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Sericin nanomicelles with enhanced cellular uptake and pH-triggered release of doxorubicin reverse cancer drug resistance

机译:丝胶蛋白纳米胶束具有增强的细胞摄取能力并通过pH触发释放阿霉素逆转了癌症的耐药性

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摘要

Drug resistance is the major challenge facing cancer chemotherapy and nanoscale delivery systems based on natural materials, such as sericin, are a promising means of overcoming drug resistance. Yet, no attempt of introducing synthetic poly(γ-benzyl-L-glutamate) (PBLG) onto sericin polypeptide to fabricate a facile biocompatible and biodegradable micelle has been tried. Here, we prepared a polypeptide-based amphiphilic polymer containing hydrophilic sericin polypeptide backbone and PBLG side chains via ring-opening polymerization (ROP) strategy. The introduction of PBLG side chains remarkably enhances the stability of sericin micelles in water. Meanwhile, the micelles exhibited a high loading capacity and pH-responsive release ability for antitumor drug doxorubicin (DOX), called sericin-PBLG-DOX. Owing to the excellent cell membrane penetration of sericin-PBLG, the cellular uptake of DOX when loaded into micelles was improved. Subsequently, sericin-PBLG-DOX was transferred into perinuclear lysosomes, where the release rate of DOX was accelerated. Compared to the same dose of DOX, sericin-PBLG-DOX could induce a more efficient anti-tumor effect both in vitro and in vivo, and these micelles have promise for future clinical applications in overcoming cancer drug resistance with good biosafety, enhanced cellular uptake, pH-triggered drug release, efficient anti-tumor effects, and minimized systemic toxicity.
机译:耐药性是癌症化疗所面临的主要挑战,基于天然材料(如丝胶)的纳米级递送系统是克服耐药性的一种有前途的手段。然而,尚未尝试将合成的聚(γ-苄基-L-谷氨酸)(PBLG)引入丝胶蛋白多肽上以制备容易的生物相容性和可生物降解的胶束的尝试。在这里,我们通过开环聚合(ROP)策略制备了包含亲水性丝胶蛋白骨架和PBLG侧链的基于多肽的两亲聚合物。 PBLG侧链的引入显着增强了丝胶蛋白胶束在水中的稳定性。同时,该胶束对称为丝胶蛋白-PBLG-DOX的抗肿瘤药物阿霉素(DOX)表现出高负载能力和pH响应释放能力。由于丝胶蛋白-PBLG的出色的细胞膜渗透性,提高了将DOX加载到胶束中后对细胞的摄取。随后,将丝胶蛋白-PBLG-DOX转移至核周溶酶体中,从而加速了DOX的释放速率。与相同剂量的DOX相比,Sericin-PBLG-DOX可以在体内外产生更有效的抗肿瘤作用,并且这些胶束有望以良好的生物安全性,增强的细胞摄取来克服癌症的耐药性,从而有望在未来的临床应用。 ,pH触发药物释放,有效的抗肿瘤作用以及最小的全身毒性。

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