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Published on: November 4, 2010
Long-Term Azithromycin Reduces Haemophilus influenzae and Increases Antibiotic Resistance in Severe Asthma
Steven L Taylor1,2, Lex E X Leong1,2, Fredrick M Mobegi1,2
11South Australian Health and Medical Research Institute, Adelaide, South Australia, Australia.
Abstract:
Rationale: The macrolide antibiotic azithromycin reduces exacerbations in adults with persistent symptomatic asthma. However, owing to the pleotropic properties of macrolides, unintended bacteriological consequences such as augmented pathogen colonization or dissemination of antibiotic-resistant organisms can occur, calling into question the long-term safety of azithromycin maintenance therapy.Objectives: To assess the effects of azithromycin on the airway microbiota, pathogen abundance, and carriage of antibiotic resistance genes.Methods: 16S rRNA sequencing and quantitative PCR were performed to assess the effect of azithromycin on sputum microbiology from participants of the AMAZES (Asthma and Macrolides: The Azithromycin Efficacy and Safety) trial: a 48-week, double-blind, placebo-controlled trial of thrice-weekly 500 mg oral azithromycin in adults with persistent uncontrolled asthma. Pooled-template shotgun metagenomic sequencing, quantitative PCR, and isolate whole-genome sequencing were performed to assess antibiotic resistance.Measurements and Main Results: Paired sputum samples were available from 61 patients (n = 34 placebo, n = 27 azithromycin). Azithromycin did not affect bacterial load (P = 0.37) but did significantly decrease Faith's phylogenetic diversity (P = 0.026) and Haemophilus influenzae load (P < 0.0001). Azithromycin did not significantly affect levels of Streptococcus pneumoniae, Staphylococcus aureus, Pseudomonas aeruginosa, or Moraxella catarrhalis. Of the 89 antibiotic resistance genes detected, five macrolide resistance genes and two tetracycline resistance genes were increased significantly.Conclusions: In patients with persistent uncontrolled asthma, azithromycin reduced airway H. influenzae load compared with placebo but did not change total bacterial load. Macrolide resistance increased, reflecting previous studies. These results highlight the need for studies assessing the efficacy of nonantibiotic macrolides as a long-term therapy for patients with persistent uncontrolled asthma.
Insights
Azithromycin maintenance therapy for asthma reduced airway Haemophilus influenzae but increased macrolide resistance. Further research is needed on nonantibiotic macrolides for long-term asthma treatment.
Area of Science:
- Microbiology
- Pulmonology
- Pharmacology
Background:
- Azithromycin, a macrolide antibiotic, is used to reduce asthma exacerbations.
- Concerns exist regarding potential adverse bacteriological effects, including antibiotic resistance.
- The long-term safety of azithromycin maintenance therapy in asthma requires investigation.
Purpose of the Study:
- To evaluate the impact of azithromycin on airway microbiota composition.
- To quantify pathogen abundance in asthma patients receiving azithromycin.
- To assess the carriage of antibiotic resistance genes following azithromycin treatment.
Main Methods:
- Analysis of sputum samples from the AMAZES trial (48-week, placebo-controlled).
- Utilized 16S rRNA sequencing and quantitative PCR for microbial analysis.
- Employed shotgun metagenomic sequencing and whole-genome sequencing for antibiotic resistance gene assessment.
Main Results:
- Azithromycin significantly decreased airway Haemophilus influenzae load.
- No significant changes were observed in total bacterial load or other key pathogens.
- A significant increase in macrolide and tetracycline resistance genes was detected.
Conclusions:
- Azithromycin effectively reduces H. influenzae in asthma patients but does not alter overall bacterial load.
- The observed increase in macrolide resistance warrants caution for long-term use.
- Nonantibiotic macrolide alternatives should be explored for sustained asthma management.
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