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Published on: October 28, 2022
Identification of SlpB, a Cytotoxic Protease from Serratia marcescens
Robert M Q Shanks1, Nicholas A Stella2, Kristin M Hunt2
1The Charles T. Campbell Laboratory, UPMC Eye Center, Ophthalmology and Visual Sciences Research Center, Eye and Ear Institute, Department of Ophthalmology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, USA Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, USA shanksrm@upmc.edu.
Abstract:
The Gram-negative bacterium and opportunistic pathogen Serratia marcescens causes ocular infections in healthy individuals. Secreted protease activity was characterized from 44 ocular clinical isolates, and a higher frequency of protease-positive strains was observed among keratitis isolates than among conjunctivitis isolates. A positive correlation between protease activity and cytotoxicity to human corneal epithelial cells in vitro was determined. Deletion of prtS in clinical keratitis isolate K904 reduced, but did not eliminate, cytotoxicity and secreted protease production. This indicated that PrtS is necessary for full cytotoxicity to ocular cells and implied the existence of another secreted protease(s) and cytotoxic factors. Bioinformatic analysis of the S. marcescens Db11 genome revealed three additional open reading frames predicted to code for serralysin-like proteases noted here as slpB, slpC, and slpD. Induced expression of prtS and slpB, but not slpC and slpD, in strain PIC3611 rendered the strain cytotoxic to a lung carcinoma cell line; however, only prtS induction was sufficient for cytotoxicity to a corneal cell line. Strain K904 with deletion of both prtS and slpB genes was defective in secreted protease activity and cytotoxicity to human cell lines. PAGE analysis suggests that SlpB is produced at lower levels than PrtS. Purified SlpB demonstrated calcium-dependent and AprI-inhibited protease activity and cytotoxicity to airway and ocular cell lines in vitro. Lastly, genetic analysis indicated that the type I secretion system gene, lipD, is required for SlpB secretion. These genetic data introduce SlpB as a new cytotoxic protease from S. marcescens.
Insights
Serratia marcescens secretes proteases like PrtS and SlpB that cause ocular infections. SlpB is identified as a new cytotoxic protease contributing to S. marcescens virulence in eye and airway infections.
Area of Science:
- Microbiology
- Pathogenesis
- Molecular Biology
Background:
- Serratia marcescens is an opportunistic pathogen causing ocular infections.
- Secreted proteases are virulence factors in S. marcescens infections.
- The specific proteases involved in ocular pathogenesis are not fully understood.
Purpose of the Study:
- To characterize secreted protease activity in ocular S. marcescens isolates.
- To identify novel cytotoxic proteases involved in S. marcescens pathogenesis.
- To investigate the role of PrtS and other serralysin-like proteases in cytotoxicity.
Main Methods:
- Characterization of protease activity from clinical isolates.
- Gene deletion and expression studies (prtS, slpB, slpC, slpD).
- Cytotoxicity assays on human corneal and lung cell lines.
- PAGE analysis and protein purification.
- Genetic analysis of secretion systems (lipD).
Main Results:
- Higher protease activity was found in keratitis isolates compared to conjunctivitis isolates.
- PrtS is essential for full cytotoxicity to corneal cells.
- SlpB, a novel serralysin-like protease, contributes to cytotoxicity in ocular and airway cells.
- SlpB secretion requires the type I secretion system gene lipD.
- SlpB is produced at lower levels than PrtS.
Conclusions:
- S. marcescens utilizes multiple secreted proteases, including PrtS and the newly identified SlpB, for virulence.
- SlpB is a calcium-dependent, AprI-inhibited protease contributing to cytotoxicity.
- Understanding these proteases can inform strategies against S. marcescens infections.

