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arXiv · 1612.09378

Selection originating from protein foldability: I. A new method to estimate selection temperature

Abstract

The probability distribution of sequences with maximum entropy that satisfies a given amino acid composition at each site and a given pairwise amino acid frequency at each site pair is a Boltzmann distribution with $\exp(-ψ_N)$, where the total interaction $ψ_N$ is represented as the sum of one body and pairwise interactions. A protein folding theory based on the random energy model (REM) indicates that the equilibrium ensemble of natural protein sequences is a canonical ensemble characterized by $\exp(-ΔG_{ND}/k_B T_s)$ or by $\exp(- G_{N}/k_B T_s)$ if an amino acid composition is kept constant, meaning $ψ_N = ΔG_{ND}/k_B T_s +$ constant, where $ΔG_{ND} \equiv G_N - G_D$, $G_N$ and $G_D$ are the native and denatured free energies, and $T_s$ is the effective temperature of natural selection. Here, we examine interaction changes ($Δψ_N$) due to single nucleotide nonsynonymous mutations, and have found that the variance of their $Δψ_N$ over all sites hardly depends on the $ψ_N$ of each homologous sequence, indicating that the variance of $ΔG_N (= k_B T_s Δψ_N)$ is nearly constant irrespective of protein families. As a result, $T_s$ is estimated from the ratio of the variance of $Δψ_N$ to that of a reference protein, which is determined by a direct comparison between $ΔΔψ_{ND} (\simeq Δψ_N)$ and experimental $ΔΔG_{ND}$. Based on the REM, glass transition temperature $T_g$ and $ΔG_{ND}$ are estimated from $T_s$ and experimental melting temperatures ($T_m$) for 14 protein domains. The estimates of $ΔG_{ND}$ agree well with their experimental values for 5 proteins, and those of $T_s$ and $T_g$ are all within a reasonable range. This method is coarse-grained but much simpler in estimating $T_s$, $T_g$ and $ΔΔG_{ND}$ than previous methods.

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BibTeXRIS

Sanzo Miyazawa. 2017-04-02. Selection originating from protein foldability: I. A new method to estimate selection temperature. https://arxiv.org/abs/1612.09378

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