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Updated: Nov 17, 2025

Analysis of Human T Cell Activity in an Allogeneic Co-Culture Setting of Pre-Treated Tumor Cells
Published on: March 7, 2025
Immune checkpoint: The novel target for antitumor therapy
Xianghu Jiang1, Guohong Liu2, Yirong Li1
1Department of Laboratory Medicine, Zhongnan Hospital of Wuhan University, Wuhan University, Wuhan, Hubei, 430072, PR China.
Insights
Immune checkpoint blockers (ICBs) show promise in cancer treatment but have variable efficacy and side effects. Biomarker research is crucial for personalized immunotherapy and combining ICBs with other treatments for better outcomes.
Area of Science:
- Oncology
- Immunology
- Biomarker Research
Background:
- Immune checkpoint molecules (e.g., PD-1, CTLA-4) regulate T cell activation and are upregulated in tumors.
- Immune checkpoint blockers (ICBs) have revolutionized cancer therapy, improving patient survival.
- However, ICB efficacy varies, and immune-related adverse events (irAEs) are common.
Purpose of the Study:
- To highlight the importance of understanding immune checkpoint mechanisms for individualized therapy.
- To emphasize the need for novel biomarkers and combination therapies to improve ICB effectiveness.
- To guide clinicians in selecting patients likely to benefit from or resist specific ICB treatments.
Main Methods:
- Review of current literature on immune checkpoint molecules and ICBs.
- Analysis of spatial and temporal expression patterns of immune checkpoints.
- Exploration of novel biomarkers (exosomes, ctDNA) and combination strategies (chemotherapy, radiotherapy).
Main Results:
- ICBs targeting PD-1, PD-L1, CTLA-4, and TIM-3 have demonstrated significant clinical success.
- Understanding differential expression of immune checkpoints is key to optimizing individualized therapies.
- Combining ICBs with biomarkers and other anticancer modalities can overcome resistance and improve outcomes.
Conclusions:
- Biomarker research is essential for predicting ICB response and managing irAEs.
- Personalized immunotherapy requires a deep understanding of immune checkpoint regulation.
- Future cancer treatment strategies should integrate ICBs with novel biomarkers and multimodal approaches for enhanced efficacy.
Abstract:
Inhibitory checkpoint molecules include programmed cell death-1 (PD-1), programmed cell death ligand-1 (PD-L1), cytotoxic T lymphocyte antigen-4 (CTLA-4), human endogenous retrovirus-H Long terminal repeat-associating 2 (HHLA2), B7 homolog 4 protein (B7-H4), T cell membrane protein-3 (TIM-3) and Lymphocyte-activation gene 3 (LAG-3), which are up-regulated during tumorigenesis. These pathways are essential to down-regulate the immune system by blocking the activation of T cells. In recent years, immune checkpoint blockers (ICBs) against PD-1, PD-L1, CTLA-4 or TIM-3 has made remarkable progress in the clinical application, revolutionizing the treatment of malignant tumors and improving patients' overall survival. However, the efficacy of ICBs in some patients does not seem to be good enough, and more immune-related adverse events (irAEs) will inevitably occur. Therefore, biomarkers research provides practical guidance for clinicians to identify patients who are most likely to benefit from or exhibit resistance to particular types of immune checkpoint therapy. There are two points in general. On the one hand, given the spatial and temporal differential expression of immune checkpoint molecules during immunosuppression process, it is essential to understand their mechanisms to design the most effective individualized therapy. On the other hand, due to the lack of potent immune checkpoints, it is necessary to combine them with novel biomarkers (such as exosomes and ctDNA) and other anticancer modalities (such as chemotherapy and radiotherapy).
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