Persistent sleep-disordered breathing independently contributes to metabolic syndrome in prepubertal children
Pablo Armañac-Julián1,2, Adrián Martín-Montero1,3, Jesús Lázaro1,2
1CIBER-BBN, Instituto de Salud Carlos III, Madrid, Spain.
Insights
Obstructive sleep apnea (OSA) causes metabolic syndrome (MetS) in children. Treating OSA improves MetS outcomes, highlighting the need for early screening in children with OSA symptoms.
Area of Science:
- Pediatric Endocrinology
- Sleep Medicine
- Cardiovascular Health
Background:
- Obstructive sleep apnea (OSA) is a known risk factor for metabolic syndrome (MetS) in adults.
- The association between OSA and MetS in prepubertal children remains unclear due to limited data and heterogeneity.
Purpose of the Study:
- To investigate the role of OSA as a potential mediator in the development of MetS among prepubertal children.
- To assess the impact of OSA treatment on MetS in this age group.
Main Methods:
- A cohort of 255 prepubertal children from the Childhood Adenotonsillectomy Trial was studied.
- MetS was diagnosed based on the presence of three or more criteria: adiposity, hypertension, hyperglycemia, and dyslipidemia.
- Causal mediation analysis was employed to evaluate the effect of OSA treatment on MetS.
Main Results:
- Obstructive sleep apnea treatment significantly influenced MetS, with the apnea-hypopnea index acting as a mediator (p=0.02).
- Respiratory disturbances from apnea episodes, not individual risk factors, drive the OSA-MetS relationship.
- Systemic inflammation is linked to desaturation and fragmented sleep, while MetS patients showed better recovery post-treatment.
Conclusions:
- Findings suggest a causal role for OSA in metabolic dysfunction, increasing MetS risk in prepubertal children.
- Persistent OSA may elevate the likelihood of developing MetS in young children.
- Screening for MetS is recommended for children exhibiting OSA symptoms.
Background:
Obstructive sleep apnea (OSA) is a risk factor for metabolic syndrome (MetS) in adults, but its association in prepubertal children is still questionable due to the relatively limited cardiometabolic data available and the phenotypic heterogeneity.
Objective:
To identify the role of OSA as a potential mediator of MetS in prepubertal children.
Methods:
A total of 255 prepubertal children from the Childhood Adenotonsillectomy Trial were included, with standardized measurements taken before OSA treatment and 7 months later. MetS was defined if three or more of the following criteria were present: adiposity, high blood pressure, elevated glycemia, and dyslipidemia. A causal mediation analysis was conducted to assess the effect of OSA treatment on MetS.
Results:
OSA treatment significantly impacted MetS, with the apnea-hypopnea index emerging as mediator (p = .02). This mediation role was not detected for any of the individual risk factors that define MetS. We further found that the relationship between MetS and OSA is ascribable to respiratory disturbance caused by the apnea episodes, while systemic inflammation as measured by C-reactive protein, is mediated by desaturation events and fragmented sleep. In terms of evolution, patients with MetS were significantly more likely to recover after OSA treatment (odds ratio = 2.56, 95% confidence interval [CI] 1.20-5.46; risk ratio = 2.06, 95% CI 1.19-3.54) than the opposite, patients without MetS to develop it.
Conclusion:
The findings point to a causal role of OSA in the development of metabolic dysfunction, suggesting that persistent OSA may increase the risk of MetS in prepubertal children. This mediation role implies a need for developing screening for MetS in children presenting OSA symptoms.
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