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PMID: 16202166 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Hybrid dynamic/static method for large-scale simulation of metabolism.

Theoretical biology & medical modelling ·Vol. 2 ·2005-10-04 ·Pages 42

Yugi K, Nakayama Y, Kinoshita A, Tomita M

Abstract

Many computer studies have employed either dynamic simulation or metabolic flux analysis (MFA) to predict the behaviour of biochemical pathways. Dynamic simulation determines the time evolution of pathway properties in response to environmental changes, whereas MFA provides only a snapshot of pathway properties within a particular set of environmental conditions. However, owing to the large amount of kinetic data required for dynamic simulation, MFA, which requires less information, has been used to manipulate large-scale pathways to determine metabolic outcomes. Here we describe a simulation method based on cooperation between kinetics-based dynamic models and MFA-based static models. This hybrid method enables quasi-dynamic simulations of large-scale metabolic pathways, while drastically reducing the number of kinetics assays needed for dynamic simulations. The dynamic behaviour of metabolic pathways predicted by our method is almost identical to that determined by dynamic kinetic simulation. The discrepancies between the dynamic and the hybrid models were sufficiently small to prove that an MFA-based static module is capable of performing dynamic simulations as accurately as kinetic models. Our hybrid method reduces the number of biochemical experiments required for dynamic models of large-scale metabolic pathways by replacing suitable enzyme reactions with a static module.

MeSH Terms
Animals Computer Simulation Erythrocytes/metabolism Humans Kinetics Metabolism Models, Biological
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Yugi Katsuyuki
Institute for Advanced Biosciences, Keio University, Fujisawa, Kanagawa, 252-8520, Japan. [email protected]
Nakayama Yoichi
Kinoshita Ayako
Tomita Masaru
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Article Info
Journal
Theoretical biology & medical modelling
Abbr.
Theor Biol Med Model
ISSN
1742-4682
Published
2005-10-04
Epub
2005-00-04
Pages
42
Language
English
Region
England
NLM ID
101224383
PMCID
PMC1262783
Subset
IM
Analysis Services
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