Dey Madhumita, Gupta Arpit, Badmalia Maulik D, Sharma Deepak
CSIR - Institute of Microbial Technology, Chandigarh, India.
CSIR - Institute of Microbial Technology, Chandigarh, India.
Int J Biol Macromol. 2025 Feb;288:138614. doi: 10.1016/j.ijbiomac.2024.138614. Epub 2024 Dec 12.
Here, using small angle X-ray scattering (SAXS) data profile as reference, we attempted to visualize conformational ensemble accessible prefibrillar monomeric state of α-synuclein in solution. In agreement with previous reports, our analysis also confirmed that α-synuclein molecules adopted disordered shape profile under non-associating conditions. Chain-ensemble modeling protocol with dummy residues provided two weighted averaged clusters of semi-extended shapes. Further, Ensemble Optimization Method (EOM) computed mole fractions of semi-extended "twisted" conformations which might co-exist in solution. Since these were only C traces of the models, ALPHAFOLD2 server was used to search for all-atom models. Comparison with experimental data showed all predicted models disagreed equally, as individuals. Finally, we employed molecular dynamics simulations and normal mode analysis-based search coupled with SAXS data to seek better agreeing models. Overall, our analysis concludes that a shifting equilibrium of curved models with low α-helical content best-represents non-associating monomeric α-synuclein.
在此,我们以小角X射线散射(SAXS)数据轮廓为参考,试图可视化溶液中α-突触核蛋白原纤维前体单体状态下可及的构象集合。与之前的报道一致,我们的分析也证实,在非缔合条件下,α-突触核蛋白分子呈现无序的形状轮廓。带有虚拟残基的链集合建模协议提供了两个半伸展形状的加权平均簇。此外,集合优化方法(EOM)计算了可能在溶液中共存的半伸展“扭曲”构象的摩尔分数。由于这些只是模型的C迹线,因此使用ALPHAFOLD2服务器搜索全原子模型。与实验数据的比较表明,所有预测模型作为个体而言,不一致程度相同。最后,我们采用分子动力学模拟和基于正常模式分析的搜索,并结合SAXS数据来寻找更符合的模型。总体而言,我们的分析得出结论,低α-螺旋含量的弯曲模型的平衡转移最能代表非缔合单体α-突触核蛋白。