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Effect of Hyperglycemia on Gene Expression during Early Organogenesis in Mice
Jing Zhao1, Theodorus B M Hakvoort1, A Marcel Willemsen2
1Tytgat Institute for Liver and Intestinal Research, Academic Medical Center, University of Amsterdam, Amsterdam, The Netherlands.
Background:
Cardiovascular and neural malformations are common sequels of diabetic pregnancies, but the underlying molecular mechanisms remain unknown. We hypothesized that maternal hyperglycemia would affect the embryos most shortly after the glucose-sensitive time window at embryonic day (ED) 7.5 in mice.
Methods:
Mice were made diabetic with streptozotocin, treated with slow-release insulin implants and mated. Pregnancy aggravated hyperglycemia. Gene expression profiles were determined in ED8.5 and ED9.5 embryos from diabetic and control mice using Serial Analysis of Gene Expression and deep sequencing.
Results:
Maternal hyperglycemia induced differential regulation of 1,024 and 2,148 unique functional genes on ED8.5 and ED9.5, respectively, mostly in downward direction. Pathway analysis showed that ED8.5 embryos suffered mainly from impaired cell proliferation, and ED9.5 embryos from impaired cytoskeletal remodeling and oxidative phosphorylation (all P ≤ E-5). A query of the Mouse Genome Database showed that 20-25% of the differentially expressed genes were caused by cardiovascular and/or neural malformations, if deficient. Despite high glucose levels in embryos with maternal hyperglycemia and a ~150-fold higher rate of ATP production from glycolysis than from oxidative phosphorylation on ED9.5, ATP production from both glycolysis and oxidative phosphorylation was reduced to ~70% of controls, implying a shortage of energy production in hyperglycemic embryos.
Conclusion:
Maternal hyperglycemia suppressed cell proliferation during gastrulation and cytoskeletal remodeling during early organogenesis. 20-25% of the genes that were differentially regulated by hyperglycemia were associated with relevant congenital malformations. Unexpectedly, maternal hyperglycemia also endangered the energy supply of the embryo by suppressing its glycolytic capacity.
Insights
Maternal hyperglycemia impairs embryonic development by suppressing cell proliferation and energy production. This study reveals molecular mechanisms behind congenital malformations in diabetic pregnancies.
Area of Science:
- Developmental Biology
- Reproductive Medicine
- Genomics
Background:
- Diabetic pregnancies frequently result in cardiovascular and neural malformations.
- The molecular mechanisms driving these birth defects remain largely unknown.
- This study investigates the impact of maternal hyperglycemia on early embryonic development.
Purpose of the Study:
- To determine the molecular effects of maternal hyperglycemia on mouse embryos.
- To identify affected developmental processes and gene expression changes.
- To understand the link between hyperglycemia and congenital malformations.
Main Methods:
- Mice were induced into diabetes using streptozotocin and treated with insulin.
- Gene expression profiles of embryonic day (ED) 8.5 and ED9.5 embryos were analyzed using Serial Analysis of Gene Expression and deep sequencing.
- Pathway analysis was performed to identify affected biological processes.
Main Results:
- Maternal hyperglycemia differentially regulated over 1,000 genes by ED8.5 and over 2,000 genes by ED9.5.
- Early embryos (ED8.5) showed impaired cell proliferation, while later embryos (ED9.5) exhibited disrupted cytoskeletal remodeling and oxidative phosphorylation.
- A significant portion (20-25%) of altered genes are linked to cardiovascular and neural malformations.
- Embryonic energy production, both from glycolysis and oxidative phosphorylation, was reduced despite high maternal glucose levels.
Conclusions:
- Maternal hyperglycemia suppresses crucial processes like cell proliferation and cytoskeletal remodeling during early organogenesis.
- Hyperglycemia is associated with genes linked to congenital malformations, explaining observed birth defects.
- Unexpectedly, maternal hyperglycemia also compromises embryonic energy supply by reducing glycolytic capacity.
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