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.

Frontiers in Microbiology
|September 1, 2015
PubMed

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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