Department of Hepatobiliary Surgery, Eastern Hepatobiliary Surgery Hospital, Second Military Medical University, Shanghai 200438, P. R. China.
School of Life Sciences, Shanghai University, Shanghai 200444, P. R. China.
Theranostics. 2021 Jan 1;11(1):64-78. doi: 10.7150/thno.46124. eCollection 2021.
Conventional therapeutic strategies for advanced hepatocellular carcinoma (HCC) remains a great challenge, therefore the alternative therapeutic modality for specific and efficient HCC suppression is urgently needed. In this work, HCC-derived extracellular vesicles (EVs) were applied as surface nanocarrier for sequential nanocatalysts GOD-ESIONs@EVs (GE@EVs) of tumor-specific and cascade nanocatalytic therapy against HCC. By enhancing the intracellular endocytosis through arginine-glycine-aspartic acid (RGD)-targeting effect and membrane fusion, sequential nanocatalysts led to more efficient treatment in the HCC tumor region in a shorter period of time. Through glucose consumption as catalyzed by the loaded glucose oxidase (GOD) to overproduce hydrogen peroxide (HO), highly toxic hydroxyl radicals were generated by Fenton-like reaction as catalyzed by ESIONs, which was achieved under the mildly acidic tumor microenvironment, enabling the stimuli of the apoptosis and necrosis of HCC cells. This strategy demonstrated the high active-targeting capability of GE@EVs into HCC, achieving highly efficient tumor suppression both and . In addition, the as-synthesized nanoreactor could act as a desirable nanoscale contrast agent for magnetic resonance imaging, which exhibited desirable imaging capability during the sequential nanocatalytic treatment. This application of surface-engineering EVs not only proves the high-performance catalytic therapeutic modality of GE@EVs for HCC, but also broadens the versatile bio-applications of EVs.
传统的治疗策略对于晚期肝癌(HCC)仍然是一个巨大的挑战,因此迫切需要针对 HCC 的特定且有效的替代治疗方法。在这项工作中,将 HCC 衍生的细胞外囊泡(EVs)用作表面纳米载体,用于 HCC 特异性和级联纳米催化治疗的顺序纳米催化剂 GOD-ESIONs@EVs(GE@EVs)。通过精氨酸-甘氨酸-天冬氨酸(RGD)靶向效应和膜融合增强细胞内内吞作用,顺序纳米催化剂在更短的时间内在 HCC 肿瘤区域实现了更有效的治疗。通过负载的葡萄糖氧化酶(GOD)催化葡萄糖消耗来过度产生过氧化氢(HO),在轻度酸性肿瘤微环境下,由 ESIONs 催化的类 Fenton 反应产生高毒性羟基自由基,从而实现 HCC 细胞的凋亡和坏死刺激。该策略证明了 GE@EVs 对 HCC 的高主动靶向能力,实现了高效的肿瘤抑制。此外,所合成的纳米反应器可用作磁共振成像的理想纳米级造影剂,在顺序纳米催化治疗过程中表现出良好的成像能力。这种表面工程 EVs 的应用不仅证明了 GE@EVs 对 HCC 的高性能催化治疗模式,而且拓宽了 EVs 的多功能生物应用。