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Peptide-guided adaptor-CAR T-Cell therapy for the treatment of SSTR2-expressing neuroendocrine tumors
Christian Pellegrino1, Nicholas Favalli2, Laura Volta1
1Department of Medical Oncology and Hematology, University Hospital Zürich (USZ) and University of Zürich (UZH), Comprehensive Cancer Center, Zürich, Switzerland.
Abstract:
Somatostatin receptor type 2 (SSTR2) is one of the five subtypes of somatostatin receptors and is overexpressed on the surface of most gastro-entero-pancreatic neuroendocrine tumors (GEP-NETs), pituitary tumors, paraganglioma, and meningioma, as well as hepatocellular carcinoma and breast cancer. Chimeric antigen receptor (CAR) T-cells are genetically engineered to express an artificial, T-cell activating binder, leading upon ligation to biocidal activity against target-antigen expressing cells. Adaptor-CAR T-cells recognize, via the CAR, a tag on an antigen-binding molecule, building an activating bridge between the CAR and the target cell. We hypothesized that a novel fluorescent-peptide antagonist of SSTR2, called Octo-Fluo, in combination with anti-FITC adaptor CAR (AdFITC(E2)-CAR) T-cells, may function as an on-off tunable activating bridge between the CAR and SSTR2 expressing target cells. In vitro studies confirmed the binding of Octo-Fluo to Bon1-SSTR2 mCherry-Luc cells without evidence of internalization. AdFITC(E2)-CAR T-cells were activated and efficiently induced Bon1-SSTR2 cell death in vitro, in an Octo-Fluo concentration-dependent manner. Similarly, AdFITC(E2)-CAR T-cells in combination with Octo-Fluo efficiently infiltrated the tumor and eliminated Bon1-SSTR2 tumors in immunodeficient mice in therapeutic settings. Both, AdFITC(E2)-CAR T-cell tumor infiltration and biocidal activity were Octo-Fluo concentration-dependent, with high doses of Octo-Fluo, saturating both the CAR and the SSTR2 antigen independently, leading to the loss of tumor infiltration and biocidal activity due to the loss of bridge formation. Our findings demonstrate the potential of using AdFITC(E2)-CAR T-cells with Octo-Fluo as a versatile, on-off tunable bispecific adaptor for targeted CAR T-cell immunotherapy against SSTR2-positive NETs.
Insights
This study introduces a new immunotherapy approach using adaptor CAR T-cells and a fluorescent peptide (Octo-Fluo) to target SSTR2-positive tumors. The system demonstrated tunable control over T-cell activity, effectively eliminating tumors in preclinical models.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Somatostatin receptor type 2 (SSTR2) is overexpressed in various cancers, including neuroendocrine tumors (NETs).
- Chimeric antigen receptor (CAR) T-cells offer targeted cancer therapy by recognizing specific antigens.
- Adaptor CAR T-cells utilize a bridging molecule to connect CARs with target cells.
Purpose of the Study:
- To investigate the efficacy of a novel Octo-Fluo peptide and anti-FITC adaptor CAR (AdFITC(E2)-CAR) T-cells for SSTR2-positive tumor targeting.
- To evaluate the tunable on-off activity of this CAR T-cell system in vitro and in vivo.
Main Methods:
- In vitro assessment of Octo-Fluo binding to SSTR2-expressing cells.
- Evaluation of AdFITC(E2)-CAR T-cell activation and cytotoxicity in response to Octo-Fluo.
- In vivo studies in immunodeficient mice to assess tumor infiltration and therapeutic efficacy of the combined system.
Main Results:
- Octo-Fluo bound to SSTR2-positive cells without internalization.
- AdFITC(E2)-CAR T-cells demonstrated dose-dependent tumor cell killing and tumor elimination in mice, mediated by Octo-Fluo.
- High Octo-Fluo concentrations led to loss of efficacy due to independent saturation of CAR and SSTR2, disrupting the bridge.
Conclusions:
- The AdFITC(E2)-CAR T-cell and Octo-Fluo system shows potential as a versatile, tunable bispecific adaptor for SSTR2-positive NET immunotherapy.
- This approach offers a controllable method for CAR T-cell activation and targeted cancer cell killing.

