Zhou Y, Ojeda-May P, Nagaraju M, Pu J
Indiana University-Purdue University Indianapolis, Indianapolis, IN, United States.
Indiana University-Purdue University Indianapolis, Indianapolis, IN, United States.
Methods Enzymol. 2016;577:185-212. doi: 10.1016/bs.mie.2016.05.054. Epub 2016 Jul 1.
Adenosine triphosphate (ATP)-binding cassette (ABC) transporters are ubiquitous ATP-dependent membrane proteins involved in translocations of a wide variety of substrates across cellular membranes. To understand the chemomechanical coupling mechanism as well as functional asymmetry in these systems, a quantitative description of how ABC transporters hydrolyze ATP is needed. Complementary to experimental approaches, computer simulations based on combined quantum mechanical and molecular mechanical (QM/MM) potentials have provided new insights into the catalytic mechanism in ABC transporters. Quantitatively reliable determination of the free energy requirement for enzymatic ATP hydrolysis, however, requires substantial statistical sampling on QM/MM potential. A case study shows that brute force sampling of ab initio QM/MM (AI/MM) potential energy surfaces is computationally impractical for enzyme simulations of ABC transporters. On the other hand, existing semiempirical QM/MM (SE/MM) methods, although affordable for free energy sampling, are unreliable for studying ATP hydrolysis. To close this gap, a multiscale QM/MM approach named reaction path-force matching (RP-FM) has been developed. In RP-FM, specific reaction parameters for a selected SE method are optimized against AI reference data along reaction paths by employing the force matching technique. The feasibility of the method is demonstrated for a proton transfer reaction in the gas phase and in solution. The RP-FM method may offer a general tool for simulating complex enzyme systems such as ABC transporters.
三磷酸腺苷(ATP)结合盒(ABC)转运蛋白是普遍存在的依赖ATP的膜蛋白,参与多种底物跨细胞膜的转运。为了理解这些系统中的化学机械偶联机制以及功能不对称性,需要对ABC转运蛋白如何水解ATP进行定量描述。与实验方法互补,基于量子力学和分子力学(QM/MM)相结合势能的计算机模拟为ABC转运蛋白的催化机制提供了新的见解。然而,要定量可靠地确定酶促ATP水解的自由能需求,需要对QM/MM势能进行大量的统计采样。一个案例研究表明,对ABC转运蛋白的酶模拟来说,从头算QM/MM(AI/MM)势能面的蛮力采样在计算上是不切实际的。另一方面,现有的半经验QM/MM(SE/MM)方法虽然可用于自由能采样,但在研究ATP水解时不可靠。为了弥补这一差距,开发了一种名为反应路径力匹配(RP-FM)的多尺度QM/MM方法。在RP-FM中,通过采用力匹配技术,针对选定的SE方法的特定反应参数沿着反应路径根据AI参考数据进行优化。该方法在气相和溶液中的质子转移反应中得到了验证。RP-FM方法可能为模拟ABC转运蛋白等复杂酶系统提供一种通用工具。