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PMID: 21081060 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Thermodynamic calculations for biochemical transport and reaction processes in metabolic networks.

Biophysical journal ·Vol. 99 ·No. 10 ·2010-11-17 ·Pages 3139-44

Jol SJ, Kümmel A, Hatzimanikatis V, Beard DA, Heinemann M

Abstract

Thermodynamic analysis of metabolic networks has recently generated increasing interest for its ability to add constraints on metabolic network operation, and to combine metabolic fluxes and metabolite measurements in a mechanistic manner. Concepts for the calculation of the change in Gibbs energy of biochemical reactions have long been established. However, a concept for incorporation of cross-membrane transport in these calculations is still missing, although the theory for calculating thermodynamic properties of transport processes is long known. Here, we have developed two equivalent equations to calculate the change in Gibbs energy of combined transport and reaction processes based on two different ways of treating biochemical thermodynamics. We illustrate the need for these equations by showing that in some cases there is a significant difference between the proposed correct calculation and using an approximative method. With the developed equations, thermodynamic analysis of metabolic networks spanning over multiple physical compartments can now be correctly described.

MeSH Terms
Adenosine Triphosphatases/metabolism Biological Transport Cell Compartmentation Hydrogen-Ion Concentration Metabolic Networks and Pathways Protons Succinates/metabolism Thermodynamics
Chemicals
Protons Succinates Adenosine Triphosphatases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Jol Stefan J
ETH Zurich, Zurich, Switzerland.
Kümmel Anne
Hatzimanikatis Vassily
Beard Daniel A
Heinemann Matthias
References (29)
29 references, click to expand
  1. Thermodynamic constraints for biochemical networks.
    J Theor Biol. 2004 Jun 7;228(3):327-33 PMID: 15135031
  2. Stoichiometric network theory for nonequilibrium biochemical systems.
    Eur J Biochem. 2003 Feb;270(3):415-21 PMID: 12542691
  3. Thermodynamic-based computational profiling of cellular regulatory control in hepatocyte metabolism.
    Am J Physiol Endocrinol Metab. 2005 Mar;288(3):E633-44 PMID: 15507536
  4. Thermodynamically based profiling of drug metabolism and drug-drug metabolic interactions: a case study of acetaminophen and ethanol toxic interaction.
    Biophys Chem. 2006 Mar 20;120(2):121-34 PMID: 16314027
  5. Cross-platform comparison of methods for quantitative metabolomics of primary metabolism.
    Anal Chem. 2009 Mar 15;81(6):2135-43 PMID: 19236023
  6. Coupling of phosphorylation to electron and hydrogen transfer by a chemi-osmotic type of mechanism.
    Nature. 1961 Jul 8;191:144-8 PMID: 13771349
  7. Candidate states of Helicobacter pylori's genome-scale metabolic network upon application of "loop law" thermodynamic constraints.
    Biophys J. 2006 Jun 1;90(11):3919-28 PMID: 16533855
  8. Genome-scale thermodynamic analysis of Escherichia coli metabolism.
    Biophys J. 2006 Feb 15;90(4):1453-61 PMID: 16299075
  9. Mitochondrial carriers in the cytoplasmic state have a common substrate binding site.
    Proc Natl Acad Sci U S A. 2006 Feb 21;103(8):2617-22 PMID: 16469842
  10. Identification of localized and distributed bottlenecks in metabolic pathways.
    Proc Int Conf Intell Syst Mol Biol. 1993;1:275-83 PMID: 7584346
  11. Extreme pathways and Kirchhoff's second law.
    Biophys J. 2002 Nov;83(5):2879-82 PMID: 12425318
  12. A biophysical model of the mitochondrial respiratory system and oxidative phosphorylation.
    PLoS Comput Biol. 2005 Sep;1(4):e36 PMID: 16163394
  13. Identification of distributed metabolic objectives in the hypermetabolic liver by flux and energy balance analysis.
    Metab Eng. 2006 Jan;8(1):30-45 PMID: 16289779
  14. In vivo 31P NMR studies on the role of the vacuole in phosphate metabolism in yeasts.
    Arch Microbiol. 1983 Jul;134(4):270-5 PMID: 6684418
  15. How reliable are thermodynamic feasibility statements of biochemical pathways?
    Biotechnol Bioeng. 2005 Oct 20;92(2):223-30 PMID: 15962336
  16. Relations between biochemical thermodynamics and biochemical kinetics.
    Biophys Chem. 2006 Oct 20;124(1):11-7 PMID: 16766115
  17. Dynamics of muscle glycogenolysis modeled with pH time course computation and pH-dependent reaction equilibria and enzyme kinetics.
    Biophys J. 2006 Aug 15;91(4):1264-87 PMID: 16617075
  18. Metabolic futile cycles and their functions: a systems analysis of energy and control.
    Syst Biol (Stevenage). 2006 Jul;153(4):192-200 PMID: 16986621
  19. The principle of flux minimization and its application to estimate stationary fluxes in metabolic networks.
    Eur J Biochem. 2004 Jul;271(14):2905-22 PMID: 15233787
  20. Putative regulatory sites unraveled by network-embedded thermodynamic analysis of metabolome data.
    Mol Syst Biol. 2006;2:2006.0034 PMID: 16788595
  21. Relationship between thermodynamic driving force and one-way fluxes in reversible processes.
    PLoS One. 2007 Jan 03;2(1):e144 PMID: 17206279
  22. Quantitative assignment of reaction directionality in constraint-based models of metabolism: application to Escherichia coli.
    Biophys Chem. 2009 Dec;145(2-3):47-56 PMID: 19783351
  23. Tradeoff between enzyme and metabolite efficiency maintains metabolic homeostasis upon perturbations in enzyme capacity.
    Mol Syst Biol. 2010 Apr 13;6:356 PMID: 20393576
  24. Systematic assignment of thermodynamic constraints in metabolic network models.
    BMC Bioinformatics. 2006 Nov 23;7:512 PMID: 17123434
  25. Ab initio prediction of thermodynamically feasible reaction directions from biochemical network stoichiometry.
    Metab Eng. 2005 Jul;7(4):251-9 PMID: 16140239
  26. Energy balance for analysis of complex metabolic networks.
    Biophys J. 2002 Jul;83(1):79-86 PMID: 12080101
  27. The thermodynamic meaning of metabolic exchange fluxes.
    Biophys J. 2007 Sep 15;93(6):2255-64 PMID: 17526563
  28. Oxidative ATP synthesis in skeletal muscle is controlled by substrate feedback.
    Am J Physiol Cell Physiol. 2007 Jan;292(1):C115-24 PMID: 16837647
  29. Metabolic control analysis of biochemical pathways based on a thermokinetic description of reaction rates.
    Biochem J. 1997 Jan 1;321 ( Pt 1):133-8 PMID: 9003411
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
1542-0086
Published
2010-11-17
Pages
3139-44
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC2980713
Subset
IM
Grants
NHLBI NIH HHS · R01 HL072011 · United States
NHLBI NIH HHS · R01 HL072011-06A1 · United States
NHLBI NIH HHS · HL072011 · United States
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