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Efficient Genome Engineering of a Virulent Klebsiella Bacteriophage Using CRISPR-Cas9
Juntao Shen1, Jinjie Zhou1, Guo-Qiang Chen2
1School of Life Science and Biotechnology, Dalian University of Technology, Dalian, People's Republic of China.
Abstract:
Klebsiella pneumoniae is one of the most common nosocomial opportunistic pathogens and usually exhibits multiple-drug resistance. Phage therapy, a potential therapeutic to replace or supplement antibiotics, has attracted much attention. However, very few Klebsiella phages have been well characterized because of the lack of efficient genome-editing tools. Here, Cas9 from Streptococcus pyogenes and a single guide RNA (sgRNA) were used to modify a virulent Klebsiella bacteriophage, phiKpS2. We first evaluated the distribution of sgRNA activity in phages and proved that it is largely inconsistent with the predicted activity from current models trained on eukaryotic cell data sets. A simple CRISPR-based phage genome-editing procedure was developed based on the discovery that homologous arms as short as 30 to 60 bp were sufficient to introduce point mutation, gene deletion, and swap. We also demonstrated that weak sgRNAs could be used for precise phage genome editing but failed to select random recombinants, possibly because inefficient cleavage can be tolerated through continuous repair by homologous recombination with the uncut genomes. Small frameshift deletion was proved to be an efficient way to evaluate the essentiality of phage genes. By using the abovementioned strategies, a putative promoter and nine genes of phiKpS2 were successfully deleted. Interestingly, the holin gene can be deleted with little effect on phiKpS2 infection, but the reason is not yet clear. This study established an efficient, time-saving, and cost-effective procedure for phage genome editing, which is expected to significantly promote the development of bacteriophage therapy.IMPORTANCE In the present study, we have addressed efficient, time-saving, and cost-effective CRISPR-based phage genome editing of Klebsiella phage, which has the potential to significantly expand our knowledge of phage-host interactions and to promote applications of phage therapy. The distribution of sgRNA activity was first evaluated in phages. Short homologous arms were proven to be enough to introduce point mutation, small frameshift deletion, gene deletion, and swap into phages, and weak sgRNAs were proven useful for precise phage genome editing but failed to select random recombinants, all of which makes the CRISPR-based phage genome-editing method easier to use.
Insights
This study introduces a new CRISPR-based method for editing Klebsiella phage genomes, enabling precise genetic modifications. This advancement is crucial for developing phage therapy against antibiotic-resistant bacteria.
Area of Science:
- Microbiology and Virology
- Genetic Engineering and Molecular Biology
- Biotechnology and Therapeutics
Background:
- Klebsiella pneumoniae is a common cause of hospital-acquired infections and often exhibits multidrug resistance.
- Phage therapy offers a promising alternative or supplement to antibiotics, but characterization of Klebsiella phages is limited by a lack of efficient genome-editing tools.
- Existing genome-editing models, primarily developed for eukaryotic cells, show inconsistent sgRNA activity in phages.
Purpose of the Study:
- To develop and validate an efficient, time-saving, and cost-effective CRISPR-based genome-editing procedure for Klebsiella bacteriophages.
- To evaluate sgRNA activity distribution in phages and establish guidelines for its effective use.
- To demonstrate the utility of the developed method for gene essentiality studies and phage genome modification.
Main Methods:
- Utilized Cas9 from Streptococcus pyogenes and single guide RNA (sgRNA) to modify the Klebsiella phage phiKpS2.
- Developed a CRISPR-based procedure using short homologous arms (30-60 bp) for precise genome editing (point mutations, deletions, swaps).
- Assessed sgRNA activity in phages and employed small frameshift deletions to evaluate gene essentiality.
Main Results:
- Demonstrated that short homologous arms are sufficient for various genome modifications in phages.
- Showed that weak sgRNAs can be used for precise editing and are useful for selecting against random recombinants.
- Successfully deleted a putative promoter and nine genes, including the holin gene, from the phiKpS2 phage genome.
Conclusions:
- Established an efficient and accessible CRISPR-based genome-editing method for Klebsiella phages.
- The findings significantly advance the potential for characterizing phages and developing phage therapy.
- The developed method is expected to accelerate research into phage-host interactions and therapeutic applications.
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