Abnormal local cortical functional connectivity due to interneuron dysmaturation after neonatal intermittent hypoxia

Insights

Neonatal intermittent hypoxia in mice caused hyperactivity and impaired motor learning. This was linked to altered brain development, including changes in excitatory and inhibitory circuits, detectable by functional MRI.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Physiology

Background:

  • Premature infants face hypoxic episodes due to immature respiratory control, potentially leading to brain development issues and long-term cognitive/behavioral problems.
  • Neonatal intermittent hypoxia (IH) may disrupt cortical maturation of excitatory and inhibitory circuits.
  • Functional MRI can potentially detect these early alterations.

Purpose of the Study:

  • To investigate the effects of neonatal intermittent hypoxia (IH) on cortical maturation.
  • To determine if IH alters excitatory and inhibitory circuits in the developing brain.
  • To assess the utility of functional MRI in detecting these changes early.

Main Methods:

  • C57BL/6 mouse pups were exposed to IH (5% oxygen, 2 min, 12-20 episodes/day) from postnatal day 3 to 7.
  • MRI was performed at postnatal day 12, with electrophysiological recordings and behavioral tests conducted at various time points.
  • Behavioral assessments included open field tests and complex wheel tasks; electrophysiology used patch clamp and in vivo recordings.

Main Results:

  • Neonatal IH led to hyperactivity and impaired motor learning in adult mice.
  • Electrophysiology showed increased glutamatergic transmission and elevated tonic inhibition, with decreased synaptic inhibitory drive and interneuron density.
  • Resting-state fMRI revealed larger low-frequency fluctuation amplitudes in the IH group, particularly after picrotoxin injection.

Conclusions:

  • Neonatal IH alters cortical maturation, increasing excitatory transmission and decreasing inhibitory interneuron function, leading to long-term behavioral deficits.
  • Functional MRI indicates increased intrinsic connectivity in the sensorimotor cortex, suggesting neuronal dysfunction.
  • Enhanced tonic inhibition may be a compensatory mechanism for elevated excitatory glutamatergic transmission.
Abstract

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