Journal of Computational Biology · 2009 · 14 citations · 28 references
Concepts such as elementary flux modes (EFMs) and extreme pathways are useful tools in the detection of non-decomposable routes (metabolic pathways) in biochemical networks. These methods are based on the fact that metabolic networks obey a mass balance condition. In signal transduction networks, that condition is of minor importance because it is the flow of information that matters. Nevertheless, it would be interesting to apply pathway detection methods to signaling systems. Here, we present a formalism by which this can be achieved in the case of enzyme cascades operating, for example, by phosphorylation and dephosphorylation. It is based on the ideas that the signal is not diminished along each route and that the system has to return to its original state after each signaling event. We illustrate the method by several simple prototypic single-phosphorylation and double-phosphorylation cascades, including convergent and divergent branching. Moreover, it is applied to a specific example from insulin signaling. (See online Supplementary Material at www.liebertonline.com.).
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Metabolic network structure determines key aspects of functionality and regulation
Jörg Stelling, Steffen Klamt, Katja Bettenbrock et al. · Nature · 2002 · 796 citations
Michael A. Savageau · Journal of Theoretical Biology · 1969 · 728 citations
Christophe H. Schilling, David Letscher, Bernhard Ø. Palsson · Journal of Theoretical Biology · 2000 · 658 citations