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Identification of Antibacterial Immunity Proteins in Escherichia coli using MALDI-TOF-TOF-MS/MS and Top-Down Proteomic Analysis
Published on: May 23, 2021
Proteomic analysis of Streptomyces coelicolor in response to Ciprofloxacin challenge
Aishwarya Anand Rao1, Minal Patkari1, Panga Jaipal Reddy2
1Department of Chemical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Abstract:
Multi-drug tolerance is an important phenotypic property that complicates treatment of infectious diseases and reshapes drug discovery. Hence a systematic study of the origins and mechanisms of resistance shown by microorganisms is imperative. Since soil-dwelling bacteria are constantly challenged with a myriad of antibiotics, they are potential reservoirs of resistance determinants that can be mobilized into pathogens over a period of time. Elucidating the resistance mechanisms in such bacteria could help future antibiotic discoveries. This research is a preliminary study conducted to determine the effects of ciprofloxacin (CIP) on the intrinsically resistant Gram-positive soil bacterium Streptomyces coelicolor. The effect was investigated by performing 2-DE on total protein extracts of cells exposed to sub-lethal concentrations of ciprofloxacin as compared to the controls. Protein identification by MALDI-TOF/TOF revealed 24 unique differentially expressed proteins, which were statistically significant. The down-regulation of proteins involved in carbohydrate metabolism indicated a shift in the cell physiology towards a state of metabolic shutdown. Furthermore, the observed decline in protein levels involved in transcription and translation machinery, along with depletion of enzymes involved in amino acid biosynthesis and protein folding could be a cellular response to DNA damage caused by CIP, thereby minimizing the effect of defective and energetically wasteful metabolic processes. This could be crucial for the initial survival of the cells before gene level changes could come into play to ensure survival under prolonged adverse conditions. These results are a first attempt towards profiling the proteome of S. coelicolor in response to antibiotic stress. This article is part of a Special Issue entitled: Trends in Microbial Proteomics.
Biological Significance:
Soil-dwelling bacteria could serve as a reservoir of resistance determinants for clinically important bacteria. In this work, we investigated, for the first time, the differential proteomic profile of S. coelicolor cells in response to sub-inhibitory concentrations of Ciprofloxacin using 2-DE. Results indicate a shift in the cell physiology towards a state of metabolic shutdown, possibly to counter the DNA damage by ciprofloxacin. Further, up-regulation of GAPDH, RNA pol mRNA and Translation IF2 protein indicates a reprogramming of the cell for long-term survival. This study could serve as a basis for further investigations to elucidate the general mechanism by which soil bacteria exhibit resistance to fluroquinolones. This may help in developing new drug protocols and inventing novel drugs to counter resistance to this class of antibiotics in pathogenic bacteria.
Insights
Soil bacteria like Streptomyces coelicolor can harbor antibiotic resistance genes. Exposure to ciprofloxacin (CIP) triggers a metabolic shutdown in S. coelicolor, a survival strategy against DNA damage.
Area of Science:
- Microbial Proteomics
- Antibiotic Resistance Mechanisms
- Bacterial Physiology
Background:
- Multi-drug tolerance in pathogens complicates infectious disease treatment and drug discovery.
- Soil bacteria are potential reservoirs of antibiotic resistance determinants.
- Understanding resistance mechanisms in soil bacteria can aid in discovering new antibiotics.
Purpose of the Study:
- To investigate the effects of sub-lethal concentrations of ciprofloxacin (CIP) on Streptomyces coelicolor.
- To determine the differential proteomic profile of S. coelicolor in response to CIP.
- To elucidate potential survival mechanisms of soil bacteria under antibiotic stress.
Main Methods:
- Exposure of Streptomyces coelicolor to sub-lethal concentrations of ciprofloxacin.
- Two-dimensional gel electrophoresis (2-DE) of total protein extracts.
- Protein identification using MALDI-TOF/TOF mass spectrometry.
Main Results:
- Identified 24 unique, statistically significant differentially expressed proteins.
- Observed down-regulation of proteins involved in carbohydrate metabolism, suggesting metabolic shutdown.
- Decreased levels of proteins in transcription, translation, amino acid biosynthesis, and protein folding, indicating a response to DNA damage.
Conclusions:
- S. coelicolor exhibits a shift towards metabolic shutdown to counter ciprofloxacin-induced DNA damage.
- Up-regulation of specific proteins (GAPDH, RNA pol mRNA, Translation IF2) suggests cellular reprogramming for long-term survival.
- This study provides a basis for understanding fluroquinolone resistance in soil bacteria and developing new antibiotics.

