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Mechanisms and topology determination of complex chemical and biological network systems from first-passage theoretical approach

机译:基于第一遍理论方法的复杂化学和生物网络系统的机理和拓扑确定

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摘要

The majority of chemical and biological processes can be viewed as complex networks of states connected by dynamic transitions. It is fundamentally important to determine the structure of these networks in order to fully understand the mechanisms of underlying processes. A new theoretical method of obtaining topologies and dynamic properties of complex networks, which utilizes a first-passage analysis, is developed. Our approach is based on a hypothesis that full temporal distributions of events between two arbitrary states contain full information on number of intermediate states, pathways, and transitions that lie between initial and final states. Several types of network systems are analyzed analytically and numerically. It is found that the approach is successful in determining structural and dynamic properties, providing a direct way of getting topology and mechanisms of general chemical network systems. The application of the method is illustrated on two examples of experimental studies of motor protein systems.
机译:大多数化学和生物过程都可以看作是由动态跃迁连接的复杂状态网络。确定这些网络的结构从根本上很重要,以便充分了解底层流程的机制。开发了一种利用首次通过分析获得复杂网络拓扑和动态特性的新理论方法。我们的方法基于这样一个假设:两个任意状态之间事件的完整时间分布包含有关介于初始状态和最终状态之间的中间状态,路径和转换数量的完整信息。对几种类型的网络系统进行了分析和数值分析。发现该方法成功地确定了结构和动力学性质,提供了获得常规化学网络系统的拓扑和机理的直接方法。在运动蛋白系统实验研究的两个例子中说明了该方法的应用。

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