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      Modeling and simulation of genetic regulatory systems: a literature review.

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          Abstract

          In order to understand the functioning of organisms on the molecular level, we need to know which genes are expressed, when and where in the organism, and to which extent. The regulation of gene expression is achieved through genetic regulatory systems structured by networks of interactions between DNA, RNA, proteins, and small molecules. As most genetic regulatory networks of interest involve many components connected through interlocking positive and negative feedback loops, an intuitive understanding of their dynamics is hard to obtain. As a consequence, formal methods and computer tools for the modeling and simulation of genetic regulatory networks will be indispensable. This paper reviews formalisms that have been employed in mathematical biology and bioinformatics to describe genetic regulatory systems, in particular directed graphs, Bayesian networks, Boolean networks and their generalizations, ordinary and partial differential equations, qualitative differential equations, stochastic equations, and rule-based formalisms. In addition, the paper discusses how these formalisms have been used in the simulation of the behavior of actual regulatory systems.

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          Author and article information

          Journal
          J Comput Biol
          Journal of computational biology : a journal of computational molecular cell biology
          Mary Ann Liebert Inc
          1066-5277
          1066-5277
          2002
          : 9
          : 1
          Affiliations
          [1 ] Institut National de Recherche en Informatique et en Automatique (INRIA), Unité de Recherche Rhône-Alpes, 655 avenue de l'Europe, Montbonnot, 38334 Saint Ismier CEDEX, France. Hidde.de-Jong@inrialpes.fr
          Article
          10.1089/10665270252833208
          11911796
          eb842a21-9286-4977-ac0f-6373cccf5784
          History

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