Relaxase MobM Induces a Molecular Switch at Its Cognate Origin of Transfer

Fabián Lorenzo-Díaz1,2, Cris Fernández-López3, Beatriz Guillén-Guío1,2

  • 1Departamento de Bioquímica, Microbiología, Biología Celular y Genética, Universidad de La Laguna, Santa Cruz de Tenerife, Spain.

Insights

Protein MobM initiates DNA transfer by cleaving plasmids at the origin of transfer (oriT). This study reveals MobM alters DNA structure at oriT, acting as a molecular switch to control plasmid mobilization.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • The MOBV1 family of relaxases, including MobM from plasmid pMV158, are crucial for conjugative transfer in bacteria.
  • Relaxases initiate transfer by cleaving DNA at the origin of transfer (oriT).
  • MOBV1 relaxases uniquely use histidine for DNA cleavage, unlike other relaxases that use tyrosine.

Purpose of the Study:

  • To investigate the DNA structural changes at the oriT of plasmid pMV158 mediated by protein MobM.
  • To evaluate the hypothesis that oriT sequences with three inverted repeats form mutually exclusive hairpins on supercoiled DNA.

Main Methods:

  • Footprinting experiments were performed on supercoiled plasmid DNA.
  • The interaction between protein MobM and oriT DNA was analyzed.

Main Results:

  • Protein MobM induces a conformational change in the oriT DNA structure.
  • This change involves a shift from the primary hairpin formed on naked DNA to an alternative hairpin.
  • The nick site becomes single-stranded in the MobM-induced hairpin, facilitating cleavage.

Conclusions:

  • The oriT of pMV158 functions as a molecular switch, controlled by MobM binding to specific inverted repeats.
  • This mechanism allows for the regulation of pMV158 plasmid mobilization, enabling it to be turned 'on' or 'off'.

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