Efficient Redirection of NK Cells by Genetic Modification with Chemokine Receptors CCR4 and CCR2B

Author:

Feigl Frederik Fabian1,Stahringer Anika1,Peindl Matthias2,Dandekar Gudrun23,Koehl Ulrike14,Fricke Stephan1,Schmiedel Dominik14

Affiliation:

1. Fraunhofer Institute for Cell Therapy and Immunology (IZI), 04103 Leipzig, Germany

2. Chair of Tissue Engineering and Regenerative Medicine (TERM), University Hospital of Würzburg, 97070 Würzburg, Germany

3. Translational Center Regenerative Therapies, Fraunhofer Institute for Silicate Research (ISC), 97070 Würzburg, Germany

4. Institute for Clinical Immunology, University of Leipzig, 04103 Leipzig, Germany

Abstract

Natural killer (NK) cells are a subset of lymphocytes that offer great potential for cancer immunotherapy due to their natural anti-tumor activity and the possibility to safely transplant cells from healthy donors to patients in a clinical setting. However, the efficacy of cell-based immunotherapies using both T and NK cells is often limited by a poor infiltration of immune cells into solid tumors. Importantly, regulatory immune cell subsets are frequently recruited to tumor sites. In this study, we overexpressed two chemokine receptors, CCR4 and CCR2B, that are naturally found on T regulatory cells and tumor-resident monocytes, respectively, on NK cells. Using the NK cell line NK-92 as well as primary NK cells from peripheral blood, we show that genetically engineered NK cells can be efficiently redirected using chemokine receptors from different immune cell lineages and migrate towards chemokines such as CCL22 or CCL2, without impairing the natural effector functions. This approach has the potential to enhance the therapeutic effect of immunotherapies in solid tumors by directing genetically engineered donor NK cells to tumor sites. As a future therapeutic option, the natural anti-tumor activity of NK cells at the tumor sites can be increased by co-expression of chemokine receptors with chimeric antigen receptors (CAR) or T cell receptors (TCR) on NK cells can be performed in the future.

Funder

Fraunhofer Internal Program

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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