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Published on: July 7, 2023
Targeted PD-L1 degradation with an injectable hydrogel reverses chemotherapy-induced compensatory immunosuppression
Chen Chen1,2, Jiancong Xie2,3, Yunsheng Zheng1,2
1Department of General Surgery, School of Medicine, The Second Affiliated Hospital of South China University of Technology (Guangzhou First People's Hospital), South China University of Technology, Guangzhou, Guangdong, 510180, China.
Abstract:
Chemotherapy frequently induces compensatory PD-L1 upregulation in tumor cells. This adaptive response limits the durability of immune checkpoint blockade and contributes to therapeutic resistance. To overcome this barrier, we engineered an injectable hydrogel system (G-DMNP/Met) for sustained, localized PD-L1 degradation. The hydrogel continuously releases PEGylated doxorubicin-Mn2+ chelate nanoparticles (DMNP) and metformin (Met) within the tumor microenvironment. This design enforces persistent depletion of PD-L1 and sensitizes tumors to chemo-immunotherapy. Unlike antibody-based PD-1/PD-L1 blockade, which transiently interrupts receptor-ligand engagement, our strategy directly reduces total PD-L1 protein levels. Continuous degradation prevents chemotherapy-induced PD-L1 rebound and reverses compensatory immune tolerance at its source. Local released DMNP induces immunogenic cell death and activates the cGAS-STING pathway via Mn2+-mediated signaling. This process enhances interferon-gamma (IFN-γ) production and restores cytotoxic T lymphocyte priming and effector function. Concurrently, sustained Met release further accelerates PD-L1 degradation, alleviates post-chemotherapy immunosuppression, and promotes effector T-cell infiltration. In vivo, this triple-synergistic approach, PD-L1 degradation, immunogenic cell death induction, and cGAS-STING activation, robustly amplifies antitumor immunity and effectively suppresses immune-cold colorectal tumors under chemotherapeutic conditions. This work presented a protein degradation-driven chemo-immunotherapy paradigm that overcomes chemotherapy-induced adaptive immune resistance and potentiates durable therapeutic responses.
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