High-Affinity GD2-Specific CAR T Cells Induce Fatal Encephalitis in a Preclinical Neuroblastoma Model
Sarah A Richman1, Selene Nunez-Cruz2, Babak Moghimi1
1Division of Oncology, Department of Pediatrics, Children's Hospital of Philadelphia and Perelman School of Medicine at the University of Pennsylvania, Philadelphia, Pennsylvania.
Abstract:
The GD2 ganglioside, which is abundant on the surface of neuroblastoma cells, is targeted by an FDA-approved therapeutic monoclonal antibody and is an attractive tumor-associated antigen for cellular immunotherapy. Chimeric antigen receptor (CAR)-modified T cells can have potent antitumor activity in B-cell malignancies, and trials to harness this cytolytic activity toward GD2 in neuroblastoma are under way. In an effort to enhance the antitumor activity of CAR T cells that target GD2, we generated variant CAR constructs predicted to improve the stability and the affinity of the GD2-binding, 14G2a-based, single-chain variable fragment (scFv) of the CAR and compared their properties in vivo We included the E101K mutation of GD2 scFv (GD2-E101K) that has enhanced antitumor activity against a GD2+ human neuroblastoma xenograft in vivo However, this enhanced antitumor efficacy in vivo was concomitantly associated with lethal central nervous system (CNS) toxicity comprised of extensive CAR T-cell infiltration and proliferation within the brain and neuronal destruction. The encephalitis was localized to the cerebellum and basal regions of the brain that display low amounts of GD2. Our results highlight the challenges associated with target antigens that exhibit shared expression on critical normal tissues. Despite the success of GD2-specific antibody therapies in the treatment of neuroblastoma, the fatal neurotoxicity of GD2-specific CAR T-cell therapy observed in our studies suggests that GD2 may be a difficult target antigen for CAR T-cell therapy without additional strategies that can control CAR T-cell function within the CNS. Cancer Immunol Res; 6(1); 36-46. ©2017 AACR.
Insights
Chimeric antigen receptor (CAR) T-cell therapy targeting GD2 for neuroblastoma showed lethal central nervous system toxicity. Enhanced GD2 CAR T-cells may cause fatal encephalitis due to shared antigen expression on normal brain tissues.
Area of Science:
- Immunology
- Oncology
- Neuroscience
Background:
- GD2 ganglioside is a promising target for neuroblastoma immunotherapy.
- Chimeric antigen receptor (CAR) T-cell therapy is effective against B-cell malignancies.
- CAR T-cell trials targeting GD2 for neuroblastoma are ongoing.
Purpose of the Study:
- To enhance the antitumor activity of GD2-targeted CAR T-cells.
- To evaluate the in vivo properties of variant CAR constructs with improved GD2 binding.
- To investigate the safety and efficacy of enhanced GD2 CAR T-cells in neuroblastoma models.
Main Methods:
- Generation of variant CAR constructs with improved GD2 single-chain variable fragment (scFv) stability and affinity.
- Inclusion of the E101K mutation in GD2 scFv for enhanced antitumor activity.
- In vivo comparison of CAR T-cell properties against GD2+ human neuroblastoma xenografts.
Main Results:
- Enhanced GD2 CAR T-cells demonstrated potent antitumor activity against neuroblastoma xenografts.
- A lethal central nervous system (CNS) toxicity was observed, characterized by CAR T-cell infiltration and neuronal destruction.
- Encephalitis was localized to brain regions with low GD2 expression, including the cerebellum.
Conclusions:
- GD2 may be a challenging target antigen for CAR T-cell therapy due to shared expression on critical normal tissues.
- Fatal neurotoxicity associated with GD2-specific CAR T-cell therapy highlights the need for strategies to control CNS T-cell function.
- Further research is required to develop safer and more effective GD2-targeted CAR T-cell therapies for neuroblastoma.
More Related Videos
12:55Generation of CAR T Cells for Adoptive Therapy in the Context of Glioblastoma Standard of Care
Published on: February 16, 2015
06:08Assessment of Chimeric Antigen Receptor T Cell-Associated Toxicities Using an Acute Lymphoblastic Leukemia Patient-Derived Xenograft Mouse Model
Published on: February 10, 2023
