Preclinical assessment of MAGE-A4-specific TCR-NK cells against solid tumors
Margherita Boieri1, Justyna Kmiecik1, Maja Sandve1
1Zelluna ASA, Oslo, Norway.
Abstract:
T cell (Tc) receptor (TCR)-based cell therapies have shown clinical efficacy across many cancer types and represent an attractive strategy for targeting solid tumors. However, the immunosuppressive tumor microenvironment, downregulation of target antigen and HLA, and the need for an autologous source limit the efficacy and the accessibility of TCR-Tc therapies. Early clinical trials have shown the potential of natural killer cells (NKs) as a therapy to treat hematological and solid cancers. Allogeneic NKs, engineered to express a TCR, represent a novel and promising strategy overcoming the limitations of T and NKs therapies. Here we describe the development of a product consisting of NKs engineered to express an affinity-enhanced TCR recognizing MAGE-A4, a clinically validated tumor antigen expressed across several solid tumors. The introduction of the TCR does not disrupt the innate functionality of NKs and adds TCR-mediated specific killing of antigen-positive targets. In fact, the innate potential of the NKs appears to be enhanced by the presence of the CD3-TCR complex, creating NKs with increased potency. TCR-NKs are faster, more potent than TCR-Tc and retain killing activity in the absence of TCR target antigen thus potentially overcoming tumor heterogeneity and/or antigen loss. Lastly, TCR-NKs are not activated when co-cultured with normal cells, displaying a safe profile. Combining the innate cytotoxicity of NKs with MAGE-A4-specific targeting of an affinity-enhanced TCR, results in a potent and safe cellular product representing a promising and novel therapeutic off-the-shelf paradigm for the treatment of many solid cancers.
Insights
Engineered natural killer (NK) cells expressing a T cell (Tc) receptor (TCR) offer a potent, off-the-shelf cancer therapy. These TCR-NKs overcome solid tumor challenges, demonstrating enhanced efficacy and safety compared to traditional TCR-Tc therapies.
Area of Science:
- Immunology
- Oncology
- Cellular Therapy
Background:
- T cell receptor (TCR)-based cell therapies show promise for solid tumors but face challenges like immunosuppressive microenvironments and limited accessibility.
- Natural killer (NK) cells are being explored for cancer treatment, with allogeneic NKs engineered to express TCRs offering a novel therapeutic strategy.
Purpose of the Study:
- To develop an off-the-shelf cellular therapy using NKs engineered with an affinity-enhanced TCR targeting the MAGE-A4 tumor antigen.
- To evaluate the efficacy, safety, and mechanisms of action of these engineered NKs (TCR-NKs) in solid tumor treatment.
Main Methods:
- Engineering allogeneic NKs to express an affinity-enhanced TCR specific for MAGE-A4.
- Assessing the impact of TCR expression on NK cell innate functions and cytotoxic activity.
- Evaluating TCR-NK potency, safety profile, and efficacy against antigen-positive targets, including in the absence of target antigen.
Main Results:
- TCR expression enhanced NK cell potency without disrupting innate functions, leading to increased cytotoxicity against MAGE-A4-positive targets.
- TCR-NKs demonstrated superior potency and speed compared to TCR-T cells and retained activity against antigen-loss variants.
- The engineered NKs showed a safe profile, with no activation against normal cells.
Conclusions:
- Engineered TCR-NKs represent a potent and safe cellular therapy for solid tumors, combining innate NK cell cytotoxicity with specific tumor antigen targeting.
- This off-the-shelf TCR-NK platform has the potential to overcome limitations of current TCR-T cell therapies and address tumor heterogeneity.
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