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.
我们的工作确立了CD81作为连接放射抵抗与免疫逃逸的关键桥梁,其通过维持GBM中CD274的丰度发挥作用,并突显CD81作为优化放射免疫治疗的有前景的治疗靶点。
英文原题:Microfluidic loading of verteporfin into extracellular vesicles for neuroblastoma therapy.
尽管细胞外囊泡(EVs)促进癌症进展,但它们可作为癌症治疗中潜在的药物递送系统,具有溶解水不溶性药物并促进靶向递送的能力。
尽管细胞外囊泡(EVs)有助于癌症进展,但它们可作为癌症治疗中潜在的药物递送系统,具有溶解水不溶性药物并促进靶向递送的能力。然而,EVs 的临床转化仍处于起步阶段。虽然传统的 EV 修饰方法仍将具有相关性,但微流控方法有望取代台式方法。利用芯片实验室装置,通过微流控混合和孵育进行被动货物装载可能是生产功能性工程化 EVs 的重要策略。本研究侧重于开发一种微流控装置,以生成载有维替泊芬(VP)的 EVs,VP 是一种疏水性卟啉,在神经母细胞瘤(NB)治疗中具有潜在应用,旨在增强其治疗效果。该平台确保间充质干细胞来源的 EVs 和 VP 完美混合并可调孵育时间,显示出显著高于传统方法的装载效率,同时在温和条件下运行,保持 EV 完整性和功能性,不同于其他涉及严苛机械或化学处理的微流控技术。载有 VP 的 EVs(VP-EVs)随后可轻松回收,使其可用于后续分析和使用。MTT 实验证实,VP-EVs 在降低 NB 细胞系活力方面比游离 VP 更有效。最后,免疫荧光实验和 western blot 表明,与游离 VP 相比,用 VP-EVs 处理 NB 细胞系后 YAP 表达降低更多。由于既非破坏性又简单直接,这种微流控装载技术有助于其适应广泛的治疗化合物。作为一种多功能工具,微流控技术将有助于充分释放EVs的潜力,以加速精准医学和疾病治疗。
Despite contributing to cancer progression, extracellular vesicles (EVs) could serve as potential drug delivery systems in cancer treatment, having the ability to dissolve water-insoluble drugs and facilitate targeted delivery. However, the clinical translation of EVs is still in its infancy. While traditional methods for EV modifications will remain relevant, microfluidic approaches are expected to replace benchtop methods. Taking advantage of lab-on-chip devices, passive cargo loading through microfluidic mixing and incubation may be an important strategy to produce functional engineered EVs. This study focuses on developing a microfluidic device to generate EVs loaded with verteporfin (VP), a hydrophobic porphyrin with potential applications in neuroblastoma (NB) therapy, aiming to enhance its therapeutic effectiveness. The platform ensures perfect mixing and tunable incubation time for mesenchymal stem cell-derived EVs and VP, demonstrating a significantly higher loading efficiency than traditional methods, while operating under gentle conditions that preserve EV integrity and functionality, unlike other microfluidic techniques that involve harsh mechanical or chemical treatments. The VP-loaded EVs (VP-EVs) can then be easily recovered, making them available for subsequent analysis and use. MTT assay confirmed that VP-EVs are more efficient than free VP in reducing the viability of a NB cell line. Finally, immunofluorescence assay and western blot demonstrated a greater reduction in YAP expression after treatment with VP-EVs in an NB cell line when compared to free VP. Being both non-destructive and straightforward, this microfluidic loading technique facilitates its adaptability to a wide spectrum of therapeutic compounds. As a versatile tool, microfluidic technology will help to fully unlock the potential of EVs for speeding up precision medicine and disease treatment.
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