Increased Proteolytic Activity of Serratia marcescens Clinical Isolate HU1848 Is Associated with Higher eepR
Karla L De Anda-Mora1, Faviola Tavares-Carreón2, Carlos Alvarez1
11Departamento de Microbiología, Facultad de Medicina, Universidad Autónoma de Nuevo León, Monterrey, Mexico.
Abstract:
Serratia marcescens is a global opportunistic pathogen. In vitro cytotoxicity of this bacterium is mainly related to metalloprotease serralysin (PrtS) activity. Proteolytic capability varies among the different isolates. Here, we characterized protease production and transcriptional regulators at 37°C of two S. marcescens isolates from bronchial expectorations, HU1848 and SmUNAM836. As a reference strain the insect pathogen S. marcescens Db10 was included. Zymography of supernatant cultures revealed a single (SmUNAM836) or double proteolytic zones (HU1848 and Db10). Mass spectrometry confirmed the identity of PrtS and the serralysin-like protease SlpB from supernatant samples. Elevated proteolytic activity and prtS expression were evidenced in the HU1848 strain through azocasein degradation and qRT-PCR, respectively. Evaluation of transcriptional regulators revealed higher eepR expression in HU1848, whereas cpxR and hexS transcriptional levels were similar between studied strains. Higher eepR expression in HU1848 was further confirmed through an in vivo transcriptional assay. Moreover, two putative CpxR binding motifs were identified within the eepR regulatory region. EMSA validated the interaction of CpxR with both motifs. The evaluation of eepR transcription in a cpxR deletion strain indicated that CpxR negatively regulates eepR. Sequence conservation suggests that regulation of eepR by CpxR is common along S. marcescens species. Overall, our data incorporates CpxR to the complex regulatory mechanisms governing eepR expression and associates the increased proteolytic activity of the HU1848 strain with higher eepR transcription. Based on the global impact of EepR in secondary metabolites production, our work contributes to understanding virulence factors variances across S. marcescens isolates.
Insights
This study reveals that the CpxR regulator negatively controls eepR expression in Serratia marcescens. Higher eepR transcription in the HU1848 isolate correlates with increased proteolytic activity and virulence factors.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Serratia marcescens is an opportunistic pathogen with variable proteolytic capabilities.
- Metalloprotease serralysin (PrtS) is a key virulence factor.
- Understanding the regulation of virulence factors is crucial for combating S. marcescens infections.
Purpose of the Study:
- To characterize protease production and transcriptional regulators in S. marcescens isolates.
- To investigate the role of CpxR in regulating eepR expression.
- To correlate protease activity with transcriptional regulator expression.
Main Methods:
- Zymography and mass spectrometry to identify proteases.
- Azocasein degradation and qRT-PCR to quantify proteolytic activity and gene expression.
- In vivo transcriptional assays and Electrophoretic Mobility Shift Assays (EMSA) to study gene regulation.
Main Results:
- HU1848 isolate showed higher proteolytic activity and prtS expression compared to SmUNAM836 and Db10.
- Higher eepR expression was observed in HU1848, regulated negatively by CpxR.
- CpxR directly binds to the eepR regulatory region, suggesting conserved regulation across S. marcescens species.
Conclusions:
- CpxR is a novel negative regulator of eepR in S. marcescens.
- Increased eepR transcription contributes to the elevated proteolytic activity in the HU1848 isolate.
- This study enhances understanding of virulence factor variability in S. marcescens isolates.
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