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Published on: January 27, 2021
Intrinsic plasmids influence MicF-mediated translational repression of ompF in Yersinia pestis
Zizhong Liu1, Haili Wang1, Hongduo Wang1
1State Key Laboratory of Pathogen and Biosecurity, Beijing Institute of Microbiology and Epidemiology Beijing, China.
Abstract:
Yersinia pestis, which is the causative agent of plague, has acquired exceptional pathogenicity potential during its evolution from Y. pseudotuberculosis. Two laterally acquired plasmids, namely, pMT1 and pPCP1, are specific to Y. pestis and are critical for pathogenesis and flea transmission. Small regulatory RNAs (sRNAs) commonly function as regulators of gene expression in bacteria. MicF, is a paradigmatic sRNA that acts as a post-transcriptional repressor through imperfect base pairing with the 5'-UTR of its target mRNA, ompF, in Escherichia coli. The high sequence conservation and minor variation in the RNA duplex of MicF-ompF has been reported in Yersinia. In this study, we utilized super-folder GFP reporter gene fusion to validate the post-transcriptional MicF-mediated regulation of target mRNA ompF in Y. pestis. Unexpectedly, upon MicF overexpression, the slightly upregulated expression of OmpF were found in the wild-type strain, which contradicted the previously established model. Interestingly, the translational repression of ompF target fusions was restored in the intrinsic plasmids-cured Y. pestis strain, suggesting intrinsic plasmids influence the MicF-mediated translational repression of ompF in Y. pestis. Further examination showed that plasmid pPCP1 is likely the main contributor to the abolishment of MicF-mediated translational repression of endogenous or plasmid-borne ompF. It represents that the possible roles of intrinsic plasmids should be considered upon investigating sRNA-mediated gene regulation, at least in Y. pestis, even if the exact mechanism is not fully understood.
Insights
Small regulatory RNAs (sRNAs) like MicF typically repress gene expression. However, in Yersinia pestis, plasmids interfere with this regulation, unexpectedly increasing OmpF expression.
Area of Science:
- Bacteriology
- Molecular Biology
- Genetics
Background:
- Yersinia pestis causes plague and possesses unique plasmids (pMT1, pPCP1) crucial for pathogenesis.
- Small regulatory RNAs (sRNAs) control bacterial gene expression post-transcriptionally.
- MicF is a known sRNA repressor of ompF mRNA in Escherichia coli.
Purpose of the Study:
- To investigate the role of MicF in regulating ompF mRNA expression in Yersinia pestis.
- To determine if Yersinia pestis plasmids influence MicF-mediated gene regulation.
Main Methods:
- Utilized super-folder GFP reporter gene fusions to assess post-transcriptional regulation.
- Overexpressed MicF in wild-type and plasmid-cured Yersinia pestis strains.
- Compared OmpF expression levels under different plasmid conditions.
Main Results:
- MicF overexpression unexpectedly led to slight OmpF upregulation in wild-type Y. pestis, contradicting the established model.
- Translational repression of ompF was restored in Y. pestis strains cured of native plasmids.
- Plasmid pPCP1 was identified as a primary factor abolishing MicF-mediated repression of ompF.
Conclusions:
- Yersinia pestis intrinsic plasmids significantly impact sRNA-mediated gene regulation.
- Plasmid pPCP1 plays a key role in modulating MicF's regulatory activity on ompF.
- The influence of plasmids must be considered when studying sRNA functions in Y. pestis.
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