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Updated: Jun 13, 2025

Selection-dependent and Independent Generation of CRISPR/Cas9-mediated Gene Knockouts in Mammalian Cells
Published on: June 16, 2017
CRISPR-Cas9 target-strand nicking provides phage resistance by inhibiting replication
Giang T Nguyen1, Michael A Schelling1, Dipali G Sashital1
1Roy J. Carver Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA, USA.
Abstract:
Cas endonucleases, like Cas9 and Cas12a, are RNA-guided immune effectors that provide bacterial defense against bacteriophages. Cas endonucleases rely on divalent metal ions for their enzymatic activities and to facilitate conformational changes that are required for specific recognition and cleavage of target DNA. While Cas endonucleases typically produce double-strand breaks (DSBs) in DNA targets, reduced, physiologically relevant Mg2+ concentrations and target mismatches can result in incomplete second-strand cleavage, resulting in the production of a nicked DNA. It remains poorly understood whether nicking by Cas endonucleases is sufficient to provide protection against phage. To address this, we tested phage protection by Cas9 nickases, in which only one of two nuclease domains is catalytically active. By testing a large panel of guide RNAs, we find that target strand nicking can be sufficient to provide immunity, while non-target nicking does not provide any additional protection beyond Cas9 binding. Target-strand nicking inhibits phage replication and can reduce the susceptibility of Cas9 to viral escape when targeting non-essential regions of the genome. Cleavage of the non-target strand by the RuvC domain is strongly impaired at low Mg2+ concentrations. As a result, fluctuations in the concentration of other biomolecules that can compete for binding of free Mg2+ strongly influences the ability of Cas9 to form a DSB at targeted sites. Overall, our results suggest that Cas9 may only nick DNA during CRISPR-mediated immunity, especially under conditions of low Mg2+ availability in cells.
Insights
CRISPR Cas9 nickases can provide bacterial immunity by nicking target DNA, even without fully cleaving it. This DNA nicking inhibits phage replication, especially at low magnesium ion concentrations.
Area of Science:
- Molecular Biology
- Bacteriology
- Genetics
Background:
- Cas endonucleases (e.g., Cas9, Cas12a) are key bacterial immune effectors against phages.
- These enzymes require divalent metal ions, like Mg2+, for DNA binding and cleavage.
- Cas enzymes typically induce double-strand breaks (DSBs), but nicking can occur under certain conditions.
Purpose of the Study:
- To investigate if DNA nicking by Cas endonucleases is sufficient for phage immunity.
- To determine the role of target-strand versus non-target-strand nicking in bacterial defense.
- To understand how magnesium ion concentration affects Cas9 cleavage activity and bacterial defense.
Main Methods:
- Utilized Cas9 nickases with one active nuclease domain.
- Tested a wide range of guide RNAs for target DNA cleavage efficiency.
- Assessed phage protection conferred by different Cas9-mediated DNA modification outcomes.
- Investigated the impact of varying magnesium ion concentrations on Cas9 activity.
Main Results:
- Target-strand nicking by Cas9 was sufficient to confer phage immunity.
- Nicking the non-target strand offered no additional protection beyond enzyme binding.
- Low Mg2+ concentrations significantly impaired non-target strand cleavage by the RuvC domain.
- Target-strand nicking inhibits phage replication and reduces viral escape potential.
Conclusions:
- Cas9-mediated DNA nicking can be sufficient for CRISPR-Cas immunity.
- Cellular Mg2+ concentrations critically influence Cas9's ability to induce DSBs versus nicks.
- Cas9 may predominantly function as a nickase in natural CRISPR-mediated immunity, particularly in low Mg2+ environments.
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