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Using a FRET Library with Multiple Probe Pairs To Drive Monte Carlo Simulations of α-Synuclein

机译:使用具有多个探针对的FRET库来驱动α-突触核蛋白的蒙特卡洛模拟

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摘要

We describe a strategy for experimentally-constraining computational simulations of intrinsically disordered proteins (IDPs), using α-synuclein, an IDP with a central role in Parkinson’s disease pathology, as an example. Previously, data from single-molecule Förster Resonance Energy Transfer (FRET) experiments have been effectively utilized to generate experimentally constrained computational models of IDPs. However, the fluorophores required for single-molecule FRET experiments are not amenable to the study of short-range (<30 Å) interactions. Using ensemble FRET measurements allows one to acquire data from probes with multiple distance ranges, which can be used to constrain Monte Carlo simulations in PyRosetta. To appropriately employ ensemble FRET data as constraints, we optimized the shape and weight of constraining potentials to afford ensembles of structures that are consistent with experimental data. We also used this approach to examine the structure of α-synuclein in the presence of the compacting osmolyte trimethylamine-N-oxide. Despite significant compaction imparted by 2 M trimethylamine-N-oxide, the underlying ensemble of α-synuclein remains largely disordered and capable of aggregation, also in agreement with experimental data. These proof-of-concept experiments demonstrate that our modeling protocol enables one to efficiently generate experimentally constrained models of IDPs that incorporate atomic-scale detail, allowing one to study an IDP under a variety of conditions.
机译:我们以α-突触核蛋白(一种在帕金森氏病病理学中具有重要作用的IDP)为例,描述了一种对实验性约束的内在无序蛋白(IDP)进行模拟计算的策略。以前,来自单分子Förster共振能量转移(FRET)实验的数据已被有效地用于生成实验受限的IDP计算模型。但是,单分子FRET实验所需的荧光团不适用于短程(<30Å)相互作用的研究。使用集成FRET测量可以使人们从具有多个距离范围的探针获取数据,这些数据可以用于约束PyRosetta中的蒙特卡洛模拟。为了适当地使用整体FRET数据作为约束,我们优化了约束电位的形状和重量,以提供与实验数据一致的结构集合。我们还使用这种方法在紧密渗透压三甲胺-N-氧化物存在下检查α-突触核蛋白的结构。尽管2 M三甲胺-N-氧化物赋予了显着的压实作用,但α-突触核蛋白的潜在整体仍然在很大程度上无序且能够聚集,这也与实验数据一致。这些概念验证实验表明,我们的建模协议使人们能够有效地生成结合原子尺度细节的,受实验约束的IDP模型,从而使人们能够在各种条件下研究IDP。

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