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PMID: 21983269 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

A variational principle for computing nonequilibrium fluxes and potentials in genome-scale biochemical networks.

Journal of theoretical biology ·Vol. 292 ·2012-01-07 ·Pages 71-7

Fleming RM, Maes CM, Saunders MA, Ye Y, Palsson BØ

Abstract

We derive a convex optimization problem on a steady-state nonequilibrium network of biochemical reactions, with the property that energy conservation and the second law of thermodynamics both hold at the problem solution. This suggests a new variational principle for biochemical networks that can be implemented in a computationally tractable manner. We derive the Lagrange dual of the optimization problem and use strong duality to demonstrate that a biochemical analogue of Tellegen's theorem holds at optimality. Each optimal flux is dependent on a free parameter that we relate to an elementary kinetic parameter when mass action kinetics is assumed.

MeSH Terms
Entropy Genome Humans Metabolic Networks and Pathways/physiology Models, Biological Systems Biology/methods Thermodynamics
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Fleming R M T
Center for Systems Biology, University of Iceland, Sturlugata 8, Reykjavik 101, Iceland. [email protected]
Maes C M
Saunders M A
Ye Y
Palsson B Ø
Article Info
Journal
Journal of theoretical biology
Abbr.
J Theor Biol
ISSN
1095-8541
Published
2012-01-07
Epub
2011-00-05
Pages
71-7
Language
English
Region
England
NLM ID
0376342
Subset
IM
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