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Generation and Multi-phenotypic High-content Screening of Coxiella burnetii Transposon Mutants
Published on: May 13, 2015
The Coxiella burnetii QpH1 plasmid is a virulence factor for colonizing bone marrow-derived murine macrophages
Shengdong Luo1,2, Shanshan Lu1, Huahao Fan1
1Beijing Advanced Innovation Center for Soft Matter Science and Engineering, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing, China.
Abstract:
Coxiella burnetii strains carry one of four large, conserved, autonomously replicating plasmids (QpH1, QpRS, QpDV, and QpDG) or a QpRS-like chromosomally integrated sequence of unknown function. Here we report the characterization of the QpH1 plasmid of C. burnetii Nine Mile phase II by making QpH1-deficient strains. A shuttle vector pQGK containing the CBUA0036-0039a region (predicted as being required for the QpH1 maintenance) was constructed. The pQGK vector can be stably transformed into the Nine Mile II and maintained at a similar low copy like QpH1. Importantly, transformation with pQGK cured the endogenous QpH1 due to plasmid incompatibility. Compared to a Nine Mile II transformant of a RSF1010-ori based vector, the pQGK transformant shows a similar growth curve in both axenic media and Buffalo green monkey kidney cells, a variable growth defect in macrophage-like THP-1 cells depending on the origin of inoculum, and dramatically reduced ability of colonizing wild-type bone marrow-derived murine macrophages. Furthermore, we found CBUA0037-0039 ORFs are essential for plasmid maintenance, and CBUA0037-0038 ORFs account for plasmid compatibility. And plasmid-deficient C. burnetii can be isolated by using CBUA0037 or -0038 deletion vectors. Furthermore, QpH1-deficient C. burnetii strains caused a lesser extent of splenomegaly in SCID mice but, intriguingly, they had significant growth in SCID mouse-sourced macrophages. Taken together, our data suggest that QpH1 encodes factor(s) essential for colonizing murine, not human, macrophages. This study suggests a critical role of QpH1 for C. burnetii persistence in rodents and expands the toolkit for the genetic studies in C. burnetii Author summary All C. burnetii isolates carry one of four large, conserved, autonomously replicating plasmids or a plasmid-like chromosomally integrated sequence. The plasmid is a candidate virulence factor of unknown function. Here we describe the construction of novel shuttle vectors that allow making plasmid-deficient C. burnetii mutants. With this plasmid-curing approach, we characterized the role of the QpH1 plasmid in in vitro and in vivo C. burnetii infection models. We found that the plasmid plays a critical role for C. burnetii growth in murine macrophages. Our work suggests an essential role of the QpH1 plasmid for the acquisition of colonizing capability in rodents by C. burnetii This study represents a major step toward unravelling the mystery of the C. burnetii cryptic plasmids.
Insights
The QpH1 plasmid is essential for Coxiella burnetii to colonize mouse macrophages, but not human ones. This finding reveals the plasmid's critical role in C. burnetii persistence in rodents.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Coxiella burnetii, the agent of Q fever, harbors large plasmids (QpH1, QpRS, QpDV, QpDG) or integrated sequences.
- The function of these plasmids, particularly QpH1, in C. burnetii virulence and host-pathogen interactions remains largely unknown.
- Understanding plasmid roles is crucial for developing effective control strategies against C. burnetii infections.
Purpose of the Study:
- To characterize the function of the QpH1 plasmid in Coxiella burnetii Nine Mile phase II.
- To develop genetic tools for creating plasmid-deficient C. burnetii strains.
- To investigate the role of QpH1 in bacterial growth, colonization, and pathogenesis in vitro and in vivo.
Main Methods:
- Construction of a novel shuttle vector (pQGK) containing essential QpH1 maintenance regions.
- Transformation of C. burnetii with pQGK to generate QpH1-deficient strains via plasmid incompatibility.
- Assessment of bacterial growth in axenic media, human (THP-1), and murine macrophages.
- Evaluation of C. burnetii colonization and pathogenicity in SCID mice.
Main Results:
- The pQGK vector stably maintained in C. burnetii and induced QpH1 curing.
- QpH1-deficient C. burnetii showed similar growth in cell culture but reduced colonization of murine macrophages.
- Specific ORFs (CBUA0037-0039) were identified as essential for plasmid maintenance and compatibility.
- Plasmid-deficient strains caused less splenomegaly in mice but grew in mouse-derived macrophages.
Conclusions:
- The QpH1 plasmid encodes factors critical for C. burnetii colonization of murine macrophages, not human ones.
- QpH1 plays a significant role in C. burnetii persistence and pathogenesis in rodent models.
- The developed genetic tools facilitate further investigation into the function of C. burnetii plasmids.

