Cargando…

Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates

OBJECTIVE: Non-alcoholic fatty liver disease (NAFLD) risk begins in utero in offspring of obese mothers. A critical unmet need in this field is to understand the pathways and biomarkers underlying fetal hepatic lipotoxicity and whether maternal dietary intervention during pregnancy is an effective c...

Descripción completa

Detalles Bibliográficos
Autores principales: Wesolowski, Stephanie R., Mulligan, Christopher M., Janssen, Rachel C., Baker, Peter R., Bergman, Bryan C., D'Alessandro, Angelo, Nemkov, Travis, Maclean, Kenneth N., Jiang, Hua, Dean, Tyler A., Takahashi, Diana L., Kievit, Paul, McCurdy, Carrie E., Aagaard, Kjersti M., Friedman, Jacob E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6308036/
https://www.ncbi.nlm.nih.gov/pubmed/30337225
http://dx.doi.org/10.1016/j.molmet.2018.09.008
_version_ 1783383107933569024
author Wesolowski, Stephanie R.
Mulligan, Christopher M.
Janssen, Rachel C.
Baker, Peter R.
Bergman, Bryan C.
D'Alessandro, Angelo
Nemkov, Travis
Maclean, Kenneth N.
Jiang, Hua
Dean, Tyler A.
Takahashi, Diana L.
Kievit, Paul
McCurdy, Carrie E.
Aagaard, Kjersti M.
Friedman, Jacob E.
author_facet Wesolowski, Stephanie R.
Mulligan, Christopher M.
Janssen, Rachel C.
Baker, Peter R.
Bergman, Bryan C.
D'Alessandro, Angelo
Nemkov, Travis
Maclean, Kenneth N.
Jiang, Hua
Dean, Tyler A.
Takahashi, Diana L.
Kievit, Paul
McCurdy, Carrie E.
Aagaard, Kjersti M.
Friedman, Jacob E.
author_sort Wesolowski, Stephanie R.
collection PubMed
description OBJECTIVE: Non-alcoholic fatty liver disease (NAFLD) risk begins in utero in offspring of obese mothers. A critical unmet need in this field is to understand the pathways and biomarkers underlying fetal hepatic lipotoxicity and whether maternal dietary intervention during pregnancy is an effective countermeasure. METHODS: We utilized a well-established non-human primate model of chronic, maternal, Western-style diet induced obesity (OB-WSD) compared with mothers on a healthy control diet (CON) or a subset of OB-WSD mothers switched to the CON diet (diet reversal; OB-DR) prior to and for the duration of the next pregnancy. Fetuses were studied in the early 3rd trimester. RESULTS: Fetuses from OB-WSD mothers had higher circulating triglycerides (TGs) and lower arterial oxygenation suggesting hypoxemia, compared with fetuses from CON and OB-DR mothers. Hepatic TG content, oxidative stress (TBARs), and de novo lipogenic genes were increased in fetuses from OB-WSD compared with CON mothers. Fetuses from OB-DR mothers had lower lipogenic gene expression and TBARs yet persistently higher TGs. Metabolomic profiling of fetal liver and serum (umbilical artery) revealed distinct separation of CON and OB-WSD groups, and an intermediate phenotype in fetuses from OB-DR mothers. Pathway analysis identified decreased tricarboxylic acid cycle intermediates, increased amino acid (AA) metabolism and byproducts, and increased gluconeogenesis, suggesting an increased reliance on AA metabolism to meet energy needs in the liver of fetuses from OB-WSD mothers. Components in collagen synthesis, including serum protein 5-hydroxylysine and hepatic lysine and proline, were positively correlated with hepatic TGs and TBARs, suggesting early signs of fibrosis in livers from the OB-WSD group. Importantly, hepatic gluconeogenic and arginine related intermediates and serum levels of lactate, pyruvate, several AAs, and nucleotide intermediates were normalized in the OB-DR group. However, hepatic levels of CDP-choline and total ceramide levels remained high in fetuses from OB-DR mothers. CONCLUSIONS: Our data provide new metabolic evidence that, in addition to fetal hepatic steatosis, maternal WSD creates fetal hypoxemia and increases utilization of AAs for energy production and early activation of gluconeogenic pathways in the fetal liver. When combined with hyperlipidemia and limited antioxidant activity, the fetus suffers from hepatic oxidative stress and altered intracellular metabolism which can be improved with maternal diet intervention. Our data reinforce the concept that multiple “first hits” occur in the fetus prior to development of obesity and demonstrate new biomarkers with potential clinical implications for monitoring NAFLD risk in offspring.
format Online
Article
Text
id pubmed-6308036
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-63080362018-12-28 Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates Wesolowski, Stephanie R. Mulligan, Christopher M. Janssen, Rachel C. Baker, Peter R. Bergman, Bryan C. D'Alessandro, Angelo Nemkov, Travis Maclean, Kenneth N. Jiang, Hua Dean, Tyler A. Takahashi, Diana L. Kievit, Paul McCurdy, Carrie E. Aagaard, Kjersti M. Friedman, Jacob E. Mol Metab Original Article OBJECTIVE: Non-alcoholic fatty liver disease (NAFLD) risk begins in utero in offspring of obese mothers. A critical unmet need in this field is to understand the pathways and biomarkers underlying fetal hepatic lipotoxicity and whether maternal dietary intervention during pregnancy is an effective countermeasure. METHODS: We utilized a well-established non-human primate model of chronic, maternal, Western-style diet induced obesity (OB-WSD) compared with mothers on a healthy control diet (CON) or a subset of OB-WSD mothers switched to the CON diet (diet reversal; OB-DR) prior to and for the duration of the next pregnancy. Fetuses were studied in the early 3rd trimester. RESULTS: Fetuses from OB-WSD mothers had higher circulating triglycerides (TGs) and lower arterial oxygenation suggesting hypoxemia, compared with fetuses from CON and OB-DR mothers. Hepatic TG content, oxidative stress (TBARs), and de novo lipogenic genes were increased in fetuses from OB-WSD compared with CON mothers. Fetuses from OB-DR mothers had lower lipogenic gene expression and TBARs yet persistently higher TGs. Metabolomic profiling of fetal liver and serum (umbilical artery) revealed distinct separation of CON and OB-WSD groups, and an intermediate phenotype in fetuses from OB-DR mothers. Pathway analysis identified decreased tricarboxylic acid cycle intermediates, increased amino acid (AA) metabolism and byproducts, and increased gluconeogenesis, suggesting an increased reliance on AA metabolism to meet energy needs in the liver of fetuses from OB-WSD mothers. Components in collagen synthesis, including serum protein 5-hydroxylysine and hepatic lysine and proline, were positively correlated with hepatic TGs and TBARs, suggesting early signs of fibrosis in livers from the OB-WSD group. Importantly, hepatic gluconeogenic and arginine related intermediates and serum levels of lactate, pyruvate, several AAs, and nucleotide intermediates were normalized in the OB-DR group. However, hepatic levels of CDP-choline and total ceramide levels remained high in fetuses from OB-DR mothers. CONCLUSIONS: Our data provide new metabolic evidence that, in addition to fetal hepatic steatosis, maternal WSD creates fetal hypoxemia and increases utilization of AAs for energy production and early activation of gluconeogenic pathways in the fetal liver. When combined with hyperlipidemia and limited antioxidant activity, the fetus suffers from hepatic oxidative stress and altered intracellular metabolism which can be improved with maternal diet intervention. Our data reinforce the concept that multiple “first hits” occur in the fetus prior to development of obesity and demonstrate new biomarkers with potential clinical implications for monitoring NAFLD risk in offspring. Elsevier 2018-09-28 /pmc/articles/PMC6308036/ /pubmed/30337225 http://dx.doi.org/10.1016/j.molmet.2018.09.008 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Wesolowski, Stephanie R.
Mulligan, Christopher M.
Janssen, Rachel C.
Baker, Peter R.
Bergman, Bryan C.
D'Alessandro, Angelo
Nemkov, Travis
Maclean, Kenneth N.
Jiang, Hua
Dean, Tyler A.
Takahashi, Diana L.
Kievit, Paul
McCurdy, Carrie E.
Aagaard, Kjersti M.
Friedman, Jacob E.
Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title_full Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title_fullStr Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title_full_unstemmed Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title_short Switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
title_sort switching obese mothers to a healthy diet improves fetal hypoxemia, hepatic metabolites, and lipotoxicity in non-human primates
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6308036/
https://www.ncbi.nlm.nih.gov/pubmed/30337225
http://dx.doi.org/10.1016/j.molmet.2018.09.008
work_keys_str_mv AT wesolowskistephanier switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT mulliganchristopherm switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT janssenrachelc switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT bakerpeterr switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT bergmanbryanc switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT dalessandroangelo switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT nemkovtravis switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT macleankennethn switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT jianghua switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT deantylera switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT takahashidianal switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT kievitpaul switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT mccurdycarriee switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT aagaardkjerstim switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates
AT friedmanjacobe switchingobesemotherstoahealthydietimprovesfetalhypoxemiahepaticmetabolitesandlipotoxicityinnonhumanprimates