Protein-Mediated and RNA-Based Origins of Replication of Extrachromosomal Mycobacterial Prophages

Katherine S Wetzel1, Haley G Aull1, Kira M Zack1

  • 1Department of Biological Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.

Mbio
|March 27, 2020
PubMed

Insights

Researchers identified new ways temperate bacteriophages replicate outside the bacterial chromosome. These findings led to novel plasmids for genetic engineering in bacteria like Mycobacterium.

Area of Science:

  • Microbiology and Virology
  • Molecular Biology
  • Bacteriophage Research

Background:

  • Temperate bacteriophages commonly form lysogens, stably inheriting prophages, often integrated into the bacterial chromosome.
  • Extrachromosomal replication systems exist, exemplified by the Escherichia coli phage P1.
  • Many sequenced mycobacteriophages are temperate, typically using integrases for chromosomal integration.

Purpose of the Study:

  • To investigate the extrachromosomal replication mechanisms of temperate mycobacteriophages, particularly those lacking integration cassettes.
  • To characterize novel phage-derived plasmids for genetic manipulation of Actinobacteria.

Main Methods:

  • Analysis of mycobacteriophage genomes to identify replication-associated genes (e.g., RepA, parABS).
  • Experimental validation of autonomous replication using RepA-like proteins and RNA-based systems.
  • Construction and testing of phage-based plasmids in Mycobacterium smegmatis and Mycobacterium tuberculosis.

Main Results:

  • Approximately 20% of cluster A temperate mycobacteriophages lack integration cassettes, possessing a parABS partitioning system instead.
  • A subset of these phages utilize a RepA-like protein for autonomous extrachromosomal replication.
  • Non-RepA phages employ an RNA-based replication system requiring a parABS-proximal noncoding RNA.
  • Both RepA and non-RepA phage-based plasmids exhibit low copy numbers (1-2 per cell) and transform M. smegmatis and M. tuberculosis.
  • These plasmids are compatible with existing vectors, expanding options for actinobacterial genetics.

Conclusions:

  • Mycobacteriophages exhibit diverse strategies for stable extrachromosomal replication, including RepA-dependent and RNA-based systems.
  • Characterization of these systems provides insights into lysogenic maintenance variability.
  • A suite of novel, low-copy-number plasmids derived from these phages are valuable tools for genetic manipulation of Mycobacterium and other Actinobacteria.

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