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Updated: Jul 2, 2025

An Electroporation Method to Transform Rickettsia spp. with a Fluorescent Protein-Expressing Shuttle Vector in Tick Cell Lines
Published on: October 11, 2022
Cat Flea Coinfection with Rickettsia felis and Rickettsia typhi
Hanna J Laukaitis-Yousey1,2, Kevin R Macaluso1
1Department of Microbiology and Immunology, Frederick P. Whiddon College of Medicine, University of South Alabama, Mobile, Alabama, USA.
Abstract:
Flea-borne rickettsioses, collectively referred to as a term for etiological agents Rickettsia felis, Rickettsia typhi, and RFLOs (R. felis-like organisms), has become a public health concern around the world, specifically in the United States. Due to a shared arthropod vector (the cat flea) and clinical signs, discriminating between Rickettsia species has proven difficult. While the effects of microbial coinfections in the vector can result in antagonistic or synergistic interrelationships, subsequently altering potential human exposure and disease, the impact of bacterial interactions within flea populations remains poorly defined. In this study, in vitro and in vivo systems were utilized to assess rickettsial interactions in arthropods. Coinfection of both R. felis and R. typhi within a tick-derived cell line indicated that the two species could infect the same cell, but distinct growth kinetics led to reduced R. felis growth over time, regardless of infection order. Sequential flea coinfections revealed the vector could acquire both Rickettsia spp. and sustain coinfection for up to 2 weeks, but rickettsial loads in coinfected fleas and feces were altered during coinfection. Altered rickettsial loads during coinfection suggest R. felis and R. typhi interactions may enhance the transmission potential of either agent. Thus, this study provides a functional foundation to disentangle transmission events propelled by complex interspecies relationships during vector coinfections.
Insights
Interactions between Rickettsia felis and Rickettsia typhi in fleas were studied. Coinfection altered bacterial loads, potentially increasing transmission risk of these flea-borne diseases.
Area of Science:
- Vector-borne diseases
- Microbial ecology
- Rickettsial pathogenesis
Background:
- Flea-borne rickettsioses, caused by Rickettsia felis and Rickettsia typhi, are a global public health concern.
- Distinguishing between Rickettsia species is challenging due to shared vectors and clinical signs.
- The impact of bacterial interactions within flea coinfections on disease transmission remains unclear.
Purpose of the Study:
- To investigate the interactions between Rickettsia felis and Rickettsia typhi in arthropod vectors.
- To understand how coinfection affects rickettsial growth and loads.
- To assess the implications of these interactions for disease transmission potential.
Main Methods:
- In vitro studies using a tick-derived cell line.
- In vivo experiments involving sequential flea coinfections.
- Quantification of rickettsial loads in fleas and their feces.
Main Results:
- Rickettsia felis and Rickettsia typhi can coinfect the same cell, but R. felis growth is reduced over time.
- Fleas can sustain coinfection for up to two weeks.
- Coinfection alters rickettsial loads in fleas and feces, suggesting modified transmission dynamics.
Conclusions:
- Bacterial interactions during coinfection influence rickettsial loads.
- Altered loads may enhance the transmission potential of Rickettsia felis and Rickettsia typhi.
- This study provides a foundation for understanding transmission dynamics driven by vector coinfections.
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