School of Computational & Integrative Sciences, Jawaharlal Nehru University, New Delhi, India.
Amity Institute of Neuropsychology & Neurosciences, Amity University, Noida, India.
J Biomol Struct Dyn. 2020 Mar;38(4):1042-1053. doi: 10.1080/07391102.2019.1593245. Epub 2019 Apr 2.
Folding pathway of β-LgA (β-lactoglobulin) evolves through the conformational α→β transition. The α→β transition is a molecular hallmark of various neurodegenerative diseases. Thus, β-LgA may serve as a good model for understanding molecular mechanism of protein aggregation involved in neurodegenerative diseases. Here, we studied the conformational dynamics of β-LgA in 6 M GdmCl at different temperatures using MD simulations. Structural order parameters such as RMSD, , SASA, native contacts (Q), hydrophobic distal-matrix and free-energy landscape (FEL) were used to investigate the conformational transitions. Our results show that GdmCl destabilizes secondary and tertiary structure of β-LgA by weakening the hydrophobic interactions and hydrogen bond network. Multidimensional FEL shows the presence of different unfolding intermediates at 400 K. I1 is long-lived intermediate which has mostly intact native secondary structure, but loose tertiary structure. I2 is structurally compact intermediate formed after the partial loss of secondary structure. The transiently and infrequently buried evolution of W19 shows that intermediate conformational ensembles are structurally heterogeneous. We observed that the intermediate conformations are largely stabilized by non-native H-bonds. The outcome of this work provides the molecular details of intermediates trapped due to non-native interactions that may be regarded as pathogenic conformations involved in neurodegenerative diseases.Communicated by Ramaswamy H. Sarma.
β-LgA(β-乳球蛋白)的折叠途径通过构象 α→β 转变而演变。α→β 转变是各种神经退行性疾病的分子标志。因此,β-LgA 可以作为理解涉及神经退行性疾病的蛋白质聚集的分子机制的良好模型。在这里,我们使用 MD 模拟研究了在不同温度下 6 M GdmCl 中 β-LgA 的构象动力学。结构有序参数,如 RMSD、、SASA、天然接触(Q)、疏水性远基质和自由能景观(FEL),用于研究构象转变。我们的结果表明,GdmCl 通过削弱疏水相互作用和氢键网络来破坏β-LgA 的二级和三级结构。多维 FEL 显示在 400 K 时存在不同的展开中间体。I1 是长寿命的中间体,具有大部分完整的天然二级结构,但三级结构松散。I2 是在部分失去二级结构后形成的结构紧凑的中间体。W19 的瞬态和罕见的埋藏演化表明中间构象集合在结构上是异构的。我们观察到中间构象主要通过非天然氢键稳定。这项工作的结果提供了由于非天然相互作用而捕获的中间体的分子细节,这些中间体可能被视为涉及神经退行性疾病的致病构象。由 Ramaswamy H. Sarma 传达。