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Combinatorial suicide gene strategies for the safety of cell therapies
Corey Falcon1, Lauren Smith1, Mustafa Al-Obaidi1
1Hematology/Oncology, The University of Alabama at Birmingham, Birmingham, AL, United States.
Abstract:
Gene-modified cellular therapies carry inherent risks of severe and potentially fatal adverse events, including the expansion of alloreactive cells or malignant transformation due to insertional mutagenesis. Strategies to mitigate uncontrolled proliferation of gene-modified cells include co-transfection of a suicide gene, such as the inducible caspase 9 safety switch (ΔiC9). However, the activation of the ΔiC9 fails to completely eliminate all gene-modified cells. Therefore, we tested a two suicide gene system used independently or together, with the goal of complete cell elimination. The first approach combined the ΔiC9 with an inducible caspase 8, ΔiC8, which lacks the endogenous prodomain. The rationale was to use a second caspase with an alternative and complementary mechanism of action. Jurkat cells co-transduced to co-express the ΔiC8, activatable by a BB homodimerizer, and the ΔiC9 activatable by the rapamycin analog sirolimus were used in a model to estimate the degree of inducible cell elimination. We found that both agents could activate each caspase independently, with enhanced elimination with superior reduction in cell regrowth of gene-modified cells when both systems were activated simultaneously. A second approach was employed in parallel, combining the ΔiC9 with the RQR8 compact suicide gene. RQR8 incorporates a CD20 mimotope, targeted by the anti-CD20 monoclonal antibody rituxan, and the QBend10, a ΔCD34 selectable marker. Likewise, enhanced cell elimination with superior reduction in cell regrowth was observed when both systems were activated together. A dose-titration effect was also noted utilizing the BB homodimerizer, whereas sirolimus remained very potent at minimal concentrations. Further in vivo studies are needed to validate these novel combination systems, which may play a role in future cancer therapies or regenerative medicine.
Insights
This study explored dual suicide gene systems to improve the safety of gene-modified cell therapies. Combining two suicide genes, inducible caspase 9 (ΔiC9) with either inducible caspase 8 (ΔiC8) or RQR8, enhanced cell elimination and reduced regrowth.
Area of Science:
- Cellular and Gene Therapy
- Oncology
- Immunology
Background:
- Gene-modified cellular therapies face risks like alloreactive cell expansion and insertional mutagenesis.
- Current safety switches, such as the inducible caspase 9 safety switch (ΔiC9), do not guarantee complete elimination of modified cells.
Purpose of the Study:
- To evaluate the efficacy of dual suicide gene systems for complete elimination of gene-modified cells.
- To compare the combination of ΔiC9 with inducible caspase 8 (ΔiC8) or RQR8 suicide gene.
Main Methods:
- Jurkat cells were co-transduced to express ΔiC8 (activated by BB homodimerizer) and ΔiC9 (activated by sirolimus).
- A second approach combined ΔiC9 with the RQR8 compact suicide gene (containing CD20 mimotope and CD34 selectable marker).
- Inducible cell elimination and reduction in cell regrowth were assessed for both systems, independently and simultaneously.
Main Results:
- Both ΔiC8 and RQR8, when combined with ΔiC9, demonstrated enhanced gene-modified cell elimination compared to single systems.
- Simultaneous activation of both suicide genes in the dual systems resulted in superior reduction in cell regrowth.
- Sirolimus showed high potency at minimal concentrations, while the BB homodimerizer exhibited a dose-titration effect.
Conclusions:
- Dual suicide gene systems, combining ΔiC9 with ΔiC8 or RQR8, offer improved safety for gene-modified cell therapies.
- Simultaneous activation of these dual systems is crucial for maximizing cell elimination and minimizing regrowth.
- Further in vivo studies are warranted to validate these combination strategies for potential use in cancer therapy and regenerative medicine.
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