Biomedical applications of the engineered AIEgen-lipid nanostructurein vitroandin vivo.

IF 5 Q1 ENGINEERING, BIOMEDICAL Progress in biomedical engineering (Bristol, England) Pub Date : 2024-12-17 DOI:10.1088/2516-1091/ad9aeb
Meng Suo, Tianfu Zhang, Xing-Jie Liang
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Abstract

Since the concept of aggregation-induced emission (AIE) was first coined by Tang and co-workers, AIE-active luminogens (AIEgens) have drawn widespread attention among chemists and biologists due to their unique advantages such as high fluorescence efficiency, large Stokes shift, good photostability, low background noise, and high biological visualization capabilities in the aggregated state, surpassing conventional fluorophores. A growing number of AIEgens have been engineered to possess multifunctional properties, including near-infrared emission, two-photon absorption, reactive oxygen species (ROS) generation and photothermal conversion, making them suitable for deep-tissue imaging and phototherapy. AIEgens show great potential in biomedical applicationsin vitroandin vivo. However, despite the favorable photophysical stability and ROS/heat generation capability in the aggregated state, limitations including uncontrolled size, low targeting efficiency, and unexpected dispersion in physiological environments have hindered their biomedical applications. The combination of AIEgens with lipids offers a simple, promising, and widely adopted solution to these challenges. This review article provides an overview of the synthesis methods of AIEgen-lipid nanostructures and their applications in the biomedical engineering field, aiming to serve as a guideline for developing these AIEgens-lipid nanostructures with promising biological applications.

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自 Tang 及其合作者首次提出聚集诱导发射(AIE)的概念以来,聚集诱导发射活性光源(AIEgens)因其独特的优势,如荧光效率高、斯托克斯位移大、光稳定性好、背景噪声低,以及在聚集状态下具有超越传统荧光团的高生物可视化能力等,引起了化学家和生物学家的广泛关注。越来越多的 AIEgens 被设计成具有多功能特性,包括近红外发射、双光子吸收、活性氧(ROS)生成和光热转换,使其适用于深部组织成像和光疗。AIEgens 在体外和体内的生物医学应用中显示出巨大的潜力。然而,尽管AIEgens在聚集状态下具有良好的光物理稳定性和产生ROS/热能的能力,但其尺寸不可控、靶向效率低以及在生理环境中意外分散等局限性阻碍了它们在生物医学领域的应用。将 AIEgens 与脂质结合为应对这些挑战提供了一种简单、有前景且可广泛采用的解决方案。这篇综述文章概述了 AIEgens-脂质纳米结构的合成方法及其在生物医学工程领域的应用,旨在为开发这些具有良好生物应用前景的 AIEgens-脂质纳米结构提供指导。
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