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PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism

Although brown adipose tissue (BAT) is considered to play a protective role against obesity and type 2 diabetes, the mechanisms of its activation and associations with clinical parameters are not well described. Male adults underwent a 2 h cold exposure (CE) to activate BAT and, based on the results...

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Autores principales: Miniewska, Katarzyna, Maliszewska, Katarzyna, Pietrowska, Karolina, Godzień, Joanna, Łabieniec, Łukasz, Mojsak, Małgorzata, Krętowski, Adam, Ciborowski, Michał
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145038/
https://www.ncbi.nlm.nih.gov/pubmed/35629960
http://dx.doi.org/10.3390/metabo12050456
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author Miniewska, Katarzyna
Maliszewska, Katarzyna
Pietrowska, Karolina
Godzień, Joanna
Łabieniec, Łukasz
Mojsak, Małgorzata
Krętowski, Adam
Ciborowski, Michał
author_facet Miniewska, Katarzyna
Maliszewska, Katarzyna
Pietrowska, Karolina
Godzień, Joanna
Łabieniec, Łukasz
Mojsak, Małgorzata
Krętowski, Adam
Ciborowski, Michał
author_sort Miniewska, Katarzyna
collection PubMed
description Although brown adipose tissue (BAT) is considered to play a protective role against obesity and type 2 diabetes, the mechanisms of its activation and associations with clinical parameters are not well described. Male adults underwent a 2 h cold exposure (CE) to activate BAT and, based on the results of PET/MRI performed after the CE, were divided into BAT(+) and BAT(−) groups. During the CE procedure, blood samples were collected and alterations in plasma metabolome in both groups were investigated using LC-MS. Additionally, associations between clinical factors and BAT were examined. Moreover, levels of glucose, insulin, leptin, TNF-α, FGF21, and FABP4 were assessed in serum samples. In the BAT(+) group, levels of LPC(17:0), LPE(20:4), LPE(22:4), LPE(22:6), DHA, linoleic acid, and oleic acid increased during CE, whereas levels of sphinganine-phosphate and sphingosine-1-phosphate decreased. Levels of LPE(O-18:0), 9-HpODE, and oleic acid were elevated, while the level of LPE(20:5) was reduced in BAT(+) compared to BAT(−) subjects. AUCs of LPC(18:2), LPC(O-18:2)/LPC(P-18:1), and SM(d32:2) negatively correlated with BAT. In the BAT(+) group, the concentration of FABP4 during and after CE was decreased compared to the basal level. No alterations were observed in the BAT(−) group. In conclusion, using untargeted metabolomics, we proved that the plasma metabolome is affected by cold-induced BAT activation.
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spelling pubmed-91450382022-05-29 PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism Miniewska, Katarzyna Maliszewska, Katarzyna Pietrowska, Karolina Godzień, Joanna Łabieniec, Łukasz Mojsak, Małgorzata Krętowski, Adam Ciborowski, Michał Metabolites Article Although brown adipose tissue (BAT) is considered to play a protective role against obesity and type 2 diabetes, the mechanisms of its activation and associations with clinical parameters are not well described. Male adults underwent a 2 h cold exposure (CE) to activate BAT and, based on the results of PET/MRI performed after the CE, were divided into BAT(+) and BAT(−) groups. During the CE procedure, blood samples were collected and alterations in plasma metabolome in both groups were investigated using LC-MS. Additionally, associations between clinical factors and BAT were examined. Moreover, levels of glucose, insulin, leptin, TNF-α, FGF21, and FABP4 were assessed in serum samples. In the BAT(+) group, levels of LPC(17:0), LPE(20:4), LPE(22:4), LPE(22:6), DHA, linoleic acid, and oleic acid increased during CE, whereas levels of sphinganine-phosphate and sphingosine-1-phosphate decreased. Levels of LPE(O-18:0), 9-HpODE, and oleic acid were elevated, while the level of LPE(20:5) was reduced in BAT(+) compared to BAT(−) subjects. AUCs of LPC(18:2), LPC(O-18:2)/LPC(P-18:1), and SM(d32:2) negatively correlated with BAT. In the BAT(+) group, the concentration of FABP4 during and after CE was decreased compared to the basal level. No alterations were observed in the BAT(−) group. In conclusion, using untargeted metabolomics, we proved that the plasma metabolome is affected by cold-induced BAT activation. MDPI 2022-05-19 /pmc/articles/PMC9145038/ /pubmed/35629960 http://dx.doi.org/10.3390/metabo12050456 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Miniewska, Katarzyna
Maliszewska, Katarzyna
Pietrowska, Karolina
Godzień, Joanna
Łabieniec, Łukasz
Mojsak, Małgorzata
Krętowski, Adam
Ciborowski, Michał
PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title_full PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title_fullStr PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title_full_unstemmed PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title_short PET/MRI-Evaluated Activation of Brown Adipose Tissue via Cold Exposure Impacts Lipid Metabolism
title_sort pet/mri-evaluated activation of brown adipose tissue via cold exposure impacts lipid metabolism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145038/
https://www.ncbi.nlm.nih.gov/pubmed/35629960
http://dx.doi.org/10.3390/metabo12050456
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