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January 26, 2026Science Advances3 citationsOpen Access

Oxidation-activated nanotherapy boosts tumor immunity and disrupts tumor-nerve crosstalk to combat bone metastases and cancer pain

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ZZZhaowei ZhangPCPengfei ChenYZYupeng Zheng

Key Points

  • This research aims to develop a nanotherapy that combats bone metastases by enhancing immune responses and disrupting tumor-nerve interactions.
  • Developed a liposomal nanoplatform (LipoNCs@pGSDMB) that delivers a STING agonist and GSDMB plasmid.
  • Activated the nanotherapy in metastatic bone niches to induce immune responses.
  • Restored VGCC expression in tumor cells through multiomics analysis.
  • Evaluated the approach in breast cancer bone metastasis models.
  • Achieved 94% tumor suppression in animal models.
  • Demonstrated complete resolution of cancer-related pain.
  • Restored bone health observed post-treatment.

Abstract

Bone metastasis remains a formidable challenge in oncology due to the interdependent triad of immunosuppression, neuropathic pain, and osteolytic destruction. Current treatments fail to holistically address these pathophysiological axes. Here, we develop a reactive oxygen species (ROS)–responsive liposomal nanoplatform (LipoNCs@pGSDMB) that codelivers a polymeric stimulator of interferon genes (STING) agonist and a gasdermin B (GSDMB) plasmid for dual neuro-immune modulation. Upon tumor-selective activation in metastatic bone niches, this nanotherapy induces STING-driven immune priming and GSDMB-mediated pyroptosis, triggering potent antitumor responses. Crucially, LipoNCs@pGSDMB restore voltage-gated calcium channel (VGCC) expression in tumor cells, a prognostic biomarker identified through multiomics analysis of clinical specimens, thereby blocking calcium-dependent neurosignaling and disrupting prometastatic tumor-nerve cross-talk. In breast cancer bone metastasis models, this approach achieves 94% tumor suppression, complete pain resolution, and efficient bone restoration. By converging oxidation-responsive nanomaterial engineering, immunomodulation, and neural circuit reprogramming, this work establishes a paradigm-shifting neuroimmunotherapy platform that dismantles the self-reinforcing metastasis niche while addressing its debilitating sequelae.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/697703af722626c4468e8c2bhttps://doi.org/10.1126/sciadv.ady1292
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