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Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension

In pulmonary artery hypertension (PAH), emerging evidence suggests that metabolic abnormalities may be contributing to cellular dysfunction in PAH. Metabolic abnormalities such as glycolytic shift have been observed intracellularly in several cell types in PAH, including microvacular endothelial cel...

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Autores principales: Philip, Nicolas, Pi, Hongyang, Gadkari, Mahin, Yun, Xin, Huetsch, John, Zhang, Cissy, Harlan, Robert, Roux, Aurelie, Graham, David, Shimoda, Larissa, Le, Anne, Visovatti, Scott, Leary, Peter J., Gharib, Sina A., Simpson, Catherine, Santhanam, Lakshmi, Steppan, Jochen, Suresh, Karthik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9978170/
https://www.ncbi.nlm.nih.gov/pubmed/36873460
http://dx.doi.org/10.1002/pul2.12205
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author Philip, Nicolas
Pi, Hongyang
Gadkari, Mahin
Yun, Xin
Huetsch, John
Zhang, Cissy
Harlan, Robert
Roux, Aurelie
Graham, David
Shimoda, Larissa
Le, Anne
Visovatti, Scott
Leary, Peter J.
Gharib, Sina A.
Simpson, Catherine
Santhanam, Lakshmi
Steppan, Jochen
Suresh, Karthik
author_facet Philip, Nicolas
Pi, Hongyang
Gadkari, Mahin
Yun, Xin
Huetsch, John
Zhang, Cissy
Harlan, Robert
Roux, Aurelie
Graham, David
Shimoda, Larissa
Le, Anne
Visovatti, Scott
Leary, Peter J.
Gharib, Sina A.
Simpson, Catherine
Santhanam, Lakshmi
Steppan, Jochen
Suresh, Karthik
author_sort Philip, Nicolas
collection PubMed
description In pulmonary artery hypertension (PAH), emerging evidence suggests that metabolic abnormalities may be contributing to cellular dysfunction in PAH. Metabolic abnormalities such as glycolytic shift have been observed intracellularly in several cell types in PAH, including microvacular endothelial cells (MVECs). Concurrently, metabolomics of human PAH samples has also revealed a variety of metabolic abnormalities; however the relationship between the intracellular metabolic abnormalities and the serum metabolome in PAH remains under investigation. In this study, we utilize the sugen/hypoxia (SuHx) rodent model of PAH to examine the RV, LV and MVEC intracellular metabolome (using targeted metabolomics) in normoxic and SuHx rats. We additionally validate key findings from our metabolomics experiments with data obtained from cell culture of normoxic and SuHx MVECs, as well as metabolomics of human serum samples from two different PAH patient cohorts. Taken together, our data, spanning rat serum, human serum and primary isolated rat MVECs reveal that: (1) key classes of amino acids (specifically, branched chain amino acids—BCAA) are lower in the pre‐capillary (i.e., RV) serum of SuHx rats (and humans); (2) intracellular amino acid levels (in particular BCAAs) are increased in SuHx‐MVECs; (3) there may be secretion rather than utilization of amino acids across the pulmonary microvasculature in PAH and (4) an oxidized glutathione gradient is present across the pulmonary vasculature, suggesting a novel fate for increased glutamine uptake (i.e., as a source of glutathione). in MVECs in PAH. In summary, these data reveal new insight into the shifts in amino acid metabolism occurring across the pulmonary circulation in PAH.
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spelling pubmed-99781702023-03-03 Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension Philip, Nicolas Pi, Hongyang Gadkari, Mahin Yun, Xin Huetsch, John Zhang, Cissy Harlan, Robert Roux, Aurelie Graham, David Shimoda, Larissa Le, Anne Visovatti, Scott Leary, Peter J. Gharib, Sina A. Simpson, Catherine Santhanam, Lakshmi Steppan, Jochen Suresh, Karthik Pulm Circ Research Articles In pulmonary artery hypertension (PAH), emerging evidence suggests that metabolic abnormalities may be contributing to cellular dysfunction in PAH. Metabolic abnormalities such as glycolytic shift have been observed intracellularly in several cell types in PAH, including microvacular endothelial cells (MVECs). Concurrently, metabolomics of human PAH samples has also revealed a variety of metabolic abnormalities; however the relationship between the intracellular metabolic abnormalities and the serum metabolome in PAH remains under investigation. In this study, we utilize the sugen/hypoxia (SuHx) rodent model of PAH to examine the RV, LV and MVEC intracellular metabolome (using targeted metabolomics) in normoxic and SuHx rats. We additionally validate key findings from our metabolomics experiments with data obtained from cell culture of normoxic and SuHx MVECs, as well as metabolomics of human serum samples from two different PAH patient cohorts. Taken together, our data, spanning rat serum, human serum and primary isolated rat MVECs reveal that: (1) key classes of amino acids (specifically, branched chain amino acids—BCAA) are lower in the pre‐capillary (i.e., RV) serum of SuHx rats (and humans); (2) intracellular amino acid levels (in particular BCAAs) are increased in SuHx‐MVECs; (3) there may be secretion rather than utilization of amino acids across the pulmonary microvasculature in PAH and (4) an oxidized glutathione gradient is present across the pulmonary vasculature, suggesting a novel fate for increased glutamine uptake (i.e., as a source of glutathione). in MVECs in PAH. In summary, these data reveal new insight into the shifts in amino acid metabolism occurring across the pulmonary circulation in PAH. John Wiley and Sons Inc. 2023-03-01 /pmc/articles/PMC9978170/ /pubmed/36873460 http://dx.doi.org/10.1002/pul2.12205 Text en © 2023 The Authors. Pulmonary Circulation published by John Wiley & Sons Ltd on behalf of Pulmonary Vascular Research Institute. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Philip, Nicolas
Pi, Hongyang
Gadkari, Mahin
Yun, Xin
Huetsch, John
Zhang, Cissy
Harlan, Robert
Roux, Aurelie
Graham, David
Shimoda, Larissa
Le, Anne
Visovatti, Scott
Leary, Peter J.
Gharib, Sina A.
Simpson, Catherine
Santhanam, Lakshmi
Steppan, Jochen
Suresh, Karthik
Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title_full Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title_fullStr Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title_full_unstemmed Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title_short Transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
title_sort transpulmonary amino acid metabolism in the sugen hypoxia model of pulmonary hypertension
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9978170/
https://www.ncbi.nlm.nih.gov/pubmed/36873460
http://dx.doi.org/10.1002/pul2.12205
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