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光触发结构:生物医学应用的最新进展。

Phototriggered structures: Latest advances in biomedical applications.

作者信息

Shamsipur Mojtaba, Ghavidast Atefeh, Pashabadi Afshin

机构信息

Department of Chemistry, Razi University, Kermanshah 6714414971, Iran.

出版信息

Acta Pharm Sin B. 2023 Jul;13(7):2844-2876. doi: 10.1016/j.apsb.2023.04.005. Epub 2023 Apr 17.

Abstract

Non-invasive control of the drug molecules accessibility is a key issue in improving diagnostic and therapeutic procedures. Some studies have explored the spatiotemporal control by light as a peripheral stimulus. Phototriggered drug delivery systems (PTDDSs) have received interest in the past decade among biological researchers due to their capability the control drug release. To this end, a wide range of phototrigger molecular structures participated in the DDSs to serve additional efficiency and a high-conversion release of active fragments under light irradiation. Up to now, several categories of PTDDSs have been extended to upgrade the performance of controlled delivery of therapeutic agents based on well-known phototrigger molecular structures like -nitrobenzyl, coumarinyl, anthracenyl, quinolinyl, -hydroxycinnamate and hydroxyphenacyl, where either of one endows an exclusive feature and distinct mechanistic approach. This review conveys the design, photochemical properties and essential mechanism of the most important phototriggered structures for the release of single and dual (similar or different) active molecules that have the ability to quickly reason of the large variety of dynamic biological phenomena for biomedical applications like photo-regulated drug release, synergistic outcomes, real-time monitoring, and biocompatibility potential.

摘要

药物分子可及性的非侵入性控制是改善诊断和治疗程序的关键问题。一些研究探索了将光作为一种外周刺激进行时空控制。在过去十年中,光触发药物递送系统(PTDDSs)因其控制药物释放的能力而受到生物研究人员的关注。为此,各种各样的光触发分子结构参与到药物递送系统中,以在光照射下实现更高的效率和活性片段的高转化率释放。到目前为止,几类PTDDSs已得到扩展,以提升基于诸如对硝基苄基、香豆素基、蒽基、喹啉基、肉桂酸酯基和羟苯甲酰基等著名光触发分子结构的治疗剂控释性能,其中每一种都赋予了独特的特性和不同的作用机制。本综述阐述了用于释放单一和双(相似或不同)活性分子的最重要光触发结构的设计、光化学性质和基本机制,这些结构能够快速解释用于生物医学应用(如光调控药物释放、协同效应、实时监测和生物相容性潜力)的各种动态生物学现象。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b861/10372844/826a78f72f88/ga1.jpg

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