Light-Driven Plasma Membrane-to-Nucleus Cascade Targeting Achieves Concurrent Pyroptosis and STING Activation

光敏剂 上睑下垂 光动力疗法 生物物理学 程序性细胞死亡 细胞生物学 化学 材料科学 癌症研究 细胞 免疫系统 细胞膜 磷酰胆碱 细胞毒性 体内 纳米技术 小分子 DNA损伤
作者
Xingxing Ma,Lingyu Liu,Xin-qi Li,Haitao Song,Yile Zhao,Atikaimu Aili,Kang‐Nan Wang,Tiejun Mi,Yanrong Zhang
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
标识
DOI:10.1021/acsami.6c14820
摘要

Sequential targeting of the plasma membrane and nucleus holds great promise for concurrent pyroptosis and STING-mediated antitumor immunity, but achieving such cascade localization with a single molecular entity remains challenging, as existing strategies rely on multi-component carriers or endogenous stimuli with limited spatiotemporal precision. Here, we report the first example of a light-driven, carrier-free, plasma membrane-to-nucleus cascade-targeting photosensitizer (PMNu-4-NI) that operates through a single small molecule. Designed with a hydrophobic, planar naphthalimide unit and a dicationic triphenylamine pyridinium core, PMNu-4-NI initially anchors in the plasma membrane. Upon light irradiation, localized ROS generation disrupts membrane integrity, triggering pyroptosis via the caspase-1/GSDMD pathway, while simultaneously releasing the molecule from the membrane. The liberated photosensitizer then translocates into the nucleus, where the naphthalimide moiety intercalates into DNA and activates the cGAS-STING pathway. This dual, time-resolved action couples membrane-initiated pyroptosis with nuclear-initiated STING activation, producing a robust immunogenic cell death response. In a murine 4T1 breast tumor model, PMNu-4-NI achieves potent antitumor efficacy with negligible systemic toxicity. Furthermore, in vivo immune profiling reveals enhanced CD8+ T cell infiltration, a significant abscopal effect, and effective suppression of lung metastasis, collectively confirming systemic antitumor immune activation. This work establishes a design paradigm for photodynamic immunotherapy and a generalizable platform for next-generation photosensitizers with programmable spatiotemporal dynamics.

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