Nuclear-targeted chimeric peptide nanorods to amplify innate anti-tumor immunity through localized DNA damage and STING activation

Stimulator of the interferon genes (STING) pathway is appealing but challenging to potentiate the innate anti-tumor immunity. In this work, nuclear-targeted chimeric peptide nanorods (designated as PFPD) are constructed to amplify innate immunity through localized DNA damage and STING activation. Am...

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Veröffentlicht in:Journal of controlled release 2024-05, Vol.369, p.531-544
Hauptverfasser: Wu, Yeyang, Li, Yanmei, Yan, Ni, Huang, Jiaqi, Li, Xinyu, Zhang, Keyan, Lu, Zhenming, Qiu, Ziwen, Cheng, Hong
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Sprache:eng
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Zusammenfassung:Stimulator of the interferon genes (STING) pathway is appealing but challenging to potentiate the innate anti-tumor immunity. In this work, nuclear-targeted chimeric peptide nanorods (designated as PFPD) are constructed to amplify innate immunity through localized DNA damage and STING activation. Among which, the chimeric peptide (PpIX-FFVLKPKKKRKV) is fabricated with photosensitizer and nucleus targeting peptide sequence, which can self-assemble into nanorods and load STING agonist of DMXAA. The uniform nanosize distribution and good stability of PFPD improve the sequential targeting delivery of drugs towards tumor cells and nuclei. Under light irradiation, PFPD produce a large amount of reactive oxygen species (ROS) to destroy nuclear DNA in situ, and the released cytosolic DNA fragment will efficiently activate innate anti-tumor immunity in combination with STING agonist. In vitro and in vivo results indicate the superior ability of PFPD to activate natural killer cells and T cells, thus efficiently eradicating lung metastatic tumor without inducing unwanted side effects. This work provides a sophisticated strategy for localized activation of innate immunity for systemic tumor treatment, which may inspire the rational design of nanomedicine for tumor precision therapy. A nuclear-targeted chimeric peptide is constructed to load STING agonist developing stable and uniform nanorods. The nanorods upon light excitation can generate reactive oxygen species (ROS) to destroy nuclear DNA in situ, and the released cytosolic DNA fragments will efficiently activate innate anti-tumor immunity in combination with STING agonist, thus enhancing the suppression on tumor proliferation and metastasis. [Display omitted]
ISSN:0168-3659
1873-4995
DOI:10.1016/j.jconrel.2024.04.008