Mucosal Immunol. 2026 Aug 10:100399. doi: 10.1016/j.mucimm.2026.100399. Online ahead of print.
ABSTRACT
Early life is characterized by heightened susceptibility to respiratory pathogens, yet the immune mechanisms that predispose infants to infection remain poorly defined. Using an infant mouse model of Streptococcus pneumoniae (Spn) colonization, we identify an age-dependent delay in IL-17 A production that was associated with prolonged bacterial colonization in infant mice. Consistent with a critical role for this pathway, IL-17 receptor A (IL-17RA)-deficient infant mice exhibited persistent Spn colonization of the upper respiratory tract (URT). Transcriptomic profiling of the URT from Spn-colonized IL-17RA-deficient infant mice revealed an enrichment of antiviral responses compared to WT controls and included increased expression of the interferon-stimulated gene Cxcl10, a chemokine whose expression is positively associated with Spn carriage in humans. These results suggested that IL-17RA signaling constrains the interferon response during URT Spn colonization. WT infant mice exhibited progressively increased expression of Cxcl10 during Spn colonization and was dependent on type 1 interferon (IFNAR1) signaling and the pore forming bacterial toxin, pneumolysin. Genetic deletion of Ifnar1 or Cxcl10, including myeloid cell-specific deletion of Ifnar1, accelerated bacterial clearance in infant mice. In contrast, adult mice exhibited earlier induction of IL-17 A, minimal induction of Cxcl10 expression, and no alteration in bacterial clearance rates following Ifnar1 or Cxcl10 deficiency. Taken together, our results reveal a developmental window in which delayed IL-17 A production postpones the IL-17RA-dependent restraint of the type I interferon/CXCL10 axis, thereby prolonging pneumococcal carriage through impaired myeloid cell-mediated bacterial clearance.
PMID:42575316 | DOI:10.1016/j.mucimm.2026.100399