Mechanism of target site selection by type V-K CRISPR-associated transposases.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 37972161.
- Also identified by DOI 10.1126/science.adj8543 and PMC identifier 10771339.
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Abstract
CRISPR-associated transposases (CASTs) repurpose nuclease-deficient CRISPR effectors to catalyze RNA-guided transposition of large genetic payloads. Type V-K CASTs offer potential technology advantages but lack accuracy, and the molecular basis for this drawback has remained elusive. Here, we reveal that type V-K CASTs maintain an RNA-independent, "untargeted" transposition pathway alongside RNA-dependent integration, driven by the local availability of TnsC filaments. Using cryo-electron microscopy, single-molecule experiments, and high-throughput sequencing, we found that a minimal, CRISPR-less transpososome preferentially directs untargeted integration at AT-rich sites, with additional local specificity imparted by TnsB. By exploiting this knowledge, we suppressed untargeted transposition and increased type V-K CAST specificity up to 98.1% in cells without compromising on-target integration efficiency. These findings will inform further engineering of CAST systems for accurate, kilobase-scale genome engineering applications.
Medical subject headings
- CRISPR-Associated Proteins
- CRISPR-Cas Systems
- DNA Transposable Elements
- Transposases
- Gene Editing