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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
Rickettsia typhi possesses phospholipase A2 enzymes that are involved in infection of host cells
M Sayeedur Rahman1, Joseph J Gillespie, Simran Jeet Kaur
1Department of Microbiology and Immunology, University of Maryland School of Medicine, Baltimore, Maryland, United States of America. mrahm001@umaryland.edu
Abstract:
The long-standing proposal that phospholipase A2 (PLA2) enzymes are involved in rickettsial infection of host cells has been given support by the recent characterization of a patatin phospholipase (Pat2) with PLA2 activity from the pathogens Rickettsia prowazekii and R. typhi. However, pat2 is not encoded in all Rickettsia genomes; yet another uncharacterized patatin (Pat1) is indeed ubiquitous. Here, evolutionary analysis of both patatins across 46 Rickettsia genomes revealed 1) pat1 and pat2 loci are syntenic across all genomes, 2) both Pat1 and Pat2 do not contain predicted Sec-dependent signal sequences, 3) pat2 has been pseudogenized multiple times in rickettsial evolution, and 4) ubiquitous pat1 forms two divergent groups (pat1A and pat1B) with strong evidence for recombination between pat1B and plasmid-encoded homologs. In light of these findings, we extended the characterization of R. typhi Pat1 and Pat2 proteins and determined their role in the infection process. As previously demonstrated for Pat2, we determined that 1) Pat1 is expressed and secreted into the host cytoplasm during R. typhi infection, 2) expression of recombinant Pat1 is cytotoxic to yeast cells, 3) recombinant Pat1 possesses PLA2 activity that requires a host cofactor, and 4) both Pat1 cytotoxicity and PLA2 activity were reduced by PLA2 inhibitors and abolished by site-directed mutagenesis of catalytic Ser/Asp residues. To ascertain the role of Pat1 and Pat2 in R. typhi infection, antibodies to both proteins were used to pretreat rickettsiae. Subsequent invasion and plaque assays both indicated a significant decrease in R. typhi infection compared to that by pre-immune IgG. Furthermore, antibody-pretreatment of R. typhi blocked/delayed phagosomal escapes. Together, these data suggest both enzymes are involved early in the infection process. Collectively, our study suggests that R. typhi utilizes two evolutionary divergent patatin phospholipases to support its intracellular life cycle, a mechanism distinguishing it from other rickettsial species.
Insights
Rickettsia typhi uses two distinct phospholipase A2 enzymes, Pat1 and Pat2, to infect host cells. These enzymes are crucial for early infection stages and host cell invasion.
Area of Science:
- Microbiology
- Molecular Biology
- Evolutionary Biology
Background:
- The role of phospholipase A2 (PLA2) enzymes in rickettsial infections is a long-standing hypothesis.
- A patatin phospholipase (Pat2) with PLA2 activity was previously identified in Rickettsia prowazekii and R. typhi.
- Pat2 is not universally present in Rickettsia genomes, but a related patatin (Pat1) is ubiquitous.
Purpose of the Study:
- To investigate the evolutionary history of patatin genes (Pat1 and Pat2) in Rickettsia.
- To characterize the function and role of R. typhi Pat1 and Pat2 in host cell infection.
Main Methods:
- Evolutionary analysis of patatin genes across 46 Rickettsia genomes.
- Characterization of R. typhi Pat1 and Pat2 protein expression, secretion, and activity.
- Assessing the cytotoxic and PLA2 activity of recombinant Pat1.
- Using antibodies against Pat1 and Pat2 to evaluate their impact on R. typhi invasion and phagosomal escape.
Main Results:
- Pat1 and Pat2 loci are syntenic; Pat2 has undergone pseudogenization multiple times.
- Ubiquitous Pat1 exists in two divergent groups (Pat1A and Pat1B) with evidence of recombination.
- Pat1 is expressed, secreted into the host cytoplasm, and exhibits cytotoxic and PLA2 activity.
- Antibody-mediated inhibition of Pat1 and Pat2 significantly reduced R. typhi invasion and delayed phagosomal escape.
Conclusions:
- Rickettsia typhi employs two evolutionarily distinct patatin phospholipases (Pat1 and Pat2) for its intracellular life cycle.
- Both Pat1 and Pat2 are involved in the early stages of R. typhi infection, including host cell entry and phagosomal escape.
- This dual-enzyme strategy may distinguish R. typhi from other rickettsial species.
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