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Preparation of Agar Bead Embedded Mycobacterium abscessus to Inoculate Immunocompetent Mice Intratracheally
Published on: April 25, 2025
Phage Therapy for Mycobacterium Abscessus and Strategies to Improve Outcomes
Abdolrazagh Hashemi Shahraki1, Mehdi Mirsaeidi1
1Division of Pulmonary and Critical Care, Sleep and Allergy, Miller School of Medicine, University of Miami, Miami, FL 33101, USA.
Abstract:
Members of Mycobacterium abscessus complex are known for causing severe, chronic infections. Members of M. abscessus are a new "antibiotic nightmare" as one of the most resistant organisms to chemotherapeutic agents. Treatment of these infections is challenging due to the either intrinsic or acquired resistance of the M. abscessus complex to the available antibiotics. Recently, successful phage therapy with a cocktail of three phages (one natural lytic phage and two engineered phages) every 12 h for at least 32 weeks has been reported against a severe case of the disseminated M. abscessus subsp. massiliense infection, which underlines the high value of phages against drug-resistant superbugs. This report also highlighted the limitations of phage therapy, such as the absence of lytic phages with a broad host-range against all strains and subspecies of the M. abscessus complex and also the risk of phage resistant bacteria over treatment. Cutting-edge genomic technologies have facilitated the development of engineered phages for therapeutic purposes by introducing new desirable properties, changing host-range and arming the phages with additional killing genes. Here, we review the available literature and suggest new potential solutions based on the progress in phage engineering that can help to overcome the present limitations of M. abscessus treatment.
Insights
Mycobacterium abscessus infections are difficult to treat due to antibiotic resistance. Phage therapy shows promise, and advancements in phage engineering offer new solutions for combating these drug-resistant superbugs.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- The Mycobacterium abscessus complex causes severe, chronic infections.
- M. abscessus is highly resistant to antibiotics, posing a significant treatment challenge.
- Existing treatments are limited by intrinsic and acquired resistance.
Purpose of the Study:
- To review current literature on treating M. abscessus infections.
- To explore the potential of phage therapy and phage engineering.
- To propose solutions for overcoming limitations in M. abscessus treatment.
Main Methods:
- Literature review of M. abscessus treatment strategies.
- Analysis of recent advancements in phage therapy.
- Exploration of genomic technologies for phage engineering.
Main Results:
- Phage therapy has shown success in a severe disseminated M. abscessus subsp. massiliense case.
- Limitations include narrow host-range phages and risk of bacterial resistance.
- Engineered phages can be developed with enhanced properties and broader efficacy.
Conclusions:
- Phage therapy is a valuable tool against drug-resistant M. abscessus.
- Phage engineering holds significant potential to overcome current treatment limitations.
- Further development of engineered phages is crucial for effective M. abscessus infection management.
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