Delayed commitment to evolutionary fate in antibiotic resistance fitness landscapes
Отсроченное определение эволюционной судьбы в ландшафтах приспособленности антибиотикорезистентности
2015-06-10
SCID: 54.1/bdy8a2qw
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antibiotic resistancedihydrofolate reductaseepistatic interactionsevolutionary fitness landscapestrimethoprim resistance
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Abstract (AI)
Predicting evolutionary paths to antibiotic resistance is key for understanding and controlling drug resistance. When considering a single final resistant genotype, epistatic contingencies among mutations restrict evolution to a small number of adaptive paths. Less attention has been given to multi-peak landscapes, and while specific peaks can be favoured, it is unknown whether and how early a commitment to final fate is made. Here we characterize a multi-peaked adaptive landscape for trimethoprim resistance by constructing all combinatorial alleles of seven resistance-conferring mutations in dihydrofolate reductase. We observe that epistatic interactions increase rather than decrease the accessibility of each peak; while they restrict the number of direct paths, they generate more indirect paths, where mutations are adaptively gained and later adaptively lost or changed. This enhanced accessibility allows evolution to proceed through many adaptive steps while delaying commitment to genotypic fate, hindering our ability to predict or control evolutionary outcomes. Antibiotic resistance can evolve through the stepwise accumulation of mutations. Here, the authors reconstruct the multistep evolutionary pathway for trimethoprim resistance and show that epistatic interactions increase rather than decrease the accessibility of each adaptive peak.
Key Findings
1
A multi-peaked trimethoprim-resistance landscape was reconstructed by testing all combinatorial alleles of seven resistance-conferring mutations in dihydrofolate reductase.
2
Although epistasis restricted direct evolutionary paths, it generated additional indirect paths involving adaptive gains followed by adaptive losses or mutation changes.
3
Delayed genotypic commitment may hinder efforts to predict and control the evolution of antibiotic resistance.
4
Epistatic interactions increased, rather than decreased, the accessibility of each adaptive peak.
5
These indirect trajectories allowed evolution to accumulate many adaptive steps before committing to a final genotype, delaying prediction of evolutionary outcomes.
Research Object
The multi-peaked adaptive fitness landscape of trimethoprim resistance generated by combinatorial alleles of seven resistance-conferring mutations in dihydrofolate reductase
Research Subject
The effects of epistatic interactions on adaptive-path accessibility and the timing of commitment to final genotypic fate during trimethoprim-resistance evolution
Publication Details
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2015-06-10
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