Knocking Out CD70 Rescues CD70-Specific NanoCAR T Cells from Antigen-Induced Exhaustion

Author:

De Munter Stijn12ORCID,Buhl Juliane L.3ORCID,De Cock Laurenz24ORCID,Van Parys Alexander5ORCID,Daneels Willem267ORCID,Pascal Eva12ORCID,Deseins Lucas1ORCID,Ingels Joline12ORCID,Goetgeluk Glenn12ORCID,Jansen Hanne1ORCID,Billiet Lore1ORCID,Pille Melissa1ORCID,Van Duyse Julie89ORCID,Bonte Sarah210ORCID,Vandamme Niels11ORCID,Van Dorpe Jo212ORCID,Offner Fritz267ORCID,Leclercq Georges12ORCID,Taghon Tom12ORCID,Depla Erik5ORCID,Tavernier Jan5ORCID,Kerre Tessa1267ORCID,Drost Jarno3ORCID,Vandekerckhove Bart1213ORCID

Affiliation:

1. Department of Diagnostic Sciences, Ghent University, Ghent, Belgium. 1

2. Cancer Research Institute Ghent (CRIG), Ghent, Belgium. 2

3. Princess Máxima Center and Oncode Institute, Utrecht, the Netherlands. 3

4. Department of Biomolecular Medicine, Ghent University, Ghent, Belgium. 4

5. Orionis Biosciences BV, Ghent, Belgium. 5

6. Department of Internal Medicine and Pediatrics, Ghent University, Ghent, Belgium. 6

7. Department of Hematology, Ghent University Hospital, Ghent, Belgium. 7

8. VIB Flow Core, VIB Center for Inflammation Research, Ghent, Belgium. 8

9. Department of Biomedical Molecular Biology, Ghent University, Ghent, Belgium. 9

10. Department of Applied Mathematics, Computer Science and Statistics, Ghent University, Ghent, Belgium. 10

11. VIB Single Cell Core, VIB, Ghent-Leuven, Belgium. 11

12. Department of Pathology, Ghent University Hospital, Ghent, Belgium. 12

13. GMP Unit cell Therapy, Ghent University Hospital, Ghent, Belgium. 13

Abstract

Abstract CD70 is an attractive target for chimeric antigen receptor (CAR) T-cell therapy for the treatment of both solid and liquid malignancies. However, the functionality of CD70-specific CAR T cells is modest. We optimized a CD70-specific VHH-based CAR (nanoCAR). We evaluated the nanoCARs in clinically relevant models in vitro, using co-cultures of CD70-specific nanoCAR T cells with malignant rhabdoid tumor organoids, and in vivo, using a diffuse large B-cell lymphoma patient-derived xenograft (PDX) model. Although the nanoCAR T cells were highly efficient in organoid co-cultures, they showed only modest efficacy in the PDX model. We determined that fratricide was not causing this loss in efficacy but rather CD70 interaction in cis with the nanoCAR-induced exhaustion. Knocking out CD70 in nanoCAR T cells using CRISPR/Cas9 resulted in dramatically enhanced functionality in the diffuse large B-cell lymphoma PDX model. Through single-cell transcriptomics, we obtained evidence that CD70 knockout CD70-specific nanoCAR T cells were protected from antigen-induced exhaustion. In addition, we demonstrated that wild-type CD70-specific nanoCAR T cells already exhibited signs of exhaustion shortly after production. Their gene signature strongly overlapped with gene signatures of exhausted CAR T cells. Conversely, the gene signature of knockout CD70-specific nanoCAR T cells overlapped with the gene signature of CAR T-cell infusion products leading to complete responses in chronic lymphatic leukemia patients. Our data show that CARs targeting endogenous T-cell antigens negatively affect CAR T-cell functionality by inducing an exhausted state, which can be overcome by knocking out the specific target.

Funder

Universitair Ziekenhuis Gent

Fonds Wetenschappelijk Onderzoek

Ghent University IOF

Publisher

American Association for Cancer Research (AACR)

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