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Retention of local conformational compactness in unfolding of barnase; Contribution of end-to-end interactions within quasi-modules

机译:保留barnase展开过程中的局部构象紧实度;准模块内端到端交互的贡献

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摘要

To understand how protein reduces the conformational space to be searched for the native structure, it is crucial to characterize ensembles of conformations on the way of folding processes, in particular ensembles of relatively long-range structures connecting between an extensively unfolded state and a state with a native-like overall chain topology. To analyze such intermediate conformations, we performed multiple unfolding molecular dynamics simulations of barnase at 498K. Some short-range structures such as part of helix and turn were well sustained while most of the secondary structures and the hydrophobic cores were eventually lost, which is consistent with the results by other experimental and computational studies. The most important novel findings were persistence of long-range relatively compact substructures, which was captured by exploiting the concept of module. Module is originally introduced to describe the hierarchical structure of a globular protein in the native state. Modules are conceptually such relatively compact substructures that are resulted from partitioning the native structure of a globular protein completely into several contiguous segments with the least extended conformations. We applied this concept of module to detect a possible hierarchical structure of each snapshot structure in unfolding processes as well. Along with this conceptual extension, such detected relatively compact substructures are named quasi-modules. We found almost perfect persistence of quasi-module boundaries that are positioned close to the native module boundaries throughout the unfolding trajectories. Relatively compact conformations of the quasi-modules seemed to be retained mainly by hydrophobic interactions formed between residues located at both terminal regions within each module. From these results, we propose a hypothesis that hierarchical folding with the early formation of quasi-modules effectively reduces search space for the native structure.
机译:要了解蛋白质如何减少要寻找天然结构的构象空间,至关重要的是在折叠过程的过程中表征构象集合,特别是在广泛展开状态和具有折叠状态的状态之间连接的相对长距离结构的集合。类似本机的整体链拓扑。为了分析这样的中间构象,我们在498K进行了barnase的多个展开分子动力学模拟。一些短程结构(如螺旋和转弯的一部分)得到了很好的维持,而大多数二级结构和疏水核最终都丢失了,这与其他实验和计算研究的结果一致。最重要的新颖发现是远程相对紧凑的子结构的持久性,这是通过利用模块的概念而捕获的。最初引入模块来描述天然状态下的球形蛋白质的层次结构。模块在概念上是相对紧凑的亚结构,其是通过将球形蛋白的天然结构完全分成具有最少延伸构象的几个连续片段而产生的。我们将模块的这一概念应用于在展开过程中检测每个快照结构的可能分层结构。随着这种概念上的扩展,这种检测到的相对紧凑的子结构被称为准模块。我们发现准模块边界的几乎完美的持久性,这些准模块边界在整个展开轨迹中都靠近本机模块边界。准模块的相对紧凑的构象似乎主要通过位于每个模块内两个末端区域的残基之间形成的疏水相互作用得以保留。根据这些结果,我们提出一个假设,即随着准模块的早期形成而进行的分层折叠有效地减少了本机结构的搜索空间。

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