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Updated: Dec 13, 2025

Preparation of CD4+ T Cells for Analysis of GD3 and GD2 Ganglioside Membrane Expression by Microscopy
Published on: November 8, 2016
Disialoganglioside GD2 Expression in Solid Tumors and Role as a Target for Cancer Therapy
Bassel Nazha1, Cengiz Inal2, Taofeek K Owonikoko1
1Department of Hematology and Medical Oncology, Emory University School of Medicine, Atlanta, GA, United States.
Abstract:
Gangliosides are carbohydrate-containing sphingolipids that are widely expressed in normal tissues, making most subtypes unsuitable as targets for cancer therapy. However, the disialoganglioside GD2 subtype has limited expression in normal tissues but is overexpressed across a wide range of tumors. Disialoganglioside GD2 can be considered a tumor-associated antigen and well-suited as a target for cancer therapy. Disialoganglioside GD2 is implicated in tumor development and malignant phenotypes through enhanced cell proliferation, motility, migration, adhesion, and invasion, depending on the tumor type. This provides a rationale for targeting disialoganglioside GD2 in cancer therapy with the development of anti-GD2 monoclonal antibodies and other therapeutic approaches. Anti-GD2 monoclonal antibodies target GD2-expressing tumor cells, leading to phagocytosis and destruction by means of antibody-dependent cell-mediated cytotoxicity, lysis by complement-dependent cytotoxicity, and apoptosis and necrosis through direct induction of cell death. Anti-GD2 monoclonal antibodies may also prevent homing and adhesion of circulating malignant cells to the extracellular matrix. Disialoganglioside GD2 is highly expressed by almost all neuroblastomas, by most melanomas and retinoblastomas, and by many Ewing sarcomas and, to a more variable degree, by small cell lung cancer, gliomas, osteosarcomas, and soft tissue sarcomas. Successful treatment of disialoganglioside GD2-expressing tumors with anti-GD2 monoclonal antibodies is hindered by pharmacologic factors such as insufficient antibody affinity to mediate antibody-dependent cell-mediated cytotoxicity, inadequate penetration of antibody into the tumor microenvironment, and toxicity related to disialoganglioside GD2 expression by normal tissues such as peripheral sensory nerve fibers. Nonetheless, anti-GD2 monoclonal antibody dinutuximab (ch14.18) has been approved by the U.S. Food and Drug Administration and dinutuximab beta (ch14.18/CHO) has been approved by the European Medicines Agency for the treatment of high-risk neuroblastoma in pediatric patients. Clinical trials of anti-GD2 therapy are currently ongoing in patients with other types of disialoganglioside GD2-expressing tumors as well as neuroblastoma. In addition to anti-GD2 monoclonal antibodies, anti-GD2 therapeutic approaches include chimeric antigen receptor T-cell therapy, disialoganglioside GD2 vaccines, immunocytokines, immunotoxins, antibody-drug conjugates, radiolabeled antibodies, targeted nanoparticles, and T-cell engaging bispecific antibodies. Clinical trials should clarify further the potential of anti-GD2 therapy for disialoganglioside GD2-expressing malignant tumors.
Insights
Disialoganglioside GD2 (GD2) is a promising tumor-associated antigen for cancer therapy due to its limited expression in normal tissues. Anti-GD2 therapies, including monoclonal antibodies, show potential against various GD2-expressing cancers like neuroblastoma.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Gangliosides are sphingolipids with varied tissue expression.
- Disialoganglioside GD2 (GD2) is overexpressed in many tumors but minimally in normal tissues, making it a suitable tumor-associated antigen.
- GD2 expression correlates with tumor development, proliferation, motility, and invasion.
Purpose of the Study:
- To review the rationale and therapeutic strategies targeting disialoganglioside GD2 in cancer.
- To discuss the efficacy and limitations of anti-GD2 monoclonal antibodies and other emerging therapies.
- To highlight ongoing clinical trials and future directions for GD2-targeted cancer treatment.
Main Methods:
- Review of scientific literature on disialoganglioside GD2 biology and cancer.
- Analysis of therapeutic approaches including monoclonal antibodies, cell therapies, vaccines, and antibody conjugates.
- Examination of clinical trial data and approved GD2-targeted therapies.
Main Results:
- Anti-GD2 monoclonal antibodies induce tumor cell destruction via antibody-dependent cell-mediated cytotoxicity, complement-dependent cytotoxicity, and direct cell death.
- Dinutuximab (ch14.18) and dinutuximab beta (ch14.18/CHO) are approved for high-risk neuroblastoma.
- Challenges include insufficient antibody affinity, tumor penetration, and on-target, off-tumor toxicities.
Conclusions:
- Disialoganglioside GD2 is a validated target for various cancers, particularly neuroblastoma, melanoma, and retinoblastoma.
- Diverse therapeutic strategies beyond monoclonal antibodies are under investigation to overcome treatment limitations.
- Further clinical trials are essential to fully elucidate the potential of anti-GD2 therapies in oncology.

