Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, International Joint Research Laboratory of Nano-Micro Architecture Chemistry, Jilin University, Changchun 130023, People's Republic of China.
Phys Chem Chem Phys. 2019 Feb 6;21(6):2984-2991. doi: 10.1039/c9cp00130a.
The influenza B M2 protein (BM2) forms an acid-activated proton channel that is important for the virus's lifecycle. Despite extensive research efforts, the detailed activation mechanism of the BM2 proton channel is often elusive. Herein a pH-regulated mechanism of the BM2TM domain has been systematically characterized using multiscale computer simulations, including classical molecular dynamics, constant pH molecular dynamics (CpHMD) and quantum mechanics/molecular mechanics (QM/MM) approaches. Our simulations reveal a pH-dependent conformational switch from the C-terminal closed to the C-terminal open conformers, and provide the free energy of conformational activation coupled to the titration of the His19 tetrad. Importantly, our results confirm the coupling titration between the His19 tetrad and His27 tetrad, and identify that the full-cationic state (His2744+) dominates at the low pH (the His19 tetrad at +2, +3 and +4 charge states). Our QM/MM simulations indicate that the second titratable histidine, His27, could further promote the BM2 acid activation and speed up proton dissociation from the HxxxW motif, thus facilitating proton conduction by BM2. Taken together, a unique "activation-promotion mechanism" about the BM2 proton channel is proposed, and these results may be helpful for the understanding of other similar proton channels and the development of BM2 inhibitors.
乙型流感病毒 M2 蛋白(BM2)形成一种酸激活质子通道,对于病毒的生命周期至关重要。尽管进行了广泛的研究,但 BM2 质子通道的详细激活机制仍难以捉摸。本研究采用多尺度计算机模拟方法,包括经典分子动力学、恒 pH 分子动力学(CpHMD)和量子力学/分子力学(QM/MM)方法,系统地研究了 BM2TM 结构域的 pH 调节机制。模拟结果揭示了一种 pH 依赖性构象转变,从 C 端关闭构象到 C 端开放构象,并且提供了与 His19 四联体滴定相关的构象激活自由能。重要的是,我们的结果证实了 His19 四联体和 His27 四联体之间的偶联滴定,并确定在低 pH 值下(His19 四联体的电荷状态为+2、+3 和+4),完全正离子状态(His2744+)占主导地位。我们的 QM/MM 模拟表明,第二个可滴定的组氨酸 His27 可以进一步促进 BM2 的酸激活,并加速质子从 HxxxW 基序中解离,从而促进 BM2 的质子传导。综上所述,提出了一种关于 BM2 质子通道的独特“激活促进机制”,这些结果可能有助于理解其他类似质子通道和 BM2 抑制剂的开发。