Abstract

Mutation-mediated treatment resistance is one of the primary challenges for modern antibiotic and anti-cancer therapy. Yet, many resistance mutations have a substantial fitness cost and are subject to purifying selection. How emerging resistant lineages may escape purifying selection via subsequent compensatory mutations is still unclear due to the difficulty of tracking such evolutionary rescue dynamics in space and time. Here, we introduce a system of fluorescence-coupled synthetic mutations to show that the probability of evolutionary rescue, and the resulting long-term persistence of drug resistant mutant lineages, is dramatically increased in dense microbial populations. By tracking the entire evolutionary trajectory of thousands of resistant lineages in expanding yeast colonies we uncover an underlying quasi-stable equilibrium between the opposing forces of radial expansion and natural selection, a phenomenon we term inflation-selection balance. Tailored computational models and agent-based simulations corroborate the fundamental nature of the observed effects and demonstrate the potential impact on drug resistance evolution in cancer. The described phenomena should be considered when predicting multi-step evolutionary dynamics in any mechanically compact cellular population, including pathogenic microbial biofilms and solid tumors. The insights gained will be especially valuable for the quantitative understanding of response to treatment, including emerging evolution-based therapy strategies.

Antibiotic and anti-cancer therapy are challenged by mutation-mediated treatment resistance despite many mutations being maladaptive. Here, the authors introduce a system that shows how the probability of the long-term persistence of drug-resistant mutant lineages can be increased in dense microbial populations by acquiring multiple mutations.

Details

Title
Evolutionary rescue of resistant mutants is governed by a balance between radial expansion and selection in compact populations
Author
Aif, Serhii 1   VIAFID ORCID Logo  ; Appold, Nico 1   VIAFID ORCID Logo  ; Kampman, Lucas 2   VIAFID ORCID Logo  ; Hallatschek, Oskar 3   VIAFID ORCID Logo  ; Kayser, Jona 1   VIAFID ORCID Logo 

 Max Planck Institute for the Science of Light & Max-Planck-Zentrum für Physik und Medizin, Erlangen, Germany (GRID:grid.419562.d) (ISNI:0000 0004 0374 4283); Friedrich-Alexander-University Erlangen-Nürnberg, Department of Physics, Erlangen, Germany (GRID:grid.5330.5) (ISNI:0000 0001 2107 3311) 
 University of California, Department of Physics, Berkeley, USA (GRID:grid.47840.3f) (ISNI:0000 0001 2181 7878); University of California, Department of Integrative Biology, Berkeley, USA (GRID:grid.47840.3f) (ISNI:0000 0001 2181 7878) 
 University of California, Department of Physics, Berkeley, USA (GRID:grid.47840.3f) (ISNI:0000 0001 2181 7878); University of California, Department of Integrative Biology, Berkeley, USA (GRID:grid.47840.3f) (ISNI:0000 0001 2181 7878); Leipzig University, Peter Debye Institute for Soft Matter Physics, Leipzig, Germany (GRID:grid.9647.c) (ISNI:0000 0004 7669 9786) 
Pages
7916
Publication year
2022
Publication date
2022
Publisher
Nature Publishing Group
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2757228782
Copyright
© The Author(s) 2022. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.