Positive Epistasis Drives the Acquisition of Multidrug Resistance

Положительный эпистаз способствует приобретению множественной лекарственной устойчивости
Sandra Trindade, Ana Sousa, Karina B. Xavier, Francisco Dionísio, Miguel Godinho Ferreira, Isabel Gordo
2009-07-23

antibiotic resistance mutationscompensatory evolutionfitness costsmultidrug resistancepositive epistasis
The evolution of multiple antibiotic resistance is an increasing global problem. Resistance mutations are known to impair fitness, and the evolution of resistance to multiple drugs depends both on their costs individually and on how they interact--epistasis. Information on the level of epistasis between antibiotic resistance mutations is of key importance to understanding epistasis amongst deleterious alleles, a key theoretical question, and to improving public health measures. Here we show that in an antibiotic-free environment the cost of multiple resistance is smaller than expected, a signature of pervasive positive epistasis among alleles that confer resistance to antibiotics. Competition assays reveal that the cost of resistance to a given antibiotic is dependent on the presence of resistance alleles for other antibiotics. Surprisingly we find that a significant fraction of resistant mutations can be beneficial in certain resistant genetic backgrounds, that some double resistances entail no measurable cost, and that some allelic combinations are hotspots for rapid compensation. These results provide additional insight as to why multi-resistant bacteria are so prevalent and reveal an extra layer of complexity on epistatic patterns previously unrecognized, since it is hidden in genome-wide studies of genetic interactions using gene knockouts.
1
Multiple antibiotic-resistance mutations exhibit pervasive positive epistasis, making their combined fitness cost smaller than expected in antibiotic-free environments.
2
Some resistance mutations become beneficial in particular multidrug-resistant genetic backgrounds, while certain double-resistance combinations show no measurable fitness cost.
3
Specific resistance-allele combinations act as hotspots for rapid compensatory evolution.
4
The fitness cost of resistance to one antibiotic depends on which resistance alleles for other antibiotics are present.
5
These epistatic patterns help explain multidrug-resistant bacteria prevalence and are missed by genome-wide knockout studies.

antibiotic-resistant bacterial genotypes carrying multiple resistance mutations

the fitness costs and positive epistatic interactions among antibiotic resistance mutations, including their effects on multidrug resistance and compensatory evolution

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2009-07-23
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Sandra Trindade
Ana Sousa
Karina B. Xavier
Francisco Dionísio
Miguel Godinho Ferreira
Isabel Gordo
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