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A New Haptic Interaction and Visualization Approach for Rigid Molecular Docking in Virtual Environments

机译:虚拟环境中刚性分子对接的触觉交互和可视化新方法

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摘要

Many biological activities take place through the physicochemical interaction of two molecules. This interaction occurs when one of the molecules finds a suitable location on the surface of the other for binding. This process is known as molecular docking, and it has applications to drug design. If we can determine which drug molecule binds to a particular protein, and how the protein interacts with the bonded molecule, we can possibly enhance or inhibit its activities. This information, in turn, can be used to develop new drugs that are more effective against diseases. In this paper, we propose a new approach based on a human-computer interaction paradigm for the solution of the rigid body molecular docking problem. In our approach, a rigid ligand molecule (i.e., drug) manipulated by the user is inserted into the cavities of a rigid protein molecule to search for the binding cavity, while the molecular interaction forces are conveyed to the user via a haptic device for guidance. We developed a new visualization concept, Active Haptic Workspace (AHW), for the efficient exploration of the large protein surface in high resolution using a haptic device having a small workspace. After the discovery of the true binding site and the rough alignment of the ligand molecule inside the cavity by the user, its final configuration is calculated off-line through time stepping molecular dynamics (MD) simulations. At each time step, the optimum rigid body transformations of the ligand molecule are calculated using a new approach, which minimizes the distance error between the previous rigid body coordinates of its atoms and their new coordinates calculated by the MD simulations. The simulations are continued until the ligand molecule arrives at the lowest energy configuration. Our experimental studies conducted with six human subjects testing six different molecular complexes demonstrate that given a ligand molecule and five potential binding sites on a protein surface, the subjects can successfully identify the true binding site using visual and haptic cues. Moreover, they can roughly align the ligand molecule inside the binding cavity such that the final configuration of the ligand molecule can be determined via the proposed MD simulations.
机译:许多生物活动是通过两个分子的物理化学相互作用发生的。当一个分子在另一个分子的表面上找到合适的位置进行结合时,就会发生这种相互作用。此过程称为分子对接,并已应用于药物设计。如果我们可以确定哪个药物分子与特定蛋白质结合,以及该蛋白质如何与结合的分子相互作用,我们可能会增强或抑制其活性。反过来,这些信息可用于开发对疾病更有效的新药。在本文中,我们提出了一种基于人机交互范例的新方法来解决刚体分子对接问题。在我们的方法中,将由用户操纵的刚性配体分子(即药物)插入刚性蛋白质分子的腔中以寻找结合腔,同时将分子相互作用力通过触觉设备传递给用户以进行指导。我们开发了一种新的可视化概念,即主动触觉工作区(AHW),可以使用具有较小工作区的触觉设备以高分辨率有效探索大型蛋白质表面。在用户发现了真正的结合位点并确定了腔内配体分子的大致排列后,可通过时间步长分子动力学(MD)模拟离线计算其最终构型。在每个时间步,配体分子的最佳刚体转化都使用一种新方法来计算,该方法将其原子的先前刚体坐标与其通过MD模拟计算的新坐标之间的距离误差最小化。继续模拟直到配体分子达到最低能量构型。我们与六个测试六个不同分子复合物的人类受试者进行的实验研究表明,给定配体分子和蛋白质表面上的五个潜在结合位点,受试者可以使用视觉和触觉提示成功地识别出真正的结合位点。而且,它们可以使配体分子在结合腔内大致对齐,从而可以通过提出的MD模拟确定配体分子的最终构型。

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