A dual-ion/immune checkpoint nanoplatform-activated pyroptosis/cGAS-STING signaling transform iMWA into systemic

Mengqi Zhang1, Chao Rong2, Hejia Qin1

  • 1Department of Ultrasound and Department of Radiology, Department of Interventional Therapy, Guangxi Medical University Cancer Hospital, Guangxi Medical University, No. 71 Hedi Road, Nanning, Guangxi Zhuang Autonomous Region, 530021, China.

Materials Today. Bio
|August 28, 2026
PubMed

Incomplete microwave ablation (iMWA) remains a major challenge in the clinical management of hepatocellular carcinoma (HCC), as residual tumors often foster an immunosuppressive microenvironment and upregulate PD-L1 expression, thereby promoting immune evasion and recurrence. This study systematically elucidates the mechanisms underlying HCC progression and metastasis following iMWA and describes the design of a dual-ion/immune checkpoint nanoplatform (aP@Mn/Ca) based on a metal-organic framework (MOF). Leveraging the excellent biocompatibility and tumor microenvironment-responsive degradability of MOFs, this platform enables efficient co-delivery of Ca2+, Mn2+, and an anti-PD-L1 (aPD-L1) antibody specifically to residual tumor tissues to overcome post-ablation immune barriers. Specifically, upon tumor accumulation, controlled Ca2+ release induces mitochondrial stress and inflammasome activation, triggering gasdermin-mediated pyroptosis and immunogenic cell death (ICD). Concurrently, Mn2+ activates innate immunity by potentiating the cGAS-STING signaling pathway. This synergistic induction of pyroptosis and STING activation promotes inflammatory cytokine production, antigen presentation, and cytotoxic T cell priming. Meanwhile, the local delivery of aPD-L1 mitigates adaptive immunosuppression and reduces systemic toxicity. Consequently, aP@Mn/Ca transforms iMWA into a systemic immunotherapeutic strategy, effectively suppressing HCC recurrence and metastasis both in vitro and in vivo. In summary, this work establishes an ion-based immunomodulatory paradigm integrating ICD, innate immune activation, and immune checkpoint blockade, offering a promising nanotherapeutic framework for preventing post-ablation HCC recurrence and enhancing immunotherapy in solid tumors.

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