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监测淀粉样蛋白聚集:一种基于扭曲分子内电荷转移(TICT)的荧光传感器阵列。

Monitoring amyloid aggregation a twisted intramolecular charge transfer (TICT)-based fluorescent sensor array.

作者信息

Wang Chao, Jiang Wenchao, Tan Davin, Huang Lu, Li Jin, Qiao Qinglong, Yadav Priya, Liu Xiaogang, Xu Zhaochao

机构信息

CAS Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Sciences 457 Zhongshan Road Dalian 116023 China

Fluorescence Research Group, Singapore University of Technology and Design 8 Somapah Road Singapore 487372 Singapore

出版信息

Chem Sci. 2023 Apr 5;14(18):4786-4795. doi: 10.1039/d2sc06710b. eCollection 2023 May 10.

Abstract

Imaging amyloid-beta (Aβ) aggregation is critical for understanding the pathology and aiding the pre-symptomatic intervention of Alzheimer's disease (AD). Amyloid aggregation consists of multiple phases with increasing viscosities and demands probes with broad dynamic ranges and gradient sensitivities for continuous monitoring. Yet, existing probes designed based on the twisted intramolecular charge transfer (TICT) mechanism mainly focused on donor engineering, limiting the sensitivities and/or dynamic ranges of these fluorophores to a narrow window. Herein, using quantum chemical calculations, we investigated multiple factors affecting the TICT process of fluorophores. It includes the conjugation length, the net charge of the fluorophore scaffold, the donor strength, and the geometric pre-twisting. We have established an integrative framework for tuning TICT tendencies. Based on this framework, a platter of hemicyanines with varied sensitivities and dynamic ranges is synthesized, forming a sensor array and enabling the observation of various stages of Aβ aggregations. This approach will significantly facilitate the development of TICT-based fluorescent probes with tailored environmental sensitivities for numerous applications.

摘要

成像淀粉样β蛋白(Aβ)聚集对于理解阿尔茨海默病(AD)的病理以及辅助其症状前干预至关重要。淀粉样蛋白聚集由多个粘度不断增加的阶段组成,需要具有宽动态范围和梯度灵敏度的探针来进行连续监测。然而,基于扭曲分子内电荷转移(TICT)机制设计的现有探针主要集中在供体工程上,将这些荧光团的灵敏度和/或动态范围限制在一个狭窄的窗口内。在此,我们利用量子化学计算研究了影响荧光团TICT过程的多个因素。这包括共轭长度、荧光团支架的净电荷、供体强度和几何预扭曲。我们建立了一个调节TICT倾向的综合框架。基于该框架,合成了一系列具有不同灵敏度和动态范围的半菁,形成了一个传感器阵列,并能够观察Aβ聚集的各个阶段。这种方法将显著促进基于TICT的荧光探针的开发,这些探针具有针对多种应用定制的环境灵敏度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/624e/10171079/786f1a4d63a6/d2sc06710b-f1.jpg

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