Metformin-conjugated radiopaque nanogels with RF-triggered phase transition for programmable embolization and PD-L1 degradation

Transcatheter arterial chemoembolization (TACE) is widely used for hepatocellular carcinoma (HCC), yet its efficacy is frequently undermined by hypoxia-driven neovascularization and the consequent immune evasion that fuels recurrence. To overcome these limitations, we developed LM@ p Met 20 , a metformin-based upper critical solution temperature-type embolic agent loaded with liquid metal. Upon injection, LM@ p Met 20 underwent an initial sol-to-gel transition to occlude tumor vessels. Subsequent radiofrequency (RF) heating triggered a reversible gel-to-sol transition, allowing image-guided redistribution of the embolus to occlude neovessels. After RF cessation, LM@ p Met 20 re-gelled at physiological temperature, achieving on-demand, repeatable embolization within a single session to block both primary and collateral vessels. Furthermore, RF irradiation induced reactive oxygen species (ROS) generation from LM@ p Met 20 , contributing to direct tumor cytotoxicity. As a bioactive metformin-based system, LM@ p Met 20 metabolically reprogrammed the immune microenvironment by activating the AMPK pathway to degrade PD-L1, thereby reversing TACE-induced immune evasion. This effect synergized with anti-CTLA-4 immunotherapy to effectively suppress tumor metastasis and recurrence. Therefore, this bioactive platform integrates programmable embolization, RF-augmented dynamic therapy, and immune checkpoint-sensitizing immunotherapy in a single session, offering a promising strategy to overcome TACE resistance and improve HCC outcomes.

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Publication Details

Journal
Journal of Nanobiotechnology
Published
2026-09-15
DOI
https://doi.org/10.1186/s12951-026-05036-3
Primary Topic
Cancer, Hypoxia, and Metabolism
Type
article
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article

Metformin-conjugated radiopaque nanogels with RF-triggered phase transition for programmable embolization and PD-L1 degradation

Qingqing Zhang, Yu Zhao, Shidong Zou, Yanbing Zhao et al.
Journal of Nanobiotechnology
Cancer, Hypoxia, and Metabolism
article

Metformin-conjugated radiopaque nanogels with RF-triggered phase transition for programmable embolization and PD-L1 degradation

Qingqing Zhang, Yu Zhao, Shidong Zou, Yanbing Zhao, Xianglin Yuan, Bo Sun, Bo Liu, Yutao Zhang, Meirong Zhang, Mengqin Guo, Chuansheng Zheng, Jingjing Yu
article en

Abstract

Transcatheter arterial chemoembolization (TACE) is widely used for hepatocellular carcinoma (HCC), yet its efficacy is frequently undermined by hypoxia-driven neovascularization and the consequent immune evasion that fuels recurrence. To overcome these limitations, we developed LM@ p Met 20 , a metformin-based upper critical solution temperature-type embolic agent loaded with liquid metal. Upon injection, LM@ p Met 20 underwent an initial sol-to-gel transition to occlude tumor vessels. Subsequent radiofrequency (RF) heating triggered a reversible gel-to-sol transition, allowing image-guided redistribution of the embolus to occlude neovessels. After RF cessation, LM@ p Met 20 re-gelled at physiological temperature, achieving on-demand, repeatable embolization within a single session to block both primary and collateral vessels. Furthermore, RF irradiation induced reactive oxygen species (ROS) generation from LM@ p Met 20 , contributing to direct tumor cytotoxicity. As a bioactive metformin-based system, LM@ p Met 20 metabolically reprogrammed the immune microenvironment by activating the AMPK pathway to degrade PD-L1, thereby reversing TACE-induced immune evasion. This effect synergized with anti-CTLA-4 immunotherapy to effectively suppress tumor metastasis and recurrence. Therefore, this bioactive platform integrates programmable embolization, RF-augmented dynamic therapy, and immune checkpoint-sensitizing immunotherapy in a single session, offering a promising strategy to overcome TACE resistance and improve HCC outcomes.

Journal of Nanobiotechnology
Union Hospital (HK), Wuhan Textile University (CN), Tongji Hospital (CN), Huazhong University of Science and Technology (CN)
Openalex Percentile: Top 15%
Cancer, Hypoxia, and Metabolism
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