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首页> 外文期刊>International Journal of Nanomedicine >Dual Receptor-Targeted and Redox-Sensitive Polymeric Micelles Self-Assembled from a Folic Acid-Hyaluronic Acid-SS-Vitamin E Succinate Polymer for Precise Cancer Therapy
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Dual Receptor-Targeted and Redox-Sensitive Polymeric Micelles Self-Assembled from a Folic Acid-Hyaluronic Acid-SS-Vitamin E Succinate Polymer for Precise Cancer Therapy

机译:用于精确癌症治疗的双甲酸 - 透明质酸-SS-VIRAMIN E琥珀酸酯聚合物自组装双受体靶向和氧化氢敏感聚合物胶束。

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Purpose: Poor site-specific delivery and insufficient intracellular drug release in tumors are inherent disadvantages to successful chemotherapy. In this study, an extraordinary polymeric micelle nanoplatform was designed for the efficient delivery of paclitaxel (PTX) by combining dual receptor-mediated active targeting and stimuli response to intracellular reduction potential. Methods: The dual-targeted redox-sensitive polymer, folic acid-hyaluronic acid-SS-vitamin E succinate (FHSV), was synthesized via an amidation reaction and characterized by sup1/supH-NMR. Then, PTX-loaded FHSV micelles (PTX/FHSV) were prepared by a dialysis method. The physiochemical properties of the micelles were explored. Moreover, in vitro cytological experiments and in vivo animal studies were carried out to evaluate the antitumor efficacy of polymeric micelles. Results: The PTX/FHSV micelles exhibited a uniform, near-spherical morphology (148.8 ± 1.4 nm) and a high drug loading capacity (11.28% ± 0.25). Triggered by the high concentration of glutathione, PTX/FHSV micelles could quickly release their loaded drug into the release medium. The in vitro cytological evaluations showed that, compared with Taxol or single receptor-targeted micelles, FHSV micelles yielded higher cellular uptake by the dual receptor-mediated endocytosis pathway, thus leading to significantly superior cytotoxicity and apoptosis in tumor cells but less cytotoxicity in normal cells. More importantly, in the in vivo antitumor experiments, PTX/FHSV micelles exhibited enhanced tumor accumulation and produced remarkable tumor growth inhibition with minimal systemic toxicity. Conclusion: Our results suggest that this well-designed FHSV polymer has promising potential for use as a vehicle of chemotherapeutic drugs for precise cancer therapy.
机译:目的:肿瘤中特异性特异性递送和不足的细胞内药物释放是成功化疗的固有缺点。在该研究中,设计了一种非凡的聚合物胶束纳米纳薄晶片,用于通过组合双受体介导的活性靶向和刺激对细胞内降低电位的刺激响应来有效地递送紫杉醇(PTX)。方法:通过酰胺化反应合成双靶向氧化还原聚合物,叶酸 - 透明质酸-Ss-维生素E琥珀酸酯(FHSV),其特征在于 1 H-NMR。然后,通过透析方法制备PTX负载的FHSV胶束(PTX / FHSV)。探索了胶束的物理化学性质。此外,在体外细胞学实验和体内动物研究中进行了评价聚合物胶束的抗肿瘤功效。结果:PTX / FHSV胶束表现出均匀,近球形形态(148.8±1.4nm)和高药物负载能力(11.28%±0.25)。由高浓度的谷胱甘肽引发,PTX / FHSV胶束可以迅速将其装载的药物释放到释放培养基中。体外细胞学评估表明,与紫杉醇或单一受体靶标胶束相比,FHSV胶束通过双胞双胞介导的内吞作用产生更高的细胞摄取,从而导致肿瘤细胞中具有显着优异的细胞毒性和细胞凋亡,但在正常细胞中细胞毒性较少。更重要的是,在体内抗肿瘤实验中,PTX / FHSV胶束表现出增强的肿瘤积聚,并产生了显着的肿瘤生长抑制,具有最小的全身毒性。结论:我们的研究结果表明,这种精心设计的FHSV聚合物具有充满希望的用作精确癌症治疗的化学治疗药物的潜力。

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