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Theoretical and experimental demonstration of the importance of specific nonnative interactions in protein folding

机译:蛋白质折叠中特定非天然相互作用的重要性的理论和实验证明

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Many experimental and theoretical studies have suggested a significant role for nonnative interactions in protein folding pathways, but the energetic contributions of these interactions are not well understood. We have addressed the energetics and the position specificity of nonnative hydrophobic interactions by developing a continuum coarse-grained chain model with a native-centric potential augmented by sequence-dependent hydrophobic interactions. By modeling the effect of different hydrophobicity values at various positions in the Fyn SH3 domain, we predicted energetically significant nonnative interactions that led to acceleration or deceleration of the folding rate depending on whether they were more populated in the transition state or unfolded state. These nonnative contacts were centered on position 53 in the Fyn SH3 domain, which lies in an exposed position in a 3io-helix. The energetic importance of the predicted nonnative interactions was confirmed experimentally by folding kinetics studies combined with double mutant thermodynamic cycles. By attaining agreement of theoretical and experimental investigations, this study provides a compelling demonstration that specific nonnative interactions can significantly influence folding energetics. Moreover, we show that a coarse-grained model with a simple consideration of hydrophobicity is sufficient for the accurate prediction of kinet-ically important nonnative interactions.
机译:许多实验和理论研究表明,非天然相互作用在蛋白质折叠途径中起着重要作用,但这些相互作用的能量贡献尚不十分清楚。我们已经通过开发连续的粗粒链模型解决了非天然疏水相互作用的能量学和位置特异性,该模型具有以序列为中心的疏水相互作用增强的以自然为中心的电势。通过对Fyn SH3域中各个位置的不同疏水性值的影响进行建模,我们预测了在能量上显着的非天然相互作用,该相互作用导致折叠速率加速或减速,具体取决于它们在过渡态还是未折叠态中更多。这些非本地接触集中在Fyn SH3域中的位置53,该位置位于3io-螺旋中的暴露位置。通过折叠动力学研究与双突变热力学循环相结合,实验确定了预测的非天然相互作用的能量重要性。通过达成理论和实验研究的共识,这项研究提供了令人信服的证明,即特定的非本机相互作用可以显着影响折叠能。此外,我们表明,仅考虑疏水性的粗粒度模型就足以准确预测动力学上重要的非本机相互作用。

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