Laboratory of Genomics and Neurovascular Diseases, Vicerrectorado de Investigación, Universidad Católica de Santa María, Urb. San José s/n-Umacollo, Arequipa 04000, Peru.
Centro de Investigación en Ingeniería Molecular-CIIM, Universidad Católica de Santa María, Urb. San José s/n-Umacollo, Arequipa 04000, Peru.
Biomolecules. 2022 Mar 25;12(4):499. doi: 10.3390/biom12040499.
Apolipoprotein E4 (ApoE4) is thought to increase the risk of developing Alzheimer's disease. Several studies have shown that ApoE4-Amyloid β (Aβ) interactions can increment amyloid depositions in the brain and that this can be augmented at low pH values. On the other hand, experimental studies in transgenic mouse models have shown that treatment with enoxaparin significantly reduces cortical Aβ levels, as well as decreases the number of activated astrocytes around Aβ plaques. However, the interactions between enoxaparin and the ApoE4-Aβ proteins have been poorly explored. In this work, we combine molecular dynamics simulations, molecular docking, and binding free energy calculations to elucidate the molecular properties of the ApoE4-Aβ interactions and the competitive binding affinity of the enoxaparin on the ApoE4 binding sites. In addition, we investigated the effect of the environmental pH levels on those interactions. Our results showed that under different pH conditions, the closed form of the ApoE4 protein, in which the C-terminal domain folds into the protein, remains stabilized by a network of hydrogen bonds. This closed conformation allowed the generation of six different ApoE4-Aβ interaction sites, which were energetically favorable. Systems at pH5 and 6 showed the highest energetic affinity. The enoxaparin molecule was found to have a strong energetic affinity for ApoE4-interacting sites and thus can neutralize or disrupt ApoE4-Aβ complex formation.
载脂蛋白 E4(ApoE4)被认为会增加患阿尔茨海默病的风险。多项研究表明,ApoE4-淀粉样蛋白β(Aβ)相互作用可增加大脑中的淀粉样蛋白沉积,而在低 pH 值下,这种作用可以增强。另一方面,转基因小鼠模型的实验研究表明,依诺肝素治疗可显著降低皮质 Aβ 水平,并减少 Aβ 斑块周围激活的星形胶质细胞数量。然而,依诺肝素与 ApoE4-Aβ 蛋白之间的相互作用尚未得到充分探索。在这项工作中,我们结合分子动力学模拟、分子对接和结合自由能计算,阐明了 ApoE4-Aβ 相互作用的分子特性以及依诺肝素在 ApoE4 结合位点上的竞争结合亲和力。此外,我们还研究了环境 pH 值对这些相互作用的影响。我们的结果表明,在不同的 pH 条件下,ApoE4 蛋白的封闭构象,其中 C 端结构域折叠到蛋白质内部,仍然通过氢键网络稳定。这种封闭构象允许产生六个不同的 ApoE4-Aβ 相互作用位点,这些位点在能量上是有利的。pH 值为 5 和 6 的系统显示出最高的能量亲和力。依诺肝素分子与 ApoE4 相互作用的位点具有很强的能量亲和力,因此可以中和或破坏 ApoE4-Aβ 复合物的形成。