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利用缺氧反应多肽胶束实现细胞色素 C 的胞内递送,以实现高效的癌症治疗。

Intracellular delivery of cytochrome C using hypoxia-responsive polypeptide micelles for efficient cancer therapy.

机构信息

College of Materials Science and Engineering, Jilin Institute of Chemical Technology, Jilin City 132022, PR China; College of Chemistry and Pharmacy Engineering, Jilin Institute of Chemical Technology, Jilin City 132022, PR China.

Department of Radiology, Samsung Medical Center, Sungkyunkwan University School of Medicine and Center for Molecular and Cellular Imaging, Samsung Biomedical Research Institute, Seoul 06351, Republic of Korea.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 Sep;114:111069. doi: 10.1016/j.msec.2020.111069. Epub 2020 May 8.

Abstract

To begin with, it is important to note that biodegradable polypeptides have been extensively applied as drug delivery carriers due to their excellent bioavailability, neglectful toxicity, good encapsulation and controlled release. Thus, a biodegradable and hypoxia-responsive polypeptide is a benefit when synthesized for the intracellular delivery of cytochrome c (CC). In its most positive context, this amphiphilic polypeptide can self-assemble into core/shell-structured micelles and encapsulate CC in their hydrophobic cores. Owing to the presence of hypoxia-responsive chemical bonds, the CC-loaded polymeric micelles (PMs) can potentially target hypoxic tissues (such as tumors) and release the proteins inside the cancer cells. For this reason, these PMs exhibit high protein loading content and efficiency and remain stable in several different kinds of cell culture media under normoxic condition. Moreover, the confocal microscopy indicates that CC-loaded PMs could be effectively uptaken by cancer cells and accelerate endo/lysosomal escape. Most importantly, the CC-loaded PMs show great killing effect to HepG2 liver cancer cells under hypoxic condition, which makes this nano-platform a promising candidate for use with efficient cancer therapy.

摘要

首先,值得注意的是,可生物降解的多肽由于其良好的生物利用度、可忽略的毒性、良好的包封和控制释放,已被广泛应用于药物传递载体。因此,合成一种可生物降解和缺氧响应的多肽对于细胞内细胞色素 c(CC)的传递是有益的。在最积极的情况下,这种两亲性多肽可以自组装成核/壳结构的胶束,并将 CC 封装在其疏水核中。由于存在缺氧响应的化学键,负载 CC 的聚合物胶束(PM)可以潜在地靶向缺氧组织(如肿瘤)并在缺氧细胞内释放蛋白质。出于这个原因,这些 PM 在正常氧条件下的几种不同的细胞培养基中具有高的蛋白负载含量和效率,并且保持稳定。此外,共聚焦显微镜表明,负载 CC 的 PM 可以被癌细胞有效摄取,并加速内体/溶酶体逃逸。最重要的是,负载 CC 的 PM 在缺氧条件下对 HepG2 肝癌细胞表现出很强的杀伤作用,这使得这个纳米平台成为高效癌症治疗的有前途的候选者。

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