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通过硅桥联扭曲分子内电荷转移来调谐非常规聚集诱导发射聚合物的发光用于靶向递送和可视化药物释放。

Tuning the Emission of a Nonconventional Aggregation-Induced Emission Polymer via Silicon-Bridged Twisted Intramolecular Charge Transfer for Targeted Delivery and Visualized Drug Release.

机构信息

Research & Development Institute of Northwestern Polytechnical University in Shenzhen, Shenzhen 518057, China.

School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an 710129, China.

出版信息

Biomacromolecules. 2023 Apr 10;24(4):1888-1900. doi: 10.1021/acs.biomac.3c00080. Epub 2023 Mar 29.

Abstract

The design of tunable luminescent biomaterials with large Stokes shifts is usually pursued by a twisted intramolecular charge transfer (TICT) effect with switchable emission colors in response to various external stimuli. However, such a strategy is usually realized in conjugated molecules containing benzene or its derivatives and consequently suffers from poor biocompatibility. In this work, a hyperbranched polysiloxane (HBPSi)-based non-conjugated fluorescent polymer with TICT and aggregation-induced emission (AIE) features is developed, and its luminescent properties, fluorescence mechanism, and potential applications are investigated. Initially, the non-conjugated HBPSi exhibits remarkable AIE characteristics due to the formation of through-space conjugation. With the introduction of the sulfur atom, a non-conjugated D-A type AIE material, HBPSi-Cys, that exhibits a dual-state emission with a large Stokes shift of 213 nm, is obtained. The correlation of the lower-energy emission band with solvent polarity suggests the existence of the TICT state. TICT and AIE characteristics direct different properties of HBPSi-Cys, with TICT regulating solvatochromic emission wavelengths and AIE manipulating the emission intensity with a compensation effect. Density functional theory calculations reveal that the non-conjugated D-A structure in HBPSi-Cys was formed across the silicon bridge, with auxochromic sulfhydryl groups and adjacent amide groups as acceptor units and amine and hydroxyl groups as donor units. Additionally, the AIE-active HBPSi could be utilized as a fluorescent probe for the analysis of metal ions. After grafting the AS1411 aptamer to HBPSi-Cys as the recognition motif, HBPSi-Apt possesses excellent targeted bioimaging, drug loading, pH/GSH dual-responsive drug release, and visualized drug delivery performance. This work provides a new way to design functional AIE polymers with tunable optical properties, and the synthesized HBPSi-Cys shows great potential as a smart fluorescent biomaterial.

摘要

具有大斯托克斯位移的可调谐发光生物材料的设计通常通过扭转分子内电荷转移(TICT)效应来实现,该效应可以响应各种外部刺激而具有可切换的发射颜色。然而,这种策略通常在含有苯或其衍生物的共轭分子中实现,因此生物相容性较差。在这项工作中,开发了一种具有 TICT 和聚集诱导发射(AIE)特性的超支化聚硅氧烷(HBPSi)基非共轭荧光聚合物,并研究了其发光性质、荧光机制和潜在应用。首先,由于形成了空间共轭,非共轭 HBPSi 表现出显著的 AIE 特性。随着硫原子的引入,得到了一种非共轭 D-A 型 AIE 材料 HBPSi-Cys,其具有 213nm 的大斯托克斯位移的双态发射。与溶剂极性相关的低能发射带表明存在 TICT 态。TICT 和 AIE 特性使 HBPSi-Cys 具有不同的性质,TICT 调节溶剂变色发射波长,AIE 则通过补偿效应控制发射强度。密度泛函理论计算表明,HBPSi-Cys 中的非共轭 D-A 结构是通过硅桥形成的,助色巯基和相邻的酰胺基作为受体单元,胺基和羟基作为供体单元。此外,AIE 活性 HBPSi 可用作分析金属离子的荧光探针。将 AS1411 适体接枝到 HBPSi-Cys 上作为识别基序后,HBPSi-Apt 具有出色的靶向生物成像、药物负载、pH/GSH 双重响应药物释放和可视化药物传递性能。这项工作为设计具有可调谐光学性质的功能 AIE 聚合物提供了一种新方法,合成的 HBPSi-Cys 作为智能荧光生物材料具有很大的潜力。

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