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Published on: May 12, 2023
Harnessing a bispecific αGD2 × αCD3 protein engager to target GD2-overexpressing lung tumors
Nunghathai Sawasdee1,2, Aussara Panya3,4, Jatuporn Sujjitjoon1,2
1Faculty of Medicine, Siriraj Hospital, Siriraj Center of Research Excellence for Cancer Immunotherapy (SiCORE-CIT), Mahidol University, Bangkok, 10700, Thailand.
Abstract:
Lung cancer remains one of the most prevalent and lethal malignancies worldwide, with persistently poor 5-year survival rates across all stages. The development of novel therapies is therefore crucial for overcoming treatment resistance, improving survival rates, reducing side effects, and enhancing patient outcomes. Disialoganglioside GD2 has emerged as an attractive tumor-associated antigen for immunotherapy against various cancer types. In our study, we confirmed GD2 expression in lung cancer cells and observed differential expression levels, with A549 cells exhibiting markedly higher GD2 expression compared to NCI-H460 cells. To specifically target GD2-expressing lung cancers, we engineered a bispecific protein engager, termed αGD2 × αCD3 BiPE, designed to redirect T cells toward GD2-overexpressing lung cancer cells. The αGD2 × αCD3 BiPE (55 kDa) was successfully produced in a eukaryotic expression system and purified, as confirmed by Western blot analysis. Binding assays demonstrated that the BiPE specifically recognized GD2 on 143B osteosarcoma cells (which exhibit high GD2 expression) and CD3 on T cells. Functionally, treatment with αGD2 × αCD3 BiPE significantly enhanced T-cell activation and proliferation, as indicated by increased proportion of CD25 + CD3+ and CD69 + CD3+ cells after 5 days compared with untreated controls. In co-culture experiments, the BiPE also enhanced T-cell cytotoxicity, resulting in greater killing of A549 cells compared to NCI-H460 cells, consistent with their differential GD2 expression. These findings demonstrate that αGD2 × αCD3 BiPE effectively enhances T-cell activity and anti-tumor responses in a GD2-dependent manner. This study highlights its potential as a promising therapeutic strategy for GD2-overexpressing cancers, warranting further optimization and evaluation across diverse tumor types.
Insights
This study developed a novel bispecific protein engager (BiPE) to target disialoganglioside GD2 in lung cancer. The engineered BiPE effectively redirected T cells to kill GD2-expressing cancer cells, showing promise for new lung cancer immunotherapies.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Lung cancer has high prevalence and mortality with limited treatment options.
- Disialoganglioside GD2 is a tumor-associated antigen present in various cancers, including lung cancer.
- Targeting GD2 offers a potential strategy for novel lung cancer immunotherapies.
Purpose of the Study:
- To engineer and evaluate a bispecific protein engager (BiPE) targeting GD2 on lung cancer cells.
- To assess the BiPE's ability to redirect T cells for enhanced anti-tumor activity.
- To investigate the therapeutic potential of GD2-targeted immunotherapy in lung cancer models.
Main Methods:
- Engineered a bispecific protein engager (αGD2×αCD3 BiPE) to bind GD2 on tumor cells and CD3 on T cells.
- Produced and purified the BiPE using a eukaryotic expression system.
- Assessed BiPE binding specificity, T-cell activation, proliferation, and cytotoxicity in vitro.
Main Results:
- The αGD2×αCD3 BiPE was successfully produced and specifically bound to GD2 and CD3.
- BiPE treatment significantly enhanced T-cell activation, proliferation, and cytotoxicity against GD2-expressing lung cancer cells.
- Cytotoxicity was dependent on GD2 expression levels, with higher killing observed in A549 cells.
Conclusions:
- The αGD2×αCD3 BiPE effectively enhances T-cell-mediated anti-tumor responses in a GD2-dependent manner.
- This BiPE demonstrates potential as a novel therapeutic strategy for GD2-overexpressing lung cancers.
- Further studies are warranted to optimize and evaluate this approach in diverse tumor types.

