Validated Preclinical Mouse Model for Therapeutic Testing against Multidrug-Resistant Pseudomonas aeruginosa Strains
Jonathan M Warawa1,2, Xiaoxian Duan1, Charles D Anderson1
1Center for Predictive Medicine for Biodefense and Emerging Infectious Diseases, University of Louisvillegrid.266623.5, Louisville, Kentucky, USA.
Abstract:
The rise in infections caused by antibiotic-resistant bacteria is outpacing the development of new antibiotics. The ESKAPE pathogens (Enterococcus faecium, Staphylococcus aureus, Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa, and Enterobacter species) are a group of clinically important bacteria that have developed resistance to multiple antibiotics and are commonly referred to as multidrug resistant (MDR). The medical and research communities have recognized that, without new antimicrobials, infections by MDR bacteria will soon become a leading cause of morbidity and death. Therefore, there is an ever-growing need to expedite the development of novel antimicrobials to combat these infections. Toward this end, we set out to refine an existing mouse model of pulmonary Pseudomonas aeruginosa infection to generate a robust preclinical tool that can be used to rapidly and accurately predict novel antimicrobial efficacy. This refinement was achieved by characterizing the virulence of a panel of genetically diverse MDR P. aeruginosa strains in this model, by both 50% lethal dose (LD50) analysis and natural history studies. Further, we defined two antibiotic regimens (aztreonam and amikacin) that can be used as comparators during the future evaluation of novel antimicrobials, and we confirmed that the model can effectively differentiate between successful and unsuccessful treatments, as predicted by in vitro inhibitory data. This validated model represents an important tool in our arsenal to develop new therapies to combat MDR P. aeruginosa strains, with the ability to provide rapid preclinical evaluation of novel antimicrobials and support data from clinical studies during the investigational drug development process. IMPORTANCE The prevalence of antibiotic resistance among bacterial pathogens is a growing problem that necessitates the development of new antibiotics. Preclinical animal models are important tools to facilitate and speed the development of novel antimicrobials. Successful outcomes in animal models not only justify progression of new drugs into human clinical trials but also can support FDA decisions if clinical trial sizes are small due to a small population of infections with specific drug-resistant strains. However, in both cases the preclinical animal model needs to be well characterized and provide robust and reproducible data. Toward this goal, we have refined an existing mouse model to better predict the efficacy of novel antibiotics. This improved model provides an important tool to better predict the clinical success of new antibiotics.
Insights
Developing new antibiotics is crucial as multidrug-resistant (MDR) bacteria infections rise. This study refines a mouse model to accurately predict the efficacy of novel antimicrobial drugs against MDR Pseudomonas aeruginosa.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Antibiotic resistance is a growing global health threat, with ESKAPE pathogens exhibiting multidrug resistance (MDR).
- The development of new antimicrobial therapies is lagging behind the rise of MDR bacterial infections.
- Effective preclinical models are essential for accelerating the evaluation of novel antimicrobials.
Purpose of the Study:
- To refine an existing mouse model for pulmonary Pseudomonas aeruginosa infection.
- To establish a robust preclinical tool for rapid and accurate prediction of novel antimicrobial efficacy.
- To support the development of new therapies against MDR bacterial infections.
Main Methods:
- Characterized the virulence of diverse MDR P. aeruginosa strains using 50% lethal dose (LD50) analysis and natural history studies.
- Defined standard antibiotic treatment regimens (aztreonam and amikacin) for comparator use.
- Validated the model's ability to differentiate treatment efficacy based on in vitro data.
Main Results:
- The refined mouse model demonstrated robust and reproducible data for evaluating antimicrobial efficacy.
- The model successfully predicted treatment outcomes, aligning with in vitro susceptibility data.
- Established comparator antibiotic regimens provide a benchmark for novel drug evaluation.
Conclusions:
- The validated mouse model serves as a critical tool for preclinical evaluation of novel antimicrobials against MDR P. aeruginosa.
- This improved model can expedite the drug development process and support clinical trial progression.
- Enhanced preclinical models are vital for addressing the urgent need for new antibiotics to combat resistant infections.
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