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AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes

High-fidelity imaging and long-term visualization of lysosomes are crucial for their functional evaluation, related disease detection and active drug screening. However, commercial aggregation-caused quenching probes are not conducive to precise lysosomal imaging because of their inherent drawbacks,...

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Autores principales: Liu, Zhenxing, Wang, Qi, Zhu, Zhirong, Liu, Ming, Zhao, Xiaolei, Zhu, Wei-Hong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163247/
https://www.ncbi.nlm.nih.gov/pubmed/34094470
http://dx.doi.org/10.1039/d0sc04156d
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author Liu, Zhenxing
Wang, Qi
Zhu, Zhirong
Liu, Ming
Zhao, Xiaolei
Zhu, Wei-Hong
author_facet Liu, Zhenxing
Wang, Qi
Zhu, Zhirong
Liu, Ming
Zhao, Xiaolei
Zhu, Wei-Hong
author_sort Liu, Zhenxing
collection PubMed
description High-fidelity imaging and long-term visualization of lysosomes are crucial for their functional evaluation, related disease detection and active drug screening. However, commercial aggregation-caused quenching probes are not conducive to precise lysosomal imaging because of their inherent drawbacks, like easy diffusion, short emission and small Stokes shift, let alone their long-term tracing due to rapid photobleaching. Herein we report a novel aggregation-induced emission (AIE)-based TCM-PI nanoaggregate tracker for direct visualization of lysosomes based on the building block of tricyano-methylene-pyridine (TCM), wherein introduced piperazine (PI) groups behave as targeting units to lysosomes upon protonation, and the self-assembled nanostructure contributes to fast endocytosis for enhanced targeting ability as well as extended retention time for long-term imaging. The piperazine-stabilized TCM-PI nanoaggregate shifts the emission maximum to 677 nm in an aqueous environment, and falls within the desirable NIR region with a large Stokes shift of 162 nm, thereby greatly reducing biological fluorescent background interference. In contrast with the commercially available LysoTracker Red, the essential AIE characteristic of high photostability can guarantee three-dimensional high-fidelity tracing with low photobleaching, and little diffusion from lysosomes, and especially overcome the AIE bottleneck to target specificity. Consequently, the AIE-based nanoaggregate tracker successfully achieves the high-fidelity and long-term tracing of lysosomal movement and even monitors the drug-escaping process from lysosomes to cell nuclei, which provides a potential tool to benefit drug screening.
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spelling pubmed-81632472021-06-04 AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes Liu, Zhenxing Wang, Qi Zhu, Zhirong Liu, Ming Zhao, Xiaolei Zhu, Wei-Hong Chem Sci Chemistry High-fidelity imaging and long-term visualization of lysosomes are crucial for their functional evaluation, related disease detection and active drug screening. However, commercial aggregation-caused quenching probes are not conducive to precise lysosomal imaging because of their inherent drawbacks, like easy diffusion, short emission and small Stokes shift, let alone their long-term tracing due to rapid photobleaching. Herein we report a novel aggregation-induced emission (AIE)-based TCM-PI nanoaggregate tracker for direct visualization of lysosomes based on the building block of tricyano-methylene-pyridine (TCM), wherein introduced piperazine (PI) groups behave as targeting units to lysosomes upon protonation, and the self-assembled nanostructure contributes to fast endocytosis for enhanced targeting ability as well as extended retention time for long-term imaging. The piperazine-stabilized TCM-PI nanoaggregate shifts the emission maximum to 677 nm in an aqueous environment, and falls within the desirable NIR region with a large Stokes shift of 162 nm, thereby greatly reducing biological fluorescent background interference. In contrast with the commercially available LysoTracker Red, the essential AIE characteristic of high photostability can guarantee three-dimensional high-fidelity tracing with low photobleaching, and little diffusion from lysosomes, and especially overcome the AIE bottleneck to target specificity. Consequently, the AIE-based nanoaggregate tracker successfully achieves the high-fidelity and long-term tracing of lysosomal movement and even monitors the drug-escaping process from lysosomes to cell nuclei, which provides a potential tool to benefit drug screening. The Royal Society of Chemistry 2020-08-28 /pmc/articles/PMC8163247/ /pubmed/34094470 http://dx.doi.org/10.1039/d0sc04156d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liu, Zhenxing
Wang, Qi
Zhu, Zhirong
Liu, Ming
Zhao, Xiaolei
Zhu, Wei-Hong
AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title_full AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title_fullStr AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title_full_unstemmed AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title_short AIE-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
title_sort aie-based nanoaggregate tracker: high-fidelity visualization of lysosomal movement and drug-escaping processes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8163247/
https://www.ncbi.nlm.nih.gov/pubmed/34094470
http://dx.doi.org/10.1039/d0sc04156d
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