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Dock ’n Roll: Folding of a Silk-Inspired Polypeptide into an Amyloid-like Beta Solenoid

机译:Dock’n Roll:将受丝绸启发的多肽折叠成淀粉样β螺线管

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摘要

Polypeptides containing the motif ((GA)mGX)n occur in silk (we refer to them as ‘silk-like’) and have a strong tendency to self-assemble. For example, polypeptides containing (GAGAGAGX)n, where X = G or H have been observed to form filaments; similar sequences but with X = Q have been used in the design of coat proteins (capsids) for artificial viruses. The structure of the (GAGAGAGX)m filaments has been proposed to be a stack of peptides in a β roll structure with the hydrophobic side chains pointing outwards (hydrophobic shell). Another possible configuration, a β roll or β solenoid structure which has its hydrophobic side chains buried inside (hydrophobic core) was, however, overlooked. We perform ground state analysis as well as atomic-level molecular dynamics simulations, both on single molecules and on two-molecule stacks of the silk-inspired sequence (GAGAGAGQ)10, to decide whether the hydrophobic core or the hydrophobic shell configuration is the most stable one. We find that a stack of two hydrophobic core molecules is energetically more favorable than a stack of two shell molecules. A shell molecule initially placed in a perfect β roll structure tends to rotate its strands, breaking in-plane hydrogen bonds and forming out-of-plane hydrogen bonds, while a core molecule stays in the β roll structure. The hydrophobic shell structure has type II’ β turns whereas the core configuration has type II β turns; only the latter secondary structure agrees well with solid-state NMR experiments on a similar sequence (GA)15. We also observe that the core stack has a higher number of intra-molecular hydrogen bonds and a higher number of hydrogen bonds between stack and water than the shell stack. Hence, we conclude that the hydrophobic core configuration is the most likely structure. In the stacked state, each peptide has more intra-molecular hydrogen bonds than a single folded molecule, which suggests that stacking provides the extra stability needed for molecules to reach the folded state.
机译:含有基序((GA)mGX)n的多肽存在于丝绸中(我们称它们为“丝绸状”),并且具有很强的自组装倾向。例如,已经观察到含有(GAGAGAGX)n,其中X = G或H的多肽形成细丝;类似的序列,但X = Q,已用于人造病毒的外壳蛋白(衣壳)设计中。 (GAGAGAGX)m丝的结构被认为是β卷结构的一叠肽,疏水侧链朝外(疏水壳)。但是,忽略了另一种可能的构型,即β辊或β螺线管结构,其疏水侧链埋在内部(疏水核)。我们对真丝序列(GAGAGAGQ)10的单分子和两分子堆栈进行基态分析以及原子级分子动力学模拟,以决定疏水核或疏水壳构型是最多的稳定的。我们发现,两个疏水核心分子的堆叠比两个壳分子的堆叠在能量上更有利。最初放置在完美的β卷结构中的壳分子倾向于旋转其链,从而破坏面内氢键并形成面外氢键,而核心分子则停留在β卷结构中。疏水性壳结构具有II型β匝,而核心构型具有II型β匝;只有后者的二级结构与类似序列(GA)上的固态NMR实验非常吻合15。我们还观察到,与壳堆相比,堆芯具有更高数量的分子内氢键以及堆与水之间的氢键数量更多。因此,我们得出结论,疏水核心构型是最可能的结构。在堆积状态下,每个肽均比单个折叠分子具有更多的分子内氢键,这表明堆积提供了分子达到折叠状态所需的额外稳定性。

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