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Published on: April 18, 2019
Antibiotic resistance of pathogenic Acinetobacter species and emerging combination therapy
1Laboratory of Molecular Environmental Microbiology, Department of Environmental Science and Ecological Engineering, Korea University, Seoul, 02841, Republic of Korea.
Abstract:
The increasing antibiotic resistance of Acinetobacter species in both natural and hospital environments has become a serious problem worldwide in recent decades. Because of both intrinsic and acquired antimicrobial resistance (AMR) against last-resort antibiotics such as carbapenems, novel therapeutics are urgently required to treat Acinetobacter-associated infectious diseases. Among the many pathogenic Acinetobacter species, A. baumannii has been reported to be resistant to all classes of antibiotics and contains many AMR genes, such as bla ADC (Acinetobacter-derived cephalosporinase). The AMR of pathogenic Acinetobacter species is the result of several different mechanisms, including active efflux pumps, mutations in antibiotic targets, antibiotic modification, and low antibiotic membrane permeability. To overcome the limitations of existing drugs, combination theraphy that can increase the activity of antibiotics should be considered in the treatment of Acinetobacter infections. Understanding the molecular mechanisms behind Acinetobacter AMR resistance will provide vital information for drug development and therapeutic strategies using combination treatment. Here, we summarize the classic mechanisms of Acinetobacter AMR, along with newly-discovered genetic AMR factors and currently available antimicrobial adjuvants that can enhance drug efficacy in the treatment of A. baumannii infections.
Insights
Acinetobacter species exhibit increasing antibiotic resistance, necessitating novel treatments. Understanding resistance mechanisms and combination therapies is crucial for developing effective strategies against Acinetobacter infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Acinetobacter species, particularly A. baumannii, display significant antimicrobial resistance (AMR), including to carbapenems.
- This resistance poses a global health challenge, demanding new therapeutic approaches for Acinetobacter-associated infections.
Purpose of the Study:
- To review established and emerging mechanisms of Acinetobacter AMR.
- To explore antimicrobial adjuvants that enhance drug efficacy against A. baumannii.
Main Methods:
- Literature review of molecular mechanisms of AMR in Acinetobacter.
- Analysis of genetic factors contributing to antibiotic resistance.
- Summary of current antimicrobial adjuvants and combination therapy strategies.
Main Results:
- Acinetobacter AMR involves efflux pumps, target mutations, antibiotic modification, and reduced permeability.
- Newly identified genetic factors contribute to resistance.
- Antimicrobial adjuvants show promise in combination therapies.
Conclusions:
- Understanding Acinetobacter AMR mechanisms is vital for developing new drugs.
- Combination therapy strategies are essential for overcoming resistance.
- Further research into novel therapeutics and adjuvants is warranted.
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