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Published on: June 14, 2024
Serratia marcescens DUF1471-Containing Protein SrfN Is Needed for Adaptation to Acid and Oxidative Stresses
Anna A Elistratova1, Lilia E Matrosova1, Irina V Khilyas1
1Department of Microbiology, Institute of Fundamental Medicine and Biology, Kazan (Volga Region) Federal University, Kazan, Russia.
Abstract:
Bacteria can quickly adapt to constantly changing environments through a number of mechanisms, including secretion of secondary metabolites, peptides, and proteins. Serratia marcescens, an emerging pathogen with growing clinical importance due to its intrinsic resistance to several classes of antibiotics, can cause an array of infections in immunocompromised individuals. To better control the spread of S. marcescens infections, it is critical to identify additional targets for bacterial growth inhibition. We found that extracellular metabolites produced by the wild-type organism in response to peroxide exposure had a protective effect on an otherwise-H2O2-sensitive ΔmacAB indicator strain. Detailed analysis of the conditioned medium demonstrated that the protective effect was associated with a low-molecular-weight heat-sensitive and proteinase K-sensitive metabolite. Furthermore, liquid chromatography-tandem mass spectrometry analysis of the low-molecular-weight proteins present in the conditioned medium led to identification of the previously uncharacterized DUF1471-containing protein TBU67220 (SrfN). We found that loss of the srfN gene did not have an impact on the production of extracellular enzymes. However, the S. marcescens mutant lacking SrfN was significantly more sensitive to growth in medium with a low pH and to exposure to oxidative stress. Both defects were fully rescued by complementation. Thus, our results indicate that SrfN, a low-molecular-weight DUF1471-containing protein, is involved in S. marcescens SM6 adaptation to adverse environmental conditions. IMPORTANCE Serratia marcescens is ubiquitous in the environment and can survive in water, soil, plants, insects, and animals, and it can also cause infections in humans. In the face of disturbances such as oxidative or low-pH stress, bacteria adapt, survive, and recover through several mechanisms, including changes in their secretome. We show that a hydrogen peroxide-exposed S. marcescens milieu contains a small previously uncharacterized DUF1471-containing protein similar to the SrfN protein in Salmonella enterica serovar Typhimurium, and we illustrate the role of this protein in bacterial survival during acid and oxidative stresses.
Insights
Serratia marcescens adapts to stress using a protein called SrfN. This protein helps the bacteria survive low pH and oxidative conditions, offering new targets for infection control.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Serratia marcescens is an opportunistic pathogen causing infections in immunocompromised individuals.
- Antibiotic resistance in S. marcescens necessitates novel strategies for infection control.
- Bacterial adaptation to environmental stress is crucial for survival and pathogenesis.
Purpose of the Study:
- To identify bacterial factors contributing to Serratia marcescens adaptation to environmental stress.
- To investigate the role of extracellular metabolites in bacterial stress response.
- To characterize a novel protein involved in S. marcescens survival.
Main Methods:
- Analysis of conditioned medium from peroxide-exposed S. marcescens.
- Identification of low-molecular-weight proteins using liquid chromatography-tandem mass spectrometry.
- Construction and characterization of S. marcescens mutants lacking the srfN gene.
- Assessment of bacterial sensitivity to low pH and oxidative stress.
Main Results:
- Extracellular metabolites from wild-type S. marcescens protected a sensitive strain from hydrogen peroxide.
- A previously uncharacterized DUF1471-containing protein, SrfN, was identified.
- S. marcescens lacking SrfN exhibited increased sensitivity to low pH and oxidative stress.
- Complementation of the srfN mutant restored wild-type stress resistance.
Conclusions:
- SrfN is a low-molecular-weight protein crucial for S. marcescens adaptation to acid and oxidative stress.
- SrfN plays a significant role in bacterial survival under adverse environmental conditions.
- Targeting SrfN may offer a new approach to combat S. marcescens infections.
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