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Updated: Jun 16, 2026

Development and Application of Rapamycin-regulated Tyrosine Phosphatases
Published on: September 6, 2024
Transcriptomic analysis identifies phosphatases as novel targets for adenotonsillar hypertrophy of pediatric
Abdelnaby Khalyfa1, Sina A Gharib, Jinkwan Kim
1Department of Pediatrics, University of Chicago, 5721 S. Maryland Avenue, Chicago, IL 60637, USA.
Insights
Enlarged adenotonsillar tissues in children with obstructive sleep apnea (OSA) may be linked to specific gene pathways. Targeting phosphoserine phosphatase reduced cell proliferation, suggesting a novel therapeutic target for pediatric OSA.
Area of Science:
- Genomics and Systems Biology
- Pediatric Medicine
- Sleep Medicine
Background:
- Obstructive sleep apnea (OSA) is common in children, often linked to enlarged adenotonsillar tissues (AT).
- The mechanisms driving AT enlargement in pediatric OSA are not fully understood.
- Current treatment involves surgery, carrying risks of morbidity and mortality.
Purpose of the Study:
- To computationally analyze gene expression in tonsils from children with OSA and recurrent tonsillitis.
- To identify potential mechanistic pathways involved in AT proliferation and hypertrophy in pediatric OSA.
- To discover novel, non-surgical therapeutic targets for pediatric OSA.
Main Methods:
- Whole-genome microarray analysis of palatine tonsils from children with OSA and recurrent tonsillitis.
- Functional enrichment and gene interaction network analyses to identify candidate genes.
- In vitro studies targeting candidate genes, including phosphoserine phosphatase, in tonsil cell cultures.
Main Results:
- A set of candidate genes associated with tonsillar proliferation in pediatric OSA was identified.
- Phosphoserine phosphatase was more abundant in tonsils of children with OSA.
- Inhibition of phosphoserine phosphatase reduced lymphocyte proliferation and increased apoptosis in vitro.
Conclusions:
- A systems biology approach identified key genes linked to AT hypertrophy in pediatric OSA.
- Protein phosphatases play a novel role in AT hypertrophy.
- These findings suggest potential non-surgical therapeutic strategies for pediatric OSA.
Rationale:
Obstructive sleep apnea (OSA) is a highly prevalent disorder in children, in which enlarged adenotonsillar tissues (AT) play a major pathophysiologic role. Mechanisms leading to the proliferation and hypertrophy of AT in children who subsequently develop OSA remain unknown, and surgical extirpation of AT is associated with potential morbidity and mortality.
Objectives:
We hypothesized that a computationally based analysis of gene expression in tonsils from children with OSA and children with recurrent tonsillitis without OSA can identify putative mechanistic pathways associated with tonsillar proliferation and hypertrophy in OSA.
Methods:
Palatine tonsils from children with either polysomnographically documented OSA or recurrent infectious tonsillitis were subjected to whole-genome microarray and functional enrichment analyses followed by significance score ranking based on gene interaction networks. The latter enabled identification and confirmation of a candidate list of tonsil-proliferative genes in OSA.
Measurements And Main Results:
In vitro studies using a mixed tonsil cell culture system targeting one of these candidates, phosphoserine phosphatase, revealed that it was more abundantly expressed in tonsils of children with OSA, and that pharmacological inhibition of phosphoserine phosphatase led to marked reductions in T- and B-lymphocyte cell proliferation and increased apoptosis.
Conclusions:
A systems biology approach revealed a restricted set of candidate genes potentially underlying the heightened proliferative properties of AT in children with OSA. Furthermore, functional studies confirm a novel role for protein phosphatases in AT hypertrophy, and may provide a promising strategy for discovery of novel, nonsurgical therapeutic targets in pediatric OSA.
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