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Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei

Dynamic models of metabolism can be useful in identifying potential drug targets, especially in unicellular organisms. A model of glycolysis in the causative agent of human African trypanosomiasis, Trypanosoma brucei, has already shown the utility of this approach. Here we add the pentose phosphate...

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Autores principales: Kerkhoven, Eduard J., Achcar, Fiona, Alibu, Vincent P., Burchmore, Richard J., Gilbert, Ian H., Trybiło, Maciej, Driessen, Nicole N., Gilbert, David, Breitling, Rainer, Bakker, Barbara M., Barrett, Michael P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3854711/
https://www.ncbi.nlm.nih.gov/pubmed/24339766
http://dx.doi.org/10.1371/journal.pcbi.1003371
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author Kerkhoven, Eduard J.
Achcar, Fiona
Alibu, Vincent P.
Burchmore, Richard J.
Gilbert, Ian H.
Trybiło, Maciej
Driessen, Nicole N.
Gilbert, David
Breitling, Rainer
Bakker, Barbara M.
Barrett, Michael P.
author_facet Kerkhoven, Eduard J.
Achcar, Fiona
Alibu, Vincent P.
Burchmore, Richard J.
Gilbert, Ian H.
Trybiło, Maciej
Driessen, Nicole N.
Gilbert, David
Breitling, Rainer
Bakker, Barbara M.
Barrett, Michael P.
author_sort Kerkhoven, Eduard J.
collection PubMed
description Dynamic models of metabolism can be useful in identifying potential drug targets, especially in unicellular organisms. A model of glycolysis in the causative agent of human African trypanosomiasis, Trypanosoma brucei, has already shown the utility of this approach. Here we add the pentose phosphate pathway (PPP) of T. brucei to the glycolytic model. The PPP is localized to both the cytosol and the glycosome and adding it to the glycolytic model without further adjustments leads to a draining of the essential bound-phosphate moiety within the glycosome. This phosphate “leak” must be resolved for the model to be a reasonable representation of parasite physiology. Two main types of theoretical solution to the problem could be identified: (i) including additional enzymatic reactions in the glycosome, or (ii) adding a mechanism to transfer bound phosphates between cytosol and glycosome. One example of the first type of solution would be the presence of a glycosomal ribokinase to regenerate ATP from ribose 5-phosphate and ADP. Experimental characterization of ribokinase in T. brucei showed that very low enzyme levels are sufficient for parasite survival, indicating that other mechanisms are required in controlling the phosphate leak. Examples of the second type would involve the presence of an ATP:ADP exchanger or recently described permeability pores in the glycosomal membrane, although the current absence of identified genes encoding such molecules impedes experimental testing by genetic manipulation. Confronted with this uncertainty, we present a modeling strategy that identifies robust predictions in the context of incomplete system characterization. We illustrate this strategy by exploring the mechanism underlying the essential function of one of the PPP enzymes, and validate it by confirming the model predictions experimentally.
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spelling pubmed-38547112013-12-11 Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei Kerkhoven, Eduard J. Achcar, Fiona Alibu, Vincent P. Burchmore, Richard J. Gilbert, Ian H. Trybiło, Maciej Driessen, Nicole N. Gilbert, David Breitling, Rainer Bakker, Barbara M. Barrett, Michael P. PLoS Comput Biol Research Article Dynamic models of metabolism can be useful in identifying potential drug targets, especially in unicellular organisms. A model of glycolysis in the causative agent of human African trypanosomiasis, Trypanosoma brucei, has already shown the utility of this approach. Here we add the pentose phosphate pathway (PPP) of T. brucei to the glycolytic model. The PPP is localized to both the cytosol and the glycosome and adding it to the glycolytic model without further adjustments leads to a draining of the essential bound-phosphate moiety within the glycosome. This phosphate “leak” must be resolved for the model to be a reasonable representation of parasite physiology. Two main types of theoretical solution to the problem could be identified: (i) including additional enzymatic reactions in the glycosome, or (ii) adding a mechanism to transfer bound phosphates between cytosol and glycosome. One example of the first type of solution would be the presence of a glycosomal ribokinase to regenerate ATP from ribose 5-phosphate and ADP. Experimental characterization of ribokinase in T. brucei showed that very low enzyme levels are sufficient for parasite survival, indicating that other mechanisms are required in controlling the phosphate leak. Examples of the second type would involve the presence of an ATP:ADP exchanger or recently described permeability pores in the glycosomal membrane, although the current absence of identified genes encoding such molecules impedes experimental testing by genetic manipulation. Confronted with this uncertainty, we present a modeling strategy that identifies robust predictions in the context of incomplete system characterization. We illustrate this strategy by exploring the mechanism underlying the essential function of one of the PPP enzymes, and validate it by confirming the model predictions experimentally. Public Library of Science 2013-12-05 /pmc/articles/PMC3854711/ /pubmed/24339766 http://dx.doi.org/10.1371/journal.pcbi.1003371 Text en © 2013 Kerkhoven et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kerkhoven, Eduard J.
Achcar, Fiona
Alibu, Vincent P.
Burchmore, Richard J.
Gilbert, Ian H.
Trybiło, Maciej
Driessen, Nicole N.
Gilbert, David
Breitling, Rainer
Bakker, Barbara M.
Barrett, Michael P.
Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title_full Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title_fullStr Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title_full_unstemmed Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title_short Handling Uncertainty in Dynamic Models: The Pentose Phosphate Pathway in Trypanosoma brucei
title_sort handling uncertainty in dynamic models: the pentose phosphate pathway in trypanosoma brucei
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3854711/
https://www.ncbi.nlm.nih.gov/pubmed/24339766
http://dx.doi.org/10.1371/journal.pcbi.1003371
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