工程脑靶向外泌体重编程胶质母细胞瘤免疫抑制微环境

IF 22.5
Jun Yang, Yong Li, Shaoping Jiang, Yuxin Tian, Mengjie Zhang, Shuai Guo, Pengfei Wu, Jianan Li, Lin Xu, Wenpei Li, Yushu Wang, Huile Gao, Yuanyu Huang, Yuhua Weng, Shaobo Ruan
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引用次数: 0

摘要

多形性胶质母细胞瘤(GBM)的免疫抑制微环境严重影响其对包括全身化疗在内的各种治疗的反应。利用RNA干扰(RNAi)对免疫抑制性GBM微环境进行靶向重编程在很大程度上受到脑递送效率和靶向特异性较差的限制。本文提出了一种基于酸可切割转铁蛋白(Tf)修饰的工程外泌体脑靶向递送系统(ACTE),以有效地将小干扰RNA传递到转化生长因子-β (siTGF-β)和阿霉素(DOX)到GBM部位,用于化学-免疫联合治疗。siTGF-β和DOX共负载ACTE,称为DOX&;siTGF-β@ACTE (Ds@ACTE),旨在特异性识别血脑屏障(BBB)上的Tf受体(TfR)。随后,Ds@ACTE发生脑毛细血管内皮细胞溶酶体内Tf的酸反应性脱离,导致DOX&;siTGF-β@Exo (Ds@Exo)与Tf- tfr复合物分离,并增强血脑屏障转胞作用。穿过血脑屏障后,分离的Ds@Exo可通过归巢效应进一步靶向GBM细胞。体内研究证实Ds@ACTE可显著下调TGF-β表达,重编程免疫抑制微环境,从而增强DOX的化疗效果和DOX诱导的抗肿瘤免疫应答。该策略的有效性不仅可以为设计基于工程外泌体的更智能的脑靶向系统提供思路,而且可以探索GBM的有效治疗方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineered brain-targeting exosome for reprogramming immunosuppressive microenvironment of glioblastoma

Engineered brain-targeting exosome for reprogramming immunosuppressive microenvironment of glioblastoma

The immunosuppressive microenvironment of glioblastoma multiforme (GBM) severely impacts the response to various treatments, including systemic chemotherapy. Targeted reprogramming of immunosuppressive GBM microenvironment using RNA interference (RNAi) is largely restricted by poor brain delivery efficiency and targeting specificity. Herein, an acid-cleavable transferrin (Tf) decorated engineering exosome-based brain-targeting delivery system (ACTE) was proposed to efficiently deliver small interference RNA towards transform growth factor-β (siTGF-β) and doxorubicin (DOX) to GBM site for combination chemo-immunotherapy. The siTGF-β and DOX co-loaded ACTE, termed as DOX&siTGF-β@ACTE (Ds@ACTE), is designed to specifically recognize the Tf receptor (TfR) on the blood-brain barrier (BBB). Subsequently, Ds@ACTE undergoes acid-responsive detachment of Tf within lysosome of brain capillary endothelial cells, leading to the separation of DOX&siTGF-β@Exo (Ds@Exo) from the Tf-TfR complex and enhanced BBB transcytosis. After crossing BBB, the separated Ds@Exo can further target GBM cells via the homing effect. In vivo studies validated that Ds@ACTE significantly downregulated the TGF-β expression to reprogram the immunosuppressive microenvironment, and thereby reinforce the chemotherapeutic effect of DOX and DOX-induced anti-tumor immune response. The effectiveness of this strategy not only can provide thinking for designing a more intelligent brain-targeting system based on engineered exosomes but also explore an effective treatment regimen for GBM.

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