Developing hardware and software for real-time molecular simulation of binding free energies in virtual reality
Developing hardware and software for real-time molecular simulation of binding free energies in virtual reality
批准号:
2250183
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --
中文摘要
随着分子科学家在纳米级分子结构的工程能力方面取得进展,我们在分子动力学(MD)和分子柔性的工程能力方面面临着新的挑战。分子尺度的动力学不同于我们熟悉的日常物体的力学,因为它涉及复杂的、高度相关的、三维的多体动态编排,即使对训练有素的研究人员来说,这也往往是不直观的。我们最近描述了虚拟现实中的交互分子动力学(iMD-VR)如何帮助应对这一挑战,使研究人员能够在3D中操纵柔性结构的实时分子动力学模拟。在这个项目中,学生将继续这些尝试,将沉浸式技术扩展到分子科学。具体来说,该项目将专注于开发下一代vr数据手套,该手套使用现代导电织物制成,通过在(a)拇指和食指之间或(b)拇指和食指之间进行捏捏运动,检测参与者何时关闭两个电路中的一个。手的绝对位置是通过安装在手套背面的光学系统获得的。我们的初步结果是在我们自己的实验室进行的一小部分用户研究中获得的,结果表明,参与者发现这种手套所提供的分子和原子相互作用非常直观,给他们一种直接的“触摸”虚拟分子模拟的感觉。要“触摸”一个原子并对其施加力,参与者只需伸出他们想要触摸的原子,并将拇指和食指聚集在一起,就像他们抓住一个普通物体一样。该项目将开发将VR数据手套应用于许多不同系统所需的软件和硬件,包括小分子与5-HT2A血清素受体的结合。在此过程中,我们将构建开源硬件和软件框架工具,使更有效的分子模拟计算复杂系统中的结合自由能。
英文摘要
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 project, the student will carry on these attempts to extend immersive technologies to the molecular sciences.Specifically, the project will focus on developing a next-generation VR-data gloves, constructed using modern conductive fabrics, which detect when a participant closes one of two circuits, by making a pinching motion between (a) their thumb and index finger or (b) their thumb and forefinger. The absolute position of the hand is obtained from mounting an optical system on the back of the glove. Our preliminary results, obtained from a small set of user studies carried out in our own laboratory, suggest that participants find the molecular and atomic interaction afforded by this glove extremely intuitive, giving them a direct sense of "touching" virtual molecular simulations. To "touch" an atom and exert a force on it, the participant simply reaches out to the atom they wish to touch and brings together their thumb and forefinger as they would do if they were grasping a normal object. This project will develop the software and hardware required to apply the VR data glove to a number of different systems, including the binding of small molecules to the 5-HT2A serotonin receptors. In so doing, we will build open-source hardware and software frameworks tools which enable more efficient molecular simulation for calculating binding free energies in complex systems.
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