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IL-1 promotes α-epithelial Sodium Channel (α-ENaC) expression in murine lung epithelial cells: involvement of NF-κB
Shamimunisa B Mustafa1, Tania F Hernandez2, Teresa L Johnson-Pais3
1Department of Pediatrics/Division of Neonatology, University of Texas Health Science Center, 7703 Floyd Curl Drive, MSC 7812, San Antonio, TX, 78229-3900, USA. mustafa@uthscsa.edu.
Insights
Interleukin-1 (IL-1) increases alpha-ENaC expression in lung cells, crucial for fetal lung fluid clearance. This finding may help prevent respiratory distress syndrome (RDS) in premature infants.
Area of Science:
- Pulmonary Medicine
- Molecular Biology
- Cell Signaling
Background:
- Exposure to proinflammatory cytokines like interleukin-1 (IL-1) in the amniotic fluid is linked to reduced respiratory distress syndrome (RDS) in preterm infants.
- Inadequate fetal lung fluid absorption at birth is a key factor in RDS development.
- Lung fluid clearance is regulated by sodium (Na+) transport through epithelial sodium channels (ENaC), particularly the alpha-subunit (α-ENaC).
Purpose of the Study:
- To investigate the effect of IL-1 on the expression of α-ENaC in lung epithelial cells.
- To elucidate the signaling pathways involved in IL-1-mediated regulation of α-ENaC.
Main Methods:
- Cultured mouse lung epithelial (MLE-12) cells were treated with IL-1α or IL-1β.
- α-ENaC mRNA and protein levels were assessed.
- The roles of IL-1 receptor antagonist (IL-1ra), cycloheximide, NF-κB inhibitor (SN50), and MAP kinase inhibitors (ERK, p38, JNK) were evaluated.
Main Results:
- Both IL-1α and IL-1β significantly increased α-ENaC mRNA and protein expression after 24 hours.
- IL-1-induced increases in α-ENaC were reduced by IL-1ra and cycloheximide.
- IL-1 exposure activated NF-κB, and its inhibition decreased α-ENaC levels.
- Inhibition of ERK 1,2 MAPK reduced IL-1-induced α-ENaC, while p38 MAPK inhibition only affected IL-1β-induced α-ENaC. JNK inhibition had no effect.
Conclusions:
- IL-1 upregulates α-ENaC expression in lung epithelial cells.
- This upregulation is mediated by NF-κB activation and involves ERK 1,2 and p38 MAPK signaling pathways.
- Findings suggest a mechanism by which IL-1 may promote lung fluid clearance, potentially reducing RDS risk in preterm infants.
Abstract:
Intra-amniotic exposure to proinflammatory cytokines such as interleukin-1 (IL-1) correlates with a decreased incidence of respiratory distress syndrome (RDS) in infants following premature birth. At birth, inadequate absorption of fluid from the fetal lung contributes to the onset RDS. Lung fluid clearance is coupled to Na+ transport via epithelial sodium channels (ENaC). In this study, we assessed the effects of IL-1 on the expression of ENaC, particularly the α-subunit which is critical for fetal lung fluid clearance at birth. Cultured mouse lung epithelial (MLE-12) cells were treated with either IL-1α or IL-1β to determine their effects on α-ENaC expression. Changes in IL-1-induced α-ENaC levels in the presence of IL-1 receptor antagonist (IL-1ra), cycloheximide, NF-κB inhibitor, and MAP kinase inhibitors were investigated. IL-1α and IL-1β independently induced a significant increase of α-ENaC mRNA and protein after 24 h compared to untreated cells. IL-1-dependent increases in α-ENaC protein were mitigated by IL-1ra and cycloheximide. IL-1 exposure induced NF-κB binding activity. Attenuation of IL-1-induced NF-κB activation by its inhibitor SN50 decreased α-ENaC protein abundance. Inhibition of ERK 1,2 MAPK significantly decreased both IL-1α and β-induced α-ENaC protein expression whereas inhibition of p38 MAPK only blocked IL-1β-induced α-ENaC protein levels. In contrast, IL-1-induced α-ENaC protein levels were unaffected by a c-Jun N-terminal kinase (JNK) inhibitor. Our results suggest that in MLE-12 cells, IL-1-induced elevation of α-ENaC is mediated via NF-κB activation and in part involves stimulation of the ERK 1,2 and p38 MAPK signaling pathways.

