Helmholtz Institute for Pharmaceutical Research Saarland (HIPS) - Helmholtz Centre for Infection Research (HZI), Campus Building E 8.1, 66123 Saarbrücken, Germany.
Helmholtz Institute for Pharmaceutical Research Saarland (HIPS) - Helmholtz Centre for Infection Research (HZI), Campus Building E 8.1, 66123 Saarbrücken, Germany.
Eur J Pharm Biopharm. 2024 Jul;200:114343. doi: 10.1016/j.ejpb.2024.114343. Epub 2024 May 25.
Responsive and adaptive soft-matter systems represent an advanced category of materials with potential applications in drug delivery. Among these, liquid crystals (LCs) emerge as multifunctional anisotropic scaffolds capable of reacting to temperature, light, electric or magnetic fields. Specifically, the ordering and physical characteristics of thermotropic LCs are primarily contingent on temperature as an external stimulus. This comprehensive review aims to bridge a notable gap in the biomedical application of thermotropic mesogens by exclusively focusing on drug delivery. Anticipated to inspire diverse ideas, the review intends to facilitate the elegant exploitation of controllable and temperature-induced characteristics of LCs to enhance drug permeation. Here, we delineate recent advancements in thermally-driven LCs with a substantial emphasis on LC monomer mixtures, elastomers, polymers, microcapsules and membranes. Moreover, special emphasis is placed on the biocompatibility and toxicity of LCs as the foremost prerequisite for their application in healthcare. Given the promising prospect of thermotropic LC formulations in a clinical context, a special section is devoted to skin drug delivery. The review covers content from multiple disciplines, primarily targeting researchers interested in innovative strategies in drug delivery. It also appeals to those enthusiastic about firsthand exploration of the feasible biomedical applications of thermotropic LCs. To the best of our knowledge, this marks the first review addressing thermotropic LCs as tunable soft-matter systems for drug delivery.
响应性和适应性软物质系统代表了一类具有潜在应用于药物输送的先进材料。在这些系统中,液晶(LC)作为多功能各向异性支架脱颖而出,能够对外界温度、光、电场或磁场做出反应。具体来说,热致液晶的有序性和物理特性主要取决于温度这一外部刺激。本综述旨在通过专门关注药物输送,弥合热致介晶在生物医学应用方面的明显差距。预计这将激发各种不同的想法,促进对 LC 可控和温度诱导特性的巧妙利用,以增强药物渗透。在这里,我们详细介绍了热驱动 LC 的最新进展,重点关注 LC 单体混合物、弹性体、聚合物、微胶囊和膜。此外,还特别强调了 LC 的生物相容性和毒性,因为这是它们在医疗保健中应用的首要前提。鉴于热致 LC 制剂在临床环境中的广阔前景,我们专门开辟了一个部分来介绍皮肤药物输送。本综述涵盖了来自多个学科的内容,主要针对对药物输送创新策略感兴趣的研究人员。同时,它也吸引了那些热衷于直接探索热致 LC 可行的生物医学应用的人们。据我们所知,这是第一篇将热致 LC 作为可调软物质系统用于药物输送的综述。