Neurodevelopmental abnormalities underlying behavioral deficits in a model of pediatric obstructive sleep apnea
Arvind Chandrakantan1, Michael R Williamson2, Vaishnav Krishnan3
1Department of Anesthesiology, Perioperative and Pain Medicine, Texas Children's Hospital, Houston, TX, United States; Department of Anesthesiology, Baylor College of Medicine, Houston, TX, United States.
Insights
Pediatric Obstructive Sleep Apnea (POSA) disrupts brain development in mice, reducing new neurons and impairing cognitive and motor skills. This validated preclinical model offers insights into POSA
Area of Science:
- Neuroscience
- Developmental Biology
- Sleep Medicine
Background:
- Pediatric Obstructive Sleep Apnea (POSA) is a common childhood disorder.
- POSA is associated with neurodevelopmental deficits including impaired learning, memory, olfaction, and fine motor skills.
Purpose of the Study:
- To develop and validate a preclinical mouse model of POSA.
- To understand how intermittent hypoxia during sleep affects neurodevelopment.
Main Methods:
- Developed a mouse model of POSA using human clinical data.
- Investigated neurogenesis in the subventricular zone and hippocampus.
- Examined synaptic and cellular changes in neurogenic niches.
Main Results:
- POSA mice exhibited reduced postnatal neurogenesis.
- Fewer neural stem cells, neuroblasts, and new neurons were observed in POSA mice.
- Impaired functional integration of newly born neurons in the hippocampus and olfactory bulb.
Conclusions:
- POSA disrupts developmental neurogenesis and neuronal maturation.
- This preclinical model accurately reflects human POSA-related neurodevelopmental deficits.
- Findings highlight the impact of POSA on learning, memory, olfaction, and fine motor abilities.
Rationale:
Pediatric Obstructive Sleep Apnea (POSA) is a relatively common childhood sleep disorder whose neurodevelopmental phenotype includes deficits in learning and memory, olfaction, and fine motor abilities.
Objectives:
To date, there has not been a validated preclinical model of POSA, hampering efforts in understanding how nocturnal episodes of intermittent hypoxia disrupt neurodevelopmental trajectories. The objective of this study was to create a faithful sculpting of the human condition in a preclinical murine model.
Methods:
We used clinical data from children with POSA to develop and validate a mouse model of POSA that faithfully recapitulates several behavioral deficits seen in the human condition. We then studied synapses, and cellular constituents of neurogenic niches to interrogate the behavioral deficits.
Measurements And Main Results:
POSA mice showed deficits in postnatal neurogenesis in both the subventricular zone and hippocampus. Specifically, we discovered fewer neural stem cells, neuroblasts, and newborn neurons in POSA mice.
Conclusions:
This reduction in developmental neurogenesis was coupled with impaired functional integration of post exposure born neurons in the hippocampus and olfactory bulb. Taken together, our findings from this preclinical model based on human data indicate that POSA disrupts developmental neurogenesis and neuronal maturation, resulting in deficits in learning, memory, olfactory, and fine motor abilities.
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