4.7 Article

Abnormal Glucose Metabolism in Male Mice Offspring Conceived by in vitro Fertilization and Frozen-Thawed Embryo Transfer

期刊

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fcell.2021.637781

关键词

frozen-thawed embryo transfer; glucose metabolism; insulin resistance; PI3K; AKT pathway; transcriptome

资金

  1. National Key Research and Development Project [2017YFC1001300, 2018YFC1004900]
  2. National Natural Science Foundation of China [81661128010, 81701504]
  3. Shanghai Municipal Science and Technology Innovation Action Plan [20XD1424100]
  4. Shanghai Shenkang Hospital Developmental Center [SHDC12018X17]
  5. General Program of Shanghai Municipal Commission of Health and Family Planning [201840210]
  6. General Program of Shanghai Jiao Tong University medical-engineering cross fund [YG2019GD04]
  7. Chinese Academy of Medical Sciences Research Unit [2019RU056]
  8. CAMS Innovation Fund for Medical Sciences (CIFMS) [2019-I2M-5-064]
  9. Shanghai Municipal Key Clinical Specialty, Shanghai, China
  10. Shanghai Jiao Tong University

向作者/读者索取更多资源

This study explored the impact of frozen and thawed embryo transfer (FET) on the glucose metabolism of offspring using a mouse model. Male mouse offspring conceived through FET showed impaired glucose tolerance and insulin resistance, along with disruption of hepatic insulin signaling pathways.
Frozen and thawed embryo transfer (FET) is currently widely applied in routine assisted reproductive technology (ART) procedure. It is of great necessity to assess the safety of FET and investigate the long-term effect including glucose metabolism on FET-conceived offspring. The mouse model is a highly efficient method to figure out the relationship between the process of FET and offspring health. In this study, we obtained mouse offspring of natural conception (NC), in vitro fertilization (IVF), and FET. Glucose and insulin tolerance test (GTT/ITT) were performed on both chow fed or high fat diet (HFD) fed offspring to examine the glucose metabolism status. We detected hepatic PI3K/AKT pathway by western blotting and transcriptome status by RNA-sequencing. Impaired glucose tolerance (IGT) and decreased insulin tolerance were occurred in FET conceived male offspring. After challenged with the HFD-fed, male offspring in FET group performed earlier and severer IGT than IVF group. Furthermore, higher HOMA-IR index and higher serum insulin level post glucose injected in FET-chow group suggested the insulin resistance status. The PI3K/AKT signaling pathway, the major pathway of insulin in the liver, were also disrupted in FET group. Transcriptomics of the liver reveals significantly downregulated in glucose metabolic process and insulin resistance in the FET-chow group. In our study, FET-conceived male mouse offspring presented glucose metabolism dysfunction mainly manifesting insulin resistance. The hepatic insulin signaling pathway were in concordance with reduced glycogen synthesis, increased glycolysis and enhanced gluconeogenesis status in FET-conceived male offspring.

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