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首页> 外文期刊>Nanoscale >Biodegradable nanoassemblies of piperlongumine display enhanced anti-angiogenesis and anti-tumor activities
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Biodegradable nanoassemblies of piperlongumine display enhanced anti-angiogenesis and anti-tumor activities

机译:可生物降解的nanoassemblies piperlongumine显示增强的抗血管生成和抗肿瘤活动

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摘要

Piperlongumine (PL) shows an inhibitory effect on tumor growth; however, lipophilicity has restricted its further applications. Nanotechnology provides an effective method to overcome the poor water solubility of lipophilic drugs. Polymeric micelles with small particle size can passively target tumors by the enhanced permeability and retention (EPR) effect, thus improving their anti-tumor effects. In this study, to improve the water solubility and anti-tumor activity of PL, PL encapsulated polymeric micelles (PL micelles) were prepared by a solid dispersion method. The prepared PL micelles showed a small particle size and high encapsulation efficiency, which could be lyophilized into powder, and the re-dissolved PL micelles are homogenous and stable in water, in addition, a sustained release behavior of PL micelles was observed in vitro. Encapsulation of PL into polymeric micelles could increase the cytotoxicity, cellular uptake, reactive oxygen species (ROS) and oxidized glutathione (GSSG), and reduce glutathione (GSH) levels in vitro. Encapsulation of PL into polymeric micelles enhanced its inhibitory effect on neovascularization both in vitro and in vivo. Compared with free PL, PL micelles showed a stronger inhibitory effect on the proliferation, migration, invasion and tube formation of human umbilical vein endothelial cells (HUVECs). Additionally, in a transgenic zebrafish model, embryonic angiogenesis was inhibited by PL micelles. Furthermore, PL micelles were more effective in inhibiting tumor growth and prolonging survival in a subcutaneous CT-26 murine tumor model in vivo. Therefore, our data revealed that the encapsulation of PL into biodegradable polymeric micelles enhanced its anti-angiogenesis and anti-tumor activities both in vitro and in vivo.
机译:Piperlongumine (PL)显示了抑制作用肿瘤的生长;限制其进一步的应用。纳米技术提供了一种有效的方法克服亲脂性的水溶性差药物。大小可以通过增强的被动目标肿瘤渗透率和保留(EPR)效应,因此改善其抗肿瘤的作用。学习,提高水溶解度和PL的抗肿瘤活性,PL封装聚合物胶束(PL胶束)准备的一个固体分散方法。胶束显示一个小粒径、高封装效率,这可能是冻干成粉末,溶解PL微粒在水中均匀和稳定,在此外,持续释放PL的行为胶束是观察体外。PL聚合物胶束可以增加细胞毒性,细胞吸收,活性氧物种(ROS)和氧化谷胱甘肽(GSSG),在体外,减少谷胱甘肽(GSH)水平。封装的PL聚合物胶束增强其抑制作用新血管形成在体外和体内。与自由PL相比,PL胶束显示更强的增殖抑制作用,迁移,入侵和管形成的人类脐静脉内皮细胞(HUVECs)。此外,在转基因斑马鱼模型中,胚胎血管生成抑制了PL胶束。有效抑制肿瘤的生长在皮下CT-26延长生存小鼠体内肿瘤模型。表明PL的封装生物可降解聚合物胶束增强它抗血管生成和抗肿瘤的活动在体外和体内。

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