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Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice

Numerous studies have suggested the possibility of explaining the etiology of metabolic syndrome through DNA methylation. DNA methyltransferase 3B (DNMT3B) plays an important role in de novo DNA methylation. There was an alteration in maternal (F0) endometrial function, which might lead to growth an...

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Autores principales: Li, Weike, Gao, Rufei, Ding, Yubin, Chen, Xuemei, Liu, Xueqing, He, Junlin, Li, Fangfang, Long, Jing, Lu, Siyu, Yang, Chengshun, Wang, Yingxiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692016/
https://www.ncbi.nlm.nih.gov/pubmed/36439251
http://dx.doi.org/10.3389/fphys.2022.1042449
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author Li, Weike
Gao, Rufei
Ding, Yubin
Chen, Xuemei
Liu, Xueqing
He, Junlin
Li, Fangfang
Long, Jing
Lu, Siyu
Yang, Chengshun
Wang, Yingxiong
author_facet Li, Weike
Gao, Rufei
Ding, Yubin
Chen, Xuemei
Liu, Xueqing
He, Junlin
Li, Fangfang
Long, Jing
Lu, Siyu
Yang, Chengshun
Wang, Yingxiong
author_sort Li, Weike
collection PubMed
description Numerous studies have suggested the possibility of explaining the etiology of metabolic syndrome through DNA methylation. DNA methyltransferase 3B (DNMT3B) plays an important role in de novo DNA methylation. There was an alteration in maternal (F0) endometrial function, which might lead to growth and developmental disorder in offspring (F1). In this study, we investigated the effect of maternal endometrial DNMT3B deficiency on the metabolism in offspring. We constructed endometrial DNMT3B conditional knockout female mice (cKO) which were mated with normal C57BL/6 male mice to obtain the F1 generation. Further, to study the development of these offspring, we observed them at three different life stages which included the 6-week-old juvenile, 9-week-old sub-adult and 12-week-old adult. Follow the detection of a range of metabolism-related indicators, we found that in the cKO F1 generation, liver triglyceride level was significantly elevated in 9-week-old female mice, lipid droplet deposition was significantly increased in 9-week-old and 12-week-old mice, and the expression of lipid metabolism key factors in the liver was markedly decreased except of 6-week-old male mice. These results indicate that maternal endometrial DNMT3B conditional knockout leads to imbalance in hepatic metabolism in F1 generation, the mechanism of which requires further discussion.
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spelling pubmed-96920162022-11-26 Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice Li, Weike Gao, Rufei Ding, Yubin Chen, Xuemei Liu, Xueqing He, Junlin Li, Fangfang Long, Jing Lu, Siyu Yang, Chengshun Wang, Yingxiong Front Physiol Physiology Numerous studies have suggested the possibility of explaining the etiology of metabolic syndrome through DNA methylation. DNA methyltransferase 3B (DNMT3B) plays an important role in de novo DNA methylation. There was an alteration in maternal (F0) endometrial function, which might lead to growth and developmental disorder in offspring (F1). In this study, we investigated the effect of maternal endometrial DNMT3B deficiency on the metabolism in offspring. We constructed endometrial DNMT3B conditional knockout female mice (cKO) which were mated with normal C57BL/6 male mice to obtain the F1 generation. Further, to study the development of these offspring, we observed them at three different life stages which included the 6-week-old juvenile, 9-week-old sub-adult and 12-week-old adult. Follow the detection of a range of metabolism-related indicators, we found that in the cKO F1 generation, liver triglyceride level was significantly elevated in 9-week-old female mice, lipid droplet deposition was significantly increased in 9-week-old and 12-week-old mice, and the expression of lipid metabolism key factors in the liver was markedly decreased except of 6-week-old male mice. These results indicate that maternal endometrial DNMT3B conditional knockout leads to imbalance in hepatic metabolism in F1 generation, the mechanism of which requires further discussion. Frontiers Media S.A. 2022-11-11 /pmc/articles/PMC9692016/ /pubmed/36439251 http://dx.doi.org/10.3389/fphys.2022.1042449 Text en Copyright © 2022 Li, Gao, Ding, Chen, Liu, He, Li, Long, Lu, Yang and Wang. https://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) and the copyright owner(s) 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 Physiology
Li, Weike
Gao, Rufei
Ding, Yubin
Chen, Xuemei
Liu, Xueqing
He, Junlin
Li, Fangfang
Long, Jing
Lu, Siyu
Yang, Chengshun
Wang, Yingxiong
Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title_full Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title_fullStr Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title_full_unstemmed Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title_short Imbalance hepatic metabolism homeostasis in the F1 generation of endometrial DNMT3B conditional knockout female mice
title_sort imbalance hepatic metabolism homeostasis in the f1 generation of endometrial dnmt3b conditional knockout female mice
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692016/
https://www.ncbi.nlm.nih.gov/pubmed/36439251
http://dx.doi.org/10.3389/fphys.2022.1042449
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