Mycoplasma pneumoniae Genome Editing Based on Oligo Recombineering and Cas9-Mediated Counterselection

Carlos Piñero-Lambea1, Eva Garcia-Ramallo1, Sira Martinez1

  • 1Centre for Genomic Regulation (CRG), The Barcelona Institute of Science and Technology, Dr. Aiguader 88, Barcelona 08003, Spain.

Insights

We developed a new method for editing Mycoplasma pneumoniae genomes using GP35 recombineering. This synthetic biology tool enables precise genetic modifications, making M. pneumoniae a viable chassis strain for future research.

Area of Science:

  • Synthetic Biology
  • Microbiology
  • Genetics

Background:

  • Mycoplasma species, including Mycoplasma pneumoniae, possess unique characteristics making them ideal for synthetic biology chassis strains.
  • Limited genome editing tools have historically hindered the use of M. pneumoniae in synthetic biology applications.

Purpose of the Study:

  • To develop and optimize an oligonucleotide recombineering method for Mycoplasma pneumoniae genome editing.
  • To enhance the efficiency of genetic modifications in M. pneumoniae for synthetic biology.

Main Methods:

  • Development of a GP35-mediated oligonucleotide recombineering system for M. pneumoniae.
  • Application of CRISPR/Cas9 counterselection to improve editing efficiency for gene deletions.

Main Results:

  • GP35-mediated oligo recombineering achieved high efficiency for point mutations (up to 2.7 × 10^-2).
  • Gene deletion efficiency decreased with increasing deletion size, but CRISPR/Cas9 counterselection significantly improved recovery rates.
  • Successful chromosomal deletions of up to 1.8 kb were achieved.

Conclusions:

  • The developed GP35 recombineering method is a significant advancement for Mycoplasma pneumoniae genome engineering.
  • This technology facilitates the use of M. pneumoniae as a synthetic biology chassis strain.
  • The method holds potential for application in other Mycoplasma species.

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