Maternal obesity programs offspring metabolic dysfunction via small extracellular vesicle-mediated epigenetic remodeling

Maternal obesity is linked to heightened metabolic disease risk in offspring, but the mediators of this intergenerational effect remain unclear. Using a diet-induced obesity (DIO) mouse model, we showed that maternal circulating small extracellular vesicles (sEVs) crossed the placenta and delivered obesity-associated miRNAs to the fetal liver, with lasting consequences for insulin sensitivity in male offspring. Among these miRNAs, miR-29a-3p was pathologically elevated and targeted both DNA methyltransferases and demethylases, thereby reshaping the DNA methylation landscape. This included hypomethylation of the Pgc-1α locus, a key regulator of gluconeogenesis, which resulted in premature activation of hepatic gluconeogenesis that contributed to the persistent metabolic dysfunction in adulthood in male offspring. These findings identify a transplacental sEV-miRNA-epigenetic axis that perturbs fetal metabolic programming and may represent a conserved mechanism underlying the developmental origins of metabolic disease. The study identifies a transplacental sEV–miRNA–epigenetic axis as a mediator of maternal obesity. Maternal plasma sEVs transfer miR-29a-3p to the fetal liver, epigenetically reprogramming glucose metabolism and driving adult insulin resistance.

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Publication Details

Journal
Nature Communications
Published
2026-08-25
DOI
https://doi.org/10.1038/s41467-026-77161-4
Primary Topic
Birth, Development, and Health
Type
article
Field-Weighted Citation Impact
0.00

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article

Maternal obesity programs offspring metabolic dysfunction via small extracellular vesicle-mediated epigenetic remodeling

Xiaohong Jiang, Huichen Song, Chao Yan, Lina Ma et al.
Nature Communications
Birth, Development, and Health
article

Maternal obesity programs offspring metabolic dysfunction via small extracellular vesicle-mediated epigenetic remodeling

Xiaohong Jiang, Huichen Song, Chao Yan, Lina Ma, Ke Zen, Zhijuan Ge, Qipeng Zhang, Yujing Zhang, Chenyu Zhang, Liang Li, Xi Chen, Nina Zhang, Jin Wang, Jing Li, Dameng Li
article en

Abstract

Maternal obesity is linked to heightened metabolic disease risk in offspring, but the mediators of this intergenerational effect remain unclear. Using a diet-induced obesity (DIO) mouse model, we showed that maternal circulating small extracellular vesicles (sEVs) crossed the placenta and delivered obesity-associated miRNAs to the fetal liver, with lasting consequences for insulin sensitivity in male offspring. Among these miRNAs, miR-29a-3p was pathologically elevated and targeted both DNA methyltransferases and demethylases, thereby reshaping the DNA methylation landscape. This included hypomethylation of the Pgc-1α locus, a key regulator of gluconeogenesis, which resulted in premature activation of hepatic gluconeogenesis that contributed to the persistent metabolic dysfunction in adulthood in male offspring. These findings identify a transplacental sEV-miRNA-epigenetic axis that perturbs fetal metabolic programming and may represent a conserved mechanism underlying the developmental origins of metabolic disease. The study identifies a transplacental sEV–miRNA–epigenetic axis as a mediator of maternal obesity. Maternal plasma sEVs transfer miR-29a-3p to the fetal liver, epigenetically reprogramming glucose metabolism and driving adult insulin resistance.

Nature Communications
Qilu University of Technology (CN), Xuzhou Medical College (CN), Chinese Academy of Medical Sciences & Peking Union Medical College (CN), National Clinical Research Center for Digestive Diseases (CN), Nanjing Brain Hospital (CN), Nanjing Drum Tower Hospital (CN), Tianma Microelectronics (China) (CN), Nanjing University (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Government of Jiangsu Province, Natural Science Foundation of Jiangsu Province, Nanjing University, National Science and Technology Major Project, Major Research Plan
Zero hunger
Openalex Percentile: Top 7%
Birth, Development, and Health
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