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High-affinity mutant Interleukin-13 targeted CAR T cells enhance delivery of clickable biodegradable fluorescent nanoparticles to glioblastoma

机译:高亲和力突变白介素13靶向CAR T细胞增强了可点击的可生物降解荧光纳米颗粒向胶质母细胞瘤的递送

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摘要

Glioblastoma (GBM), the deadliest form of brain cancer, presents long-standing problems due to its localization. Chimeric antigen receptor (CAR) T cell immunotherapy has emerged as a powerful strategy to treat cancer. IL-13-receptor-α2 (IL13Rα2), present in over 75% of GBMs, has been recognized as an attractive candidate for anti-glioblastoma therapy. Here, we propose a novel multidisciplinary approach to target brain tumors using a combination of fluorescent, therapeutic nanoparticles and CAR T cells modified with a targeted-quadruple-mutant of IL13 (TQM-13) shown to have high binding affinity to IL13Rα2-expressing glioblastoma cells with low off-target toxicity. Azide-alkyne cycloaddition conjugation of nanoparticles to the surface of T cells allowed a facile, selective, and high-yielding clicking of the nanoparticles. Nanoparticles clicked onto T cells were retained for at least 8 days showing that the linkage is stable and promising a suitable time window for delivery. T cells clicked with doxorubicin-loaded nanoparticles showed a higher cytotoxic effect compared to bare T cells. and T cells expressing TQM-13 served as delivery shuttles for nanoparticles and significantly increased the number of nanoparticles reaching brain tumors compared to nanoparticles alone. This work represents a new platform to allow the delivery of therapeutic nanoparticles and T cells to solid tumors.
机译:胶质母细胞瘤(GBM)是脑癌中最致命的形式,由于其局部性,存在长期存在的问题。嵌合抗原受体(CAR)T细胞免疫疗法已成为治疗癌症的强大策略。存在于超过75%的GBM中的IL-13受体α2(IL13Rα2)被公认为是抗胶质母细胞瘤治疗的诱人候选物。在这里,我们提出了一种新的多学科方法,将荧光的,治疗性的纳米颗粒和经过修饰的IL13(TQM-13)的靶向四联突变体修饰的CAR T细胞结合起来,该方法对表达IL13Rα2的胶质母细胞瘤具有很高的结合亲和力具有低脱靶毒性的细胞。纳米颗粒与T细胞表面的叠氮化物-炔烃环加成共轭使得纳米颗粒容易,选择性且高产地发出喀哒声。点击到T细胞上的纳米颗粒被保留至少8天,这表明该连接是稳定的,并有望在合适的时间范围内交货。与载有阿霉素的纳米颗粒相比,点击的T细胞与裸露的T细胞相比具有更高的细胞毒性作用。与单独的纳米颗粒相比,表达TQM-13的T细胞和T细胞充当纳米颗粒的传递通道,并显着增加了到达脑肿瘤的纳米颗粒的数量。这项工作代表了一个新的平台,可将治疗性纳米颗粒和T细胞递送至实体瘤。

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