iPSC-derived feeder platforms potentiate natural killer cell Immunotherapy

Natural killer (NK) cells are attractive effectors for cancer immunotherapy, yet their clinical translation is limited by inefficient expansion, short persistence, and reliance on tumor-derived feeder systems. Here, we establish a hybrid differentiation strategy to generate highly pure NK cells from human induced pluripotent stem cells (iPSCs) via an intermediate hematopoietic progenitor (iHPC) stage and develop iPSC-derived feeder platforms to support NK survival and function. Engineered iHPCs expressing the co-stimulatory molecule CD86 and membrane-bound interleukin-21 (mbIL-21) effectively prolonged the survival of primary NK cells and promoted activation-associated clustering in vitro. Although iPSC-derived NK cells exhibited an immature phenotype, genetic introduction of stimulatory molecules, with predominant expression of CD86, enhanced activation marker expression and cytotoxic activity despite limited surface expression of mbIL-21 and 4-1BBL. These findings identify iPSC-derived hematopoietic progenitors as a tumor-free feeder alternative and demonstrate that implementation of a self-feeder strategy can potentiate NK cell function. Together, this work advances scalable and clinically adaptable approaches for NK cell manufacturing.

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Publication Details

Journal
Cancer Immunology Immunotherapy
Published
2026-10-05
DOI
https://doi.org/10.1007/s00262-026-04582-x
Primary Topic
Immune Cell Function and Interaction
Type
article
Field-Weighted Citation Impact
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article

iPSC-derived feeder platforms potentiate natural killer cell Immunotherapy

Yi-Ching Tsai, Bing-Hong Chen, Kai-Feng Hung, Shih‐Hwa Chiou et al.
Cancer Immunology Immunotherapy
Immune Cell Function and Interaction
article

iPSC-derived feeder platforms potentiate natural killer cell Immunotherapy

Yi-Ching Tsai, Bing-Hong Chen, Kai-Feng Hung, Shih‐Hwa Chiou, Sheng‐Hsuan Chien, Zhi-Qian Lin, Lee-Yieng Lim, Chieh-Min Wang, Chia-Wei Chang, Yi-Chen Sun, Yi-Ping Yang, Cheng-Hsien Wu
article en

Abstract

Natural killer (NK) cells are attractive effectors for cancer immunotherapy, yet their clinical translation is limited by inefficient expansion, short persistence, and reliance on tumor-derived feeder systems. Here, we establish a hybrid differentiation strategy to generate highly pure NK cells from human induced pluripotent stem cells (iPSCs) via an intermediate hematopoietic progenitor (iHPC) stage and develop iPSC-derived feeder platforms to support NK survival and function. Engineered iHPCs expressing the co-stimulatory molecule CD86 and membrane-bound interleukin-21 (mbIL-21) effectively prolonged the survival of primary NK cells and promoted activation-associated clustering in vitro. Although iPSC-derived NK cells exhibited an immature phenotype, genetic introduction of stimulatory molecules, with predominant expression of CD86, enhanced activation marker expression and cytotoxic activity despite limited surface expression of mbIL-21 and 4-1BBL. These findings identify iPSC-derived hematopoietic progenitors as a tumor-free feeder alternative and demonstrate that implementation of a self-feeder strategy can potentiate NK cell function. Together, this work advances scalable and clinically adaptable approaches for NK cell manufacturing.

Cancer Immunology Immunotherapy
National Yang Ming Chiao Tung University (TW), National Taiwan University (TW), Tzu Chi University (TW), Taipei Veterans General Hospital (TW), Taipei Tzu Chi Hospital (TW), National Taiwan University Hospital (TW)
Openalex Percentile: Top 19%
Immune Cell Function and Interaction
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