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Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles

Placental amino acid transport is required for fetal development and impaired transport has been associated with poor fetal growth. It is well known that placental amino acid transport is mediated by a broad array of specific membrane transporters with overlapping substrate specificity. However, it...

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Autores principales: Panitchob, N., Widdows, K.L., Crocker, I.P., Hanson, M.A., Johnstone, E.D., Please, C.P., Sibley, C.P., Glazier, J.D., Lewis, R.M., Sengers, B.G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4271776/
https://www.ncbi.nlm.nih.gov/pubmed/25451528
http://dx.doi.org/10.1016/j.jtbi.2014.10.042
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author Panitchob, N.
Widdows, K.L.
Crocker, I.P.
Hanson, M.A.
Johnstone, E.D.
Please, C.P.
Sibley, C.P.
Glazier, J.D.
Lewis, R.M.
Sengers, B.G.
author_facet Panitchob, N.
Widdows, K.L.
Crocker, I.P.
Hanson, M.A.
Johnstone, E.D.
Please, C.P.
Sibley, C.P.
Glazier, J.D.
Lewis, R.M.
Sengers, B.G.
author_sort Panitchob, N.
collection PubMed
description Placental amino acid transport is required for fetal development and impaired transport has been associated with poor fetal growth. It is well known that placental amino acid transport is mediated by a broad array of specific membrane transporters with overlapping substrate specificity. However, it is not fully understood how these transporters function, both individually and as an integrated system. We propose that mathematical modelling could help in further elucidating the underlying mechanisms of how these transporters mediate placental amino acid transport. The aim of this work is to model the sodium independent transport of serine, which has been assumed to follow an obligatory exchange mechanism. However, previous amino acid uptake experiments in human placental microvillous plasma membrane vesicles have persistently produced results that are seemingly incompatible with such a mechanism; i.e. transport has been observed under zero-trans conditions, in the absence of internal substrates inside the vesicles to drive exchange. This observation raises two alternative hypotheses; (i) either exchange is not fully obligatory, or (ii) exchange is indeed obligatory, but an unforeseen initial concentration of amino acid substrate is present within the vesicle which could drive exchange. To investigate these possibilities, a mathematical model for tracer uptake was developed based on carrier mediated transport, which can represent either facilitated diffusion or obligatory exchange (also referred to as uniport and antiport mechanisms, respectively). In vitro measurements of serine uptake by placental microvillous membrane vesicles were carried out and the model applied to interpret the results based on the measured apparent Michaelis–Menten parameters K(m) and V(max). In addition, based on model predictions, a new time series experiment was implemented to distinguish the hypothesised transporter mechanisms. Analysis of the results indicated the presence of a facilitated transport component, while based on the model no evidence for substantial levels of endogenous amino acids within the vesicle was found.
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spelling pubmed-42717762015-01-21 Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles Panitchob, N. Widdows, K.L. Crocker, I.P. Hanson, M.A. Johnstone, E.D. Please, C.P. Sibley, C.P. Glazier, J.D. Lewis, R.M. Sengers, B.G. J Theor Biol Article Placental amino acid transport is required for fetal development and impaired transport has been associated with poor fetal growth. It is well known that placental amino acid transport is mediated by a broad array of specific membrane transporters with overlapping substrate specificity. However, it is not fully understood how these transporters function, both individually and as an integrated system. We propose that mathematical modelling could help in further elucidating the underlying mechanisms of how these transporters mediate placental amino acid transport. The aim of this work is to model the sodium independent transport of serine, which has been assumed to follow an obligatory exchange mechanism. However, previous amino acid uptake experiments in human placental microvillous plasma membrane vesicles have persistently produced results that are seemingly incompatible with such a mechanism; i.e. transport has been observed under zero-trans conditions, in the absence of internal substrates inside the vesicles to drive exchange. This observation raises two alternative hypotheses; (i) either exchange is not fully obligatory, or (ii) exchange is indeed obligatory, but an unforeseen initial concentration of amino acid substrate is present within the vesicle which could drive exchange. To investigate these possibilities, a mathematical model for tracer uptake was developed based on carrier mediated transport, which can represent either facilitated diffusion or obligatory exchange (also referred to as uniport and antiport mechanisms, respectively). In vitro measurements of serine uptake by placental microvillous membrane vesicles were carried out and the model applied to interpret the results based on the measured apparent Michaelis–Menten parameters K(m) and V(max). In addition, based on model predictions, a new time series experiment was implemented to distinguish the hypothesised transporter mechanisms. Analysis of the results indicated the presence of a facilitated transport component, while based on the model no evidence for substantial levels of endogenous amino acids within the vesicle was found. Elsevier 2015-01-21 /pmc/articles/PMC4271776/ /pubmed/25451528 http://dx.doi.org/10.1016/j.jtbi.2014.10.042 Text en © 2014 The Authors https://creativecommons.org/licenses/by/3.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Panitchob, N.
Widdows, K.L.
Crocker, I.P.
Hanson, M.A.
Johnstone, E.D.
Please, C.P.
Sibley, C.P.
Glazier, J.D.
Lewis, R.M.
Sengers, B.G.
Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title_full Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title_fullStr Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title_full_unstemmed Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title_short Computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
title_sort computational modelling of amino acid exchange and facilitated transport in placental membrane vesicles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4271776/
https://www.ncbi.nlm.nih.gov/pubmed/25451528
http://dx.doi.org/10.1016/j.jtbi.2014.10.042
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