Xunping Wu, Hongping Wang, Ling Zhang, Bingyao Wang, Xinran Tan, Zhu Li, Jin Nie, Daishun Liu
Respiratory syncytial virus (RSV) causes severe lower respiratory tract infections in infants, older adults, and immunocompromised individuals, but therapeutic options for active infection remain limited. Interleukin-6 (IL-6) contributes to RSV replication and RSV-induced inflammation, and the IKKβ/NF-κB pathway is a major regulator of IL-6 expression. Bardoxolone methyl (BXM) was identified by network medicine as a potential anti-RSV compound, with molecular docking suggesting interactions with the IKKβ/NF-κB pathway. We investigated whether BXM inhibits RSV infection through modulation of the IKKβ/NF-κB/IL-6 axis in RSV-infected BEAS-2B cells and BALB/c mice. RSV infection increased IL-6 expression and activated IKKβ/NF-κB signaling, whereas IL-6 knockdown reduced viral replication and inflammatory mediator expression. BXM significantly suppressed RSV replication, as shown by RT-qPCR, TCID₅₀, plaque reduction assays, and Western blotting, and decreased IL-6 expression in vitro. Mechanistically, BXM attenuated RSV-induced phosphorylation of IKKβ and NF-κB. The IKKβ inhibitor TPCA-1 produced similar inhibitory effects, whereas recombinant human IL-6 add-back partially restored inflammatory mediator expression in BXM-treated RSV-infected cells. In mice, BXM reduced lung viral titers, RSV-F expression, IL-6 expression, IKKβ/NF-κB activation, and RSV-induced lung injury. These findings suggest that BXM suppresses RSV replication and inflammation, at least in part, by modulating the IKKβ/NF-κB/IL-6 axis, supporting its potential as a therapeutic candidate for RSV infection.IMPORTANCERespiratory syncytial virus (RSV) is a major cause of respiratory illness, especially in infants, older adults, and people with weakened immune systems. Although preventive strategies are available for some high-risk groups, treatment options for active RSV infection remain limited. This study identifies bardoxolone methyl (BXM) as a potential anti-RSV compound and shows that it can reduce both viral replication and virus-induced inflammation in cell and mouse models. Importantly, our findings suggest that BXM acts, at least in part, by reducing IL-6-related inflammatory signaling, which is closely associated with RSV disease severity. These results provide experimental evidence supporting BXM as a promising candidate for further development against RSV infection and offer insight into a potential host-targeted therapeutic strategy.