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工程纳米载体在轴突再生和导向中的作用:现状与未来趋势。

Role of engineered nanocarriers for axon regeneration and guidance: current status and future trends.

机构信息

Department of Biology, Texas Woman's University, Denton, TX 76204, USA.

出版信息

Adv Drug Deliv Rev. 2012 Jan;64(1):110-25. doi: 10.1016/j.addr.2011.12.013. Epub 2011 Dec 29.

Abstract

There are approximately 1.5 million people who experience traumatic injuries to the brain and 265,000 who experience traumatic injuries to the spinal cord each year in the United States. Currently, there are few effective treatments for central nervous system (CNS) injuries because the CNS is refractory to axonal regeneration and relatively inaccessible to many pharmacological treatments. Smart, remotely tunable, multifunctional micro- and nanocarriers hold promise for delivering treatments to the CNS and targeting specific neurons to enhance axon regeneration and synaptogenesis. Furthermore, assessing the efficacy of treatments could be enhanced by biocompatible nanovectors designed for imaging in vivo. Recent developments in nanoengineering offer promising alternatives for designing biocompatible micro- and nanovectors, including magnetic nanostructures, carbon nanotubes, and quantum dot-based systems for controlled release of therapeutic and diagnostic agents to targeted CNS cells. This review highlights recent achievements in the development of smart nanostructures to overcome the existing challenges for treating CNS injuries.

摘要

每年在美国,大约有 150 万人经历脑外伤,26.5 万人经历脊髓外伤。目前,中枢神经系统(CNS)损伤的有效治疗方法很少,因为 CNS 对轴突再生具有抗性,并且相对难以接受许多药物治疗。智能、远程可调、多功能的微纳载体有望将治疗方法递送至中枢神经系统,并靶向特定神经元以增强轴突再生和突触发生。此外,通过设计用于体内成像的生物相容性纳米载体,可以增强对治疗效果的评估。纳米工程的最新进展为设计生物相容性微纳载体提供了有前途的替代方案,包括磁性纳米结构、碳纳米管和基于量子点的系统,用于将治疗和诊断剂递送至靶向中枢神经系统细胞。本综述重点介绍了智能纳米结构在克服治疗中枢神经系统损伤现有挑战方面的最新进展。

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