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Engineered Thymidine-Active Deoxycytidine Kinase for Bystander Killing of Malignant Cells
Anton Neschadim1, Jeffrey A Medin2
1Centre for Innovation, Canadian Blood Services, Toronto, ON, Canada.
Abstract:
Suicide transgenes encode proteins that are either capable of activating specific prodrugs into cytotoxic antimetabolites that can trigger cancer cell apoptosis or are capable of directly inducing apoptosis. Suicide gene therapy of cancer (SGTC) involves the targeted or localized delivery of suicide transgene sequences into tumor cells by means of various gene delivery vehicles. SGTC that operates via the potentiation of small-molecule pharmacologic agents can elicit the elimination of cancer cells within a tumor beyond only those cells successfully transduced. Such "bystander effects ", typically mediated by the spread of activated cytotoxic antimetabolites from the transduced cells expressing the suicide transgene to adjacent cells in the tumor, can lead to a significant reduction of the tumor mass without the requirement of transduction of a high percentage of cells within the tumor. The spread of activated cytotoxic molecules to adjacent cells is mediated primarily by diffusion and normally involves gap junctional intercellular communications (GJIC). We have developed a novel SGTC system based on viral vector-mediated delivery of an engineered variant of human deoxycytidine kinase (dCK), which is capable of phosphorylating uridine- and thymidine-based nucleoside analogues that are not substrates for wild-type dCK, such as bromovinyl deoxyuridine (BVdU) and L-deoxythymidine (LdT). Since our dCK-based SGTC system is capable of mediating strong bystander cell killing, it holds promise for clinical translation. In this chapter, we detail the key procedures for the preparation of recombinant lentivectors for the delivery of engineered dCK, transduction of tumor cells, and evaluation of bystander cell killing effects in vitro and in vivo.
Insights
This study introduces a novel suicide gene therapy for cancer (SGTC) using an engineered deoxycytidine kinase (dCK) to activate prodrugs. This system effectively eliminates cancer cells, including those not directly treated, via bystander effects, showing promise for clinical application.
Area of Science:
- Oncology
- Gene Therapy
- Molecular Biology
Background:
- Suicide gene therapy of cancer (SGTC) utilizes transgenes to induce cancer cell apoptosis or activate prodrugs into cytotoxic agents.
- Bystander effects in SGTC, mediated by the spread of activated drugs, enhance tumor cell elimination beyond transduced cells.
- Gap junctional intercellular communication (GJIC) typically facilitates the spread of cytotoxic molecules.
Purpose of the Study:
- To develop and evaluate a novel SGTC system utilizing an engineered human deoxycytidine kinase (dCK).
- To assess the efficacy of this engineered dCK in phosphorylating novel nucleoside analogues for cancer treatment.
- To demonstrate the potential for strong bystander cell killing and clinical translation of the dCK-based SGTC system.
Main Methods:
- Development of viral vectors for delivering engineered dCK into tumor cells.
- Transduction of tumor cells with the engineered dCK gene.
- In vitro and in vivo evaluation of bystander cell killing effects.
Main Results:
- The engineered dCK phosphorylates specific nucleoside analogues (e.g., BVdU, LdT) not targeted by wild-type dCK.
- The dCK-based SGTC system demonstrated significant bystander cell killing capabilities.
- Successful preparation of recombinant lentivectors for engineered dCK delivery.
Conclusions:
- The engineered dCK-based SGTC system effectively mediates potent bystander cell killing.
- This novel SGTC approach holds significant promise for clinical translation in cancer therapy.
- The system's ability to eliminate non-transduced cells offers a therapeutic advantage.
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