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首页> 外文期刊>The Journal of Chemical Physics >Interactive molecular dynamics in virtual reality from quantum chemistry to drug binding: An open-source multi-person framework
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Interactive molecular dynamics in virtual reality from quantum chemistry to drug binding: An open-source multi-person framework

机译:从量子化学到药物结合的虚拟现实中的互动分子动力学:开源多人框架

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摘要

As molecular scientists have made progress in their ability to engineer nanoscale molecular structure, we face new challenges in our ability to engineer molecular dynamics (MD) and flexibility. Dynamics at the molecular scale differs from the familiar mechanics of everyday objects because it involves a complicated, highly correlated, and three-dimensional many-body dynamical choreography which is often nonintuitive even for highly trained researchers. We recently described how interactive molecular dynamics in virtual reality (iMD-VR) can help to meet this challenge, enabling researchers to manipulate real-time MD simulations of flexible structures in 3D. In this article, we outline various efforts to extend immersive technologies to the molecular sciences, and we introduce " Narupa," a flexible, open-source, multiperson iMD-VR software framework which enables groups of researchers to simultaneously cohabit real-time simulation environments to interactively visualize and manipulate the dynamics of molecular structures with atomic-level precision. We outline several application domains where iMD-VR is facilitating research, communication, and creative approaches within the molecular sciences, including training machines to learn potential energy functions, biomolecular conformational sampling, protein-ligand binding, reaction discovery using " on-the-fly" quantum chemistry, and transport dynamics in materials. We touch on iMD-VR's various cognitive and perceptual affordances and outline how these provide research insight for molecular systems. By synergistically combining human spatial reasoning and design insight with computational automation, technologies such as iMD-VR have the potential to improve our ability to understand, engineer, and communicate microscopic dynamical behavior, offering the potential to usher in a new paradigm for engineering molecules and nano-architectures. (c) 2019 Author(s). All article content, except where otherwise noted, is licensed un
机译:随着分子科学家在他们对纳米级分子结构的能力方面取得了进展,我们面临着在我们工程师动力学(MD)和灵活性的能力中的新挑战。分子尺度的动态与日常物体的熟悉机制不同,因为它涉及复杂,高度相关的,三维多体动态编舞,即使对于高训练的研究人员来说常常是非直接的。我们最近描述了虚拟现实中的交互式分子动态(IMD-VR)如何有助于满足这一挑战,使研究人员能够操纵3D柔性结构的实时MD模拟。在本文中,我们概述了各种努力将沉浸式技术扩展到分子科学,我们介绍了“Narupa”,灵活的开源,多群IMD-VR软件框架,使研究人员能够同时同时同期的实时仿真环境。以原子级精度交互式可视化和操纵分子结构的动态。我们概述了IMD-VR的几个应用领域,其中IMD-VR正在促进分子科学内的研究,沟通和创造性方法,包括学习潜在能量功能,生物分子构象取样,蛋白质配体结合,使用“在飞行中的培训机器“量子化学,以及材料中的运输动力学。我们触及IMD-VR的各种认知和感知可供性,并概述这些提供了对分子系统的研究洞察力。通过协同组合人类空间推理和设计洞察力与计算自动化,诸如IMD-VR的技术有可能提高我们理解,工程师和传达微观动态行为的能力,提供迎来工程分子的新范式的潜力。纳米建筑。 (c)2019年作者。所有文章内容,除非另有说明,否则联合国

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