高等学校化学学报 ›› 2026, Vol. 47 ›› Issue (5): 20260078.doi: 10.7503/cjcu20260078
• 综合评述 • 上一篇
收稿日期:2026-02-10
出版日期:2026-05-10
发布日期:2026-04-01
通讯作者:
刘雷静
E-mail:liuleijing@jlu.edu.cn;wjtian@jlu.edu.cn
作者简介:田文晶, 女, 博士, 教授, 主要从事有机高分子材料光电功能方面的研究. E-mail: wjtian@jlu.edu.cn
基金资助:
ZHAI Zhe, LIU Leijing(
), TIAN Wenjing(
)
Received:2026-02-10
Online:2026-05-10
Published:2026-04-01
Contact:
LIU Leijing
E-mail:liuleijing@jlu.edu.cn;wjtian@jlu.edu.cn
Supported by:摘要:
对细胞器及其微环境的时空动态分析是理解细胞生命活动的关键. 传统荧光染料存在高浓度猝灭及光稳定性差等局限, 难以满足长时程、 高信噪比的活细胞成像需求; 基于此, 聚集诱导发光(Aggregation-induced emission, AIE)材料被开发并展现出独特优势.本文系统总结了AIE分子探针的设计策略及其在线粒体、 溶酶体、 脂滴、 细胞膜、 细胞核、 内质网和高尔基体等细胞器成像方面的应用, 分析了超分辨成像、 近红外AIE探针的分子设计、 跨物种成像、 逻辑响应和毒性评估等方面所面临的挑战, 并展望了AIE分子探针细胞器成像的未来发展.
中图分类号:
TrendMD:
翟哲, 刘雷静, 田文晶. 聚集诱导发光分子探针的设计及在细胞器成像中的应用. 高等学校化学学报, 2026, 47(5): 20260078.
ZHAI Zhe, LIU Leijing, TIAN Wenjing. Molecular Design of Aggregation-induced Emission Probes and Their Applications in Organelle Imaging. Chem. J. Chinese Universities, 2026, 47(5): 20260078.
Fig.2 Chemical structures, fluorescence imaging and response mechanism of mitochondria⁃targeted AIE probes(A) Synthesis of pyridazine cycloadducts TPE-Pz1—TPE-Pz11, schematic diagram of the bio-orthogonal imaging of mitochondria in live HeLa cells and cell imaging of Hela cells co-incubated with BCN-TPP and TPE-Tz[40]; (B—D) Chemical structures of F1(B), ZA, ZA-Mex and ZA-Hex(C) and TPA-T-Py(D); (E) illustration of real-time monitoring of mitophagy using the Probe CS-Py-BC in cells and fluorescence images of HeLa cells co-incubated with CS-Py-BC(5 μmol/L)[45]; (F) chemical structures of TTPB and PTTPB; (G) chemical structure of TCM-OH.(A) Copyright 2022, the Royal Society of Chemistry; (E) copyright 2021, American Chemical Society.
Fig.3 Chemical structures and fluorescence imaging of lysosome⁃targeted AIE probes(A) Chemical structure of AM-BODIPY; (B) chemical structure and response mechanism of the probe Vis-sun[52]; (C) chemical structure of DTPABT-HP and fluorescence images of DTPABT-HP NPs stained HeLa cells captured by CLSM and STED nanoscopy[53]; (D) chemical structures of SIN, SBN, SCN and SMN; (E) chemical structure of TDTMSB.(B) Copyright 2022, American Chemical Society; (C) copyright 2024, American Chemical Society.
Fig.4 Chemical structures of lipid⁃targeted AIE probes(A) Chemical structure of TPAB; (B) chemical structure of LD-920; (C) chemical structure and the design strategy of TPABTBP and its photophysical properties[61]; (D) chemical structure of PCT; (E) chemical structure of AIE-Cbz-LD-Cn; (F) chemical structure of TDTI; (G) chemical structure of CPTM.(C) Copyright 2024, Wiley-VCH GmbH.
Fig.5 Chemical structures and fluorescence imaging of cell membrane⁃targeted AIE probes(A) Chemical structure of Probe A, fluorescence spectra of Probe A in the mixture solutions of water and acetonitrile with various water percentages, fluorescence images of a HeLa cell incubated with 10 μmol/L probe and 5 μmol/L CellBrite cytoplasmic NIR dye for 15 min under excitation of 405 and 488 nm for probe A, and 630 nm for CellBrite cytoplasmic NIR dye. Pearson correlation coefficient of channel I with channel IV is 0.88. A confocal fluorescence microscope(Olympus IX 81) was employed to collect cellular fluorescence images. Concentration of probe A: 10 μmol/L; excitation wavelength: 430 nm[69]. (B) Chemical structures of TPD-C6 and TPD-C12. (C) Chemical structures of NIPAM and TPESO3-. (D) Chemical structure of TPC-CD. (E) Schematic diagram of a viscosity-sensitive plasma membrane-locating probe TPA-S and cell images of normal cells and tumor cells[73]. (F) Chemical structure of MeOTFVP. (G) Chemical structure of TBMPEI.(A) Copyright 2020, American Chemical Society; (E) Copyright 2023, American Chemical Society.
Fig.6 Chemical structures and fluorescence imaging of nucleus⁃targeted AIE probes(A—D) Chemical structures of TPPA-DBO(A), TPA-SPy-m(B), F1(C) and DTPAP-TBZ-I(D); (E) chemical structure of MeTPAE and schematic illustration of dual-responsive MeTPAE to nucleic acids and histone deacetylase[81].(E) Copyright 2022, Wiley-VCH GmbH.
Fig.7 Chemical structures and fluorescence imaging of endoplasmic reticulum⁃targeted/golgi⁃targeted AIE probes(A—E) Chemical structure of QM-SO3-ER(A), TPA-DMPy(B), TPE-Ade(C), COUPY-SA(D) and Gol-ONOO-(E); (F) chemical structure of NDSA-IMC and cell imaging of MCF-7 cells co-incubated with NDSA-IMC and BODIPYTR C5-ceramide(5.0 μmol/L)[92]; (G) schematic illustration of specific Golgi apparatus(GA) and endoplasmic reticulum(ER) targeting by AIEgens with one fluorophore through one-step conversion[93].(F) Copyright 2022, available open access; (G) copyright 2021, available open access.
Fig.8 Chemical structures of dual⁃organelle⁃targeted probes(A) Chemical structure of TPNPDA-C12; (B) chemical structure of BETA-1 and the schematic illustration of dual-color visualization of lipid droplets(LDs) and mitochondria using BETA-1 and design of BETA-1[95]; (C) chemical structures of TPAQ and TPAP.(B) Copyright 2022, available open access.
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