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February 24, 2026Gut Microbes5 citationsOpen Access

Aging-caused the changes of the gut microbiota drive intestinal barrier dysfunction and increase sepsis susceptibility

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HLHuoyan LiangSociety of Critical Care MedicineXDXianfei DingSociety of Critical Care MedicineSLShaohua LiuSociety of Critical Care Medicine

Key Points

  • This research aims to explore how changes in gut microbiota due to aging enhance sepsis susceptibility by disrupting gut barrier function.
  • Fecal samples collected from aged and young septic patients and mice.
  • Fecal microbiota transplantation performed in young pseudo-germ-free mice.
  • 16S rDNA sequencing to characterize gut microbiota.
  • Histopathological examination and enzyme-linked immunosorbent assay to assess gut injury.
  • Nontargeted and targeted metabolomics used to identify differential metabolites.
  • Increased abundance of Klebsiella aerogenes in aged hosts linked to higher histamine production.
  • Histamine associated with worsened intestinal barrier dysfunction.
  • Histamine was found to inhibit Nlrp6 expression, affecting autophagy mechanisms.
  • Treatments modifying histamine levels improved inflammation in septic mice.

Abstract

Physiological and pathological changes associated with aging contribute to deteriorating disease prognosis in sepsis. However, the mechanisms by which these disturbances exacerbate inflammation remain underexplored. In this study, fecal samples were collected from aged and young septic patients and mice and subsequently transplanted into young pseudo-germ-free mice via fecal microbiota transplantation. Fecal, colon tissue, and blood samples were collected to be used 16S rDNA sequencing to characterize the gut microbiota, histopathological examination, enzyme-linked immunosorbent assay and FITC-dextran intestinal permeability assay to assess gut injury and gut barrier function. Additionally, nontargeted and targeted metabolomics were used to identify differential metabolites in the feces of aged and young septic mice. To further validate the roles of specific bacterial strains and their metabolites in sepsis, genetically engineered bacteria were used in both in vivo and in vitro experiments. The results showed that an increased abundance of Klebsiella aerogenes (K. aero) in aged hosts, which led to elevated histamine (HA) production and exacerbated intestinal barrier dysfunction. Importantly, K. aero strains carrying a histidine decarboxylase gene variant were identified as major HA producers. Mechanistically, HA was shown to drive intestinal barrier dysfunction by inhibiting Nlrp6 expression and its subsequent binding to LC3, thereby impairing autophagy. Treatments that modulated HA levels or overexpressed Nlrp6 ameliorated inflammation in septic mice. These findings suggest that targeting the HA-Nlrp6-LC3 axis could offer a novel therapeutic approach for managing sepsis, particularly in aged populations.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/699d3fb3de8e28729cf646b4https://doi.org/10.1080/19490976.2026.2630475
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