Identification of a novel conjugative plasmid in mycobacteria that requires both type IV and type VII secretion

Roy Ummels1, Abdallah M Abdallah2, Vincent Kuiper1

  • 1Department of Medical Microbiology and Infection Control, VU University Medical Center, Amsterdam, The Netherlands.

Mbio
|September 25, 2014
PubMed
Abstract

Insights

Researchers discovered a novel conjugative plasmid unique to mycobacteria. This plasmid, essential for horizontal gene transfer in slow-growing species like Mycobacterium tuberculosis, could be a new tool for genetic manipulation.

Area of Science:

  • Microbiology
  • Genetics

Background:

  • Conjugative plasmids facilitate horizontal gene transfer (HGT) in bacteria, primarily via type IV secretion systems.
  • HGT is crucial for bacterial adaptation and evolution, notably in spreading antibiotic resistance.
  • Natural plasmid conjugation is rarely observed in mycobacteria, with Mycobacterium tuberculosis generally considered to lack recent HGT.

Purpose of the Study:

  • To identify and characterize novel conjugative plasmids in mycobacteria.
  • To investigate the potential of these plasmids for HGT in slow-growing mycobacteria, including M. tuberculosis.
  • To explore the utility of these plasmids as tools for genetic manipulation in mycobacteria.

Main Methods:

  • Identification and genetic analysis of a novel conjugative plasmid unique to mycobacteria.
  • Transposon insertion mutagenesis to identify essential genes for conjugation.
  • Conjugation experiments between different mycobacterial species, including slow-growing and fast-growing strains.

Main Results:

  • A novel conjugative plasmid, unique to mycobacteria, was identified and found to be efficiently transferred among slow-growing species, including M. tuberculosis.
  • The plasmid conjugation mechanism requires both type IV and a novel type VII secretion system.
  • The plasmid could not be transferred to any tested fast-growing mycobacteria.

Conclusions:

  • This novel plasmid represents a new class of conjugative plasmids requiring dual secretion machineries.
  • The plasmid's efficient transfer in slow-growing mycobacteria presents a potential threat for antibiotic resistance gene spread.
  • This plasmid offers a promising new tool for introducing foreign DNA into slow-growing mycobacteria.

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