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构建耐缺氧和宿主肿瘤富集聚集诱导发光光敏剂抑制恶性肿瘤复发和转移。

Constructing Hypoxia-Tolerant and Host Tumor-Enriched Aggregation-Induced Emission Photosensitizer for Suppressing Malignant Tumors Relapse and Metastasis.

机构信息

Beijing Key Laboratory of Construction Tailorable Advanced Functional Materials and Green Applications, School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, P. R. China.

Department of Material Science and Engineering, Tiangong University, Tianjin, 300387, P. R. China.

出版信息

Small. 2022 Oct;18(40):e2203825. doi: 10.1002/smll.202203825. Epub 2022 Sep 7.

Abstract

Photodynamic immunotherapy is a promising treatment strategy that destroys primary tumors and inhibits the metastasis and relapse of distant tumors. As reactive oxygen species are an intermediary for triggering immune responses, photosensitizers (PSs) that can actively target and efficiently trigger oxidative stress are urgently required. Herein, pyrrolo[3,2-b]pyrrole as an electronic donor is introduced in acceptor-donor-acceptor skeleton PSs (TP-IS1 and TP-IS2) with aggregation-induced emission properties and high absorptivity. Meanwhile, pyrrolo[3,2-b]pyrrole derivatives innovatively prove their ability of type I photoreaction, indicating their promising hypoxia-tolerant advantages. Moreover, M1 macrophages depicting an ultrafast delivery through the cell-to-cell tunneling nanotube pathway emerge to construct TP-IS1@M1 by coating the photosensitizer TP-IS1. Under low concentration of TP-IS1@M1, an effective immune response of TP-IS1@M1 is demonstrated by releasing damage-associated molecular patterns, maturating dendritic cells, and vanishing the distant tumor. These findings reveal insights into developing hypoxia-tolerant PSs and an efficient delivery method with unprecedented performance against tumor metastasis.

摘要

光动力免疫治疗是一种很有前途的治疗策略,它可以破坏原发性肿瘤,并抑制远处肿瘤的转移和复发。由于活性氧是触发免疫反应的中间体,因此迫切需要能够主动靶向并有效地引发氧化应激的光敏剂 (PSs)。在此,具有聚集诱导发射特性和高吸收性的受体-供体-受体骨架 PSs (TP-IS1 和 TP-IS2) 中引入了作为电子供体的吡咯并[3,2-b]吡咯。同时,吡咯并[3,2-b]吡咯衍生物创新性地证明了它们具有 I 型光反应能力,表明它们具有有前途的耐缺氧优势。此外,M1 巨噬细胞通过细胞间隧道纳米管途径呈现出超快的递药能力,通过包覆光敏剂 TP-IS1 构建了 TP-IS1@M1。在低浓度的 TP-IS1@M1 下,通过释放损伤相关分子模式、成熟树突状细胞和消除远处肿瘤,证明了 TP-IS1@M1 具有有效的免疫反应。这些发现为开发耐缺氧 PSs 和高效递药方法提供了新的思路,为肿瘤转移的治疗带来了前所未有的效果。

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