Department of Chemistry, Kangwon National University, Chuncheon, Gangwon-do, Republic of Korea.
Department of Nano-Bioengineering, Incheon National University, Incheon, Republic of Korea.
J Comput Chem. 2023 Jun 5;44(15):1437-1445. doi: 10.1002/jcc.27100. Epub 2023 Mar 29.
A major difference between amyloid precursor protein (APP) isoforms (APP695 and APP751) is the existence of a Kunitz type protease inhibitor (KPI) domain which has a significant impact on the homo- and hetero-dimerization of APP isoforms. However, the exact molecular mechanisms of dimer formation remain elusive. To characterize the role of the KPI domain in APP dimerization, we performed a single molecule pull down (SiMPull) assay where homo-dimerization between tethered APP molecules and soluble APP molecules was highly preferred regardless of the type of APP isoforms, while hetero-dimerization between tethered APP751 molecules and soluble APP695 molecules was limited. We further investigated the domain level APP-APP interactions using coarse-grained models with the Martini force field. Though the model initial ternary complexes (KPI-E1, KPI-KPI, KPI-E2, E1-E1, E2-E2, and E1-E2) generated using HADDOCK (HD) and AlphaFold2 (AF2), the binding free energy profiles and the binding affinities of the domain combinations were investigated via the umbrella sampling with Martini force field. Additionally, membrane-bound microenvironments at the domain level were modeled. As a result, it was revealed that the KPI domain has a stronger attractive interaction with itself than the E1 and E2 domains, as reported elsewhere. Thus, the KPI domain of APP751 may form additional attractive interactions with E1, E2 and the KPI domain itself, whereas it is absent in APP695. In conclusion, we found that the APP751 homo-dimer formation is predominant than the homodimerization in APP695, which is facilitated by the presence of the KPI domain.
淀粉样前体蛋白 (APP) 异构体 (APP695 和 APP751) 的一个主要区别在于存在 Kunitz 型蛋白酶抑制剂 (KPI) 结构域,该结构域对 APP 异构体的同源和异源二聚化有重大影响。然而,二聚体形成的确切分子机制仍不清楚。为了研究 KPI 结构域在 APP 二聚化中的作用,我们进行了单分子下拉 (SiMPull) 测定,结果显示无论 APP 异构体的类型如何,与 tethered APP 分子和可溶性 APP 分子的同源二聚化都高度优先,而 tethered APP751 分子和可溶性 APP695 分子之间的异源二聚化则受到限制。我们进一步使用粗粒度模型和 Martini 力场研究了结构域级别的 APP-APP 相互作用。虽然使用 HADDOCK (HD) 和 AlphaFold2 (AF2) 生成了模型初始的三元复合物 (KPI-E1、KPI-KPI、KPI-E2、E1-E1、E2-E2 和 E1-E2),但通过 Martini 力场的伞状采样研究了这些结构域组合的结合自由能曲线和结合亲和力。此外,还在结构域水平上模拟了膜结合的微观环境。结果表明,正如其他地方报道的那样,KPI 结构域与自身的吸引力比 E1 和 E2 结构域更强。因此,APP751 的 KPI 结构域可能与 E1、E2 和 KPI 结构域自身形成额外的吸引力相互作用,而在 APP695 中则不存在。总之,我们发现 APP751 的同源二聚体形成比 APP695 更占优势,这是由于 KPI 结构域的存在所致。