Quantitative ultrasound and apoptotic death in the neonatal primate brain

Ivan M Rosado-Mendez1, Kevin K Noguchi2, Laura Castañeda-Martinez3

  • 1Instituto de Física, Universidad Nacional Autónoma de México, CDMX, Mexico; Department of Medical Physics, University of Wisconsin, School of Medicine, Madison, WI, USA.

Insights

Anesthetic-induced apoptosis in infant primate brains was detected using quantitative ultrasound (QUS). Changes in effective scatterer size correlated with apoptotic cell death, suggesting QUS could monitor brain injury in human infants.

Area of Science:

  • Neuroscience
  • Medical Imaging
  • Developmental Biology

Background:

  • Sedative, anesthetic, and antiepileptic drugs can trigger apoptosis in the developing mammalian brain.
  • The vulnerability of human children to this drug-induced neurotoxicity is unknown due to a lack of appropriate imaging techniques.
  • Apoptosis alters tissue structure, affecting ultrasound scattering properties.

Purpose of the Study:

  • To investigate if quantitative ultrasound (QUS) can detect anesthetic-induced apoptosis in the brains of neonatal nonhuman primates.
  • To assess the correlation between QUS parameters and the severity of apoptotic cell death.

Main Methods:

  • Neonatal rhesus macaques (n=15) received 5-hour sevoflurane anesthesia.
  • Quantitative ultrasound (QUS) imaging was performed before and after anesthesia.
  • Brain tissue was analyzed immunohistochemically for apoptotic neuronal and oligodendroglial death.
  • Changes in effective scatterer size (ESS), a QUS biomarker, were measured.

Main Results:

  • Significant apoptosis was confirmed in both gray and white matter, including the thalamus.
  • A change in effective scatterer size (ESS) was observed in the thalamus post-anesthesia.
  • Excluding outliers, the change in ESS strongly correlated with the severity of apoptotic cell death.

Conclusions:

  • Quantitative ultrasound (QUS) can detect in vivo changes reflecting apoptosis in infant primate brains.
  • QUS shows potential as a non-invasive tool to study drug-induced brain injury and apoptosis in human infants.
  • This technique may aid in monitoring neurodevelopmental risks associated with anesthetic or antiepileptic drug exposure.

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