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Updated: Aug 2, 2025

Selection-dependent and Independent Generation of CRISPR/Cas9-mediated Gene Knockouts in Mammalian Cells
Published on: June 16, 2017
CRISPR-Cas effector specificity and cleavage site determine phage escape outcomes
Michael A Schelling1, Giang T Nguyen1, Dipali G Sashital1
1Roy J. Carver Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, Iowa, United States of America.
Abstract:
CRISPR-mediated interference relies on complementarity between a guiding CRISPR RNA (crRNA) and target nucleic acids to provide defense against bacteriophage. Phages escape CRISPR-based immunity mainly through mutations in the protospacer adjacent motif (PAM) and seed regions. However, previous specificity studies of Cas effectors, including the class 2 endonuclease Cas12a, have revealed a high degree of tolerance of single mismatches. The effect of this mismatch tolerance has not been extensively studied in the context of phage defense. Here, we tested defense against lambda phage provided by Cas12a-crRNAs containing preexisting mismatches against the genomic targets in phage DNA. We find that most preexisting crRNA mismatches lead to phage escape, regardless of whether the mismatches ablate Cas12a cleavage in vitro. We used high-throughput sequencing to examine the target regions of phage genomes following CRISPR challenge. Mismatches at all locations in the target accelerated emergence of mutant phage, including mismatches that greatly slowed cleavage in vitro. Unexpectedly, our results reveal that a preexisting mismatch in the PAM-distal region results in selection of mutations in the PAM-distal region of the target. In vitro cleavage and phage competition assays show that dual PAM-distal mismatches are significantly more deleterious than combinations of seed and PAM-distal mismatches, resulting in this selection. However, similar experiments with Cas9 did not result in emergence of PAM-distal mismatches, suggesting that cut-site location and subsequent DNA repair may influence the location of escape mutations within target regions. Expression of multiple mismatched crRNAs prevented new mutations from arising in multiple targeted locations, allowing Cas12a mismatch tolerance to provide stronger and longer-term protection. These results demonstrate that Cas effector mismatch tolerance, existing target mismatches, and cleavage site strongly influence phage evolution.
Insights
CRISPR-Cas12a systems show that existing mismatches in guide RNAs accelerate phage escape, with PAM-distal mismatches driving specific mutations. Multiple mismatched guides enhance CRISPR protection against evolving phages.
Area of Science:
- Molecular Biology
- Genetics
- Microbiology
Background:
- CRISPR-interference (CRISPRi) uses guide RNA complementarity for defense against bacteriophages.
- Phages primarily escape CRISPR immunity via mutations in protospacer adjacent motif (PAM) and seed regions.
- Cas effectors, like Cas12a, exhibit significant mismatch tolerance, but its role in phage defense is understudied.
Purpose of the Study:
- To investigate the impact of pre-existing mismatches in CRISPR RNA (crRNA) on Cas12a-mediated defense against lambda phage.
- To understand how mismatch tolerance influences phage evolution and escape mutation emergence.
Main Methods:
- Cas12a-crRNA systems with pre-existing mismatches were tested against lambda phage.
- High-throughput sequencing analyzed phage genome target regions after CRISPR challenge.
- In vitro cleavage assays and phage competition experiments were conducted.
Main Results:
- Most pre-existing crRNA mismatches led to phage escape, irrespective of in vitro cleavage efficiency.
- Mismatches at all target locations accelerated mutant phage emergence.
- A PAM-distal mismatch specifically selected for mutations in the PAM-distal region, with dual PAM-distal mismatches being particularly detrimental.
- Cas9 systems did not show PAM-distal mutation selection, suggesting cut-site influence.
- Multiple mismatched crRNAs improved protection by preventing mutations at multiple sites.
Conclusions:
- Cas effector mismatch tolerance and target mismatches significantly shape phage evolution.
- Cleavage site location influences the emergence of escape mutations.
- Utilizing multiple mismatched crRNAs can enhance CRISPR-based phage defense efficacy and longevity.
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