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PMID: 18442411 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S.

A mathematical model of glutathione metabolism.

Theoretical biology & medical modelling ·Vol. 5 ·2008-04-28 ·Pages 8

Reed MC, Thomas RL, Pavisic J, James SJ, Ulrich CM, Nijhout HF

Abstract

Glutathione (GSH) plays an important role in anti-oxidant defense and detoxification reactions. It is primarily synthesized in the liver by the transsulfuration pathway and exported to provide precursors for in situ GSH synthesis by other tissues. Deficits in glutathione have been implicated in aging and a host of diseases including Alzheimer's disease, Parkinson's disease, cardiovascular disease, cancer, Down syndrome and autism. We explore the properties of glutathione metabolism in the liver by experimenting with a mathematical model of one-carbon metabolism, the transsulfuration pathway, and glutathione synthesis, transport, and breakdown. The model is based on known properties of the enzymes and the regulation of those enzymes by oxidative stress. We explore the half-life of glutathione, the regulation of glutathione synthesis, and its sensitivity to fluctuations in amino acid input. We use the model to simulate the metabolic profiles previously observed in Down syndrome and autism and compare the model results to clinical data. We show that the glutathione pools in hepatic cells and in the blood are quite insensitive to fluctuations in amino acid input and offer an explanation based on model predictions. In contrast, we show that hepatic glutathione pools are highly sensitive to the level of oxidative stress. The model shows that overexpression of genes on chromosome 21 and an increase in oxidative stress can explain the metabolic profile of Down syndrome. The model also correctly simulates the metabolic profile of autism when oxidative stress is substantially increased and the adenosine concentration is raised. Finally, we discuss how individual variation arises and its consequences for one-carbon and glutathione metabolism.

MeSH Terms
Adenosine/metabolism Antioxidants/metabolism Autistic Disorder/pathology Carbon/metabolism Cytosol/metabolism Down Syndrome/pathology Glutathione/metabolism Humans Inflammation Kinetics Liver/embryology,metabolism Models, Biological Models, Theoretical Oxidative Stress
Chemicals
Antioxidants Carbon Glutathione Adenosine
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Reed Michael C
Department of Mathematics, Duke University, Durham, NC 27708, USA. [email protected]
Thomas Rachel L
Pavisic Jovana
James S Jill
Ulrich Cornelia M
Nijhout H Frederik
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Article Info
Journal
Theoretical biology & medical modelling
Abbr.
Theor Biol Med Model
ISSN
1742-4682
Published
2008-04-28
Epub
2008-00-28
Pages
8
Language
English
Region
England
NLM ID
101224383
PMCID
PMC2391141
Subset
IM
Grants
NCI NIH HHS · R01 CA105437 · United States
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