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首页> 外文期刊>Journal of molecular graphics & modelling >Influence of the ionic liquid [C(4)mpy][Tf2N] on the structure of the miniprotein Trp-cage
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Influence of the ionic liquid [C(4)mpy][Tf2N] on the structure of the miniprotein Trp-cage

机译:离子液体[C(4)mpy] [Tf2N]对微蛋白Trp笼结构的影响

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We examine the effect of the ionic liquid [C(4)mPA[Tf2N] on the structure of the miniprotein Trp-cage and contrast these results with the behavior of Trp-cage in water. We find the ionic liquid has a dramatic effect on Trp-cage, though many similarities with aqueous Trp-cage are observed. We assess Trp-cage folding by monitoring root mean square deviation from the crystallographic structure, radius of gyration, proline cis/trans isomerization state, protein secondary structure, amino acid contact formation and distance, and native and non-native contact formation. Starting from an unfolded configuration, Trp-cage folds in water at 298 K in less than 500 ns of simulation, but has very little mobility in the ionic liquid at the same temperature, which can be ascribed to the higher ionic liquid viscosity. At 365 K, the mobility of the ionic liquid is increased and initial stages of Trp-cage folding are observed, however Trp-cage does not reach the native folded state in 2 mu s of simulation in the ionic liquid. Therefore, in addition to conventional molecular dynamics, we also employ scaled molecular dynamics to expedite sampling, and we demonstrate that Trp-cage in the ionic liquid does closely approach the aqueous folded state. Interestingly, while the reduced mobility of the ionic liquid is found to restrict Trp-cage motion, the ionic liquid does facilitate proline cis/trans isomerization events that are not seen in our aqueous simulations. (C) 2015 Elsevier Inc. All rights reserved.
机译:我们检查了离子液体[C(4)mPA [Tf2N]对微蛋白Trp笼结构的影响,并将这些结果与Trp笼在水中的行为进行了对比。我们发现离子液体对Trp笼具有显着影响,尽管观察到与水性Trp笼有许多相似之处。我们通过监测晶体结构,旋转半径,脯氨酸顺式/反式异构化状态,蛋白二级结构,氨基酸接触形成和距离以及天然和非天然接触形成的均方根偏差来评估Trp笼折叠。从展开构型开始,Trp笼在298 K的水中折叠时间少于500 ns,但在相同温度下在离子液体中的迁移率很小,这可以归因于较高的离子液体粘度。在365 K下,离子液体的迁移率增加,并且观察到Trp-笼折叠的初始阶段,但是在离子液体中的2μs模拟中,Trp-笼没有达到自然折叠状态。因此,除了常规的分子动力学外,我们还采用比例分子动力学来加快采样速度,并且证明了离子液体中的Trp笼确实接近水折叠状态。有趣的是,虽然发现离子液体的迁移率降低会限制Trp笼运动,但离子液体的确促进了脯氨酸的顺式/反式异构化事件,这在我们的水模拟中是看不到的。 (C)2015 Elsevier Inc.保留所有权利。

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