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氧化增强了具有聚集诱导发光活性的两性离子光敏剂产生I型活性氧以光动力杀灭耐药细菌的能力。

Oxidization enhances type I ROS generation of AIE-active zwitterionic photosensitizers for photodynamic killing of drug-resistant bacteria.

作者信息

Gong Jianye, Liu Lingxiu, Li Chunbin, He Yumao, Yu Jia, Zhang Ying, Feng Lina, Jiang Guoyu, Wang Jianguo, Tang Ben Zhong

机构信息

College of Chemistry and Chemical Engineering, Inner Mongolia Key Laboratory of Fine Organic Synthesis, Inner Mongolia University Hohhot 010021 P. R. China

School of Science and Engineering, Shenzhen Institute of Aggregate Science and Technology, The Chinese University of Hong Kong Shenzhen Guangdong 518172 China

出版信息

Chem Sci. 2023 Apr 17;14(18):4863-4871. doi: 10.1039/d3sc00980g. eCollection 2023 May 10.

Abstract

Type I photosensitizers (PSs) with an aggregation-induced emission (AIE) feature have received sustained attention for their excellent theranostic performance in the treatment of clinical diseases. However, the development of AIE-active type I PSs with strong reactive oxygen species (ROS) production capacity remains a challenge due to the lack of in-depth theoretical studies on the aggregate behavior of PSs and rational design strategies. Herein, we proposed a facile oxidization strategy to enhance the ROS generation efficiency of AIE-active type I PSs. Two AIE luminogens, MPD and its oxidized product MPD-O were synthesized. Compared with MPD, the zwitterionic MPD-O showed higher ROS generation efficiency. The introduction of electron-withdrawing oxygen atoms results in the formation of intermolecular hydrogen bonds in the molecular stacking of MPD-O, which endowed MPD-O with more tightly packed arrangement in the aggregate state. Theoretical calculations demonstrated that more accessible intersystem crossing (ISC) channels and larger spin-orbit coupling (SOC) constants provide further explanation for the superior ROS generation efficiency of MPD-O, which evidenced the effectiveness of enhancing the ROS production ability by the oxidization strategy. Moreover, DAPD-O, a cationic derivative of MPD-O, was further synthesized to improve the antibacterial activity of MPD-O, showing excellent photodynamic antibacterial performance against methicillin-resistant both and . This work elucidates the mechanism of the oxidization strategy for enhancing the ROS production ability of PSs and offers a new guideline for the exploitation of AIE-active type I PSs.

摘要

具有聚集诱导发光(AIE)特性的I型光敏剂(PSs)因其在临床疾病治疗中优异的诊疗性能而受到持续关注。然而,由于缺乏对PSs聚集行为的深入理论研究和合理的设计策略,开发具有强大活性氧(ROS)生成能力的AIE活性I型PSs仍然是一个挑战。在此,我们提出了一种简便的氧化策略来提高AIE活性I型PSs的ROS生成效率。合成了两种AIE发光剂MPD及其氧化产物MPD-O。与MPD相比,两性离子型的MPD-O表现出更高的ROS生成效率。吸电子氧原子的引入导致MPD-O分子堆积中形成分子间氢键,这使得MPD-O在聚集态具有更紧密的排列。理论计算表明,更多可及的系间窜越(ISC)通道和更大的自旋轨道耦合(SOC)常数为MPD-O优异的ROS生成效率提供了进一步解释,这证明了通过氧化策略提高ROS生成能力的有效性。此外,进一步合成了MPD-O的阳离子衍生物DAPD-O以提高MPD-O的抗菌活性,其对耐甲氧西林的[细菌名称1]和[细菌名称2]均表现出优异的光动力抗菌性能。这项工作阐明了提高PSs的ROS生成能力的氧化策略的机制,并为开发AIE活性I型PSs提供了新的指导方针。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa9f/10171080/7f6c38c2ce9d/d3sc00980g-s1.jpg

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