High-Order Epistasis in Catalytic Power of Dihydrofolate Reductase Gives Rise to a Rugged Fitness Landscape in the Presence of Trimethoprim Selection
Эпистаз высокого порядка в каталитической способности дигидрофолатредуктазы формирует изрезанный ландшафт приспособленности в условиях селекции триметопримом
2019-04-08
SCID: 54.1/4875hxga
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dihydrofolate reductasehigh-order epistasisrugged fitness landscapesteady-state kineticstrimethoprim resistance
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Abstract (AI)
Evolutionary fitness landscapes of several antibiotic target proteins have been comprehensively mapped showing strong high-order epistasis between mutations, but understanding these effects at the biochemical and structural levels remained open. Here, we carried out an extensive experimental and computational study to quantitatively understand the evolutionary dynamics of Escherichia coli dihydrofolate reductase (DHFR) enzyme in the presence of trimethoprim-induced selection. To facilitate this, we developed a new in vitro assay for rapidly characterizing DHFR steady-state kinetics. Biochemical and structural characterization of resistance-conferring mutations targeting a total of ten residues spanning the substrate binding pocket of DHFR revealed distinct changes in the catalytic efficiencies of mutated DHFR enzymes. Next, we measured biochemical parameters (Km, Ki, and kcat) for a mutant library carrying all possible combinations of six resistance-conferring DHFR mutations and quantified epistatic interactions between them. We found that the high-order epistasis in catalytic power of DHFR (kcat and Km) creates a rugged fitness landscape under trimethoprim selection. Taken together, our data provide a concrete illustration of how epistatic coupling at the level of biochemical parameters can give rise to complex fitness landscapes, and suggest new strategies for developing mutant specific inhibitors.
Key Findings
1
A new in vitro assay was developed for rapid characterization of dihydrofolate reductase steady-state kinetics.
2
Biochemical parameters Km, Ki, and kcat were measured for all combinations of six resistance-conferring DHFR mutations, enabling quantitative epistasis analysis.
3
High-order epistasis in DHFR catalytic power, particularly involving kcat and Km, generates a rugged fitness landscape under trimethoprim selection.
4
Mutations at ten substrate-binding-pocket residues produced distinct changes in DHFR catalytic efficiencies and conferred trimethoprim resistance.
5
The results link biochemical epistatic interactions to complex evolutionary landscapes and suggest strategies for developing mutant-specific inhibitors.
Research Object
Escherichia coli dihydrofolate reductase (DHFR) enzyme and its resistance-conferring mutants under trimethoprim selection
Research Subject
High-order epistatic interactions among DHFR mutations and their effects on catalytic efficiency and the resulting rugged fitness landscape
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2019-04-08
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