Visual sensory determinants of EEG activity in neonates receiving intensive care

Christina Boman-Markaki1, Neelum Mistry2, Kimberley Whitehead3

  • 1Research Division of Digital Health and Applied Technology Assessment (DHATA), King's College London, London, United Kingdom.

PubMed

Insights

Infant brain activity (EEG) was largely unaffected by eye shields, suggesting visual cortex activity in sick newborns may be internally generated rather than driven by external visual input.

Area of Science:

  • Neonatal neurology
  • Neurophysiology
  • Developmental neuroscience

Background:

  • Cortical activity is vital for early neural organization, particularly in vulnerable infants in intensive care.
  • Sensory determinants of cortical activity in neonates are not well understood.
  • Eye shields are sometimes used for acutely unwell infants, presenting a natural experiment.

Purpose of the Study:

  • To test if reducing external visual input with eye shields attenuates occipital cortical activity in neonates.
  • To investigate the sensory determinants of cortical activity in vulnerable infants.

Main Methods:

  • Analyzed 9-channel video-electroencephalography (EEG) in 18 sleeping neonates (14 with hypoxic-ischemic encephalopathy).
  • Compared EEG power spectral density with and without eye shields, matched for vigilance, medications, and time.
  • Cross-referenced EEG changes with pupillary light response to assess visual pathway integrity.

Main Results:

  • Gamma frequency EEG power was slightly lower with eye shields, but not statistically significant after multiple comparisons.
  • No significant association was found between EEG responsivity to eye shields and pupillary light response.
  • Occipital EEG activity showed minimal change when external visual input was reduced.

Conclusions:

  • EEG activity in this sample of acutely unwell infants was insensitive to reduced visual input.
  • The majority of visual cortical activity in these infants may be endogenously generated.
  • Eye shield interventions are unlikely to modulate visual cortical activity in this population.
Abstract

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