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Preclinical optimization of a GPC2-targeting CAR T-cell therapy for neuroblastoma
Ming Sun1, Yingying Cao2, Reona Okada1
1Pediatric Oncology Branch, NCI, Bethesda, Maryland, USA.
Background:
Although most patients with newly diagnosed high-risk neuroblastoma (NB) achieve remission after initial therapy, more than 50% experience late relapses caused by minimal residual disease (MRD) and succumb to their cancer. Therapeutic strategies to target MRD may benefit these children. We developed a new chimeric antigen receptor (CAR) targeting glypican-2 (GPC2) and conducted iterative preclinical engineering of the CAR structure to maximize its anti-tumor efficacy before clinical translation.
Methods:
We evaluated different GPC2-CAR constructs by measuring the CAR activity in vitro. NOD-SCID mice engrafted orthotopically with human NB cell lines or patient-derived xenografts and treated with human CAR T cells served as in vivo models. Mechanistic studies were performed using single-cell RNA-sequencing.
Results:
Applying stringent in vitro assays and orthotopic in vivo NB models, we demonstrated that our single-chain variable fragment, CT3, integrated into a CAR vector with a CD28 hinge, CD28 transmembrane, and 4-1BB co-stimulatory domain (CT3.28H.BBζ) elicits the best preclinical anti-NB activity compared with other tested CAR constructs. This enhanced activity was associated with an enrichment of CD8+ effector T cells in the tumor-microenvironment and upregulation of several effector molecules such as GNLY, GZMB, ZNF683, and HMGN2. Finally, we also showed that the CT3.28H.BBζ CAR we developed was more potent than a recently clinically tested GD2-targeted CAR to control NB growth in vivo.
Conclusion:
Given the robust preclinical activity of CT3.28H.BBζ, these results form a promising basis for further clinical testing in children with NB.
Insights
A new glypican-2 (GPC2) targeted chimeric antigen receptor (CAR) therapy shows strong preclinical activity against high-risk neuroblastoma (NB), offering hope for children with minimal residual disease (MRD).
Area of Science:
- Immunotherapy
- Oncology
- Molecular Engineering
Background:
- High-risk neuroblastoma (NB) frequently relapses due to minimal residual disease (MRD) despite initial therapy.
- Targeting MRD is crucial for improving outcomes in pediatric NB patients.
- Development of novel therapeutic strategies is needed to combat late relapses.
Purpose of the Study:
- To engineer and evaluate a novel chimeric antigen receptor (CAR) targeting glypican-2 (GPC2) for enhanced anti-neuroblastoma activity.
- To optimize CAR construct design for maximizing anti-tumor efficacy prior to clinical application.
Main Methods:
- In vitro evaluation of GPC2-CAR construct activity.
- Orthotopic in vivo neuroblastoma models using NOD-SCID mice engrafted with human NB cell lines and patient-derived xenografts.
- Single-cell RNA-sequencing for mechanistic studies of CAR T cell function.
Main Results:
- The CT3.28H.BBζ CAR construct demonstrated superior preclinical anti-NB activity compared to other GPC2-CAR variants in vitro and in vivo.
- Enhanced anti-tumor efficacy correlated with increased CD8+ effector T cells and upregulation of effector molecules (GNLY, GZMB, ZNF683, HMGN2) in the tumor microenvironment.
- The developed CT3.28H.BBζ CAR showed greater potency than a clinically tested GD2-targeted CAR in controlling NB growth.
Conclusions:
- The CT3.28H.BBζ CAR exhibits robust preclinical efficacy against neuroblastoma.
- These findings provide a strong foundation for clinical investigation of this GPC2-targeted CAR therapy in children with NB.
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