Learning the pattern of epistasis linking genotype and phenotype in a protein

Изучение закономерностей эпистаза, связывающих генотип и фенотип белка
Frank J. Poelwijk, Michael Socolich, Rama Ranganathan
2019-09-16

Entacmaea quadricolor fluorescent proteinepistasisgenotype-phenotype mappinghigh-order epistatic interactionsprotein evolution
Abstract Understanding the pattern of epistasis—the non-independence of mutations—is critical for relating genotype and phenotype. However, the combinatorial complexity of potential epistatic interactions has severely limited the analysis of this problem. Using new mutational approaches, we report a comprehensive experimental study of all 2 13 mutants that link two phenotypically distinct variants of the Entacmaea quadricolor fluorescent protein—an opportunity to examine epistasis up to the 13 th order. The data show the existence of many high-order epistatic interactions between mutations, but also reveal extraordinary sparsity, enabling novel experimental and computational strategies for learning the relevant epistasis. We demonstrate that such information, in turn, can be used to accurately predict phenotypes in practical situations where the number of measurements is limited. Finally, we show how the observed epistasis shapes the solution space of single-mutation trajectories between the parental fluorescent proteins, informative about the protein’s evolutionary potential. This work provides conceptual and experimental strategies to profoundly characterize epistasis in a protein, relevant to both natural and laboratory evolution.
1
A comprehensive study measured all 2^13 mutants connecting two phenotypically distinct Entacmaea quadricolor fluorescent proteins, probing epistasis up to 13th order.
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Epistatic sparsity enabled experimental and computational strategies that accurately predicted phenotypes when only limited measurements were available.
3
Observed epistasis shaped the solution space of single-mutation trajectories between parental proteins, providing insight into their evolutionary potential.
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The experiments revealed numerous high-order epistatic interactions, but these interactions were extraordinarily sparse across the mutation landscape.
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The study establishes conceptual and experimental approaches for characterizing protein epistasis relevant to natural and laboratory evolution.

Entacmaea quadricolor fluorescent protein variants and their combinatorial mutants linking two phenotypically distinct parental proteins

The pattern, sparsity, and high-order interactions of epistasis between mutations, including their effects on phenotype prediction and single-mutation evolutionary trajectories

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2019-09-16
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Frank J. Poelwijk
Michael Socolich
Rama Ranganathan
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