Related Experiment Video
Updated: Jun 29, 2025

An Electroporation Method to Transform Rickettsia spp. with a Fluorescent Protein-Expressing Shuttle Vector in Tick Cell Lines
Published on: October 11, 2022
An expanded genetic toolkit for inducible expression and targeted gene silencing in Rickettsia parkeri
Jon McGinn1, Annie Wen1, Desmond L Edwards1,2
1Department of Biology, Massachusetts Institute of Technology, Cambridge, Massachusetts, USA.
Abstract:
Pathogenic species within the Rickettsia genus are transmitted to humans through arthropod vectors and cause a spectrum of diseases ranging from mild to life-threatening. Despite rickettsiae posing an emerging global health risk, the genetic requirements of their infectious life cycles remain poorly understood. A major hurdle toward building this understanding has been the lack of efficient tools for genetic manipulation, owing to the technical difficulties associated with their obligate intracellular nature. To this end, we implemented the Tet-On system to enable conditional gene expression in Rickettsia parkeri. Using Tet-On, we show inducible expression of antibiotic resistance and a fluorescent reporter. We further used this inducible promoter to screen the ability of R. parkeri to express four variants of the catalytically dead Cas9 (dCas9). We demonstrate that all four dCas9 variants can be expressed in R. parkeri and used for CRISPR interference (CRISPRi)-mediated targeted gene knockdown. We show targeted knockdown of an antibiotic resistance gene as well as the endogenous virulence factor sca2. Altogether, we have developed systems for inducible gene expression and CRISPRi-mediated gene knockdown for the first time in rickettsiae, laying the groundwork for more scalable, targeted mechanistic investigations into their infectious life cycles.
Insights
Researchers developed new genetic tools for Rickettsia parkeri, enabling conditional gene expression and targeted gene knockdown via CRISPR interference. This advances understanding of rickettsial infectious diseases.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Pathogenic Rickettsia species cause significant human diseases, transmitted by arthropods.
- Understanding Rickettsia's genetic requirements for infection is crucial but hindered by limited genetic tools.
- The obligate intracellular lifestyle of Rickettsia presents challenges for genetic manipulation.
Approach:
- Implemented the Tet-On system for inducible gene expression in Rickettsia parkeri.
- Demonstrated inducible expression of antibiotic resistance and a fluorescent reporter.
- Adapted catalytically dead Cas9 (dCas9) variants for CRISPR interference (CRISPRi) in R. parkeri.
Key Points:
- Successfully achieved conditional gene expression in R. parkeri using the Tet-On system.
- Expressed four dCas9 variants, enabling CRISPR interference (CRISPRi) for targeted gene knockdown.
- Demonstrated successful knockdown of an antibiotic resistance gene and the virulence factor sca2.
Conclusions:
- Developed the first systems for inducible gene expression and CRISPRi-mediated gene knockdown in Rickettsia.
- These novel genetic tools pave the way for scalable, targeted research into Rickettsia's infectious mechanisms.
Related Concept Videos
Experimental RNAi
Conservative Site-specific Recombination and Phase Variation
The recognition sites for Cre recombinase called LoxP...

