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An Oral Fluorouracil Prodrug, Capecitabine, Mitigates a Gram-Positive Systemic Infection in Mice
Jack R McLeod1, Pamela A Harvey1, Corrella S Detweiler1
1Department of Molecular Cellular and Developmental Biology, University of Colorado, Boulder, Colorado, USA.
Abstract:
New classes of antibiotics are needed to fight bacterial infections, and repurposing existing drugs as antibiotics may enable rapid deployment of new treatments. Screens for antibacterials have been traditionally performed in standard laboratory media, but bacterial pathogens experience very different environmental conditions during infection, including nutrient limitation. To introduce the next generation of researchers to modern drug discovery methods, we developed a course-based undergraduate research experience (CURE) in which undergraduate students screened a library of FDA-approved drugs for their ability, in a nutrient-poor medium, to prevent the growth of the human Gram-negative bacterial pathogen Salmonella enterica serovar Typhimurium. The nine drugs identified all disrupt DNA metabolism in bacteria and eukaryotes. One of the hit compounds, capecitabine, is a well-tolerated oncology drug that is administered orally, a preferred treatment route. We demonstrated that capecitabine is more effective at inhibiting S. Typhimurium growth in nutrient-limited than in standard rich microbiological broth, an explanation for why the antibiotic activity of this compound has not been previously recognized. Capecitabine is enzymatically converted to the active pyrimidine analogue, fluorouracil (5-FU), and Gram-positive bacteria, including Staphylococcus aureus, are significantly more sensitive to 5-FU than Gram-negative bacteria. We therefore tested capecitabine for efficacy in a murine model of S. aureus peritonitis. Oral capecitabine administration reduced the colonization of tissues and increased animal survival in a dose-responsive manner. Since capecitabine is inexpensive, orally available, and relatively safe, it may have utility for treatment of intractable Gram-positive bacterial infections. IMPORTANCE As bacterial infections become increasingly insensitive to antibiotics, whether established, off-patent drugs could treat infections becomes an important question. At the same time, basic research has revealed that during infection, mammals starve pathogens for nutrients and, in response, bacteria dramatically alter their biology. Therefore, it may be fruitful to search for drugs that could be repurposed as antibiotics using bacteria grown with limited nutrients. This approach, executed with undergraduate student researchers, identified nine drugs known to interfere with the production and/or function of DNA. We further explored one of these drugs, capecitabine, a well-tolerated human oncology drug. Oral administration of capecitabine reduced infection with the human pathogen Staphylococcus aureus and increased survival in mice. These data suggest that capecitabine has potential as a therapy for patients with otherwise untreatable bacterial infections.
Insights
Repurposing the oncology drug capecitabine as an antibiotic shows promise for treating bacterial infections, especially those resistant to current treatments. This drug proved effective against Staphylococcus aureus in mice, highlighting its potential for treating intractable Gram-positive infections.
Area of Science:
- Microbiology and Infectious Diseases
- Drug Discovery and Development
- Medical Biochemistry
Background:
- Growing antibiotic resistance necessitates novel treatment strategies, including drug repurposing.
- Bacterial pathogens face nutrient-limited environments during infection, altering their biology and drug susceptibility.
- Traditional antibacterial screens in rich media may miss drugs effective in nutrient-poor conditions.
Purpose of the Study:
- To identify FDA-approved drugs that inhibit bacterial growth in nutrient-limited conditions using a course-based undergraduate research experience (CURE).
- To evaluate the potential of identified drugs, particularly capecitabine, as novel antibacterial agents.
- To assess the efficacy of capecitabine against Gram-positive bacterial infections in a preclinical model.
Main Methods:
- Undergraduate students screened a library of FDA-approved drugs against Salmonella enterica serovar Typhimurium in nutrient-poor medium.
- Hit compounds were analyzed for their mechanism of action, focusing on DNA metabolism.
- Capecitabine's efficacy was tested in vitro and in a murine model of Staphylococcus aureus peritonitis.
Main Results:
- Nine drugs inhibiting bacterial growth were identified, all affecting DNA metabolism.
- Capecitabine demonstrated enhanced efficacy against S. Typhimurium in nutrient-limited conditions compared to standard media.
- Oral capecitabine administration significantly reduced S. aureus colonization and increased survival in a murine peritonitis model.
Conclusions:
- Drug repurposing, particularly under nutrient-limited conditions, is a viable strategy for discovering new antibiotics.
- Capecitabine, an orally available oncology drug, shows significant potential as a treatment for Gram-positive bacterial infections.
- Capecitabine's efficacy in vivo suggests its utility for combating intractable bacterial infections, especially in the context of rising antibiotic resistance.
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