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Published on: April 16, 2019
Interleukin-13 R130Q aggravates airway smooth-muscle phenotypic switching and promotes airway remodeling in severe
Yafang He1, Jingyi Sun1, Luanluan Li2
1Department of Pediatric Pulmonology, Xinhua Hospital affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Introduction:
Airway remodeling represents a key pathological feature of severe asthma. Although the interleukin-13 (IL-13) R130Q variant is associated with increased disease severity, its specific contribution to airway remodeling remains unclear.
Methods:
This study used an ovalbumin (OVA)-induced asthma model in which mice were sensitized intraperitoneally with OVA/alum and subsequently challenged intranasally with OVA; human IL-13 130R or IL-13 130Q was administered intranasally before each challenge. Primary human bronchial smooth muscle cells (hBSMCs) from a single healthy donor were treated with both variants to assess CCK-8-derived proliferative/metabolic activity, migration, acetylcholine (ACh)-induced intracellular calcium responses, and IL-4 and IL-5 concentrations in culture supernatants. JAK2 and STAT6 phosphorylation was evaluated separately as a downstream signaling readout. Structural modeling and independent triplicate 100-ns molecular dynamics simulations of the IL-13/IL-13 receptor alpha 2 (IL-13Rα2) complex were performed using GROMACS 2025.4 with the AMBER ff19SB force field, and molecular mechanics/generalized Born surface area analysis was used for relative comparison of binding free energies.
Results:
IL-13 130Q produced limited airway changes in mice without OVA sensitization, but exacerbated airway wall thickening, luminal narrowing, smooth-muscle expansion, and pulmonary inflammation in OVA-sensitized and intranasally challenged mice. In hBSMCs, IL-13 130Q induced greater CCK-8-derived proliferative/metabolic activity, migration, ACh-induced intracellular calcium responses, and IL-4 and IL-5 concentrations than IL-13 130R at 10 -100 ng/mL. Molecular dynamics analyses suggested the reduced binding stability of IL-13 130Q/IL-13Rα2 complex, as reflected by fewer interfacial hydrogen bonds, altered intermolecular contacts, and a less favorable relative binding free energy. Elevated JAK2/STAT6 phosphorylation indicated the amplification of downstream signaling, mechanistically tied to potential reduced decoy-receptor affinity.
Conclusion:
These preclinical data support a contextdependent potentiating function of IL13 130Q in airway smoothmuscle phenotypic modulation and airway remodeling. Further investigation may rationalize genotype-based stratification in the therapy of severe asthma.
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