| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |
| ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802
Correspondence: Address reprint requests to Costas D. Maranas, Tel.: 814-863-9958; Fax: 814-865-7846; E-mail: costas{at}psu.edu.
In this article, we introduce metabolite concentration coupling analysis (MCCA) to study conservation relationships for metabolite concentrations in genome-scale metabolic networks. The analysis allows the global identification of subsets of metabolites whose concentrations are always coupled within common conserved pools. Also, the minimal conserved pool identification (MCPI) procedure is developed for elucidating conserved pools for targeted metabolites without computing the entire basis conservation relationships. The approaches are demonstrated on genome-scale metabolic reconstructions of Helicobacter pylori, Escherichia coli, and Saccharomyces cerevisiae. Despite significant differences in the size and complexity of the examined organism's models, we find that the concentrations of nearly all metabolites are coupled within a relatively small number of subsets. These correspond to the overall exchange of carbon molecules into and out of the networks, interconversion of energy and redox cofactors, and the transfer of nitrogen, sulfur, phosphate, coenzyme A, and acyl carrier protein moieties among metabolites. The presence of large conserved pools can be viewed as global biophysical barriers protecting cellular systems from stresses, maintaining coordinated interconversions between key metabolites, and providing an additional mode of global metabolic regulation. The developed approaches thus provide novel and versatile tools for elucidating coupling relationships between metabolite concentrations with implications in biotechnological and medical applications.
This article has been cited by other articles:
![]() |
A. Gevorgyan, M. G. Poolman, and D. A. Fell Detection of stoichiometric inconsistencies in biomolecular models Bioinformatics, October 1, 2008; 24(19): 2245 - 2251. [Abstract] [Full Text] [PDF] |
||||
![]() |
D.-S. Lee, J. Park, K. A. Kay, N. A. Christakis, Z. N. Oltvai, and A.-L. Barabasi From the Cover: The implications of human metabolic network topology for disease comorbidity PNAS, July 22, 2008; 105(29): 9880 - 9885. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. Braun, E. Rietman, and M. Vidal Networking metabolites and diseases PNAS, July 22, 2008; 105(29): 9849 - 9850. [Full Text] [PDF] |
||||
![]() |
M. Imielinski, C. Belta, H. Rubin, and A. Halasz Systematic Analysis of Conservation Relations in Escherichia coli Genome-Scale Metabolic Network Reveals Novel Growth Media Biophys. J., April 15, 2006; 90(8): 2659 - 2672. [Abstract] [Full Text] [PDF] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |