Cancers

Precise Gene Insertion and Use in T Cells Without Viruses for T-Cell Therapy

Updated

Abstract

Optimized site-specific gene integration in primary human T cells can achieve insertion rates upwards of 20%.

  • Chimeric antigen receptors (CARs) can enhance T cell efficacy in cancer treatment.
  • Traditional methods for T cell modification involve viral vectors, which may risk malignant transformation.
  • Non-viral gene editing using CRISPR offers a rapid and cost-effective alternative for precise modifications.
  • The approach utilizes double stranded DNA as a repair template for .
  • Successful proof-of-principle knock-ins were demonstrated at the T-cell receptor alpha locus and interleukin-13 locus with large transgenes.

Simplified

Key numbers

60%
Maximum Knock-In Efficiency
Achieved during optimization of the gene knock-in protocol.
IL-15 Secretion Increase
Measured compared to control T cells without the transgene.
20%
Transgene Integration Efficiency
Observed when targeting and BiTE genes.

Full Text

What this is

  • This research presents a protocol for CRISPR-Cas9-mediated gene editing in T cells using non-viral DNA.
  • The approach aims to improve the efficiency and safety of T-cell therapies by enabling site-specific gene integration.
  • The authors demonstrate the protocol's application by inserting a transgene into the T-cell receptor alpha constant locus.

Essence

  • An optimized protocol for CRISPR-Cas9-mediated gene integration in T cells using non-viral DNA achieves up to 60% knock-in efficiency. This method enhances the reliability and safety of T-cell therapies by allowing precise gene insertion.

Key takeaways

  • The protocol allows for efficient integration of large transgenes into T cells, achieving up to 60% knock-in efficiency. This efficiency was determined by evaluating various factors, including DNA concentration and cell number.
  • Gene-edited T cells showed functional expression of IL-15, with approximately 2× more secretion compared to control cells. This indicates the successful application of the protocol in producing therapeutically relevant T cells.
  • The protocol can be adapted for different transgenes, including CARs and bispecific T-cell engagers, with integration efficiencies around 20%. This versatility makes it a valuable tool for advancing T-cell engineering.

Caveats

  • Knock-in efficiency varies by targeted gene locus and transgene. Further optimization may be required for different applications.
  • The study primarily focuses on in vitro results; in vivo validation is necessary to assess long-term safety and efficacy.

Definitions

  • Chimeric Antigen Receptor (CAR): A synthetic receptor that allows T cells to recognize and attack cancer cells expressing specific antigens.
  • Homology-Directed Repair (HDR): A cellular process that repairs DNA double-strand breaks using a homologous DNA template.

Simplified

Funding

Competing interests

G.K. has patent applications in the field of immunotherapy.
PubMed

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