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Updated: Jan 31, 2026

Identifying PD-1/PD-L1 Inhibitors with Surface Plasmon Resonance Technology
Published on: May 2, 2025
PSMA-Targeting Chimeras for Cell-Type-Specific Degradation of Surface Immune Checkpoint Protein PD-L1
Yuqing Luo1,2, Xiaoxiao Gong3, Keren Peng3
1Institute of Drug Discovery and Design, College of Pharmaceutical Sciences, Zhejiang University, 866 Yuhangtang Rd, Hangzhou, Zhejiang 310058, China.
Abstract:
Lysosome-targeting chimera technology has been utilized to degrade proteins of interest via the endosome-lysosome pathway mediated by endogenous ligands that engage cell-surface transmembrane proteins. Despite their promising potential, current approaches remain limited by the tissue-specific expression of surface receptors required for endocytosis. Prostate-specific membrane antigen (PSMA) is highly and specifically expressed in prostate cancer, driving significant progress in PSMA-targeted therapies, particularly radioligand therapy and antibody-drug conjugates, through PSMA-mediated internalization. Leveraging this phenomenon, we developed PSMA-targeting chimeras (PATACs), a novel and readily accessible class of heterobispecific small molecules designed for membrane protein degradation. PATACs facilitate the cointernalization of a target protein of interest, directing it into the lysosomal degradation pathway. As a proof of concept, A4, a representative PATAC, induced rapid and dose-dependent degradation of programmed cell death ligand 1 (PD-L1), with significant reduction observed within 4 h at concentrations up to 100 nM. Consequently, this degradation potently enhanced T-cell-mediated killing of LNCaP cells in a coculture system. Molecular dynamics simulations revealed that PATAC A4, featuring a short and rigid linker, exhibits enhanced conformational stability within the PSMA-A4-PD-L1 ternary complexes. These findings reveal PATACs as a promising new class of bifunctional small-molecule modalities for the precise manipulation of membrane proteins and targeted therapy in prostate cancer.
Insights
We developed PSMA-targeting chimeras (PATACs) to degrade proteins in prostate cancer cells. A representative PATAC, A4, effectively reduced programmed cell death ligand 1 (PD-L1) and enhanced T-cell killing.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Lysosome-targeting chimeras degrade proteins via the endosome-lysosome pathway.
- Current methods are limited by receptor expression for endocytosis.
- Prostate-specific membrane antigen (PSMA) is highly expressed in prostate cancer, enabling targeted therapies.
Purpose of the Study:
- To develop a novel class of small molecules, PSMA-targeting chimeras (PATACs), for membrane protein degradation.
- To leverage PSMA's specific expression in prostate cancer for targeted therapy.
- To demonstrate the efficacy of PATACs in degrading target proteins and enhancing anti-cancer immunity.
Main Methods:
- Development of heterobispecific small molecules (PATACs) targeting PSMA.
- Utilizing PATACs to co-internalize target proteins into the lysosome for degradation.
- Assessing the degradation of programmed cell death ligand 1 (PD-L1) by a representative PATAC (A4).
- Evaluating the impact of PD-L1 degradation on T-cell-mediated killing in a coculture system.
- Employing molecular dynamics simulations to analyze complex stability.
Main Results:
- A representative PATAC, A4, induced rapid and dose-dependent degradation of PD-L1 within 4 hours at 100 nM.
- Degradation of PD-L1 by A4 significantly enhanced T-cell-mediated killing of LNCaP cells.
- Molecular dynamics simulations showed enhanced conformational stability of the PSMA-A4-PD-L1 ternary complex due to a rigid linker.
Conclusions:
- PATACs represent a novel and accessible class of bifunctional small molecules for membrane protein degradation.
- This technology enables precise manipulation of membrane proteins via the PSMA receptor.
- PATACs hold promise as a new modality for targeted therapy in prostate cancer.
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