CD81 通过阻断 CD274/PD-L1 的选择性自噬降解驱动放射抵抗性胶质母细胞瘤的免疫逃逸
CD81 drives immune evasion in radioresistant glioblastoma by blocking selective autophagic degradation of CD274/PD-L1.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:A detailed evaluation of the advantages among extracellular vesicles from three cell origins for targeting delivery of celastrol and treatment of glioblastoma.
A detailed evaluation of the advantages among extracellular vesicles from three cell origins for targeting delivery of celastrol and treatment of glioblastoma.
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胶质母细胞瘤(GBM)是最常见的脑肿瘤之一,缺乏有效治疗方法且仍属致命性疾病。细胞外囊泡(EV)已成为GBM治疗的有前景平台,但EV特性会受到来源细胞的显著影响。
本研究比较骨髓间充质干细胞(BMSC)、人胶质母细胞瘤细胞U-87 MG及巨噬细胞RAW264.7来源EV的优势,旨在开发更有效的抗GBM药物塞拉斯特罗(Cel)递送策略。三种EV均呈球形或椭圆形,平均粒径为90–140 nm。蛋白质印迹确认存在特异性EV标志物ALIX、CD63或TSG101。
值得注意的是,BMSC来源EV(BMSC-EV)的产量显著高于U-87 MG和RAW264.7细胞来源EV。此外,BMSC-EV对Cel的包封效率最高(72%),且更易被靶细胞U-87 MG摄取。细胞毒性和细胞凋亡增加进一步证实,与游离Cel相比,装载Cel的BMSC-EV(BMSC-EV-Cel)杀伤U-87 MG细胞的效力更强。使用原位和皮下GBM模型的体内研究显示,BMSC-EV可促进血脑屏障穿透,并将载荷输送至肿瘤组织。
重要的是,与游离Cel及替莫唑胺相比,BMSC-EV-Cel可有效抑制GBM生长、诱导肿瘤组织凋亡并抑制肿瘤内微血管密度,同时成功降低全身毒性。
总体而言,本研究阐明了不同细胞来源EV的特性,并突出了BMSC-EV用于脑肿瘤治疗的巨大潜力。
As one of the most common brain tumors, glioblastoma (GBM) lacks efficient therapeutic treatment and remains lethal. Extracellular vesicles (EVs) have emerged as a promising platform for GBM therapies. Nevertheless, the properties of EVs are significantly influenced by their cell origins.
This study aimed to evaluate the advantages of EVs derived from bone marrow mesenchymal stem cells (BMSCs), human glioblastoma cells (U-87 MG) and macrophage cells (RAW264. 7) to develop a more effective strategy for the delivery of anti-GBM drug celastrol (Cel). Three kinds of EVs exhibited spherical- or oval-shapes with an average size ranging from 90 to 140 nm. Western blot analysis confirmed the presence of specific EV markers (ALIX, CD63 or TSG101).
Notably, the yield of BMSCs-derived EVs (BMSC-EVs) significantly surpassed that of U-87 MG and RAW264. 7 cells.
Furthermore, BMSC-EVs demonstrated the highest entrapment efficiency for Cel (72 %) and enhanced internalization into the target cells U-87 MG. The increased cytotoxicity and cell apoptosis further confirmed that Cel-loaded BMSC-EVs (BMSC-EVs-Cel) were more potent for killing U-87 MG cells compared with free Cel. In vivo studies utilizing both orthotopic and subcutaneous GBM models revealed facilitated blood-brain barrier penetration and transportation of cargo into tumor tissue by BMSC-EVs.
Importantly, BMSC-EVs-Cel could effectively inhibit GBM growth, induce tumor tissue apoptosis and suppress intratumoral microvessel density in comparison with free Cel and temozolomide, while successfully decrease systemic toxicity.
Overall, this study elucidates the properties of EVs derived from distinct cell origins and highlights the great potential of BMSC-EVs for brain tumor treatment.
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