Relevance of Higher-Order Epistasis in Drug Resistance
Значимость эпистаза высших порядков при лекарственной устойчивости
2020-07-31
SCID: 54.1/8d465xcw
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1,3,5-triazine antifolatesPlasmodium falciparumdihydrofolate reductasedrug resistancehigher-order epistasis
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Abstract (AI)
We studied five chemically distinct but related 1,3,5-triazine antifolates with regard to their effects on growth of a set of mutants in dihydrofolate reductase. The mutants comprise a combinatorially complete data set of all 16 possible combinations of four amino acid replacements associated with resistance to pyrimethamine in the malaria parasite Plasmodium falciparum. Pyrimethamine was a mainstay medication for malaria for many years, and it is still in use in intermittent treatment during pregnancy or as a partner drug in artemisinin combination therapy. Our goal was to investigate the extent to which the alleles yield similar adaptive topographies and patterns of epistasis across chemically related drugs. We find that the adaptive topographies are indeed similar with the same or closely related alleles being fixed in computer simulations of stepwise evolution. For all but one of the drugs the topography features at least one suboptimal fitness peak. Our data are consistent with earlier results indicating that third order and higher epistatic interactions appear to contribute only modestly to the overall adaptive topography, and they are largely conserved. In regard to drug development, our data suggest that higher-order interactions are likely to be of little value as an advisory tool in the choice of lead compounds.
Key Findings
1
At least one suboptimal fitness peak occurred in the adaptive topography for all but one drug.
2
Chemically related drugs produced similar adaptive topographies, with the same or closely related resistance alleles fixed in simulations of stepwise evolution.
3
Five chemically related 1,3,5-triazine antifolates were evaluated across all 16 combinations of four pyrimethamine-resistance mutations in Plasmodium falciparum dihydrofolate reductase.
4
Higher-order epistasis appears to offer limited value for selecting lead compounds during drug development.
5
Third-order and higher-order epistatic interactions contributed modestly to the overall adaptive topography and were largely conserved across the drugs.
Research Object
The 16 combinatorial mutants of Plasmodium falciparum dihydrofolate reductase carrying four amino acid replacements associated with pyrimethamine resistance, tested against five chemically related 1,3,5-triazine antifolates
Research Subject
The similarity of adaptive fitness topographies and the contribution and conservation of higher-order epistatic interactions across chemically related antifolate drugs
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2020-07-31
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