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An Electroporation Method to Transform Rickettsia spp. with a Fluorescent Protein-Expressing Shuttle Vector in Tick Cell Lines
Published on: October 11, 2022
Tropism and pathogenicity of rickettsiae
1Department of Microbiology, Institute of Health Biosciences, The University of Tokushima Graduate School Tokushima, Japan.
Abstract:
Rickettsiae are obligate intracellular parasitic bacteria that cause febrile exanthematous illnesses such as Rocky Mountain spotted fever, Mediterranean spotted fever, epidemic, and murine typhus, etc. Although the vector ranges of each Rickettsia species are rather restricted; i.e., ticks belonging to Arachnida and lice and fleas belonging to Insecta usually act as vectors for spotted fever group (SFG) and typhus group (TG) rickettsiae, respectively, it would be interesting to elucidate the mechanisms controlling the vector tropism of rickettsiae. This review discusses the factors determining the vector tropism of rickettsiae. In brief, the vector tropism of rickettsiae species is basically consistent with their tropism toward cultured tick and insect cells. The mechanisms responsible for rickettsiae pathogenicity are also described. Recently, genomic analyses of rickettsiae have revealed that they possess several genes that are homologous to those affecting the pathogenicity of other bacteria. Analyses comparing the genomes of pathogenic and non-pathogenic strains of rickettsiae have detected many factors that are related to rickettsial pathogenicity. It is also known that a reduction in the rickettsial genome has occurred during the course of its evolution. Interestingly, Rickettsia species with small genomes, such as Rickettsia prowazekii, are more pathogenic to humans than those with larger genomes. This review also examines the growth kinetics of pathogenic and non-pathogenic species of SFG rickettsiae (SFGR) in mammalian cells. The growth of non-pathogenic species is restricted in these cells, which is mediated, at least in part, by autophagy. The superinfection of non-pathogenic rickettsiae-infected cells with pathogenic rickettsiae results in an elevated yield of the non-pathogenic rickettsiae and the growth of the pathogenic rickettsiae. Autophagy is restricted in these cells. These results are discussed in this review.
Insights
Rickettsiae tropism for vectors like ticks and insects is linked to their cell tropism. Genome size influences Rickettsia pathogenicity, with smaller genomes correlating to higher human virulence.
Area of Science:
- Microbiology
- Infectious Diseases
- Genomics
Background:
- Rickettsiae are obligate intracellular bacteria causing diseases like Rocky Mountain spotted fever.
- Vector specificity (ticks, lice, fleas) for spotted fever group (SFG) and typhus group (TG) rickettsiae is observed.
- Understanding Rickettsia vector tropism and pathogenicity mechanisms is crucial.
Purpose of the Study:
- To review factors determining Rickettsia vector tropism.
- To describe mechanisms underlying Rickettsia pathogenicity.
- To examine Rickettsia growth kinetics in mammalian cells and the role of autophagy.
Main Methods:
- Review of existing literature on Rickettsia vector specificity and pathogenicity.
- Genomic analysis comparing pathogenic and non-pathogenic Rickettsia strains.
- In vitro studies on Rickettsia growth kinetics in mammalian cells, including autophagy modulation.
Main Results:
- Rickettsia vector tropism correlates with tropism for cultured tick and insect cells.
- Genomic comparisons reveal pathogenicity factors; smaller Rickettsia genomes are linked to increased human virulence.
- Non-pathogenic SFG rickettsiae growth in mammalian cells is restricted by autophagy, which is overcome by pathogenic strains.
Conclusions:
- Rickettsia vector tropism is influenced by host cell interactions.
- Genome reduction and specific genes play key roles in Rickettsia pathogenicity.
- Autophagy modulation is a critical factor in the differential growth of pathogenic and non-pathogenic Rickettsia species in host cells.
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