Diabetic embryopathy and fuel-mediated organ teratogenesis: lessons from animal models

N Freinkel1

  • 1Department of Medicine, Northwestern University Medical School, Chicago, Illinois 60611.

Hormone and Metabolic Research = Hormon- Und Stoffwechselforschung = Hormones Et Metabolisme
|August 1, 1988
PubMed

Insights

Maternal diabetes during early pregnancy increases birth defect risk. Rodent studies show metabolic factors like high glucose and ketones cause developmental issues, but insulin therapy can mitigate these effects.

Area of Science:

  • Developmental Biology
  • Endocrinology
  • Teratology

Background:

  • Faulty maternal metabolism in early organogenesis is linked to birth defects in diabetic pregnancies.
  • Improved preconceptional metabolic regulation is a global effort.
  • Lack of understanding regarding risk periods, teratogens, and mechanisms hinders therapeutic guidelines for diabetic embryopathy.

Purpose of the Study:

  • To review in vivo and in vitro rodent model data to gain insights into diabetic embryopathy.
  • To identify critical periods, mediating teratogens, and mechanisms of diabetic embryopathy.
  • To inform therapeutic strategies for managing diabetic pregnancies.

Main Methods:

  • Review of existing literature on rodent models of diabetes in pregnancy.
  • Analysis of in vivo and in vitro experimental data from rats and mice.
  • Examination of the teratogenic potential of various metabolic factors associated with diabetes.

Main Results:

  • Diabetes in pregnant rodents causes growth retardation, developmental delay, and birth defects.
  • Vulnerability to diabetic embryopathy begins postimplantation and peaks near neurulation.
  • Multiple metabolic factors (e.g., high glucose, ketones) contribute to dysmorphogenesis in vitro, with additive/synergistic effects.
  • Insulin therapy reduces the adverse effects of the diabetic state on embryonic development in rodents.

Conclusions:

  • Diabetic embryopathy is multifactorial, influenced by maternal metabolic state, genetic factors, and conceptus exposure.
  • Understanding fuel-mediated teratogenesis is crucial for developing targeted interventions.
  • Insulin therapy shows promise in mitigating diabetic embryopathy in rodent models.

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