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首页> 外文期刊>Biomaterials Science >Construction of a tumor microenvironment pH-responsive cleavable PEGylated hyaluronic acid nano-drug delivery system for colorectal cancer treatment
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Construction of a tumor microenvironment pH-responsive cleavable PEGylated hyaluronic acid nano-drug delivery system for colorectal cancer treatment

机译:构建肿瘤微环境pH-响应性切割的聚乙二醇化透明质酸纳米药物递送系统,用于结直肠癌治疗

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摘要

In order to improve active tumor targeting, tumor cell uptake efficiency and circulation time of doxorubicin (DOX) in vivo, we constructed a cleavable PEGylated hyaluronic acid nano-drug delivery system (HA-mPEG(2k)-DOX) based on a tumor microenvironment pH-responsive imine bond. In this study, HA-mPEG(2k)-DOX can self-assemble into stable nanoparticles (HA-mPEG(2k)-DOX NPs) with a particle size of 50 nm. And the NPs can efficiently target CD44 positive CT26 cells and the pH-responsive cleavable PEG shell can be detached under weakly acidic environments and effectively promote the cellular uptake of HA-DOX NPs. Compared with DOX center dot HCl, the HA-mPEG(2k)-DOX NPs can significantly increase the DOX circulation time by 12.5 times, efficiently target the tumor tissues of CT26 tumor-bearing mice and remain for 72 hours. Therefore, the antitumor results in vivo indicated that the HA-mPEG(2k)-DOX NPs have the best anti-tumor effect while reducing the toxicity of the DOX. Overall, the cleavable PEGylated HA-mPEG(2k)-DOX NPs responding to pH-sensitive imine bonds, while actively targeting CD44-positive tumor cells, improve the dilemma of cellular uptake and delivery by the PEGylated nano delivery system.
机译:为了改善体内肿瘤细胞靶向的活性肿瘤靶向,肿瘤细胞摄取效率和多柔比星(DOX)的循环时间,基于肿瘤微环境构建可切割的聚乙二醇化透明质酸纳米药物输送系统(HA-MPEG(2K)-Dox) pH响应亚胺键。在该研究中,HA-MPEG(2K)-Dox可以自组装成颗粒尺寸为50nm的稳定纳米颗粒(HA-MPEG(2K)-Dox NPS)。并且NPS可以有效地靶向CD44阳性CT26细胞,并且可以在弱酸性环境下分离pH响应性可切割的PEG壳,并有效地促进HA-DOX NP的细胞吸收。与DOX中心点HCL相比,HA-MPEG(2K)-DOX NPS可以显着将DOX循环时间显着增加12.5倍,有效地靶向CT26肿瘤患者小鼠的肿瘤组织,并保持72小时。因此,抗肿瘤导致体内结果表明,HA-MPEG(2K)-Dox NPS具有最佳的抗肿瘤效果,同时降低了DOX的毒性。总的来说,可切割的聚乙二醇化的HA-MPEG(2K)-Dox NPS响应pH敏感的亚胺键,同时主动靶向CD44阳性肿瘤细胞,改善蜂窝摄取的困境和通过聚乙烯化纳米输送系统递送。

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