Temporal remodeling of the post–irreversible electroporation stromal–immune barrier in pancreatic cancer via dual-targeted microspheres

Irreversible electroporation (IRE) efficacy in pancreatic cancer is limited by post-ablation stromal barriers and immune suppression. To address this, we engineered temporally staggered gas-releasing short fiber–microspheres (NOHSM) that spatiotemporally coordinate NO and H 2 S delivery. NOHSM sensitizes pancreatic cancer to IRE by sequentially dismantling the robust extracellular matrix barrier and reversing post-ablation immunosuppression. Mechanistically, the outer short fibers rapidly release NO in response to the glutathione-rich tumor microenvironment. This NO reacts with IRE-induced reactive oxygen species to form peroxynitrite, which activates matrix metalloproteinases to degrade the rigid stroma. Concurrently, the inner hydrogel microspheres continuously generate H 2 S via enzymatic catalysis by tumor-overexpressed cystathionine β-synthase, which inhibits STAT3 phosphorylation to reverse the IRE-induced surge in pro-tumorigenic Th17 cell differentiation. Furthermore, NOHSM triggers a robust antitumor immune cascade, promoting dendritic cell maturation, M1 macrophage polarization, and enhanced CD8 + T cell cytotoxicity. In murine orthotopic pancreatic tumor models, local administration of NOHSM following IRE demonstrated potent primary tumor suppression and elicited a systemic abscopal effect that inhibited distant liver and lung metastases. This work establishes NOHSM as an intelligent IRE-responsive platform to overcome stromal and immune barriers in pancreatic cancer ablation therapy.

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Publication Details

Journal
Journal of Nanobiotechnology
Published
2026-09-15
DOI
https://doi.org/10.1186/s12951-026-05077-8
Primary Topic
Microbial Inactivation Methods
Type
article
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article

Temporal remodeling of the post–irreversible electroporation stromal–immune barrier in pancreatic cancer via dual-targeted microspheres

Zilong Qiu, Yaping Zhuang, Qungang Shan, Zhuozhuo Wu et al.
Journal of Nanobiotechnology
Microbial Inactivation Methods
article

Temporal remodeling of the post–irreversible electroporation stromal–immune barrier in pancreatic cancer via dual-targeted microspheres

Zilong Qiu, Yaping Zhuang, Qungang Shan, Zhuozhuo Wu, Yin Xu, Zhongmin Wang, Chaojie Li, Yuyue Jiang, Binbin Ji, Xiaoyu Liu, Xu Xu, Wei Huang, Mengmeng Du, Yifan Yang, Jian Lu, Ziyu Yang
article en

Abstract

Irreversible electroporation (IRE) efficacy in pancreatic cancer is limited by post-ablation stromal barriers and immune suppression. To address this, we engineered temporally staggered gas-releasing short fiber–microspheres (NOHSM) that spatiotemporally coordinate NO and H 2 S delivery. NOHSM sensitizes pancreatic cancer to IRE by sequentially dismantling the robust extracellular matrix barrier and reversing post-ablation immunosuppression. Mechanistically, the outer short fibers rapidly release NO in response to the glutathione-rich tumor microenvironment. This NO reacts with IRE-induced reactive oxygen species to form peroxynitrite, which activates matrix metalloproteinases to degrade the rigid stroma. Concurrently, the inner hydrogel microspheres continuously generate H 2 S via enzymatic catalysis by tumor-overexpressed cystathionine β-synthase, which inhibits STAT3 phosphorylation to reverse the IRE-induced surge in pro-tumorigenic Th17 cell differentiation. Furthermore, NOHSM triggers a robust antitumor immune cascade, promoting dendritic cell maturation, M1 macrophage polarization, and enhanced CD8 + T cell cytotoxicity. In murine orthotopic pancreatic tumor models, local administration of NOHSM following IRE demonstrated potent primary tumor suppression and elicited a systemic abscopal effect that inhibited distant liver and lung metastases. This work establishes NOHSM as an intelligent IRE-responsive platform to overcome stromal and immune barriers in pancreatic cancer ablation therapy.

Journal of Nanobiotechnology
Shanghai Jiao Tong University (CN), Ruijin Hospital (CN), Songjiang District Central Hospital (CN), Dali University (CN)
Openalex Percentile: Top 16%
Microbial Inactivation Methods
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