Smith W Wendell, Schreck Carl F, Hashem Nabeem, Soltani Sherwin, Nath Abhinav, Rhoades Elizabeth, O'Hern Corey S
Department of Physics, Yale University, New Haven, Connecticut 06520-8120, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Oct;86(4 Pt 1):041910. doi: 10.1103/PhysRevE.86.041910. Epub 2012 Oct 12.
Intrinsically disordered proteins (IDPs) do not possess well-defined three-dimensional structures in solution under physiological conditions. We develop all-atom, united-atom, and coarse-grained Langevin dynamics simulations for the IDP α-synuclein that include geometric, attractive hydrophobic, and screened electrostatic interactions and are calibrated to the inter-residue separations measured in recent single-molecule fluorescence energy transfer (smFRET) experiments. We find that α-synuclein is disordered, with conformational statistics that are intermediate between random walk and collapsed globule behavior. An advantage of calibrated molecular simulations over constraint methods is that physical forces act on all residues, not only on residue pairs that are monitored experimentally, and these simulations can be used to study oligomerization and aggregation of multiple α-synuclein proteins that may precede amyloid formation.
内在无序蛋白(IDP)在生理条件下于溶液中不具有明确的三维结构。我们针对IDPα-突触核蛋白开展了全原子、联合原子和粗粒度的朗之万动力学模拟,其中包括几何相互作用、有吸引力的疏水相互作用和屏蔽静电相互作用,并根据最近单分子荧光能量转移(smFRET)实验中测量的残基间距离进行了校准。我们发现α-突触核蛋白是无序的,其构象统计介于随机游走和塌陷球状行为之间。与约束方法相比,校准分子模拟的一个优势在于物理力作用于所有残基,而不仅仅是实验监测的残基对,并且这些模拟可用于研究多个α-突触核蛋白在淀粉样蛋白形成之前可能发生的寡聚化和聚集。