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首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >Light-switchable systems for remotely controlled drug delivery
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Light-switchable systems for remotely controlled drug delivery

机译:可轻松控制的药物交付系统

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AbstractLight-switchable systems have recently received attention as a new mode of remotely controlled drug delivery. In the past, a multitude of nanomedicine studies have sought to enhance the specificity of drug delivery to target sites by focusing on receptors overexpressed on malignant cells or environmental features of diseases sites. Despite these immense efforts, however, there are few clinically available nanomedicines. We need a paradigm shift in drug delivery. One strategy that may overcome the limitations of pathophysiology-based drug delivery is the use of remotely controlled delivery technology. Unlike pathophysiology-based active drug targeting strategies, light-switchable systems are not affected by the heterogeneity of cells, tissue types, and/or microenvironments. Instead, they are triggered by remote light (i.e., near-infrared) stimuli, which are absorbed by photoresponsive molecules or three-dimensional nanostructures. The sequential conversion of light to heat or reactive oxygen species can activate drug release and allow it to be spatio-temporally controlled. Light-switchable systems have been used to activate endosomal drug escape, modulate the release of chemical and biological drugs, and alter nanoparticle structures to control the release rates of drugs. This review will address the limitations of pathophysiology-based drug delivery systems, the current status of light-based remote-switch systems, and future directions in the application of light-switchable systems for remotely controlled drug delivery.展开▼
机译:<![cdata [ 抽象 可轻松可切换系统最近被关注作为遥控药物交付的新模式。过去,通过专注于对恶性细胞的受体或疾病位点的环境特征,通过聚焦受体来提高药物递送给靶位点的特异性。然而,尽管这些巨大的努力,但临床上有很少的纳米喂养。我们需要在药物递送方面的范式转变。可能克服基于病理生理学的药物递送的局限性的一种策略是使用远程控制的输送技术。与基于病理生理学的活性药物靶向策略不同,可光切换系统不受细胞,组织类型和/或微环境的异质性的影响。相反,它们被遥远的光(即近红外)刺激触发,其被光反应分子或三维纳米结构吸收。光与热或反应性氧物质的顺序转化可以激活药物释放并允许其待时间控制。可光切换系统已用于激活内体药物逃生,调节化学和生物药物的释放,并改变纳米粒子结构以控制药物的释放速率。该审查将解决基于病理生理学的药物输送系统,基于光的远程交换机系统的当前状态,以及在应用可轻松控制的药物递送的可轻型控制系统中的未来方向的局限性。

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