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Updated: Apr 4, 2026

Identification of Antibacterial Immunity Proteins in Escherichia coli using MALDI-TOF-TOF-MS/MS and Top-Down Proteomic Analysis
Published on: May 23, 2021
Quantitative proteomic view associated with resistance to clinically important antibiotics in Gram-positive bacteria:
Chang-Ro Lee1, Jung Hun Lee1, Kwang Seung Park1
1National Leading Research Laboratory of Drug Resistance Proteomics, Department of Biological Sciences, Myongji University Yongin, South Korea.
Abstract:
The increase of methicillin-resistant Staphylococcus aureus (MRSA) and vancomycin-resistant Enterococcus (VRE) poses a worldwide and serious health threat. Although new antibiotics, such as daptomycin and linezolid, have been developed for the treatment of infections of Gram-positive pathogens, the emergence of daptomycin-resistant and linezolid-resistant strains during therapy has now increased clinical treatment failures. In the past few years, studies using quantitative proteomic methods have provided a considerable progress in understanding antibiotic resistance mechanisms. In this review, to understand the resistance mechanisms to four clinically important antibiotics (methicillin, vancomycin, linezolid, and daptomycin) used in the treatment of Gram-positive pathogens, we summarize recent advances in studies on resistance mechanisms using quantitative proteomic methods, and also examine proteins playing an important role in the bacterial mechanisms of resistance to the four antibiotics. Proteomic researches can identify proteins whose expression levels are changed in the resistance mechanism to only one antibiotic, such as LiaH in daptomycin resistance and PrsA in vancomycin resistance, and many proteins simultaneously involved in resistance mechanisms to various antibiotics. Most of resistance-related proteins, which are simultaneously associated with resistance mechanisms to several antibiotics, play important roles in regulating bacterial envelope biogenesis, or compensating for the fitness cost of antibiotic resistance. Therefore, proteomic data confirm that antibiotic resistance requires the fitness cost and the bacterial envelope is an important factor in antibiotic resistance.
Insights
Antibiotic resistance in MRSA and VRE is a major threat. Proteomics reveals key proteins in bacterial envelope biogenesis and fitness costs, crucial for understanding resistance to methicillin, vancomycin, linezolid, and daptomycin.
Area of Science:
- Microbiology
- Proteomics
- Drug Resistance
Background:
- Rising global health threat from methicillin-resistant Staphylococcus aureus (MRSA) and vancomycin-resistant Enterococcus (VRE).
- Emergence of resistance to newer antibiotics like daptomycin and linezolid leads to treatment failures.
- Quantitative proteomic methods have advanced understanding of antibiotic resistance mechanisms.
Purpose of the Study:
- To review recent advances in understanding resistance mechanisms to four key antibiotics: methicillin, vancomycin, linezolid, and daptomycin.
- To identify proteins involved in bacterial resistance to these Gram-positive pathogens.
- To explore how proteomic studies illuminate complex resistance pathways.
Main Methods:
- Review of studies employing quantitative proteomic methods.
- Analysis of protein expression changes associated with antibiotic resistance.
- Identification of proteins involved in single-antibiotic resistance and multi-drug resistance.
Main Results:
- Proteomics identifies specific proteins (e.g., LiaH for daptomycin, PrsA for vancomycin) in resistance mechanisms.
- Many proteins are simultaneously involved in resistance to multiple antibiotics.
- Key resistance proteins regulate bacterial envelope biogenesis or compensate for fitness costs.
Conclusions:
- Antibiotic resistance is linked to bacterial fitness costs.
- The bacterial envelope plays a critical role in antibiotic resistance.
- Proteomic approaches are vital for dissecting complex antibiotic resistance mechanisms.
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