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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >In silico prediction of drug solubility. 3. Free energy of solvation in pure amorphous matter
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In silico prediction of drug solubility. 3. Free energy of solvation in pure amorphous matter

机译:在计算机上预测药物溶解度。 3.在纯无定形物质中的溶剂化自由能

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摘要

The solubility of drugs in water is investigated in a series of papers. In this work, we address the process of bringing a drug molecule from the vapor into a pure drug amorphous phase. This step enables us to actually calculate the solubility of amorphous drugs in water. In our general approach, we, on one hand, perform rigorous free energy simulations using a combination of the free energy perturbation and thermodynamic integration methods. On the other hand, we develop an approximate theory containing parameters that are easily accessible from conventional Monte Carlo simulations, thereby reducing the computation time significantly. In the theory for solvation, we assume that Delta G(center dot) = Delta G(cav) + E-LJ + E-C/2, where the free energy of cavity formation, Delta G(cav), in pure drug systems is obtained using a theory for hard-oblate spheroids, and E-LJ and E-C are the Lennard-Jones and Coulomb interaction energies between the chosen molecule and the others in the fluid. The theoretical predictions for the free energy of solvation in pure amorphous matter are in good agreement with free energy simulation data for 46 different drug molecules. These results together with our previous studies support our theoretical approach. By using our previous data for the free energy of hydration, we compute the total free energy change of bringing a molecule from the amorphous phase into water. We obtain good agreement between the theory and simulations. It should be noted that to obtain accurate results for the total process, high precision data are needed for the individual subprocesses. Finally, for eight different substances, we compare the experimental amorphous and crystalline solubility in water with the results obtained by the proposed theory with reasonable success.
机译:一系列论文研究了药物在水中的溶解度。在这项工作中,我们解决了将药物分子从蒸气带入纯药物非晶态的过程。此步骤使我们能够实际计算出无定形药物在水中的溶解度。在我们的一般方法中,一方面,我们结合使用了自由能摄动和热力学积分方法来执行严格的自由能模拟。另一方面,我们开发了一种近似理论,其中包含可从常规蒙特卡洛模拟中轻松访问的参数,从而显着减少了计算时间。在溶剂化理论中,我们假设Delta G(中心点)= Delta G(cav)+ E-LJ + EC / 2,其中获得了纯药物系统中空穴形成的自由能Delta G(cav)使用关于硬质扁球体的理论,E-LJ和EC是所选分子与流体中其他分子之间的Lennard-Jones和库仑相互作用能。纯无定形物质中溶剂化自由能的理论预测与46种不同药物分子的自由能模拟数据非常吻合。这些结果与我们以前的研究一起支持了我们的理论方法。通过使用我们先前的水合自由能数据,我们计算了将分子从无定形相引入水中的总自由能变化。我们在理论和仿真之间获得了很好的一致性。应该注意的是,为了获得整个过程的准确结果,各个子过程需要高精度的数据。最后,对于八种不同的物质,我们将实验的非晶态和晶体在水中的溶解度与所提出的理论获得的结果进行了比较,并取得了合理的成功。

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