Related Experiment Video
Updated: Jun 9, 2026

Peptide:MHC Tetramer-based Enrichment of Epitope-specific T cells
Published on: October 22, 2012
Harnessing Self-Assembling Peptides on γδ T Cells to Enhance Anti-Tumor Immunity
Juan Liang1, Yu Fang1, Bihan Wu1
1Department of Chemistry, School of Science, Westlake University, No. 600 Dunyu Road, Hangzhou, Zhejiang 310024, China.
Abstract:
γδ T cells possess significant anti-tumor potential; however, the expression of immune checkpoint molecules on tumor cells often leads to functional exhaustion of these T cells, resulting in variable outcomes in clinical trials. Targeting these immune checkpoints may alleviate the inhibitory effects of the tumor microenvironment on γδ T cell functionality. In this study, we developed a PD-L1-targeting peptide conjugated with maleimide, facilitating self-assembly on the surface of γδ T cells to form fibrous structures via Michael addition reactions with thiol groups on the cell membrane. Our findings demonstrate that this peptide effectively binds and self-assembles without impairing the proliferation or effector functions of γδ T cells. Notably, peptide-modified γδ T cells exhibited enhanced cytotoxic activity against tumor cells in vitro and significantly inhibited tumor growth in vivo. Furthermore, these modified γδ T cells promoted the infiltration of CD8+ T cells and M1 macrophages into the tumor microenvironment. These results indicate that peptide-modified γδ T cells not only inhibit tumor progression but also mitigate the suppressive effects of the tumor microenvironment, thereby enhancing the synergistic anti-tumor responses of other immune cells. This research presents a straightforward and effective strategy for improving the immunosuppressive tumor microenvironment and augmenting the anti-tumor efficacy of γδ T cells.
Insights
This study engineered γδ T cells using a PD-L1-targeting peptide to overcome tumor immune evasion. Modified cells showed enhanced anti-tumor activity and improved the tumor microenvironment for synergistic immune responses.
Area of Science:
- Immunology
- Cancer Biology
- Biotechnology
Background:
- Gamma delta (γδ) T cells have anti-tumor potential but are often functionally exhausted by tumor immune checkpoints.
- The tumor microenvironment (TME) frequently suppresses γδ T cell activity, leading to variable clinical trial outcomes.
Purpose of the Study:
- To develop a strategy to enhance γδ T cell anti-tumor efficacy by targeting immune checkpoints.
- To investigate the potential of a novel peptide-modified γδ T cell therapy to overcome tumor-induced immunosuppression.
Main Methods:
- A PD-L1-targeting peptide was conjugated with maleimide for self-assembly onto γδ T cells via Michael addition.
- The peptide's effect on γδ T cell proliferation and effector functions was assessed.
- In vitro cytotoxicity and in vivo tumor growth inhibition by modified γδ T cells were evaluated.
Main Results:
- The peptide self-assembled on γδ T cells without impairing their function.
- Peptide-modified γδ T cells demonstrated enhanced cytotoxic activity against tumor cells in vitro.
- In vivo studies showed significant inhibition of tumor growth and increased infiltration of CD8+ T cells and M1 macrophages.
Conclusions:
- Peptide-modified γδ T cells effectively inhibit tumor progression and remodel the TME.
- This approach enhances synergistic anti-tumor responses by other immune cells.
- This strategy offers a promising method to improve the immunosuppressive TME and boost γδ T cell-based cancer immunotherapy.

