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Updated: Nov 30, 2025

Identifying PD-1/PD-L1 Inhibitors with Surface Plasmon Resonance Technology
Published on: May 2, 2025
Virtual Screening and In Vitro Evaluation of PD-1 Dimer Stabilizers for Uncoupling PD-1/PD-L1 Interaction from
Jrhau Lung1, Ming-Szu Hung2,3,4, Yu-Ching Lin2,3,4
1Department of Medical Research and Development, Chang Gung Memorial Hospital, Chiayi Branch 613, Taiwan.
Abstract:
Genetic mutations accumulated overtime could generate many growth and survival advantages for cancer cells, but these mutations also mark cancer cells as targets to be eliminated by the immune system. To evade immune surveillance, cancer cells adopted different intrinsic molecules to suppress immune response. PD-L1 is frequently overexpressed in many cancer cells, and its engagement with PD-1 on T cells diminishes the extent of cytotoxicity from the immune system. To resume immunity for fighting cancer, several therapeutic antibodies disrupting the PD-1/PD-L1 interaction have been introduced in clinical practice. However, their immunogenicity, low tissue penetrance, and high production costs rendered these antibodies beneficial to only a limited number of patients. PD-L1 dimer formation shields the interaction interface for PD-1 binding; hence, screening for small molecule compounds stabilizing the PD-L1 dimer may make immune therapy more effective and widely affordable. In the current study, 111 candidates were selected from over 180,000 natural compound structures through virtual screening, contact fingerprint analysis, and pharmacological property prediction. Twenty-two representative candidates were further evaluated in vitro. Two compounds were found capable of inhibiting the PD-1/PD-L1 interaction and promoting PD-L1 dimer formation. Further structure optimization and clinical development of these lead inhibitors will eventually lead to more effective and affordable immunotherapeutic drugs for cancer patients.
Insights
New small molecule compounds stabilize PD-L1 dimers, potentially enhancing cancer immunotherapy. This approach aims to improve treatment effectiveness and affordability by blocking the PD-1/PD-L1 interaction, offering a promising alternative to current antibody therapies.
Area of Science:
- Oncology
- Immunology
- Drug Discovery
Background:
- Cancer cells accumulate mutations conferring growth advantages but also becoming targets for the immune system.
- Cancer cells evade immune surveillance by expressing molecules like PD-L1, which suppresses T cell-mediated cytotoxicity via PD-1 interaction.
- Current antibody therapies targeting PD-1/PD-L1 are limited by immunogenicity, poor tissue penetration, and high costs.
Purpose of the Study:
- To identify small molecule compounds that stabilize PD-L1 dimers, thereby inhibiting the PD-1/PD-L1 interaction.
- To develop more effective and affordable cancer immunotherapies.
Main Methods:
- Virtual screening of over 180,000 natural compounds.
- Contact fingerprint analysis and pharmacological property prediction.
- In vitro evaluation of 22 selected candidate compounds.
Main Results:
- Identified 111 potential drug candidates through computational screening.
- Two compounds demonstrated inhibition of the PD-1/PD-L1 interaction.
- These two compounds were found to promote PD-L1 dimer formation.
Conclusions:
- Small molecules stabilizing PD-L1 dimers represent a promising strategy for cancer immunotherapy.
- Further optimization and clinical development could lead to more accessible and effective cancer treatments.
- This approach may overcome limitations associated with current antibody-based therapies.
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