School of Chemistry and Chemical Engineering, Institute of Molecular Science, Shanxi University, Taiyuan 030000, China.
J Phys Chem B. 2024 Aug 1;128(30):7341-7349. doi: 10.1021/acs.jpcb.4c02343. Epub 2024 Jul 17.
The histidine behavior plays a crucial role in the structural and aggregation properties of protein folding and misfolding. Understanding the histidine behavior at the edge of the protein structure is critical for finding ways to disrupt fibril elongation and growth, but this impact remains poorly understood. In the current study, we used molecular dynamics simulations to investigate the edge substitution effect of histidine protonation on the structural and aggregation properties. Our data showed that Δ contributed the most to binding affinity compared to Δ and Δ. The different protonation states at the edge chain significantly impacted the secondary structure properties of the edge chain. Specifically, we found that such protonation behavior significantly affected specific regions, particularly the N-terminus (G9-Q15) and C-terminus (K28-A30). Further analysis confirmed that H6, H13, and H14 were directly involved in H-bonding networks with the C1_H14//C2_H13 interchain interactions critical for maintaining the interchain stability. Furthermore, we confirmed that H6, H13, and H14 were directly involved in the loss of the carbon skeleton contact in the N-terminus. Our findings indicate that the edge condition is more susceptible to changes in structural properties than the middle condition. The current study is helpful for understanding the histidine behavior hypothesis in related misfolding diseases.
组氨酸的行为在蛋白质折叠和错误折叠的结构和聚集性质中起着至关重要的作用。了解蛋白质结构边缘处的组氨酸行为对于寻找破坏纤维伸长和生长的方法至关重要,但这一影响仍知之甚少。在本研究中,我们使用分子动力学模拟研究了组氨酸质子化对结构和聚集性质的边缘取代效应。我们的数据表明,与和相比,Δ对结合亲和力的贡献最大。边缘链上不同的质子化状态显著影响边缘链的二级结构性质。具体而言,我们发现这种质子化行为显著影响了特定区域,特别是 N 端(G9-Q15)和 C 端(K28-A30)。进一步的分析证实,H6、H13 和 H14 直接参与了与 C1_H14//C2_H13 链间相互作用的氢键网络,这些相互作用对于维持链间稳定性至关重要。此外,我们证实 H6、H13 和 H14 直接参与了 N 端碳骨架接触的丧失。我们的研究结果表明,边缘条件比中间条件更容易发生结构性质的变化。本研究有助于理解相关错误折叠疾病中组氨酸行为假说。