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Published on: November 22, 2013
Persistent Legionnaires' Disease and Associated Antibiotic Treatment Engender a Highly Disturbed Pulmonary Microbiome
Ana Elena Pérez-Cobas1,2, Christophe Ginevra3,4,5,6,7,8, Christophe Rusniok1,2
1Institut Pasteur, Biologie des Bactéries Intracellulaires, Paris, France.
Abstract:
Despite the importance of pneumonia to public health, little is known about the composition of the lung microbiome during infectious diseases, such as pneumonia, and how it evolves during antibiotic therapy. To study the possible relation of the pulmonary microbiome to the severity and outcome of this respiratory disease, we analyzed the dynamics of the pathogen and the human lung microbiome during persistent infections caused by the bacterium Legionella pneumophila and their evolution during antimicrobial treatment. We collected 10 bronchoalveolar lavage fluid samples from three patients during long-term hospitalization due to pneumonia and performed a unique longitudinal study of the interkingdom microbiome, analyzing the samples for presence of bacteria, archaea, fungi, and protozoa by high-throughput Illumina sequencing of marker genes. The lung microbiome of the patients was characterized by a strong predominance of the pathogen, a low diversity of the bacterial fraction, and an increased presence of opportunistic microorganisms. The fungal fraction was more stable than the bacterial fraction. During long-term treatment, no genomic changes or antibiotic resistance-associated mutations that could explain the persistent infection occurred, according to whole-genome sequencing analyses of the pathogen. After antibiotic treatment, the microbiome did not recover rapidly but was mainly constituted of antibiotic-resistant species and enriched in bacteria, archaea, fungi, or protozoa associated with pathogenicity. The lung microbiome seems to contribute to nonresolving Legionella pneumonia, as it is strongly disturbed during infection and enriched in opportunistic and/or antibiotic-resistant bacteria and microorganisms, including fungi, archaea, and protozoa that are often associated with infections.IMPORTANCE The composition and dynamics of the lung microbiome during pneumonia are not known, although the lung microbiome might influence the severity and outcome of this infectious disease, similar to what was shown for the microbiome at other body sites. Here we report the findings of a comprehensive analysis of the lung microbiome composition of three patients with long-term pneumonia due to L. pneumophila and its evolution during antibiotic treatment. This work adds to our understanding of how the microbiome changes during disease and antibiotic treatment and points to microorganisms and their interactions that might be beneficial. In addition to bacteria and fungi, our analyses included archaea and eukaryotes (protozoa), showing that both are present in the pulmonary microbiota and that they might also play a role in the response to the microbiome disturbance.
Insights
The lung microbiome in persistent Legionella pneumonia is dominated by the pathogen and opportunistic microbes, persisting even after antibiotic treatment. This disturbed microbiome contributes to nonresolving pneumonia, highlighting the role of bacteria, fungi, archaea, and protozoa.
Area of Science:
- Microbiology
- Pulmonary Medicine
- Infectious Diseases
Background:
- Pneumonia poses a significant public health challenge.
- The lung microbiome's role in infectious diseases like pneumonia is poorly understood.
- Investigating the lung microbiome's dynamics during infection and treatment is crucial.
Purpose of the Study:
- To analyze the lung microbiome composition and evolution during persistent Legionella pneumophila pneumonia.
- To understand the impact of antibiotic therapy on the lung microbiome.
- To explore the relationship between the pulmonary microbiome and disease severity/outcome.
Main Methods:
- Longitudinal analysis of bronchoalveolar lavage fluid samples from three pneumonia patients.
- High-throughput Illumina sequencing of marker genes to identify bacteria, archaea, fungi, and protozoa.
- Whole-genome sequencing of Legionella pneumophila to detect genomic changes and antibiotic resistance.
Main Results:
- The lung microbiome was characterized by pathogen predominance, low bacterial diversity, and increased opportunistic microorganisms.
- The fungal microbiome fraction was more stable than the bacterial fraction.
- Antibiotic treatment did not lead to rapid microbiome recovery; instead, it was enriched with antibiotic-resistant and pathogenic species.
Conclusions:
- The disturbed lung microbiome, enriched with opportunistic and antibiotic-resistant microbes (including bacteria, archaea, fungi, and protozoa), contributes to nonresolving Legionella pneumonia.
- Persistent infection was not explained by genomic changes or resistance mutations in the pathogen.
- The study highlights the potential role of archaea and protozoa in pulmonary microbiota disturbances and their response.
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