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Published on: September 30, 2014
Clarithromycin Inhibits Pneumolysin Production via Downregulation of ply Gene Transcription despite Autolysis
Hisanori Domon1,2, Toshihito Isono1, Takumi Hiyoshi1,2,3
1Division of Microbiology and Infectious Diseases, Niigata University Graduate School of Medical and Dental Sciences, Niigata, Japan.
Abstract:
Streptococcus pneumoniae, the most common cause of community-acquired pneumonia, causes severe invasive infections, including meningitis and bacteremia. The widespread use of macrolides has been reported to increase the prevalence of macrolide-resistant S. pneumoniae (MRSP), thereby leading to treatment failure in patients with pneumococcal pneumonia. However, previous studies have demonstrated that several macrolides and lincosamides have beneficial effects on MRSP infection since they inhibit the production and release of pneumolysin, a pneumococcal pore-forming toxin released during autolysis. In this regard, we previously demonstrated that the mechanisms underlying the inhibition of pneumolysin release by erythromycin involved both the transcriptional downregulation of the gene encoding pneumolysin and the impairment of autolysis in MRSP. Here, using a cell supernatant of the culture, we have shown that clarithromycin inhibits pneumolysin release in MRSP. However, contrary to previous observations in erythromycin-treated MRSP, clarithromycin upregulated the transcription of the pneumococcal autolysis-related lytA gene and enhanced autolysis, leading to the leakage of pneumococcal DNA. On the other hand, compared to erythromycin, clarithromycin significantly downregulated the gene encoding pneumolysin. In a mouse model of MRSP pneumonia, the administration of both clarithromycin and erythromycin significantly decreased the pneumolysin protein level in bronchoalveolar lavage fluid and improved lung injury and arterial oxygen saturation without affecting bacterial load. Collectively, these in vitro and in vivo data reinforce the benefits of macrolides on the clinical outcomes of patients with pneumococcal pneumonia. IMPORTANCE Pneumolysin is a potent intracellular toxin possessing multiple functions that augment pneumococcal virulence. For over 10 years, sub-MICs of macrolides, including clarithromycin, have been recognized to decrease pneumolysin production and release from pneumococcal cells. However, this study indicates that macrolides significantly slowed pneumococcal growth, which may be related to decreased pneumolysin release recorded by previous studies. In this study, we demonstrated that clarithromycin decreases pneumolysin production through downregulation of ply gene transcription, regardless of its inhibitory activity against bacterial growth. Additionally, administration of clarithromycin resulted in the amelioration of lung injury in a mouse model of pneumonia induced by macrolide-resistant pneumococci. Therefore, therapeutic targeting of pneumolysin offers a good strategy to treat pneumococcal pneumonia.
Insights
Clarithromycin and erythromycin reduce pneumolysin release in macrolide-resistant Streptococcus pneumoniae pneumonia. These macrolides improve lung injury and oxygen saturation in mice, highlighting their therapeutic potential.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Streptococcus pneumoniae causes community-acquired pneumonia and invasive infections.
- Macrolide resistance in S. pneumoniae (MRSP) leads to treatment failures.
- Macrolides can inhibit pneumolysin, a key virulence factor, in MRSP infections.
Purpose of the Study:
- To investigate the effects of clarithromycin on pneumolysin release and autolysis in MRSP.
- To compare the mechanisms of clarithromycin and erythromycin in MRSP.
- To evaluate the therapeutic efficacy of clarithromycin and erythromycin in a mouse model of MRSP pneumonia.
Main Methods:
- In vitro analysis of pneumolysin release, gene transcription (ply and lytA), and bacterial autolysis in MRSP treated with clarithromycin and erythromycin.
- In vivo assessment of lung injury, pneumolysin levels, and arterial oxygen saturation in a mouse model of MRSP pneumonia.
Main Results:
- Clarithromycin inhibited pneumolysin release in MRSP by downregulating ply gene transcription.
- Clarithromycin upregulated lytA gene transcription and enhanced autolysis, leading to pneumococcal DNA leakage.
- Both clarithromycin and erythromycin reduced pneumolysin levels in bronchoalveolar lavage fluid and improved lung injury and oxygen saturation in mice, without affecting bacterial load.
Conclusions:
- Clarithromycin and erythromycin demonstrate beneficial effects in MRSP pneumonia by reducing pneumolysin.
- Targeting pneumolysin offers a promising therapeutic strategy for pneumococcal pneumonia.
- These findings support the use of macrolides in managing pneumococcal pneumonia, even in resistant strains.
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