using simplified microbial assemblages have yielded important insights into the ecological principles governing community states. However, an important knowledge gap is how selection within member species drives changes of community state in multispecies systems. Here, we present a four-year evolution experiment involving a 23-species synthetic bacterial community propagated in two environments: a control medium... (More)

Biological communities are complex, dynamic systems that underpin ecosystem functionality, yet their long-term dynamics and predictability remain poorly understood. Understanding how Darwinian evolution shapes these systems through eco-evolutionary feedback is a central challenge in ecology and evolution. Experimental studies using simplified microbial assemblages have yielded important insights into the ecological principles governing community states. However, an important knowledge gap is how selection within member species drives changes of community state in multispecies systems. Here, we present a four-year evolution experiment involving a 23-species synthetic bacterial community propagated in two environments: a control medium and the same medium supplemented with the antibiotic streptomycin. Through combined analyses of community composition and genome evolution, we quantified the temporal changes in species abundances and the evolutionary trajectories of individual community members. The extended duration of the experiment enabled the detection of adaptive mutations and community state shifts that occur only over long evolutionary timescales. We show that community dynamics are environment dependent and reproducible across replicates and that evolution of streptomycin resistance in a previously streptomycin-sensitive species on its own can induce abrupt community state shifts. Our results provide a direct demonstration of eco-evolutionary feedbacks within a multispecies community, revealing how a single adaptive mutation can reorganize complex ecological networks.

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author
; ; ; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Streptomycin/pharmacology, Biological Evolution, Bacteria/genetics, Ecosystem, Anti-Bacterial Agents/pharmacology, Evolution, Molecular
in
Proceedings of the National Academy of Sciences of the United States of America
volume
123
issue
22
article number
e2533269123
pages
1 - 9
publisher
National Academy of Sciences
external identifiers
  • pmid:42201971
  • scopus:105040605624
ISSN
1091-6490
DOI
10.1073/pnas.2533269123
language
English
LU publication?
yes
id
20692dc8-a8a5-49d5-9f50-6a2a995782d0
date added to LUP
2026-05-28 04:32:31
date last changed
2026-09-14 09:29:41
@article{20692dc8-a8a5-49d5-9f50-6a2a995782d0,
  abstract     = {{<p>Biological communities are complex, dynamic systems that underpin ecosystem functionality, yet their long-term dynamics and predictability remain poorly understood. Understanding how Darwinian evolution shapes these systems through eco-evolutionary feedback is a central challenge in ecology and evolution. Experimental studies using simplified microbial assemblages have yielded important insights into the ecological principles governing community states. However, an important knowledge gap is how selection within member species drives changes of community state in multispecies systems. Here, we present a four-year evolution experiment involving a 23-species synthetic bacterial community propagated in two environments: a control medium and the same medium supplemented with the antibiotic streptomycin. Through combined analyses of community composition and genome evolution, we quantified the temporal changes in species abundances and the evolutionary trajectories of individual community members. The extended duration of the experiment enabled the detection of adaptive mutations and community state shifts that occur only over long evolutionary timescales. We show that community dynamics are environment dependent and reproducible across replicates and that evolution of streptomycin resistance in a previously streptomycin-sensitive species on its own can induce abrupt community state shifts. Our results provide a direct demonstration of eco-evolutionary feedbacks within a multispecies community, revealing how a single adaptive mutation can reorganize complex ecological networks.</p>}},
  author       = {{Kivikoski, Mikko and Cairns, Johannes and Hogle, Shane L and Pausio, Sanna and Becks, Lutz and Mustonen, Ville and Hiltunen, Teppo}},
  issn         = {{1091-6490}},
  keywords     = {{Streptomycin/pharmacology; Biological Evolution; Bacteria/genetics; Ecosystem; Anti-Bacterial Agents/pharmacology; Evolution, Molecular}},
  language     = {{eng}},
  month        = {{06}},
  number       = {{22}},
  pages        = {{1--9}},
  publisher    = {{National Academy of Sciences}},
  series       = {{Proceedings of the National Academy of Sciences of the United States of America}},
  title        = {{Evolution induced state shifts in a long-term microbial community experiment}},
  url          = {{http://dx.doi.org/10.1073/pnas.2533269123}},
  doi          = {{10.1073/pnas.2533269123}},
  volume       = {{123}},
  year         = {{2026}},
}