Wagner Angela M, Spencer David S, Peppas Nicholas A
McKetta Department of Chemical Engineering, The University of Texas at Austin, Austin, Texas 78712.
Institute for Biomaterials, Drug Delivery, and Regenerative Medicine, The University of Texas at Austin, Austin, Texas 78712.
J Appl Polym Sci. 2018 Jun 20;135(24). doi: 10.1002/app.46154. Epub 2018 Jan 31.
In recent decades, nanoparticles have shown significant promise as an oncology treatment modality. Responsive polymers represent a promising class of nanoparticles that can trigger delivery through the exploitation of a specific stimuli. Response to a stimulus is one of the most basic processes found in living systems. As such, the desire to engineer dynamic and functional materials is becoming more prevalent in an effort to achieve precise control over our environment. The combination of controlled radical polymerization and high yielding chemistry strategies provide an excellent basis for the development of the next generation of drug delivery systems. The versatility of polymer chemistries available enables the synthesis of increasingly complex architectures with enhanced delivery specificity and control over the desired properties to interface with biological systems. This tutorial review highlights recent developments in polymer-based approaches to internally responsive nanoparticles for oncology. Presented are concise overviews of the current challenges and opportunities in cancer nanomedicine, common polymer-based architectures, and the basis for internally triggered stimuli-response relationships commonly employed in oncology applications. Examples of the chemistry used in the design of environmentally labile nanomaterials are discussed, and we outline recent advances in creating advanced bioresponsive drug delivery architectures.
近几十年来,纳米颗粒作为一种肿瘤治疗方式显示出巨大的前景。响应性聚合物是一类很有前途的纳米颗粒,它们可以通过利用特定刺激来触发药物递送。对刺激的响应是生命系统中最基本的过程之一。因此,为了实现对环境的精确控制,设计动态和功能材料的需求变得越来越普遍。可控自由基聚合和高产率化学策略的结合为下一代药物递送系统的开发提供了良好的基础。现有的聚合物化学的多功能性使得能够合成越来越复杂的结构,具有增强的递送特异性,并能控制与生物系统相互作用所需的性质。本教程综述重点介绍了基于聚合物的内部响应性纳米颗粒用于肿瘤学的最新进展。介绍了癌症纳米医学当前面临的挑战和机遇、常见的基于聚合物的结构,以及肿瘤学应用中常用的内部触发刺激-响应关系的基础。讨论了用于设计环境不稳定纳米材料的化学实例,并概述了创建先进的生物响应性药物递送结构的最新进展。