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Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)

Gestational diabetes mellitus during pregnancy has severe implications for the health of the mother and the fetus. Therefore, early prediction and an understanding of the physiology are an important part of prenatal care. Metabolite profiling is a long established method for the analysis and predict...

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Autores principales: Leitner, Miriam, Fragner, Lena, Danner, Sarah, Holeschofsky, Nastassja, Leitner, Karoline, Tischler, Sonja, Doerfler, Hannes, Bachmann, Gert, Sun, Xiaoliang, Jaeger, Walter, Kautzky-Willer, Alexandra, Weckwerth, Wolfram
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5742855/
https://www.ncbi.nlm.nih.gov/pubmed/29312952
http://dx.doi.org/10.3389/fmolb.2017.00084
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author Leitner, Miriam
Fragner, Lena
Danner, Sarah
Holeschofsky, Nastassja
Leitner, Karoline
Tischler, Sonja
Doerfler, Hannes
Bachmann, Gert
Sun, Xiaoliang
Jaeger, Walter
Kautzky-Willer, Alexandra
Weckwerth, Wolfram
author_facet Leitner, Miriam
Fragner, Lena
Danner, Sarah
Holeschofsky, Nastassja
Leitner, Karoline
Tischler, Sonja
Doerfler, Hannes
Bachmann, Gert
Sun, Xiaoliang
Jaeger, Walter
Kautzky-Willer, Alexandra
Weckwerth, Wolfram
author_sort Leitner, Miriam
collection PubMed
description Gestational diabetes mellitus during pregnancy has severe implications for the health of the mother and the fetus. Therefore, early prediction and an understanding of the physiology are an important part of prenatal care. Metabolite profiling is a long established method for the analysis and prediction of metabolic diseases. Here, we applied untargeted and targeted metabolomic protocols to analyze plasma and urine samples of pregnant women with and without GDM. Univariate and multivariate statistical analyses of metabolomic profiles revealed markers such as 2-hydroxybutanoic acid (AHBA), 3-hydroxybutanoic acid (BHBA), amino acids valine and alanine, the glucose-alanine-cycle, but also plant-derived compounds like sitosterin as different between control and GDM patients. PLS-DA and VIP analysis revealed tryptophan as a strong variable separating control and GDM. As tryptophan is biotransformed to serotonin we hypothesized whether serotonin metabolism might also be altered in GDM. To test this hypothesis we applied a method for the analysis of serotonin, metabolic intermediates and dopamine in urine by stable isotope dilution direct infusion electrospray ionization mass spectrometry (SID-MS). Indeed, serotonin and related metabolites differ significantly between control and GDM patients confirming the involvement of serotonin metabolism in GDM. Clustered correlation coefficient visualization of metabolite correlation networks revealed the different metabolic signatures between control and GDM patients. Eventually, the combination of selected blood plasma and urine sample metabolites improved the AUC prediction accuracy to 0.99. The detected GDM candidate biomarkers and the related systemic metabolic signatures are discussed in their pathophysiological context. Further studies with larger cohorts are necessary to underpin these observations.
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spelling pubmed-57428552018-01-08 Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM) Leitner, Miriam Fragner, Lena Danner, Sarah Holeschofsky, Nastassja Leitner, Karoline Tischler, Sonja Doerfler, Hannes Bachmann, Gert Sun, Xiaoliang Jaeger, Walter Kautzky-Willer, Alexandra Weckwerth, Wolfram Front Mol Biosci Molecular Biosciences Gestational diabetes mellitus during pregnancy has severe implications for the health of the mother and the fetus. Therefore, early prediction and an understanding of the physiology are an important part of prenatal care. Metabolite profiling is a long established method for the analysis and prediction of metabolic diseases. Here, we applied untargeted and targeted metabolomic protocols to analyze plasma and urine samples of pregnant women with and without GDM. Univariate and multivariate statistical analyses of metabolomic profiles revealed markers such as 2-hydroxybutanoic acid (AHBA), 3-hydroxybutanoic acid (BHBA), amino acids valine and alanine, the glucose-alanine-cycle, but also plant-derived compounds like sitosterin as different between control and GDM patients. PLS-DA and VIP analysis revealed tryptophan as a strong variable separating control and GDM. As tryptophan is biotransformed to serotonin we hypothesized whether serotonin metabolism might also be altered in GDM. To test this hypothesis we applied a method for the analysis of serotonin, metabolic intermediates and dopamine in urine by stable isotope dilution direct infusion electrospray ionization mass spectrometry (SID-MS). Indeed, serotonin and related metabolites differ significantly between control and GDM patients confirming the involvement of serotonin metabolism in GDM. Clustered correlation coefficient visualization of metabolite correlation networks revealed the different metabolic signatures between control and GDM patients. Eventually, the combination of selected blood plasma and urine sample metabolites improved the AUC prediction accuracy to 0.99. The detected GDM candidate biomarkers and the related systemic metabolic signatures are discussed in their pathophysiological context. Further studies with larger cohorts are necessary to underpin these observations. Frontiers Media S.A. 2017-12-21 /pmc/articles/PMC5742855/ /pubmed/29312952 http://dx.doi.org/10.3389/fmolb.2017.00084 Text en Copyright © 2017 Leitner, Fragner, Danner, Holeschofsky, Leitner, Tischler, Doerfler, Bachmann, Sun, Jaeger, Kautzky-Willer and Weckwerth. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Molecular Biosciences
Leitner, Miriam
Fragner, Lena
Danner, Sarah
Holeschofsky, Nastassja
Leitner, Karoline
Tischler, Sonja
Doerfler, Hannes
Bachmann, Gert
Sun, Xiaoliang
Jaeger, Walter
Kautzky-Willer, Alexandra
Weckwerth, Wolfram
Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title_full Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title_fullStr Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title_full_unstemmed Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title_short Combined Metabolomic Analysis of Plasma and Urine Reveals AHBA, Tryptophan and Serotonin Metabolism as Potential Risk Factors in Gestational Diabetes Mellitus (GDM)
title_sort combined metabolomic analysis of plasma and urine reveals ahba, tryptophan and serotonin metabolism as potential risk factors in gestational diabetes mellitus (gdm)
topic Molecular Biosciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5742855/
https://www.ncbi.nlm.nih.gov/pubmed/29312952
http://dx.doi.org/10.3389/fmolb.2017.00084
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