Mapping the Fitness Landscape of Gene Expression Uncovers the Cause of Antagonism and Sign Epistasis between Adaptive Mutations
Картирование ландшафта приспособленности экспрессии генов выявляет причины антагонизма и эпистаза со сменой знака между адаптивными мутациями
2014-02-27
SCID: 54.1/psk26q6q
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Methylobacterium extorquenscentral metabolismfitness landscapegene expressionsign epistasis
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Abstract (AI)
How do adapting populations navigate the tensions between the costs of gene expression and the benefits of gene products to optimize the levels of many genes at once? Here we combined independently-arising beneficial mutations that altered enzyme levels in the central metabolism of Methylobacterium extorquens to uncover the fitness landscape defined by gene expression levels. We found strong antagonism and sign epistasis between these beneficial mutations. Mutations with the largest individual benefit interacted the most antagonistically with other mutations, a trend we also uncovered through analyses of datasets from other model systems. However, these beneficial mutations interacted multiplicatively (i.e., no epistasis) at the level of enzyme expression. By generating a model that predicts fitness from enzyme levels we could explain the observed sign epistasis as a result of overshooting the optimum defined by a balance between enzyme catalysis benefits and fitness costs. Knowledge of the phenotypic landscape also illuminated that, although the fitness peak was phenotypically far from the ancestral state, it was not genetically distant. Single beneficial mutations jumped straight toward the global optimum rather than being constrained to change the expression phenotypes in the correlated fashion expected by the genetic architecture. Given that adaptation in nature often results from optimizing gene expression, these conclusions can be widely applicable to other organisms and selective conditions. Poor interactions between individually beneficial alleles affecting gene expression may thus compromise the benefit of sex during adaptation and promote genetic differentiation.
Key Findings
1
A fitness model explained sign epistasis as overshooting an optimum balancing enzyme-catalysis benefits against the costs of gene expression.
2
Beneficial mutations combined multiplicatively at the enzyme-expression level, indicating that epistasis arose between expression levels and fitness rather than between expression effects.
3
Combining independently arising metabolic mutations revealed strong antagonism and sign epistasis among individually beneficial mutations.
4
Mutations providing the largest individual fitness benefits interacted most antagonistically, a pattern also observed in other model-system datasets.
5
The fitness optimum was phenotypically distant but genetically close to the ancestor; single mutations could jump directly toward it despite constraints imposed by genetic architecture.
Research Object
Beneficial mutations altering enzyme expression levels in the central metabolism of Methylobacterium extorquens
Research Subject
The fitness landscape and epistatic interactions among enzyme-expression mutations, including antagonism and sign epistasis caused by overshooting the optimum balancing catalytic benefits and expression costs
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2014-02-27
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