Early-life microbiota direct an epithelial S100 program required for neonatal immunity

Despite appreciation that neonatal immune responses differ markedly from those of adults, the mechanisms that enable early-life immunity remain poorly understood. Here, we find that healthy newborn mice express high concentrations of the S100 calcium-binding protein A8/A9 (S100A8/S100A9) antimicrobial heterodimer calprotectin and that this early up-regulation in the intestine is driven by initial exposure to commensal bacteria. Impaired calprotectin expression or microbiota colonization at birth increased susceptibility of neonatal mice to sepsis and death postinfection; however, calprotectin administration rescued microbiota-depleted pups from infection. Microbiota colonization induced S100A9 expression by intestinal epithelial cells (IECs), and epithelial cells represented the main source of calprotectin in the neonatal intestine. Consistent with a critical role in early-life defense, neonatal IEC-specific S100A9 knockout pups were highly susceptible to infection, phenocopying S100A8/A9 full knockout and antibiotic-exposed neonatal mice. IEC-intrinsic S100A9 expression mediated microbiota-sensitive defense in neonatal mice, and commensal bacteria, such as Lactobacillus , were sufficient to prime this epithelial defense pathway. Mechanistically, indole-3-lactic acid produced by initial colonizers directed IEC intrinsic up-regulation of S100A9 in both mice and human intestinal organoids. Thus, microbiota-epithelial dynamics that occur at birth are essential for programming early-life immunity and suggest that probiotic approaches targeting epithelial cells could prevent neonatal sepsis and death.

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Publication Details

Journal
Science Translational Medicine
Published
2026-10-07
DOI
https://doi.org/10.1126/scitranslmed.adx6147
Primary Topic
S100 Proteins and Annexins
Type
article
Field-Weighted Citation Impact
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article

Early-life microbiota direct an epithelial S100 program required for neonatal immunity

Hitesh S. Deshmukh, Theresa Alenghat, Lee A. Denson, Sergei I. Grivennikov et al.
Science Translational Medicine
S100 Proteins and Annexins
article

Early-life microbiota direct an epithelial S100 program required for neonatal immunity

Hitesh S. Deshmukh, Theresa Alenghat, Lee A. Denson, Sergei I. Grivennikov, Maggie Lutz, Shikha Negi, Nurit Pereg Azouz, Taylor Rice, Seika Hashimoto‐Hill, Laura Engleman, Philippe A. Tessier, Bruce A. Vallance, Amanda Waddell
article en

Abstract

Despite appreciation that neonatal immune responses differ markedly from those of adults, the mechanisms that enable early-life immunity remain poorly understood. Here, we find that healthy newborn mice express high concentrations of the S100 calcium-binding protein A8/A9 (S100A8/S100A9) antimicrobial heterodimer calprotectin and that this early up-regulation in the intestine is driven by initial exposure to commensal bacteria. Impaired calprotectin expression or microbiota colonization at birth increased susceptibility of neonatal mice to sepsis and death postinfection; however, calprotectin administration rescued microbiota-depleted pups from infection. Microbiota colonization induced S100A9 expression by intestinal epithelial cells (IECs), and epithelial cells represented the main source of calprotectin in the neonatal intestine. Consistent with a critical role in early-life defense, neonatal IEC-specific S100A9 knockout pups were highly susceptible to infection, phenocopying S100A8/A9 full knockout and antibiotic-exposed neonatal mice. IEC-intrinsic S100A9 expression mediated microbiota-sensitive defense in neonatal mice, and commensal bacteria, such as Lactobacillus , were sufficient to prime this epithelial defense pathway. Mechanistically, indole-3-lactic acid produced by initial colonizers directed IEC intrinsic up-regulation of S100A9 in both mice and human intestinal organoids. Thus, microbiota-epithelial dynamics that occur at birth are essential for programming early-life immunity and suggest that probiotic approaches targeting epithelial cells could prevent neonatal sepsis and death.

Science Translational MedicineVol. 18(870)
Cedars-Sinai Medical Center (US), Cincinnati Children's Hospital Medical Center (US), BC Children's Hospital (CA), Université Laval (CA)
Openalex Percentile: Top 22%
S100 Proteins and Annexins
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