Engineering anti-GD2 monoclonal antibodies for cancer immunotherapy
Mahiuddin Ahmed1, Nai-Kong V Cheung1
1Department of Pediatrics, Memorial Sloan-Kettering Cancer Center, 1275 York Avenue, New York, NY 10065, USA.
Abstract:
Ganglioside GD2 is highly expressed on neuroectoderm-derived tumors and sarcomas, including neuroblastoma, retinoblastoma, melanoma, small cell lung cancer, brain tumors, osteosarcoma, rhabdomyosarcoma, Ewing's sarcoma in children and adolescents, as well as liposarcoma, fibrosarcoma, leiomyosarcoma and other soft tissue sarcomas in adults. Since GD2 expression in normal tissues is restricted to the brain, which is inaccessible to circulating antibodies, and in selected peripheral nerves and melanocytes, it was deemed a suitable target for systemic tumor immunotherapy. Anti-GD2 antibodies have been actively tested in clinical trials for neuroblastoma for over the past two decades, with proven safety and efficacy. The main limitations have been acute pain toxicity associated with GD2 expression on peripheral nerve fibers and the inability of antibodies to treat bulky tumor. Several strategies have been developed to reduce pain toxicity, including bypassing complement activation, using blocking antibodies, or targeting of O-acetyl-GD2 derivative that is not expressed on peripheral nerves. To enhance anti-tumor efficacy, anti-GD2 monoclonal antibodies and fragments have been engineered into immunocytokines, immunotoxins, antibody drug conjugates, radiolabeled antibodies, targeted nanoparticles, T-cell engaging bispecific antibodies, and chimeric antigen receptors. The challenges of these approaches will be reviewed to build a perspective for next generation anti-GD2 therapeutics in cancer therapy.
Insights
Ganglioside GD2 immunotherapy shows promise for various cancers, including neuroblastoma. Strategies are evolving to overcome limitations like pain toxicity and improve efficacy against bulky tumors.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Ganglioside GD2 is highly expressed on neuroectoderm-derived tumors and sarcomas.
- GD2 expression in normal tissues is limited, making it a suitable target for immunotherapy.
- Anti-GD2 antibodies have shown safety and efficacy in clinical trials, particularly for neuroblastoma.
Purpose of the Study:
- To review the development and challenges of anti-GD2 therapeutics.
- To explore strategies for reducing pain toxicity and enhancing anti-tumor efficacy.
- To provide a perspective on next-generation anti-GD2 cancer therapies.
Main Methods:
- Review of clinical trials and therapeutic strategies involving anti-GD2 antibodies.
- Engineering of anti-GD2 monoclonal antibodies and fragments into various therapeutic formats.
- Analysis of approaches to mitigate pain toxicity and improve treatment of bulky tumors.
Main Results:
- Anti-GD2 antibodies have demonstrated safety and efficacy in treating neuroblastoma.
- Limitations include pain toxicity and challenges in treating bulky tumors.
- Various engineered anti-GD2 therapeutics have been developed to enhance efficacy.
Conclusions:
- Anti-GD2 immunotherapy is a promising approach for treating GD2-expressing cancers.
- Overcoming pain toxicity and improving efficacy against bulky tumors are key challenges.
- Next-generation anti-GD2 therapeutics hold potential for improved cancer treatment outcomes.
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