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Published on: January 22, 2021
Empiric Azithromycin in COVID-19 Impacts the Respiratory Microbiome and Antimicrobial Resistome without
Charles Langelier1, Abigail Glascock2, Cole Maguire3
1University of California, San Francisco.
Abstract:
Azithromycin is often prescribed unnecessarily for respiratory infections, many of which are viral. During the COVID-19 pandemic, its use was widespread, in part due to alleged therapeutic benefits, which have since been disproven. Here, we sought to understand the impact of azithromycin exposure on the respiratory microbiome, antimicrobial resistome, and host immune response in a prospective multicenter cohort of 1164 patients hospitalized for SARS-CoV-2 infection. Using longitudinal nasal metatranscriptomics, we compared patients treated with azithromycin (n=366, 31.4%) to those who received no antibiotics (n=474, 40.7%) or antibiotics other than azithromycin (n=324, 27.8%). We found that azithromycin treatment altered the community composition of the nasal microbiome, reducing bacterial relative abundance, increasing fungal relative abundance, and increasing potentially pathogenic taxa such as Klebsiellaand Staphylococcus. Azithromycin treatment was most notably associated with increases in the number of detectably expressed macrolide/lincosamide/streptogramin (MLS) antimicrobial resistance genes, as well as their relative proportion in the resistome, with changes observable after one day of exposure. Of the MLS resistance genes, the expression of ermC, msrA and ermX increased the most in patients receiving azithromycin. Correlation analyses demonstrated that MLS resistance gene expression was significantly associated with the abundance of several taxa, including both commensal (e.g., Dolosigranulum, Corynebacterium) and potentially pathogenic genera (e.g., Streptococcus, Staphylococcus). Assessment of the peripheral blood and upper airway host transcriptome demonstrated no differences in the expression of inflammatory genes. Taken together, our findings demonstrate that azithromycin treatment in COVID-19 leads to dysbiosis of the upper respiratory microbiome and changes in the expression of MLS resistance genes, without apparent anti-inflammatory benefit.
Insights
Azithromycin use in COVID-19 patients disrupts the nasal microbiome, increasing fungal and pathogenic bacteria. It also elevates antimicrobial resistance genes without providing anti-inflammatory benefits.
Area of Science:
- Microbiology
- Genomics
- Immunology
Background:
- Azithromycin is frequently prescribed for respiratory infections, including during the COVID-19 pandemic, despite lacking proven benefits for viral illnesses.
- The impact of azithromycin on the respiratory tract microbiome and antimicrobial resistance in SARS-CoV-2 patients remains incompletely understood.
Purpose of the Study:
- To investigate the effects of azithromycin on the nasal microbiome, antimicrobial resistome, and host immune response in hospitalized COVID-19 patients.
Main Methods:
- A prospective multicenter cohort study of 1164 patients hospitalized with SARS-CoV-2 infection.
- Longitudinal nasal metatranscriptomics was employed to compare patients receiving azithromycin, other antibiotics, or no antibiotics.
- Host immune response was assessed via peripheral blood and upper airway transcriptome analysis.
Main Results:
- Azithromycin treatment altered nasal microbiome composition, decreasing bacterial and increasing fungal relative abundance, along with potentially pathogenic taxa like Klebsiella and Staphylococcus.
- A significant increase in macrolide/lincosamide/streptogramin (MLS) antimicrobial resistance genes was observed following azithromycin exposure, detectable within one day.
- Expression of specific MLS resistance genes (ermC, msrA, ermX) increased most notably, correlating with the abundance of both commensal and pathogenic bacteria.
- No significant differences in inflammatory gene expression were found in the host immune response.
Conclusions:
- Azithromycin treatment in COVID-19 patients induces upper respiratory microbiome dysbiosis and alters MLS antimicrobial resistance gene expression.
- These changes occur without any discernible anti-inflammatory effect on the host immune system.
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