Schmidt Jeanette P, Delp Scott L, Sherman Michael A, Taylor Charles A, Pande Vijay S, Altman Russ B
Departments of Bioengineering, Stanford University, MC-5448, Stanford, CA 94305-5448 USA.
Proc IEEE Inst Electr Electron Eng. 2008 Aug 1;96(8):1266. doi: 10.1109/JPROC.2008.925454.
Physics-based simulation is needed to understand the function of biological structures and can be applied across a wide range of scales, from molecules to organisms. Simbios (the National Center for Physics-Based Simulation of Biological Structures, http://www.simbios.stanford.edu/) is one of seven NIH-supported National Centers for Biomedical Computation. This article provides an overview of the mission and achievements of Simbios, and describes its place within systems biology. Understanding the interactions between various parts of a biological system and integrating this information to understand how biological systems function is the goal of systems biology. Many important biological systems comprise complex structural systems whose components interact through the exchange of physical forces, and whose movement and function is dictated by those forces. In particular, systems that are made of multiple identifiable components that move relative to one another in a constrained manner are multibody systems. Simbios' focus is creating methods for their simulation. Simbios is also investigating the biomechanical forces that govern fluid flow through deformable vessels, a central problem in cardiovascular dynamics. In this application, the system is governed by the interplay of classical forces, but the motion is distributed smoothly through the materials and fluids, requiring the use of continuum methods. In addition to the research aims, Simbios is working to disseminate information, software and other resources relevant to biological systems in motion.
需要基于物理学的模拟来理解生物结构的功能,并且它可以应用于从分子到生物体的广泛尺度范围。Simbios(生物结构基于物理学模拟国家中心,网址:http://www.simbios.stanford.edu/)是美国国立卫生研究院支持的七个生物医学计算国家中心之一。本文概述了Simbios的使命和成就,并描述了它在系统生物学中的地位。理解生物系统各个部分之间的相互作用,并整合这些信息以了解生物系统如何发挥功能,这是系统生物学的目标。许多重要的生物系统由复杂的结构系统组成,其组成部分通过物理力的交换相互作用,并且其运动和功能由这些力决定。特别是,由多个可识别的组件以受限方式相对彼此移动而构成的系统是多体系统。Simbios的重点是创建对其进行模拟的方法。Simbios还在研究控制流体通过可变形血管流动的生物力学力,这是心血管动力学中的一个核心问题。在这个应用中,系统由经典力的相互作用控制,但运动在材料和流体中平滑分布,这需要使用连续介质方法。除了研究目标外,Simbios还致力于传播与运动中的生物系统相关的信息、软件和其他资源。