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Updated: Mar 24, 2026

Precise Phage Mutagenesis with NgTET-Assisted CRISPR-Cas Systems
Published on: October 14, 2025
Cas3 is a limiting factor for CRISPR-Cas immunity in Escherichia coli cells lacking H-NS
Kristina Majsec1, Edward L Bolt2, Ivana Ivančić-Baće3
1Division of Molecular Biology, Faculty of Science, University of Zagreb, Horvatovac 102a, 10000, Zagreb, Croatia. kmajsec@biol.pmf.hr.
Background:
CRISPR-Cas systems provide adaptive immunity to mobile genetic elements in prokaryotes. In many bacteria, including E. coli, a specialized ribonucleoprotein complex called Cascade enacts immunity by" an interference reaction" between CRISPR encoded RNA (crRNA) and invader DNA sequences called "protospacers". Cascade recognizes invader DNA via short "protospacer adjacent motif" (PAM) sequences and crRNA-DNA complementarity. This triggers degradation of invader DNA by Cas3 protein and in some circumstances stimulates capture of new invader DNA protospacers for incorporation into CRISPR as "spacers" by Cas1 and Cas2 proteins, thus enhancing immunity. Co-expression of Cascade, Cas3 and crRNA is effective at giving E. coli cells resistance to phage lysis, if a transcriptional repressor of Cascade and CRISPR, H-NS, is inactivated (Δhns). We present further genetic analyses of the regulation of CRISPR-Cas mediated phage resistance in Δhns E. coli cells.
Results:
We observed that E. coli Type I-E CRISPR-Cas mediated resistance to phage λ was strongly temperature dependent, when repeating previously published experimental procedures. Further genetic analyses highlighted the importance of culture conditions for controlling the extent of CRISPR immunity in E. coli. These data identified that expression levels of cas3 is an important limiting factor for successful resistance to phage. Significantly, we describe the new identification that cas3 is also under transcriptional control by H-NS but that this is exerted only in stationary phase cells.
Conclusions:
Regulation of cas3 is responsive to phase of growth, and to growth temperature in E. coli, impacting on the efficacy of CRISPR-Cas immunity in these experimental systems.
Insights
CRISPR-Cas immunity in E. coli depends on Cas3 expression, which is regulated by temperature and growth phase. Inactivating H-NS enhances phage resistance, but Cas3 levels are critical for efficacy.
Area of Science:
- Microbiology
- Molecular Biology
- Bacteriology
Background:
- CRISPR-Cas systems confer adaptive immunity in prokaryotes against mobile genetic elements.
- The Cascade complex in E. coli recognizes invader DNA via crRNA and PAM sequences, triggering DNA degradation by Cas3.
- CRISPR-Cas mediated phage resistance in E. coli is enhanced when H-NS, a transcriptional repressor, is inactivated.
Purpose of the Study:
- To investigate the regulation of CRISPR-Cas mediated phage resistance in H-NS deficient E. coli.
- To identify factors influencing the efficacy of CRISPR-Cas immunity under different conditions.
Main Methods:
- Genetic analyses of CRISPR-Cas system regulation in E. coli.
- Experimental procedures involving phage resistance assays.
- Investigation of gene expression levels, specifically cas3.
Main Results:
- CRISPR-Cas mediated resistance to phage λ in E. coli is temperature-dependent.
- Cas3 expression levels are a limiting factor for effective phage resistance.
- Cas3 is transcriptionally regulated by H-NS, but only in stationary phase cells.
Conclusions:
- The regulation of cas3 expression is influenced by growth phase and temperature in E. coli.
- These regulatory mechanisms impact the overall efficacy of CRISPR-Cas immunity.
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