Hunter P J, Nielsen P M F, Bullivant D
Bioengineering Institute, University of Auckland, Private Bag 92019, Auckland, New Zealand.
Novartis Found Symp. 2002;247:207-17; discussion 217-21, 244-52.
Modern medicine is currently benefiting from the development of new genomic and proteomic techniques, and also from the development of ever more sophisticated clinical imaging devices. This will mean that the clinical assessment of a patient's medical condition could, in the near future, include information from both diagnostic imaging and DNA profile or protein expression data. The Physiome Project of the International Union of Physiological Sciences (IUPS) is attempting to provide a comprehensive framework for modelling the human body using computational methods which can incorporate the biochemistry, biophysics and anatomy of cells, tissues and organs. A major goal of the project is to use computational modelling to analyse integrative biological function in terms of underlying structure and molecular mechanisms. To support that goal the project is establishing web-accessible physiological databases dealing with model-related data, including bibliographic information, at the cell, tissue, organ and organ system levels. This paper discusses the development of comprehensive integrative mathematical models of human physiology based on patient-specific quantitative descriptions of anatomical structures and models of biophysical processes which reach down to the genetic level.
现代医学目前正受益于新的基因组学和蛋白质组学技术的发展,也受益于日益复杂的临床成像设备的发展。这将意味着,在不久的将来,对患者病情的临床评估可能会包括来自诊断成像以及DNA图谱或蛋白质表达数据的信息。国际生理科学联合会(IUPS)的生理组计划正试图提供一个全面的框架,以便使用能够纳入细胞、组织和器官的生物化学、生物物理学及解剖学的计算方法来对人体进行建模。该项目的一个主要目标是利用计算建模,从基础结构和分子机制方面分析综合生物功能。为支持这一目标,该项目正在建立可通过网络访问的生理数据库,这些数据库处理与模型相关的数据,包括细胞、组织、器官和器官系统层面的文献信息。本文讨论了基于对解剖结构的患者特异性定量描述以及深入到基因水平的生物物理过程模型而建立的人体生理学综合数学模型的发展情况。