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Ion Mobility-Mass Spectrometry Reveals the Energetics of Intermediates that Guide Polyproline Folding

机译:离子淌度质谱法揭示了指导脯氨酸折叠的中间体的能量学

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摘要

Proline favors trans-configured peptide bonds in native proteins. Although cis/trans configurations vary for non-native and unstructured states, solvent also influences these preferences. Water induces the all-cis right-handed polyproline-I (PPI) helix of polyproline to fold into the all-trans left-handed polyproline-II (PPII) helix. Our recent work has shown that this occurs via a sequential mechanism involving six resolved intermediates. Here, we use ion mobility-mass spectrometry to make the first detailed thermodynamic measurements of the folding intermediates, which inform us about how and why this transition occurs. It appears that early intermediates are energetically favorable due to hydration of the peptide backbone, while late intermediates are enthalpically unfavorable. However, folding continues, as the entropy of the system increases upon successive formation of each new structure. When PPII is immersed in 1-propanol, the PPII→PPI transition occurs, but this reaction occurs through a very different mechanism. Early on, the PPII population splits onto multiple pathways that eventually converge through a late intermediate that continues on to the folded PPI helix. Nearly every step is endothermic. Folding results from a stepwise increase in the disorder of the system, allowing a wide-scale search for a critical late intermediate. Overall, the data presented here allow us to establish the first experimentally-determined energy surface for biopolymer folding as a function of solution environment.
机译:脯氨酸支持天然蛋白质中的反式肽键。尽管顺式/反式构型因非天然和非结构化状态而异,但溶剂也会影响这些偏好。水诱导聚脯氨酸的全顺式右手聚脯氨酸-I(PPI)螺旋折叠成全反式左手聚脯氨酸-II(PPII)螺旋。我们最近的工作表明,这是通过涉及六个已分解中间体的顺序机制发生的。在这里,我们使用离子淌度质谱进行折叠中间体的首次详细热力学测量,从而告诉我们这种过渡的发生方式和原因。似乎由于肽主链的水合,早期中间体在能量上是有利的,而晚期中间体在焓上是不利的。然而,随着系统的熵随着每个新结构的连续形成而增加,折叠继续。当将PPII浸入1-丙醇中时,会发生PPII→PPI跃迁,但此反应是通过非常不同的机理发生的。早期,PPII群体分裂为多种途径,最终通过后期中间体汇聚,并继续延伸至折叠的PPI螺旋。几乎每个步骤都是吸热的。折叠来自系统混乱的逐步增加,从而允许大规模搜索关键后期中间体。总的来说,这里提供的数据使我们能够为生物聚合物折叠建立第一个实验确定的能级表面,作为溶液环境的函数。

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