Multi-pathway oxidative stress amplification via controllably targeted nanomaterials for photoimmunotherapy of tumors.

IF 12.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2025-01-22 DOI:10.1186/s12951-025-03116-4
Song Li, Yunheng Liu, Xiaokang Zhang, Yurong Liu, Longqing Si, Shaojing Jiang, Aoya Wang, Xukai Che, Jing Chen, Jinghui Hu
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Abstract

Photoimmunotherapy, which combines phototherapy with immunotherapy, exhibits significantly improved therapeutic effects compared with mono-treatment regimens. However, its use is associated with drawbacks, such as insufficient reactive oxygen species (ROS) production and uneven photosensitizer distribution. To address these issues, we developed a controllable, targeted nanosystem that enhances oxidative stress through multiple pathways, achieving synergistic photothermal, photodynamic, and immunotherapy effects for tumor treatment. These nanoparticles (D/I@HST NPs) accurately target overexpressed transferrin receptors (TfRs) on the surface of tumor cells through surface-modified transferrin (Tf). After endocytosis, D/I@HST NPs generate ROS under 808-nm laser irradiation, breaking the ROS-responsive crosslinking agent and increasing drug release and utilization. Tf also carries Fe3+, which is reduced to Fe2+ by iron reductase in the acidic tumor microenvironment (TME). Consequently, the endoperoxide bridge structure in dihydroartemisinin is cleaved, causing additional ROS generation. Furthermore, the released IR-780 exerts both photodynamic and photothermal effects, enhancing tumor cell death. This multi-pathway oxidative stress amplification and photothermal effect can trigger immunogenic cell death in tumors, promoting the release of relevant antigens and damage-associated molecular patterns, thereby increasing dendritic cell maturation and sensitivity of tumor cells to immunotherapy. Mature dendritic cells transmit signals to T cells, increasing T cells infiltration and activation, facilitating tumor growth inhibition and the suppression of lung metastasis. Furthermore, the myeloid-derived suppressor cells in the tumor decreases significantly after treatment. In summary, this multi-pathway oxidative stress-amplified targeted nanosystem effectively inhibits tumors, reverses the immunosuppressive tumor microenvironment, and provides new insights into tumor immunotherapy combined with phototherapy.

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通过可控靶向纳米材料进行肿瘤光免疫治疗的多途径氧化应激扩增。
光免疫疗法将光疗法与免疫疗法相结合,与单一治疗方案相比,其治疗效果显着提高。然而,它的使用存在缺陷,如活性氧(ROS)产生不足和光敏剂分布不均匀。为了解决这些问题,我们开发了一种可控的靶向纳米系统,通过多种途径增强氧化应激,实现光热、光动力和免疫治疗肿瘤的协同效应。这些纳米颗粒(D/I@HST NPs)通过表面修饰的转铁蛋白(Tf)精确靶向肿瘤细胞表面过表达的转铁蛋白受体(TfRs)。内吞后,D/I@HST NPs在808 nm激光照射下产生ROS,破坏ROS响应交联剂,增加药物释放和利用。Tf还携带Fe3+,在酸性肿瘤微环境(TME)中被铁还原酶还原为Fe2+。因此,双氢青蒿素的内过氧化物桥结构被劈裂,导致额外的ROS生成。此外,释放的IR-780同时发挥光动力和光热效应,促进肿瘤细胞死亡。这种多途径氧化应激扩增和光热效应可触发肿瘤中免疫原性细胞死亡,促进相关抗原和损伤相关分子模式的释放,从而提高树突状细胞的成熟和肿瘤细胞对免疫治疗的敏感性。成熟的树突状细胞向T细胞传递信号,增加T细胞的浸润和活化,促进肿瘤生长抑制,抑制肺转移。此外,治疗后肿瘤中髓源性抑制细胞显著减少。综上所述,该多途径氧化应激扩增靶向纳米系统有效抑制肿瘤,逆转免疫抑制肿瘤微环境,为肿瘤免疫联合光疗提供了新的见解。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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