Department of Chemistry, University of Miami, Coral Gables, Florida 33146, United States.
J Phys Chem B. 2012 Apr 19;116(15):4405-16. doi: 10.1021/jp210019h. Epub 2012 Apr 6.
In this study, the mechanism of dimerization of the full-length Alzheimer amyloid beta (Aβ42) peptide and structural properties of the three most stable dimers have been elucidated through 0.8 μs classical molecular dynamics (MD) simulations. The Aβ42 dimer has been reported to be the smallest neurotoxic species that adversely affects both memory and synaptic plasticity. On the basis of interactions between the distinct regions of the Aβ42 monomer, 10 different starting configurations were developed from their native folded structures. However, only six of them were found to form dimers and among them the three most stable (X(P), C-C(AP), and N-N(P)) were chosen for the detailed analysis. The structural properties of these dimers were compared with the available experimental and theoretical data. The MD simulations show that hydrophobic regions of both monomers play critical roles in the dimerization process. The high content of the α-helical structure in all the dimers is in line with its experimentally proposed role in the oligomerization. The formation of a zipper-like structure in X(P) is also in accordance with its existence in the aggregates of several short amyloidogenic peptides. The computed values of translational (D(T)) and rotational (D(R)) diffusion constants of 0.63 × 10(-6) cm(2)/s and 0.035 ns(-1), respectively, for this dimer are supported by the corresponding values of the Aβ42 monomer. These simulations have also elucidated several other key structural properties of these peptides. This information will be very useful to design small molecules for the inhibition and disruption of the critical Aβ42 dimers.
在这项研究中,通过 0.8 μs 经典分子动力学(MD)模拟,阐明了全长阿尔茨海默病淀粉样β(Aβ42)肽二聚化的机制和三个最稳定二聚体的结构特性。据报道,Aβ42 二聚体是最小的神经毒性物质,它会对记忆和突触可塑性产生不利影响。基于 Aβ42 单体不同区域之间的相互作用,从其天然折叠结构中开发了 10 种不同的起始构象。然而,只有其中的 6 种被发现可以形成二聚体,其中最稳定的 3 种(X(P)、C-C(AP)和 N-N(P))被选择用于详细分析。这些二聚体的结构特性与现有的实验和理论数据进行了比较。MD 模拟表明,两个单体的疏水区在二聚化过程中起着关键作用。所有二聚体中α-螺旋结构的高含量与其在寡聚化中提出的作用一致。X(P)中拉链状结构的形成也与其在几种短淀粉样肽聚集物中的存在一致。该二聚体的平移(D(T))和旋转(D(R))扩散常数的计算值分别为 0.63 × 10(-6) cm(2)/s 和 0.035 ns(-1),与 Aβ42 单体的相应值相吻合。这些模拟还阐明了这些肽的其他几个关键结构特性。这些信息对于设计小分子抑制剂和破坏关键的 Aβ42 二聚体非常有用。