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Tunable approximations to control time-to-solution in an HPC molecular docking Mini-App

机译:可调谐近似,以控制HPC分子解码迷你应用程序中的解决时间

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The drug discovery process involves several tasks to be performed in vivo, in vitro and in silico. Molecular docking is a task typically performed in silico. It aims at finding the three-dimensional pose of a given molecule when it interacts with the target protein binding site. This task is often done for virtual screening a huge set of molecules to find the most promising ones, which will be forwarded to the later stages of the drug discovery process. Given the huge complexity of the problem, molecular docking cannot be solved by exploring the entire space of the ligand poses. State-of-the-art approaches face the problem by sampling the space of the ligand poses to generate results in a reasonable time budget. In this work, we improve the geometric approach to molecular docking by introducing tunable approximations. In particular, we analysed and enriched the original implementation with tunable software knobs to explore and control the performance-accuracy trade-offs. We modelled time-to-solution of the virtual screening task as a function of software knobs, input data features, and available computational resources. Therefore, the application can autotune its configuration according to a user-defined time budget. We used a Mini-App derived by LiGenDock—a state-of-the-art molecular docking application—to validate the proposed approach. We run the enhanced Mini-App on a high-performance computing system by using a very large database of pockets and ligands. The proposed approach exposes a time-to-solution interval spanning more than one order of magnitude with accuracy degradation up to 30%, more in general providing different accuracy levels according to the needs of the virtual screening campaign.
机译:药物发现过程涉及在体内,体外和硅中进行的几项任务。分子对接是通常在硅中进行的任务。它旨在在与靶蛋白结合位点相互作用时找到给定分子的三维姿势。这项任务通常用于虚拟筛选大量分子,以找到最有希望的分子,将被转发到药物发现过程的后期阶段。鉴于问题的巨大复杂性,通过探索配体姿势的整个空间,不能解决分子对接。最先进的方法通过对摆片的空间进行采样来面临问题以在合理的时间预算中产生结果。在这项工作中,我们通过引入可调近似来提高分子对接的几何方法。特别是,我们分析并通过可调软件旋钮来分析并丰富了原始实施,以探索和控制性能准确性权衡。我们将虚拟筛选任务的时间建模为软件旋钮,输入数据特征和可用计算资源的函数。因此,应用程序可以根据用户定义的时间预算自动调谐其配置。我们使用了Ligendock-A最先进的分子对接应用程序来衍生的迷你应用程序 - 以验证所提出的方法。我们通过使用非常大的口袋和配体数据库在高性能计算系统上运行增强型迷你应用程序。该方法的方法暴露了一个以上级别的时间间隔,其精度降低高达30%,通常根据虚拟筛选活动的需求提供不同的精度水平。

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