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Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation

In the CNS, amino acid (AA) neurotransmitters and neurotransmitter precursors are subject to tight homeostatic control mediated by blood-brain barrier (BBB) solute carrier amino acid transporters (AATs). Since the BBB is composed of multiple closely apposed cell types and opportunities for human in...

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Autores principales: Taslimifar, Mehdi, Faltys, Martin, Kurtcuoglu, Vartan, Verrey, François, Makrides, Victoria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8721536/
https://www.ncbi.nlm.nih.gov/pubmed/34427144
http://dx.doi.org/10.1177/0271678X211039593
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author Taslimifar, Mehdi
Faltys, Martin
Kurtcuoglu, Vartan
Verrey, François
Makrides, Victoria
author_facet Taslimifar, Mehdi
Faltys, Martin
Kurtcuoglu, Vartan
Verrey, François
Makrides, Victoria
author_sort Taslimifar, Mehdi
collection PubMed
description In the CNS, amino acid (AA) neurotransmitters and neurotransmitter precursors are subject to tight homeostatic control mediated by blood-brain barrier (BBB) solute carrier amino acid transporters (AATs). Since the BBB is composed of multiple closely apposed cell types and opportunities for human in vivo studies are limited, we used in vitro and computational approaches to investigate human BBB AAT activity and regulation. Quantitative real-time PCR (qPCR) of the human BBB endothelial cell model hCMEC/D3 (D3) was used to determine expression of selected AAT, tight junction (TJ), and signal transduction (ST) genes under various culture conditions. L-leucine uptake data were interrogated with a computational model developed by our group for calculating AAT activity in complex cell cultures. This approach is potentially applicable to in vitro cell culture drug studies where multiple “receptors” may mediate observed responses. Of 7 Leu AAT genes expressed by D3 only the activity of SLC7A5-SLC3A2/LAT1-4F2HC (LAT1), SLC43A2/LAT4 (LAT4) and sodium-dependent AATs, SLC6A15/B(0)AT2 (B(0)AT2), and SLC7A7/y(+)LAT1 (y(+)LAT1) were calculated to be required for Leu uptake. Therefore, D3 Leu transport may be mediated by a potentially physiologically relevant functional cooperation between the known BBB AAT, LAT1 and obligatory exchange (y(+)LAT1), facilitative diffusion (LAT4), and sodium symporter (B(0)AT2) transporters.
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spelling pubmed-87215362022-01-04 Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation Taslimifar, Mehdi Faltys, Martin Kurtcuoglu, Vartan Verrey, François Makrides, Victoria J Cereb Blood Flow Metab Original Articles In the CNS, amino acid (AA) neurotransmitters and neurotransmitter precursors are subject to tight homeostatic control mediated by blood-brain barrier (BBB) solute carrier amino acid transporters (AATs). Since the BBB is composed of multiple closely apposed cell types and opportunities for human in vivo studies are limited, we used in vitro and computational approaches to investigate human BBB AAT activity and regulation. Quantitative real-time PCR (qPCR) of the human BBB endothelial cell model hCMEC/D3 (D3) was used to determine expression of selected AAT, tight junction (TJ), and signal transduction (ST) genes under various culture conditions. L-leucine uptake data were interrogated with a computational model developed by our group for calculating AAT activity in complex cell cultures. This approach is potentially applicable to in vitro cell culture drug studies where multiple “receptors” may mediate observed responses. Of 7 Leu AAT genes expressed by D3 only the activity of SLC7A5-SLC3A2/LAT1-4F2HC (LAT1), SLC43A2/LAT4 (LAT4) and sodium-dependent AATs, SLC6A15/B(0)AT2 (B(0)AT2), and SLC7A7/y(+)LAT1 (y(+)LAT1) were calculated to be required for Leu uptake. Therefore, D3 Leu transport may be mediated by a potentially physiologically relevant functional cooperation between the known BBB AAT, LAT1 and obligatory exchange (y(+)LAT1), facilitative diffusion (LAT4), and sodium symporter (B(0)AT2) transporters. SAGE Publications 2021-08-24 2022-01 /pmc/articles/PMC8721536/ /pubmed/34427144 http://dx.doi.org/10.1177/0271678X211039593 Text en © The Author(s) 2021 https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution 4.0 License (https://creativecommons.org/licenses/by/4.0/) which permits any use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Articles
Taslimifar, Mehdi
Faltys, Martin
Kurtcuoglu, Vartan
Verrey, François
Makrides, Victoria
Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title_full Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title_fullStr Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title_full_unstemmed Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title_short Analysis of L-leucine amino acid transporter species activity and gene expression by human blood brain barrier hCMEC/D3 model reveal potential LAT1, LAT4, B(0)AT2 and y(+)LAT1 functional cooperation
title_sort analysis of l-leucine amino acid transporter species activity and gene expression by human blood brain barrier hcmec/d3 model reveal potential lat1, lat4, b(0)at2 and y(+)lat1 functional cooperation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8721536/
https://www.ncbi.nlm.nih.gov/pubmed/34427144
http://dx.doi.org/10.1177/0271678X211039593
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