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Senescence Reprogramming Unleashes Tumor Immune Surveillance via Coordinated Gene Modulation.

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Advanced materials (Deerfield Beach, Fla.) 📖 저널 OA 25.3% 2021: 1/2 OA 2024: 2/4 OA 2025: 4/17 OA 2026: 12/52 OA 2021~2026 2026 Vol.38(8) p. e16597
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Zhao K, Yan Y, Dong BT, Pan SS, Zhang XZ

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Cellular senescence can recruit immune cells for tumor therapy through the senescence-associated secretory phenotype (SASP).

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APA Zhao K, Yan Y, et al. (2026). Senescence Reprogramming Unleashes Tumor Immune Surveillance via Coordinated Gene Modulation.. Advanced materials (Deerfield Beach, Fla.), 38(8), e16597. https://doi.org/10.1002/adma.202516597
MLA Zhao K, et al.. "Senescence Reprogramming Unleashes Tumor Immune Surveillance via Coordinated Gene Modulation.." Advanced materials (Deerfield Beach, Fla.), vol. 38, no. 8, 2026, pp. e16597.
PMID 41324273 ↗

Abstract

Cellular senescence can recruit immune cells for tumor therapy through the senescence-associated secretory phenotype (SASP). However, its therapeutic efficacy is limited by immune tolerance and the immunosuppressive tumor microenvironment (TME). Reprogramming tumor-specific senescence through coordinated modulation of P16 and PD-L1 enhances tumor immunogenicity and alleviates immunosuppression. To achieve this, a target-enhanced gene delivery nanoparticle is engineered using the urokinase plasminogen activator receptor (uPAR) as a senescence-specific targeting ligand, combined with a telomerase reverse transcriptase (TERT) promoter and a nuclear localization signal-microtubule-associated sequence (NLS-MTAS) peptide. This system efficiently induces tumor-specific senescence through cell-cycle arrest and promotes the chemotactic recruitment of cytotoxic immune cells. In vivo, the nanoparticle induces a robust anti-tumor response without causing systemic toxicity and significantly enhances the therapeutic efficacy of αCTLA-4 immune checkpoint blockade in subcutaneous, lung metastasis, postoperative recurrence, and spontaneous tumor models. This study emphasizes the therapeutic potential of reprogramming tumor-specific senescence to improve targeted gene delivery and immunotherapy outcomes, offering a viable approach for the treatment of immunologically "cold" tumors.

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