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Spatial and Temporal Control of T Cell Activation Using a Photoactivatable Agonist
Published on: April 25, 2018
An AND-Gated Drug and Photoactivatable Cre-loxP System for Spatiotemporal Control in Cell-Based Therapeutics
Molly E Allen, Wei Zhou1, Jeyan Thangaraj
1Chongqing Cancer Hospital , 181 Hanyu Road, Shapingba District , Chongqing 400030 , China.
Abstract:
While engineered chimeric antigen receptor (CAR) T cells have shown promise in detecting and eradicating cancer cells within patients, it remains difficult to identify a set of truly cancer-specific CAR-targeting cell surface antigens to prevent potentially fatal on-target off-tumor toxicity against other healthy tissues within the body. To help address this issue, we present a novel tamoxifen-gated photoactivatable split-Cre recombinase optogenetic system, called TamPA-Cre, that features high spatiotemporal control to limit CAR T cell activity to the tumor site. We created and optimized a novel genetic AND gate switch by integrating the features of tamoxifen-dependent nuclear localization and blue-light-inducible heterodimerization of Magnet protein domains (nMag, pMag) into split Cre recombinase. By fusing the cytosol-localizing mutant estrogen receptor ligand binding domain (ERT2) to the N-terminal half of split Cre(2-59aa)-nMag, the TamPA-Cre protein ERT2-CreN-nMag is physically separated from its nuclear-localized binding partner, NLS-pMag-CreC(60-343aa). Without tamoxifen to drive nuclear localization of ERT2-CreN-nMag, the typically high background of the photoactivation system was significantly suppressed. Upon blue light stimulation following tamoxifen treatment, the TamPA-Cre system exhibits sensitivity to low intensity, short durations of blue light exposure to induce robust Cre-loxP recombination efficiency. We finally demonstrate that this TamPA-Cre system can be applied to specifically control localized CAR expression and subsequently T cell activation. As such, we posit that CAR T cell activity can be confined to a solid tumor site by applying an external stimulus, with high precision of control in both space and time, such as light.
Insights
A new optogenetic system, TamPA-Cre, precisely controls chimeric antigen receptor (CAR) T cell activity at tumor sites using tamoxifen and blue light. This enhances CAR T cell therapy safety by minimizing off-tumor toxicity.
Area of Science:
- Immunology
- Biotechnology
- Optogenetics
Background:
- Chimeric antigen receptor (CAR) T cell therapy shows promise for cancer treatment.
- A major challenge is preventing on-target, off-tumor toxicity due to lack of cancer-specific antigens.
- Precise spatial and temporal control of CAR T cell activity is needed.
Purpose of the Study:
- To develop a novel optogenetic system for spatiotemporal control of CAR T cell activity.
- To engineer a genetic AND gate switch for precise T cell activation at tumor sites.
- To mitigate on-target, off-tumor toxicity in CAR T cell therapy.
Main Methods:
- Developed TamPA-Cre, a tamoxifen-gated, photoactivatable split-Cre recombinase system.
- Integrated tamoxifen-dependent nuclear localization with blue-light-inducible protein dimerization (nMag, pMag).
- Fused ERT2 to split Cre recombinase components to create a novel AND gate switch.
Main Results:
- TamPA-Cre demonstrated suppressed background activity without tamoxifen.
- The system showed high Cre-loxP recombination efficiency upon blue light stimulation after tamoxifen treatment.
- Successfully demonstrated localized CAR expression and T cell activation using TamPA-Cre.
Conclusions:
- TamPA-Cre offers precise spatiotemporal control over CAR T cell activity.
- This system can confine CAR T cell function to solid tumor sites.
- TamPA-Cre has the potential to improve the safety and efficacy of CAR T cell therapy.

