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Macrolide resistance: an increasing concern for treatment failure in children
Michael R Jacobs1, Candice E Johnson
1Clinical Microbiology, University Hospitals of Cleveland, Cleveland, OH.
Background:
Antimicrobial treatment of pediatric respiratory tract infections has evolved during the past 30 years as a result of antimicrobial resistance. The focus of antimicrobial therapy in these conditions has shifted from penicillins to other agents because of the dramatic increase in antimicrobial resistance among common respiratory pathogens, including Streptococcus pneumoniae, Haemophilus influenzae and Moraxella catarrhalis. It is important for clinicians to understand how resistance develops so that they can help prevent this phenomenon from occurring with other antimicrobials.
Methods:
This article reviews the published literature on resistance to macrolide antimicrobials among common pediatric respiratory tract pathogens and clinical and bacteriologic outcomes of infections with these pathogens.
Results:
Resistance among common pediatric respiratory tract pathogens to macrolides occurs through two main mechanisms, alteration of the target site and active efflux. Although resistance patterns vary by geographic region, the widespread use of macrolides has contributed to the emergence of both types of macrolide-resistant organisms. Conditions that favor the selection and proliferation of resistant strains include children with repeated, close contact who frequently receive antimicrobial treatment or prophylaxis, such as children who attend day care. Recent US surveillance data show that 20 to 30% of S. pneumoniae are resistant to macrolides, with approximately two-thirds of macrolide-resistant strains associated with an efflux mechanism and the remainder associated with a ribosomal methylase. Additionally, although less well-known, virtually all strains of H. influenzae have an intrinsic macrolide efflux pump. As resistance to macrolides has increased, clinical failures have resulted, and these agents are no longer considered appropriate for empiric first line antimicrobial therapy of acute otitis media and sinusitis unless patients are truly penicillin-allergic. Therefore, other antimicrobials are recommended for the empiric treatment of children with respiratory tract infections, including higher doses of amoxicillin and amoxicillin/clavulanate (90 mg/kg/day amoxicillin), cefuroxime axetil and intramuscular ceftriaxone.
Conclusions:
As resistance to macrolides increases and clinical failures in children become more common with this class of antimicrobials, judicious use of antimicrobials is needed. This includes limiting antimicrobial use for viral infections and using the most effective agents when antimicrobials are clinically indicated, such as higher doses of amoxicillin and amoxicillin/clavulanate. Application of these principles may prevent proliferation and further development of resistance.
Insights
Antimicrobial resistance in pediatric respiratory infections has led to macrolide treatment failures. Judicious antimicrobial use, including higher-dose amoxicillin, is crucial to combat rising resistance in common pathogens like Streptococcus pneumoniae.
Area of Science:
- Pediatric Infectious Diseases
- Antimicrobial Resistance
- Pharmacology
Background:
- Pediatric respiratory tract infections (RTIs) management has shifted due to increasing antimicrobial resistance over 30 years.
- Common respiratory pathogens like Streptococcus pneumoniae, Haemophilus influenzae, and Moraxella catarrhalis show significant resistance to traditional agents.
- Understanding resistance mechanisms is vital to prevent further antimicrobial resistance development.
Purpose of the Study:
- To review macrolide antimicrobial resistance in pediatric RTIs.
- To analyze clinical and bacteriologic outcomes of infections caused by macrolide-resistant pathogens.
- To inform appropriate antimicrobial selection for pediatric RTIs.
Main Methods:
- Literature review of published studies on macrolide resistance in pediatric respiratory pathogens.
- Analysis of resistance mechanisms, including target site alteration and active efflux.
- Evaluation of clinical outcomes and surveillance data.
Main Results:
- Macrolide resistance in pediatric RTIs is driven by target site alteration and active efflux mechanisms.
- Geographic variations exist, but widespread macrolide use has increased resistance.
- 20-30% of S. pneumoniae in the US are macrolide-resistant, often via efflux pumps; H. influenzae possesses intrinsic efflux pumps.
- Clinical failures with macrolides are common, rendering them unsuitable for empiric first-line therapy for acute otitis media and sinusitis.
Conclusions:
- Increasing macrolide resistance and clinical failures necessitate judicious antimicrobial use in children.
- Limiting antimicrobial prescriptions for viral infections and selecting effective agents like high-dose amoxicillin are recommended.
- Implementing these strategies can help prevent the proliferation and further development of antimicrobial resistance.