Transposon insertion reveals pRM, a plasmid of Rickettsia monacensis

Gerald D Baldridge1, Nicole Y Burkhardt, Roderick F Felsheim

  • 1Department of Entomology, University of Minnesota, St Paul, MN 55108, USA. baldr001@umn.edu

Insights

Researchers discovered a new plasmid, pRM, in Rickettsia monacensis, challenging previous beliefs about Rickettsia lacking plasmids. This novel plasmid shows potential for developing Rickettsia transformation vectors.

Area of Science:

  • Microbiology
  • Genetics
  • Molecular Biology

Background:

  • The genus Rickettsia, obligate intracellular bacteria, was previously believed to lack plasmids.
  • The discovery of plasmid pRF in Rickettsia felis challenged this notion.

Purpose of the Study:

  • To describe a novel plasmid, designated pRM, identified in Rickettsia monacensis.
  • To investigate the characteristics and genetic content of the pRM plasmid.
  • To assess the potential of pRM as a tool for Rickettsia genetic manipulation.

Main Methods:

  • Pulsed-field gel electrophoresis and Southern blot analyses were used for plasmid detection.
  • Transposon-mediated insertion of marker genes (GFP and CAT) into pRM.
  • Two-dimensional electrophoresis to analyze plasmid isomers (circular and linear).
  • Plasmid cloning via marker rescue and PCR amplification followed by sequencing.

Main Results:

  • The pRM plasmid, 23,486 nucleotides in length, was identified in R. monacensis.
  • pRM exists as both circular and linear forms within rickettsial cells.
  • Sequencing revealed 23 predicted genes/pseudogenes, showing significant similarity to the pRF plasmid.
  • Evidence of a similar plasmid containing conserved genes was found in Rickettsia amblyommii.

Conclusions:

  • The pRM plasmid represents a significant finding, expanding the known plasmid repertoire of the Rickettsia genus.
  • The genetic makeup of pRM, particularly genes shared with pRF and other Rickettsia species, provides evolutionary insights.
  • pRM holds promise as a foundational element for constructing a functional Rickettsia transformation vector.

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