Initial Mutations Direct Alternative Pathways of Protein Evolution

Начальные мутации направляют альтернативные пути эволюции белка
Merijn L.M. Salverda, Eynat Dellus, Florien A. Gorter, Alfons J. M. Debets, John van der Oost, Rolf F. Hoekstra, Dan S. Tawfik, J. Arjan G. M. de Visser
2011-03-03

TEM-1 β-lactamaseantibiotic resistanceepistasisprotein evolutionsign epistasis
Whether evolution is erratic due to random historical details, or is repeatedly directed along similar paths by certain constraints, remains unclear. Epistasis (i.e. non-additive interaction between mutations that affect fitness) is a mechanism that can contribute to both scenarios. Epistasis can constrain the type and order of selected mutations, but it can also make adaptive trajectories contingent upon the first random substitution. This effect is particularly strong under sign epistasis, when the sign of the fitness effects of a mutation depends on its genetic background. In the current study, we examine how epistatic interactions between mutations determine alternative evolutionary pathways, using in vitro evolution of the antibiotic resistance enzyme TEM-1 β-lactamase. First, we describe the diversity of adaptive pathways among replicate lines during evolution for resistance to a novel antibiotic (cefotaxime). Consistent with the prediction of epistatic constraints, most lines increased resistance by acquiring three mutations in a fixed order. However, a few lines deviated from this pattern. Next, to test whether negative interactions between alternative initial substitutions drive this divergence, alleles containing initial substitutions from the deviating lines were evolved under identical conditions. Indeed, these alternative initial substitutions consistently led to lower adaptive peaks, involving more and other substitutions than those observed in the common pathway. We found that a combination of decreased enzymatic activity and lower folding cooperativity underlies negative sign epistasis in the clash between key mutations in the common and deviating lines (Gly238Ser and Arg164Ser, respectively). Our results demonstrate that epistasis contributes to contingency in protein evolution by amplifying the selective consequences of random mutations.
1
A few evolutionary lines followed alternative pathways rather than the predominant adaptive trajectory.
2
Epistasis amplifies the selective consequences of random initial mutations, making protein evolution contingent on early substitutions.
3
Negative sign epistasis between Gly238Ser and Arg164Ser was associated with reduced enzymatic activity and lower folding cooperativity.
4
Re-evolution experiments showed that alternative initial substitutions consistently produced lower adaptive peaks and required different, additional substitutions.
5
Replicate TEM-1 β-lactamase populations evolving resistance to cefotaxime mostly acquired three mutations in a fixed order, indicating strong epistatic constraints.

TEM-1 β-lactamase enzyme evolving in vitro under selection for resistance to cefotaxime

Epistatic determination of alternative adaptive pathways, including the effects of initial substitutions, mutation order, fitness peaks, and negative sign epistasis

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2011-03-03
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Merijn L.M. Salverda
Eynat Dellus
Florien A. Gorter
Alfons J. M. Debets
John van der Oost
Rolf F. Hoekstra
Dan S. Tawfik
J. Arjan G. M. de Visser
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