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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Bulky Side Chains and Non-native Salt Bridges Slow down the Folding of a Cross-Linked Helical Peptide: A Combined Molecular Dynamics and Time-Resolved Infrared Spectroscopy Study
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Bulky Side Chains and Non-native Salt Bridges Slow down the Folding of a Cross-Linked Helical Peptide: A Combined Molecular Dynamics and Time-Resolved Infrared Spectroscopy Study

机译:庞大的侧链和非天然盐桥减慢了交联的螺旋肽的折叠:分子动力学和时间分辨红外光谱的组合研究

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摘要

Multiple 4-mu s molecular dynamics (MD) simulations are used to study the folding process of the cross-linked alpha-helical peptide Ac-EACAR(5)EAAAR(10)EAACR(15)Q-NH2 (EAAAR peptide). The folding kinetics are single exponential at 330 K, while they are complex at 281 K with a clear deviation from single-exponential behavior, in agreement with time-resolved infrared (IR) spectroscopy measurements. Network analysis of the conformation space sampled by the MD simulations reveals four main folding channels which start from conformations with partially formed helical structure and non-native salt-bridges in a kinetically partitioned unfolded state. The independent folding pathways explain the comparable quality of models based on stretched exponential and multiexponential fitting of the kinetic traces at low temperature. The rearrangement of bulky side chains, and in particular their reorientation with respect to the cross-linker, makes the EAAAR peptide a slower folder at 28 1 K than a similar peptide devoid of the three glutamate side chains. On the basis of this simulation result, extracted from a total MID sampling of 1.0 ms, a mutant with additional bulky side chains (three methionines replacing alanines at positions 2, 7, and 12) is suggested to fold slower than the EAAAR peptide. This prediction is confirmed by time-resolved IR spectroscopy.
机译:多个4-μs分子动力学(MD)模拟用于研究交联的α-螺旋肽Ac-EACAR(5)EAAAR(10)EAACR(15)Q-NH2(EAAAR肽)的折叠过程。折叠动力学在330 K时是单指数的,而在281 K时则很复杂,与单指数行为有明显的偏差,这与时间分辨红外(IR)光谱测量结果一致。 MD模拟采样的构象空间的网络分析揭示了四个主要折叠通道,这些折叠通道从具有部分形成的螺旋结构和非天然盐桥的构象开始,处于动态分区的未折叠状态。独立的折叠路径说明了基于低温下动力学轨迹的拉伸指数和多指数拟合的模型的可比质量。笨重的侧链的重新排列,特别是它们相对于交联剂的重新排列,使得EAAAR肽在28 1 K处比没有三条谷氨酸侧链的类似肽慢。根据此模拟结果(从1.0毫秒的总MID采样中提取),提出了一个带有额外大体积侧链的突变体(三个蛋氨酸取代了位置2、7和12的丙氨酸),其折叠速度比EAAAR肽慢。时间分辨红外光谱证实了这一预测。

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