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Advanced biomimetic nanoreactor for specifically killing tumor cells through multi-enzyme cascade

机译:先进的仿生纳米反应器,用于通过多酶级联杀死肿瘤细胞

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Although the enzyme catalytic nanoreactors reported so far have achieved excellent therapeutic efficacy, how to accurately exert enzyme activity in the tumor microenvironment to specifically kill tumor cells and avoid systemic oxidative damage would be an inevitable challenge for catalytic nanomedicine. At the present study, we fabricate an advanced biomimetic nanoreactor, SOD-Fe 0 @Lapa-ZRF for tumor multi-enzyme cascade delivery that combined specifically killing tumor cells and protect cells from oxidative stress. Methods: We first synthesized the FeNP-embedded SOD (SOD-Fe 0 ) by reduction reaction using sodium borohydride. Next, SOD-Fe 0 and Lapa cargo were encapsulated in ZIF-8 by self-assembly. In order to protect the cargo enzyme from digestion by protease and prolong blood circulating time, SOD-Fe 0 @Lapa-Z was further cloaked with RBC membrane and functionalized with folate targeting, resulting in the final advanced biomimetic nanoreactor SOD-Fe 0 @Lapa-ZRF. Results: Once internalized, ZIF-8 achieves pH-triggered disassembly in weakly acidic tumor microenvironment. The released SOD-Fe 0 and Lapa were further endocytosed by tumor cells and the Lapa produces superoxide anion (O 2 -? ) through the catalysis of NQO1 that is overexpressed in tumor cells, while O 2 -? is converted to H 2 O 2 via SOD. At this time, the released ferrous ions from SOD-Fe 0 and H 2 O 2 are further transformed to highly toxic hydroxyl radicals (?OH) for specifically killing tumor cells, and there was no obvious toxicological response during long-term treatment. Importantly, SOD-Fe 0 @Lapa-ZRF enhanced the normal cell's anti-oxidation ability, and thus had little effect on the secretion of TNF-α, IL-6 and IL-1β pro-inflammatory cytokines, while effectively reversed the decreased activity of T-SOD and GSH-Px and remained stable MDA content after tumor treatment. In vitro and in vivo results indicate that the tumor microenvironment-responsive release multi-enzyme cascade have high tumor specificity and effective anti-tumor efficacy, and can protect cells from oxidative stress damage. Conclusion: The biomimetic nanoreactor will have a great potential in cancer nanomedicine and provide a novel strategy to regulate oxidative stress.? The author(s).
机译:虽然到目前为止报道的酶催化纳米反应器具有良好的治疗效果,但如何准确地施加肿瘤微环境中的酶活性,特别杀死肿瘤细胞,避免全身氧化损伤将是催化纳米胺的不可避免的挑战。在本研究中,我们制造了一种先进的仿生纳米反应器,SOD-FE 0 @ LAPA-ZRF用于肿瘤多酶级联递送,其特异性杀死肿瘤细胞并保护细胞免受氧化应激。方法:通过使用硼氢化钠还原反应首先通过还原反应合成FENP嵌入的SOD(SOD-FE)。接下来,通过自组装在ZIF-8中封装SOD-FE 0和LAPA货物。为了通过蛋白酶消化来保护货物酶并延长血液循环时间,将SOD-FE 0 + LAPA-Z进一步与RBC膜一起包覆并用叶酸靶向官能化,导致最终的先进仿生纳米反应器SOD-FE 0 @Lapa -ZRF。结果:一旦内化,ZIF-8在弱酸性肿瘤微环境中达到pH-触发的拆卸。释放的SOD-Fe 0和LAPA进一步通过肿瘤细胞进一步内吞,并且通过在肿瘤细胞中过表达的NQO1的催化产生超氧化物阴离子(O 2-Δ),而O 2 - ?通过SOD转换为H 2 O 2。此时,来自SOD-Fe 0和H 2 O 2的释放的黑色离子进一步转化为特别杀死肿瘤细胞的高毒性羟基自由基(oh),并且在长期治疗过程中没有明显的毒理学反应。重要的是,SOD-FE 0 @ LAPA-ZRF增强了正常的细胞的抗氧化能力,因此对TNF-α,IL-6和IL-1β促炎细胞因子的分泌几乎没有影响,同时有效地逆转了活性降低T-SOD和GSH-PX,肿瘤处理后保持稳定的MDA含量。体外和体内结果表明,肿瘤微环境反应释放多酶级联具有高肿瘤特异性和有效的抗肿瘤效果,并且可以保护细胞免受氧化应激损伤。结论:仿生纳米反应器将具有巨大的癌症纳米医生潜力,并提供一种调节氧化应激的新策略。作者。

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