Torabifard Hedieh, Cisneros G Andrés
Department of Chemistry , Wayne State University , Detroit , MI 48202 , USA.
Department of Chemistry , University of North Texas , Denton , TX 76203 , USA . Email:
Chem Sci. 2017 Sep 1;8(9):6230-6238. doi: 10.1039/c7sc00997f. Epub 2017 Jul 5.
AlkB catalyzes the direct dealkylation of various alkylated bases in damaged DNA. The diffusion of molecular oxygen to the active site in AlkB is an essential step for the oxidative dealkylation activity. Despite detailed studies on the stepwise oxidation mechanism of AlkB, there is no conclusive picture of how O molecules reach the active site of the protein. Yu (, , 879) proposed the existence of an intra-molecular tunnel based on their initial crystal structures of AlkB. We have employed computational simulations to investigate possible migration pathways inside AlkB for O molecules. Extensive molecular dynamics (MD) simulations, including explicit ligand sampling and potential of mean force (PMF) calculations, have been performed to provide a microscopic description of the O delivery pathway in AlkB. Analysis of intra-molecular tunnels using the CAVER software indicates two possible pathways for O to diffuse into the AlkB active site. Explicit ligand sampling simulations suggests that only one of these tunnels provides a viable route. The free energy path for an oxygen molecule to travel along each of these tunnels has been determined with AMBER and AMOEBA. Both PMFs indicate passive transport of O from the surface of the protein. However, the inclusion of explicit polarization shows a very large barrier for diffusion of the co-substrate out of the active site, compared with the non-polarizable potential. In addition, our results suggest that the mutation of a conserved residue along the tunnel, Y178, has dramatic effects on the dynamics of AlkB and on the transport of O along the tunnel.
AlkB催化受损DNA中各种烷基化碱基的直接脱烷基反应。分子氧扩散至AlkB的活性位点是氧化脱烷基活性的关键步骤。尽管对AlkB的逐步氧化机制进行了详细研究,但对于O分子如何到达蛋白质活性位点尚无定论。Yu等人(,,879)基于AlkB的初始晶体结构提出了分子内隧道的存在。我们采用计算模拟来研究AlkB内部O分子可能的迁移途径。已进行了广泛的分子动力学(MD)模拟,包括显式配体采样和平均力势(PMF)计算,以提供AlkB中O传递途径的微观描述。使用CAVER软件对分子内隧道的分析表明O扩散到AlkB活性位点有两条可能的途径。显式配体采样模拟表明这些隧道中只有一条提供了可行的路线。利用AMBER和AMOEBA确定了氧分子沿每条隧道传播的自由能路径。两个PMF均表明O从蛋白质表面的被动运输。然而,与非极化势相比,包含显式极化显示共底物从活性位点扩散存在非常大的障碍。此外,我们的结果表明,沿隧道的一个保守残基Y178的突变对AlkB的动力学以及O沿隧道的运输有显著影响。