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Unlocking Nitrofurantoin: Understanding Molecular Mechanisms of Action and Resistance in Enterobacterales
Balaram Khamari1, Eswarappa Pradeep Bulagonda1
1Department of Biosciences, Sri Sathya Sai Institute of Higher Learning, Prasanthi Nilayam, Puttaparthi, India.
Abstract:
Antimicrobial resistance (AMR) is a global health crisis that has already claimed millions of lives and is projected to affect millions more unless urgent action is taken. Effective control of AMR requires the correct choice and dosage of antibiotics, as well as robust surveillance and research. Understanding the mechanisms of antibiotic action and the emergence of resistance phenotypes along with their genotypes is essential. This knowledge, combined with insights into resistance prevalence and spread, empowers clinicians to propose alternative therapies. Nitrofurantoin, a 70-year-old antibiotic, remains effective for the treatment of uncomplicated lower UTIs. Preventing emergence and spread of nitrofurantoin-resistant superbugs would preserve the efficacy of this antibiotic which is crucial for ongoing and future AMR efforts. Nitrofurantoin resistance evolves slowly, leading to low prevalence compared to other antibiotics. However, it is often linked with extensive drug resistance, complicating treatment outcomes. Even a minor percentage of nitrofurantoin-resistant bacteria can cause significant clinical challenges due to irreversible evolution. While detailed study of these mechanisms can guide the development of strategies to combat nitrofurantoin resistance, early detection of resistant infections is critical for saving lives. The current review aimed to provide a comprehensive analysis of nitrofurantoin's mechanisms of action, resistance evolution, prevalence, and resistance prediction. Our goal is to offer valuable insights for researchers and clinicians to enhance nitrofurantoin use and address the challenges posed by AMR. Antimicrobial resistance (AMR) is a global health crisis that has already claimed millions of lives and is projected to affect millions more unless urgent action is taken. Effective control of AMR requires the correct choice and dosage of antibiotics, as well as robust surveillance and research. Understanding the mechanisms of antibiotic action and the emergence of resistance phenotypes along with their genotypes is essential. This knowledge, combined with insights into resistance prevalence and spread, empowers clinicians to propose alternative therapies. Nitrofurantoin, a 70-year-old antibiotic, remains effective for the treatment of uncomplicated lower UTIs. Preventing emergence and spread of nitrofurantoin-resistant superbugs would preserve the efficacy of this antibiotic which is crucial for ongoing and future AMR efforts. Nitrofurantoin resistance evolves slowly, leading to low prevalence compared to other antibiotics. However, it is often linked with extensive drug resistance, complicating treatment outcomes. Even a minor percentage of nitrofurantoin-resistant bacteria can cause significant clinical challenges due to irreversible evolution. While detailed study of these mechanisms can guide the development of strategies to combat nitrofurantoin resistance, early detection of resistant infections is critical for saving lives. The current review aimed to provide a comprehensive analysis of nitrofurantoin's mechanisms of action, resistance evolution, prevalence, and resistance prediction. Our goal is to offer valuable insights for researchers and clinicians to enhance nitrofurantoin use and address the challenges posed by AMR.
Insights
Antimicrobial resistance (AMR) is a global crisis. Understanding nitrofurantoin resistance mechanisms and prevalence is key to preserving this antibiotic
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Antimicrobial resistance (AMR) poses a significant global health threat.
- Nitrofurantoin remains crucial for treating uncomplicated lower urinary tract infections (UTIs).
- Preventing nitrofurantoin resistance is vital for ongoing and future AMR control efforts.
Purpose of the Study:
- To comprehensively analyze nitrofurantoin's mechanisms of action.
- To review the evolution, prevalence, and prediction of nitrofurantoin resistance.
- To provide insights for enhancing nitrofurantoin use and combating AMR.
Main Methods:
- Literature review of nitrofurantoin's antimicrobial properties.
- Analysis of resistance mechanisms, phenotypes, and genotypes.
- Examination of resistance prevalence and spread patterns.
Main Results:
- Nitrofurantoin resistance evolves slowly, with generally low prevalence.
- Nitrofurantoin resistance is often associated with extensive drug resistance.
- Even low levels of nitrofurantoin resistance present clinical challenges.
Conclusions:
- Understanding nitrofurantoin resistance mechanisms can guide strategy development.
- Early detection of nitrofurantoin-resistant infections is critical for patient outcomes.
- Enhanced knowledge of nitrofurantoin resistance aids in addressing the broader AMR crisis.
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