Gut community structure as a risk factor for infection in Klebsiella pneumoniae-colonized patients

Jay Vornhagen1, Krishna Rao2, Michael A Bachman3,4

  • 1Department of Microbiology & Immunology, Indiana University School of Medicine, Indianapolis, Indiana, USA.

Msystems
|July 8, 2024
PubMed

Insights

Gut microbiome composition predicts Klebsiella pneumoniae infection risk in colonized patients. Machine learning models integrating gut microbes and bacterial genetics improved infection classification, outperforming clinical factors alone.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Computational Biology

Background:

  • Gut colonization by Klebsiella pneumoniae species complex is a primary risk factor for infection.
  • The gut microbiome's role in K. pneumoniae infection pathogenesis remains poorly understood.
  • Identifying biomarkers for infection risk in colonized individuals is crucial for timely intervention.

Purpose of the Study:

  • To investigate the association between gut microbiome structure and K. pneumoniae infection in colonized patients.
  • To determine if gut microbial community data can predict infection development.
  • To assess the utility of integrating microbiome data with bacterial genotype and clinical factors for infection classification.

Main Methods:

  • Case-control study comparing gut microbiome composition in K. pneumoniae-colonized patients who developed infection (cases) versus those who remained asymptomatic (controls).
  • Utilized machine learning models to classify cases and controls based on gut community structure, bacterial genotype, and clinical variables.
  • Analyzed relative abundance of K. pneumoniae and other gut microbes for feature importance.

Main Results:

  • Gut community structure differed significantly between patients who developed K. pneumoniae infection and those who remained colonized but asymptomatic.
  • Machine learning models effectively classified infection status using gut microbiome data.
  • Integration of gut microbiome structure with bacterial genotype data significantly enhanced the accuracy of infection classification models.
  • Patient clinical variables did not improve the predictive ability of the machine learning models.

Conclusions:

  • Gut microbiome composition serves as a valuable biomarker for predicting K. pneumoniae infection risk in colonized individuals.
  • Combining microbiome data with bacterial genotype offers a powerful approach for classifying infection risk.
  • Microbiome-based predictive models may offer novel strategies for preventing K. pneumoniae infections at the colonization stage.

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