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Published on: May 31, 2024
Identification and characterization of PhoP regulon members in Yersinia pestis biovar Microtus
1State Key Laboratory of Pathogen and Biosecurity, Institute of Microbiology and Epidemiology, Beijing 100071, China. liyingli301@163.com
Background:
The transcription regulator PhoP has been shown to be important for Y. pestis survival in macrophages and under various in vitro stresses. However, the mechanism by which PhoP promotes bacterial intracellular survival is not fully understood. Our previous microarray analysis suggested that PhoP governed a wide set of cellular pathways in Y. pestis. A series of biochemical experiments were done herein to study members of the PhoP regulon of Y. pestis biovar Microtus.
Results:
By using gel mobility shift assay and quantitative RT-PCR, a total of 30 putative transcription units were characterized as direct PhoP targets. The primer extension assay was further used to determine the transcription start sites of 18 PhoP-dependent promoters and to localize the -10 and -35 elements. The DNase I footprinting was used to identify the PhoP-binding sites within 17 PhoP-dependent promoters, enabling the identification of PhoP box and matrix that both represented the conserved signals for PhoP recognition in Y. pestis. Data presented here providing a good basis for modeling PhoP-promoter DNA interactions that is crucial to the PhoP-mediated transcriptional regulation.
Conclusion:
The proven direct PhoP targets include nine genes encoding regulators and 21 genes or operons with functions of detoxification, protection against DNA damages, resistance to antimicrobial peptides, and adaptation to magnesium limitation. We can presume that PhoP is a global regulator that controls a complex regulatory cascade by a mechanism of not only directly controlling the expression of specific genes, but also indirectly regulating various cellular pathways by acting on a set of dedicated regulators. These results help us gain insights into the PhoP-dependent mechanisms by which Y. pestis survives the antibacterial strategies employed by host macrophages.
Insights
The transcription regulator PhoP directly controls 30 Yersinia pestis genes, including regulators, aiding survival against host defenses. This reveals PhoP as a global regulator crucial for bacterial intracellular persistence.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- The transcription regulator PhoP is vital for Yersinia pestis survival within macrophages and during various in vitro stresses.
- The precise mechanisms by which PhoP enhances bacterial intracellular survival remain incompletely understood.
- Previous microarray analyses indicated PhoP influences a broad spectrum of cellular pathways in Y. pestis.
Purpose of the Study:
- To biochemically characterize members of the PhoP regulon in Y. pestis biovar Microtus.
- To elucidate the direct transcriptional targets and regulatory mechanisms of PhoP.
Main Methods:
- Gel mobility shift assay and quantitative RT-PCR were employed to identify direct PhoP targets.
- Primer extension assays determined transcription start sites and promoter elements (-10 and -35).
- DNase I footprinting identified PhoP-binding sites, including the conserved PhoP box and matrix.
Main Results:
- A total of 30 putative transcription units were confirmed as direct PhoP targets.
- Transcription start sites for 18 PhoP-dependent promoters were identified.
- PhoP-binding sites within 17 promoters were localized, revealing conserved recognition signals.
Conclusions:
- Direct PhoP targets encompass nine regulatory genes and 21 genes/operons involved in detoxification, DNA damage protection, antimicrobial peptide resistance, and magnesium limitation.
- PhoP functions as a global regulator, orchestrating a complex cascade by directly regulating genes and indirectly influencing pathways via other regulators.
- These findings provide crucial insights into PhoP-dependent survival mechanisms of Y. pestis against host macrophage antibacterial strategies.
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