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Updated: Oct 9, 2025

Advances in Human Induced Pluripotent Stem Cell-Derived Chimeric Antigen Receptor-Expressing Natural Killer Cells
Published on: February 14, 2025
NK Cells Armed with Chimeric Antigen Receptors (CAR): Roadblocks to Successful Development
Ali Bashiri Dezfouli1, Mina Yazdi2, Alan Graham Pockley3
1Central Institute for Translational Cancer Research Technische Universität München (TranslaTUM), Department of Radiation Oncology, Klinikum Rechts der Isar, Einstein Str. 25, 81675 Munich, Germany.
Abstract:
In recent years, cell-based immunotherapies have demonstrated promising results in the treatment of cancer. Chimeric antigen receptors (CARs) arm effector cells with a weapon for targeting tumor antigens, licensing engineered cells to recognize and kill cancer cells. The quality of the CAR-antigen interaction strongly depends on the selected tumor antigen and its expression density on cancer cells. CD19 CAR-engineered T cells approved by the Food and Drug Administration have been most frequently applied in the treatment of hematological malignancies. Clinical challenges in their application primarily include cytokine release syndrome, neurological symptoms, severe inflammatory responses, and/or other off-target effects most likely mediated by cytotoxic T cells. As a consequence, there remains a significant medical need for more potent technology platforms leveraging cell-based approaches with enhanced safety profiles. A promising population that has been advanced is the natural killer (NK) cell, which can also be engineered with CARs. NK cells which belong to the innate arm of the immune system recognize and kill virally infected cells as well as (stressed) cancer cells in a major histocompatibility complex I independent manner. NK cells play an important role in the host's immune defense against cancer due to their specialized lytic mechanisms which include death receptor (i.e., Fas)/death receptor ligand (i.e., Fas ligand) and granzyme B/perforin-mediated apoptosis, and antibody-dependent cellular cytotoxicity, as well as their immunoregulatory potential via cytokine/chemokine release. To develop and implement a highly effective CAR NK cell-based therapy with low side effects, the following three principles which are specifically addressed in this review have to be considered: unique target selection, well-designed CAR, and optimized gene delivery.
Insights
Natural killer (NK) cells engineered with chimeric antigen receptors (CARs) offer a promising cell-based cancer therapy. CAR NK cells provide enhanced safety and efficacy by leveraging unique target selection, CAR design, and gene delivery optimization.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Cell-based immunotherapies, including CAR T-cell therapy, show promise for cancer treatment but face challenges like cytokine release syndrome and off-target effects.
- Natural killer (NK) cells, part of the innate immune system, offer an alternative effector cell for CAR engineering due to their unique killing mechanisms and MHC-independent function.
Purpose of the Study:
- To review the principles for developing effective and safe chimeric antigen receptor (CAR) Natural Killer (NK) cell-based cancer therapies.
- To highlight the advantages of NK cells over T cells for CAR applications and address current clinical challenges.
Main Methods:
- Review of existing literature on CAR technology, NK cell biology, and cancer immunotherapy.
- Analysis of key factors influencing CAR NK cell efficacy and safety, including target selection, CAR design, and gene delivery methods.
Main Results:
- CAR NK cells present a viable alternative to CAR T cells, potentially offering improved safety profiles and broader applicability.
- Successful CAR NK cell therapy hinges on strategic selection of tumor antigens, optimized CAR construct design, and efficient gene delivery systems.
Conclusions:
- Developing potent CAR NK cell therapies requires careful consideration of target antigen choice, CAR design, and gene delivery strategies.
- CAR NK cell technology holds significant potential for advancing cancer treatment with enhanced safety and efficacy.

