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基因工程纳米载体药物递送系统。

Genetically engineered nanocarriers for drug delivery.

机构信息

Department of Pharmacology and Pharmaceutical Sciences, University of Southern California, Los Angeles, CA, USA.

出版信息

Int J Nanomedicine. 2014 Mar 26;9:1617-26. doi: 10.2147/IJN.S53886. eCollection 2014.

Abstract

Cytotoxicity, low water solubility, rapid clearance from circulation, and off-target side-effects are common drawbacks of conventional small-molecule drugs. To overcome these shortcomings, many multifunctional nanocarriers have been proposed to enhance drug delivery. In concept, multifunctional nanoparticles might carry multiple agents, control release rate, biodegrade, and utilize target-mediated drug delivery; however, the design of these particles presents many challenges at the stage of pharmaceutical development. An emerging solution to improve control over these particles is to turn to genetic engineering. Genetically engineered nanocarriers are precisely controlled in size and structure and can provide specific control over sites for chemical attachment of drugs. Genetically engineered drug carriers that assemble nanostructures including nanoparticles and nanofibers can be polymeric or non-polymeric. This review summarizes the recent development of applications in drug and gene delivery utilizing nanostructures of polymeric genetically engineered drug carriers such as elastin-like polypeptides, silk-like polypeptides, and silk-elastin-like protein polymers, and non-polymeric genetically engineered drug carriers such as vault proteins and viral proteins.

摘要

细胞毒性、低水溶性、快速从循环中清除以及非靶向副作用是传统小分子药物的常见缺点。为了克服这些缺点,已经提出了许多多功能纳米载体来增强药物传递。从概念上讲,多功能纳米颗粒可以携带多种药物,控制释放速度,生物降解,并利用靶向药物传递;然而,这些颗粒的设计在药物开发的阶段提出了许多挑战。提高对这些颗粒控制的一种新兴解决方案是转向基因工程。基因工程纳米载体在大小和结构上得到精确控制,并可以对药物化学附着的部位进行特定控制。组装包括纳米颗粒和纳米纤维在内的纳米结构的基因工程药物载体可以是聚合的或非聚合的。本文综述了利用弹性蛋白样多肽、丝氨酸样多肽和丝弹性蛋白样蛋白聚合物等聚合物基因工程药物载体以及 vault 蛋白和病毒蛋白等非聚合物基因工程药物载体的纳米结构在药物和基因传递中的应用的最新进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae1f/3970941/d547d05d78db/ijn-9-1617Fig1.jpg

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