Related Experiment Video
Updated: Apr 5, 2026

Infection of Primary Nasal Epithelial Cells Grown at an Air-Liquid Interface to Characterize Human Coronavirus-Host Interactions
Published on: September 22, 2023
Attenuated Airway Epithelial Cell Interleukin-22R1 Expression in the Infant Nonhuman Primate Lung
Daniel T Dugger1, Joan E Gerriets1, Lisa A Miller1,2
11 California National Primate Research Center, University of California, Davis, California; and.
Insights
Infant airways show low IL-22R1 expression, increasing with age. This suggests epigenetic regulation of IL-22R1 in developing airway immunity, impacting childhood respiratory infections.
Area of Science:
- Pediatric immunology
- Respiratory medicine
- Epithelial biology
Background:
- Respiratory tract infections pose significant risks to young children due to immature immune systems.
- Airway epithelium is crucial for defense against inhaled pathogens, but its development is not fully understood.
- Interleukin-22 receptor 1 (IL-22R1) plays a role in epithelial barrier defense and repair.
Purpose of the Study:
- To investigate age-dependent differences in IL-22R1 expression in airway epithelium.
- To utilize the rhesus macaque model for studying human childhood lung development.
- To explore potential epigenetic regulation of IL-22R1 in airway epithelium.
Main Methods:
- Immunofluorescence staining of tracheal tissue from infant and adult rhesus macaques.
- Western blot analysis of tracheal lysates to quantify IL-22R1 protein levels.
- In vitro studies using primary tracheobronchial epithelial cell cultures treated with epigenetic modifiers.
Main Results:
- IL-22R1 expression was minimal in infant airways and increased with age in basal cells.
- Significant age-dependent differences in IL-22R1 protein content were confirmed.
- Infant airway cells showed increased IL-22R1 mRNA after trichostatin A treatment, but not protein, suggesting complex regulation.
Conclusions:
- IL-22R1 expression in airway epithelium is significantly influenced by chronological age.
- Epigenetic mechanisms, potentially involving histone deacetylases, contribute to the age-dependent regulation of IL-22R1.
- Understanding these developmental changes is vital for addressing respiratory infections in young children.
Abstract:
Respiratory tract infections are a leading cause of morbidity and mortality in children under 5 years of age. Increased susceptibility to infection is associated with deficiencies in immunity during early childhood. Airway epithelium represents the first line of mucosal defense against inhaled pathogens. However, little is known about epithelial immune mechanisms in the maturing lung. IL-22 and its receptor IL-22R1 are important in host defense and repair of epithelial barriers. The objective of this study was to determine whether a quantitative difference in IL-22R1 exists between infant and adult airways using the rhesus macaque monkey as a model of childhood lung development. Immunofluorescence staining of tracheal tissue revealed minimal expression of IL-22R1 in epithelium at 1 month of age, with a progressive increase in fluorescence-positive basal cells through 1 year of age. Western blot analysis of tracheal lysates confirmed significant age-dependent differences in IL-22R1 protein content. Further, primary tracheobronchial epithelial cell cultures established from infant and adult monkeys showed differential IL-22R1 mRNA and protein expression in vitro. To begin to assess the regulation of age-dependent IL-22R1 expression in airway epithelium, the effect of histone deacetylase and DNA methyltransferase inhibitors was evaluated. IL-22R1 mRNA in adult cultures was not altered by 5-aza-2'-deoxycytidine or trichostatin A. IL-22R1 mRNA in infant cultures showed no change with 5-aza-2'-deoxycytidine but was significantly increased after trichostatin A treatment; however, IL-22R1 protein did not increase concurrently. These data suggest that IL-22R1 in airway epithelium is regulated, in part, by epigenetic mechanisms that are dependent on chronologic age.
More Related Videos
08:42Isolating Bronchial Epithelial Cells from Resected Lung Tissue for Biobanking and Establishing Well-Differentiated Air-Liquid Interface Cultures
Published on: May 26, 2023
06:14Isolation of Alveolar Type II Epithelial Cells from Neonatal, Juvenile, and Adult Murine Lungs Adaptable to Infectious Experimental Settings
Published on: December 19, 2025