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Published on: June 16, 2017
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.
Abstract:
Mycoplasma species share a set of features, such as lack of a cell wall, streamlined genomes, simplified metabolism, and the use of a deviant genetic code, that make them attractive approximations of what a chassis strain should ideally be. Among them, Mycoplasma pneumoniae arises as a candidate for synthetic biology projects, as it is one of the most deeply characterized bacteria. However, the historical paucity of tools for editing Mycoplasma genomes has precluded the establishment of M. pneumoniae as a suitable chassis strain. Here, we developed an oligonucleotide recombineering method for this strain based on GP35, a ssDNA recombinase originally encoded by a Bacillus subtilis-associated phage. GP35-mediated oligo recombineering is able to carry out point mutations in the M. pneumoniae genome with an efficiency as high as 2.7 × 10-2, outperforming oligo recombineering protocols developed for other bacteria. Gene deletions of different sizes showed a decreasing power trend between efficiency and the scale of the attempted edition. However, the editing rates for all modifications increased when CRISPR/Cas9 was used to counterselect nonedited cells. This allowed edited clones carrying chromosomal deletions of up to 1.8 kb to be recovered with little to no screening of survivor cells. We envision this technology as a major step toward the use of M. pneumoniae, and possibly other Mycoplasmas, as synthetic biology chassis strains.
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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