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Published on: December 17, 2019
A Functionally Superior Second-Generation Vector Expressing an Aurora Kinase-A-Specific T-Cell Receptor for
Nicholas Paul Casey1, Hiroshi Fujiwara1, Kazushi Tanimoto1
1Department of Hematology, Clinical Immunology and Infectious Disease, Ehime University Graduate School of Medicine, Ehime, Japan.
Abstract:
Aurora Kinase A is a cancer-associated protein normally involved in the regulation of mitosis. Being over-expressed in a range of cancers, it is a suitable target for cell-based immunotherapy. Gene transfer of T-cell receptor sequences cognisant of HLA-A*0201-restricted Aurora Kinase A antigen has previously been shown to transfer specific immunoreactivity against the target peptide in a Human Lymphocyte Antigen-restricted manner. While T cell receptor gene-transfer has great potential in overcoming the difficulties of isolating and expanding tumour-reactive lymphocytes from a patient's own cells, one hurdle is potential mispairing and competition between exogenous and endogenous T cell receptor chains. We have used a retroviral vector design bearing a short-interfering RNA that downregulates endogenous T cell receptor chains, without affecting expression of the transgenic T cell receptor sequences. The T cell receptor expression cassette also includes a 2A self-cleaving peptide, resulting in equimolar expression of the T cell receptor alpha and beta chains, further enhancing formation of the desired T cell receptor. Via a simple, modular cloning method, we have cloned the alpha and beta chains of the anti-Aurora Kinase A-reactive T cell receptor into this 'siTCR' vector. We then compared the activity of this vector against the original, 'conventional' vector across a panel of assays. T cell receptors expressed from the siTCR-vector retained the cytotoxic functionality of the original vector, with evidence of reduced off-target reactivity. The rate of expression of correctly-formed T cell receptors was superior using the siTCR design, and this was achieved at lower vector copy numbers. Maintaining T cell receptor efficacy with a reduced vector copy number reduces the risk of genotoxicity. The siTCR design also reduces the risk of mispairing and cross-reactivity, while increasing the functional titre. Such improvements in the safety of T cell receptor gene-transfer will be crucial for clinical applications of this technology.
Insights
A novel retroviral vector design, siTCR, enhances T cell receptor (TCR) gene therapy for cancer by downregulating endogenous TCR chains. This improves safety and efficacy for targeting Aurora Kinase A in immunotherapy.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Aurora Kinase A is a cancer-associated protein overexpressed in various cancers, making it a target for cell-based immunotherapy.
- T cell receptor (TCR) gene transfer shows promise for cancer immunotherapy, but endogenous TCR chain mispairing is a challenge.
Purpose of the Study:
- To develop and evaluate a novel retroviral vector, 'siTCR', designed to overcome challenges in TCR gene transfer, specifically endogenous TCR chain mispairing and competition.
- To enhance the safety and efficacy of TCR gene therapy by improving the expression and function of anti-Aurora Kinase A TCRs.
Main Methods:
- Developed a retroviral vector (siTCR) incorporating a short-interfering RNA to downregulate endogenous TCR chains and a 2A self-cleaving peptide for equimolar alpha and beta chain expression.
- Cloned anti-Aurora Kinase A-reactive TCR alpha and beta chains into the siTCR vector using a modular cloning method.
- Compared the activity and safety of the siTCR vector against a conventional vector in various assays.
Main Results:
- TCRs expressed from the siTCR vector retained cytotoxic functionality and demonstrated reduced off-target reactivity compared to the conventional vector.
- The siTCR design led to superior expression rates of correctly formed TCRs at lower vector copy numbers.
- Reduced vector copy numbers with siTCR enhance safety by lowering genotoxicity risk.
Conclusions:
- The siTCR vector design offers improved safety and efficacy for TCR gene transfer by minimizing mispairing and cross-reactivity while increasing functional T cell receptor (TCR) titre.
- This enhanced safety profile is crucial for the clinical application of TCR gene therapy in cancer treatment.
- The siTCR system represents a significant advancement in engineering tumor-specific T cells for immunotherapy.
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