Dipartimento di Scienze Chimiche, Università degli Studi di Catania, Viale A. Doria 6, 95125 Catania, Italy.
Department of Biophysics Bose Institute, Unified Academic Campus, Bidhan Nagar, EN 80, Kolkata 700091, India.
Int J Mol Sci. 2023 Jan 22;24(3):2192. doi: 10.3390/ijms24032192.
Aβ (1-40) can transfer from the aqueous phase to the bilayer and thus form stable ion-channel-like pores where the protein has alpha-helical conformation. The stability of the pores is due to the presence of the GXXXG motif. It has been reported that these ion-channel-like pores are stabilized by a Cα-H···O hydrogen bond that is established between a glycine of the GXXXG sequence of an alpha-helix and another amino acid of a vicinal alpha-helix. However, conflicting data are reported in the literature. Some authors have suggested that hydrogen bonding does not have a stabilizing function. Here we synthesized pentapeptides having a GXXXG motif to explore its role in pore stability. We used molecular dynamics simulations, quantum mechanics, and experimental biophysical techniques to determine whether hydrogen bonding was formed and had a stabilizing function in ion-channel-like structures. Starting from our previous molecular dynamics data, molecular quantum mechanics simulations, and ATR data showed that a stable ion-channel-like pore formed and a band centered at 2910 cm was attributed to the interaction between Gly 7 of an alpha-helix and Asp 23 of a vicinal alpha-helix.
β淀粉样肽(1-40)可以从水相向双层转移,从而形成具有α-螺旋构象的稳定离子通道样孔。孔的稳定性归因于 GXXXG 基序的存在。据报道,这些离子通道样孔通过 Cα-H···O 氢键稳定,该氢键在α-螺旋的 GXXXG 序列中的甘氨酸和相邻α-螺旋中的另一个氨基酸之间建立。然而,文献中报告了相互矛盾的数据。一些作者认为氢键没有稳定作用。在这里,我们合成了具有 GXXXG 基序的五肽,以探索其在孔稳定性中的作用。我们使用分子动力学模拟、量子力学和实验生物物理技术来确定氢键是否形成以及在离子通道样结构中是否具有稳定作用。基于我们之前的分子动力学数据、分子量子力学模拟和 ATR 数据表明,形成了稳定的离子通道样孔,并且 2910cm 处的带归因于α-螺旋中的 Gly 7 与相邻α-螺旋中的 Asp 23 之间的相互作用。