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Functional Genomics of the Pediatric Obese Asthma Phenotype Reveal Enrichment of Rho-GTPase Pathways
Deepa Rastogi1,2, Andrew D Johnston3, John Nico1
1Department of Pediatrics.
Insights
Obesity-related asthma in minority children involves nonatopic T-helper 1 inflammation. Rho-GTPase pathways in T-helper cells are a novel therapeutic target for this condition.
Area of Science:
- Immunology
- Genetics
- Pediatrics
Background:
- Obesity-related asthma disproportionately affects minority children.
- It is linked to nonatopic T-helper type 1 (Th1) cell inflammation and reduced pulmonary function.
- Underlying mechanisms remain poorly understood.
Purpose of the Study:
- Identify cellular mechanisms driving nonatopic inflammation in obese minority children with asthma.
- Utilize functional genomics to uncover novel therapeutic targets.
Main Methods:
- Analyzed transcriptome, DNA methylome, and genotyping of CD4+ T-cells from obese and normal-weight asthmatic children.
- Employed expression and methylation quantitative trait loci (eQTLs and mQTLs) to assess genetic contributions.
- Adjusted for T-helper cell subtype proportions to isolate obesity-related asthma effects.
Main Results:
- Obese asthmatic children showed increased memory and decreased naive T-helper cells.
- Rho-GTPase pathways were enriched in differentially expressed/methylated genes in obese asthmatic T-cells, independent of subtype proportions.
- Inhibition of CDC42 (cell division cycle 42) downregulated IFNγ (interferon-gamma).
- Differentially expressed/methylated genes, including RPS27L (40S ribosomal protein S27-like), correlated with pulmonary function deficits.
Conclusions:
- Rho-GTPase pathways represent a novel therapeutic target in obesity-related asthma.
- This finding is significant for a disease with suboptimal response to current therapies.
- Understanding these pathways may improve treatment strategies for affected children.
Abstract:
Rationale: Obesity-related asthma disproportionately affects minority children and is associated with nonatopic T-helper type 1 (Th1) cell polarized inflammation that correlates with pulmonary function deficits. Its underlying mechanisms are poorly understood.Objectives: To use functional genomics to identify cellular mechanisms associated with nonatopic inflammation in obese minority children with asthma.Methods: CD4+ (cluster of differentiation 4-positive) Th cells from 59 obese Hispanic and African American children with asthma and 61 normal-weight Hispanic and African American children with asthma underwent quantification of the transcriptome and DNA methylome and genotyping. Expression and methylation quantitative trait loci revealed the contribution of genetic variation to transcription and DNA methylation. Adjusting for Th-cell subtype proportions discriminated loci where transcription or methylation differences were driven by differences in subtype proportions from loci that were independently associated with obesity-related asthma.Measurements and Main Results: Obese children with asthma had more memory and fewer naive Th cells than normal-weight children with asthma. Differentially expressed and methylated genes and methylation quantitative trait loci in obese children with asthma, independent of Th-cell subtype proportions, were enriched in Rho-GTPase pathways. Inhibition of CDC42 (cell division cycle 42), one of the Rho-GTPases associated with Th-cell differentiation, was associated with downregulation of the IFNγ, but not the IL-4, gene. Differential expression of the RPS27L (40S ribosomal protein S27-like) gene, part of the p53/mammalian target of rapamycin pathway, was due to nonrandom distribution of expression quantitative trait loci variants between groups. Differentially expressed and/or methylated genes, including RPS27L, were associated with pulmonary function deficits in obese children with asthma.Conclusions: We found enrichment of Rho-GTPase pathways in obese asthmatic Th cells, identifying them as a novel therapeutic target for obesity-related asthma, a disease that is suboptimally responsive to current therapies.
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