Doi Atsushi, Fujita Sachie, Matsuno Hiroshi, Nagasaki Masao, Miyano Satoru
Faculty of Science, Yamaguchi University, Japan, E-mail:
Stud Health Technol Inform. 2011;162:92-112.
In many research projects on modeling and analyzing biological pathways, the Petri net has been recognized as a promising method for representing biological pathways. From the pioneering works by Reddy et al., 1993, and Hofestädt, 1994, that model metabolic pathways by traditional Petri net, several enhanced Petri nets such as colored Petri net, stochastic Petri net, and hybrid Petri net have been used for modeling biological phenomena. Recently, Matsuno et al., 2003b, introduced the hybrid functional Petri net (HFPN) in order to give a more intuitive and natural modeling method for biological pathways than these existing Petri nets. Although the paper demonstrates the effectiveness of HFPN with two examples of gene regulation mechanism for circadian rhythms and apoptosis signaling pathway, there has been no detailed explanation about the method of HFPN construction for these examples. The purpose of this paper is to describe method to construct biological pathways with the HFPN step-by-step. The method is demonstrated by the well-known glycolytic pathway controlled by the lac operon gene regulatory mechanism.
在许多关于生物途径建模与分析的研究项目中,Petri网已被公认为一种用于表示生物途径的有前途的方法。自1993年Reddy等人以及1994年Hofestädt的开创性工作以来,他们用传统Petri网对代谢途径进行建模,此后一些增强型Petri网,如实色Petri网、随机Petri网和混合Petri网,已被用于对生物现象进行建模。最近,2003年Matsuno等人引入了混合功能Petri网(HFPN),以便为生物途径提供一种比现有Petri网更直观、更自然的建模方法。尽管该论文通过昼夜节律的基因调控机制和细胞凋亡信号通路这两个例子证明了HFPN的有效性,但对于这些例子中HFPN的构建方法却没有详细解释。本文的目的是逐步描述用HFPN构建生物途径的方法。该方法通过由乳糖操纵子基因调控机制控制的著名糖酵解途径进行了演示。