Related Experiment Video
Updated: Oct 29, 2025

A Neonatal Imaging Model of Gram-Negative Bacterial Sepsis
Published on: August 12, 2020
Pulmonary and intestinal microbiota dynamics during Gram-negative pneumonia-derived sepsis
Nora S Wolff1, Max C Jacobs1, W Joost Wiersinga2,3
1Center for Experimental and Molecular Medicine, Amsterdam Infection & Immunity Institute, Amsterdam UMC, Location AMC, University of Amsterdam, Meibergdreef 9, 1105 AZ, Amsterdam, The Netherlands.
Background:
The gut microbiome plays a protective role in the host defense against pneumonia. The composition of the lung microbiota has been shown to be predictive of clinical outcome in critically ill patients. However, the dynamics of the lung and gut microbiota composition over time during severe pneumonia remains ill defined. We used a mouse model of pneumonia-derived sepsis caused by Klebsiella pneumoniae in order to follow the pathogen burden as well as the composition of the lung, tongue and fecal microbiota from local infection towards systemic spread.
Results:
Already at 6 h post-inoculation with K. pneumoniae, marked changes in the lung microbiota were seen. The alpha diversity of the lung microbiota did not change throughout the infection, whereas the beta diversity did. A shift between the prominent lung microbiota members of Streptococcus and Klebsiella was seen from 12 h onwards and was most pronounced at 18 h post-inoculation (PI) which was also reflected in the release of pro-inflammatory cytokines indicating severe pulmonary inflammation. Around 18 h PI, K. pneumoniae bacteremia was observed together with a systemic inflammatory response. The composition of the tongue microbiota was not affected during infection, even at 18-30 h PI when K. pneumoniae had become the dominant bacterium in the lung. Moreover, we observed differences in the gut microbiota during pulmonary infection. The gut microbiota contributed to the lung microbiota at 12 h PI, however, this decreased at a later stage of the infection.
Conclusions:
At 18 h PI, K. pneumoniae was the dominant member in the lung microbiota. The lung microbiota profiles were significantly explained by the lung K. pneumoniae bacterial counts and Klebsiella and Streptococcus were correlating with the measured cytokine levels in the lung and/or blood. The oral microbiota in mice, however, was not influenced by the severity of murine pneumonia, whereas the gut microbiota was affected. This study is of significance for future studies investigating the role of the lung microbiota during pneumonia and sepsis.
Insights
Severe pneumonia alters lung microbiota composition, with Klebsiella pneumoniae dominating. Oral microbiota remains unaffected, while gut microbiota composition changes during lung infection.
Area of Science:
- Microbiology
- Immunology
- Host-Pathogen Interactions
Background:
- The gut microbiome influences host defense against pneumonia.
- Lung microbiota composition predicts outcomes in critically ill patients.
- Temporal dynamics of lung and gut microbiota during severe pneumonia are not well understood.
Purpose of the Study:
- To investigate the dynamic changes in lung, tongue, and fecal microbiota composition during severe pneumonia.
- To track pathogen burden and microbial shifts from local infection to systemic spread.
Main Methods:
- Utilized a mouse model of pneumonia-derived sepsis caused by Klebsiella pneumoniae.
- Monitored pathogen burden and microbiota composition (lung, tongue, fecal) over time.
- Assessed pro-inflammatory cytokine levels and bacterial counts.
Main Results:
- Significant alterations in lung microbiota composition observed as early as 6 hours post-inoculation.
- Shift from Streptococcus to Klebsiella dominance in the lung microbiota by 18 hours post-inoculation, correlating with severe pulmonary inflammation.
- Klebsiella pneumoniae bacteremia and systemic inflammation emerged around 18 hours post-inoculation.
- Tongue microbiota composition remained stable, while gut microbiota showed alterations, initially contributing to lung microbiota before decreasing.
Conclusions:
- Klebsiella pneumoniae becomes the dominant lung bacterium during severe pneumonia.
- Lung microbiota profiles are linked to bacterial load and correlate with inflammatory markers.
- Oral microbiota is resilient to pneumonia severity, but gut microbiota is affected, highlighting distinct host-microbe interactions.
More Related Videos
09:17A Robust Pneumonia Model in Immunocompetent Rodents to Evaluate Antibacterial Efficacy against S. pneumoniae, H. influenzae, K. pneumoniae, P. aeruginosa or A. baumannii
Published on: January 2, 2017
12:21A Mouse Model for the Transition of Streptococcus pneumoniae from Colonizer to Pathogen upon Viral Co-Infection Recapitulates Age-Exacerbated Illness
Published on: September 28, 2022
Related Concept Videos
Pneumonia II: Pathophysiology
Pneumonia III: Complications and Assessment
Pneumonia I: Introduction
Risk Factors
Various factors influence the likelihood of developing pneumonia. Age plays a crucial role, with infants, children under two, and individuals over 65 at increased risk due to their...