Recovery by mouse embryos following teratogenic exposure to ketosis

L Shum1, T W Sadler

  • 1Department of Cell Biology and Anatomy, School of Medicine, University of North Carolina, Chapel Hill.

Diabetologia
|May 1, 1991
PubMed

Insights

Exposure to D,L,-beta-hydroxybutyrate during early embryogenesis can cause neural tube defects. While some recovery is possible, histological damage persists, potentially leading to neurological deficits in mouse embryos.

Area of Science:

  • Developmental biology
  • Neuroscience
  • Toxicology

Background:

  • Ketone bodies, like D,L,-beta-hydroxybutyrate, have been shown to be teratogenic during mouse embryonic neurulation.
  • Neural tube defects, including cranial and caudal neuropore closure inhibition, were observed, potentially leading to anencephaly and spina bifida.

Purpose of the Study:

  • To investigate the recovery process and extent of histological alterations in mouse embryos after exposure to D,L,-beta-hydroxybutyrate.
  • To determine the impact of recovery periods on neuroepithelial cell development.

Main Methods:

  • Mouse embryos were cultured from the early somite stage under three conditions: control, 24-hour exposure followed by recovery, and continuous exposure.
  • Analysis included cross-sectional area, cell number, and mitotic index of cranial neuroepithelial cells.

Main Results:

  • Neural tube closure occurred in the recovery group, but complete catch-up growth was limited to ventral forebrain regions.
  • Prosencephalon and rhombencephalon showed incomplete recovery, with cell numbers around 70% of control values.
  • Histological alterations remained despite gross anatomical recovery.

Conclusions:

  • Gross anatomical recovery from D,L,-beta-hydroxybutyrate exposure is incomplete, with persistent histological damage.
  • Early embryonic exposure to ketone bodies may result in lasting neurological deficits, even if gross defects are partially resolved.

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