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High-fidelity ATP imaging via an isothermal cascade catalytic amplifier

Artificial catalytic DNA circuits that can identify, transduce and amplify the biomolecule of interest have supplemented a powerful toolkit for visualizing various biomolecules in cancer cells. However, the non-specific response in normal tissues and the low abundance of analytes hamper their extens...

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Autores principales: Zou, Zhiqiao, Pan, Min, Mo, Fengye, Jiang, Qunying, Feng, Ailing, Zhou, Yizhuo, Wang, Fuan, Liu, Xiaoqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9601329/
https://www.ncbi.nlm.nih.gov/pubmed/36349106
http://dx.doi.org/10.1039/d2sc04560e
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author Zou, Zhiqiao
Pan, Min
Mo, Fengye
Jiang, Qunying
Feng, Ailing
Zhou, Yizhuo
Wang, Fuan
Liu, Xiaoqing
author_facet Zou, Zhiqiao
Pan, Min
Mo, Fengye
Jiang, Qunying
Feng, Ailing
Zhou, Yizhuo
Wang, Fuan
Liu, Xiaoqing
author_sort Zou, Zhiqiao
collection PubMed
description Artificial catalytic DNA circuits that can identify, transduce and amplify the biomolecule of interest have supplemented a powerful toolkit for visualizing various biomolecules in cancer cells. However, the non-specific response in normal tissues and the low abundance of analytes hamper their extensive biosensing and biomedicine applications. Herein, by combining tumor-responsive MnO(2) nanoparticles with a specific stimuli-activated cascade DNA amplifier, we propose a multiply guaranteed and amplified ATP-sensing platform via the successive cancer-selective probe exposure and stimulation procedures. Initially, the GSH-degradable MnO(2) nanocarrier, acting as a tumor-activating module, ensures the accurate delivery of the cascade DNA amplifier into GSH-rich cancer cells and simultaneously provides adequate Mn(2+) cofactors for facilitating the DNAzyme biocatalysis. Then, the released cascade amplifier, acting as an ATP-monitoring module, fulfills the precise and sensitive analysis of low-abundance ATP in cancer cells where the catalyzed hairpin assembly (CHA) is integrated with the DNAzyme biocatalyst for higher signal gain. Additionally, the cascade catalytic amplifier achieved tumor-specific activated photodynamic therapy (PDT) after integrating an activatable photosensitizer into the system. This homogeneous cascade catalytic aptasensing circuit can detect low-abundance endogenous ATP of cancer cells, due to its intrinsically rich recognition repertoire and avalanche-mimicking hierarchical acceleration, thus demonstrating broad prospects for analyzing clinically important biomolecules and the associated physiological processes.
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spelling pubmed-96013292022-11-07 High-fidelity ATP imaging via an isothermal cascade catalytic amplifier Zou, Zhiqiao Pan, Min Mo, Fengye Jiang, Qunying Feng, Ailing Zhou, Yizhuo Wang, Fuan Liu, Xiaoqing Chem Sci Chemistry Artificial catalytic DNA circuits that can identify, transduce and amplify the biomolecule of interest have supplemented a powerful toolkit for visualizing various biomolecules in cancer cells. However, the non-specific response in normal tissues and the low abundance of analytes hamper their extensive biosensing and biomedicine applications. Herein, by combining tumor-responsive MnO(2) nanoparticles with a specific stimuli-activated cascade DNA amplifier, we propose a multiply guaranteed and amplified ATP-sensing platform via the successive cancer-selective probe exposure and stimulation procedures. Initially, the GSH-degradable MnO(2) nanocarrier, acting as a tumor-activating module, ensures the accurate delivery of the cascade DNA amplifier into GSH-rich cancer cells and simultaneously provides adequate Mn(2+) cofactors for facilitating the DNAzyme biocatalysis. Then, the released cascade amplifier, acting as an ATP-monitoring module, fulfills the precise and sensitive analysis of low-abundance ATP in cancer cells where the catalyzed hairpin assembly (CHA) is integrated with the DNAzyme biocatalyst for higher signal gain. Additionally, the cascade catalytic amplifier achieved tumor-specific activated photodynamic therapy (PDT) after integrating an activatable photosensitizer into the system. This homogeneous cascade catalytic aptasensing circuit can detect low-abundance endogenous ATP of cancer cells, due to its intrinsically rich recognition repertoire and avalanche-mimicking hierarchical acceleration, thus demonstrating broad prospects for analyzing clinically important biomolecules and the associated physiological processes. The Royal Society of Chemistry 2022-09-30 /pmc/articles/PMC9601329/ /pubmed/36349106 http://dx.doi.org/10.1039/d2sc04560e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zou, Zhiqiao
Pan, Min
Mo, Fengye
Jiang, Qunying
Feng, Ailing
Zhou, Yizhuo
Wang, Fuan
Liu, Xiaoqing
High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title_full High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title_fullStr High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title_full_unstemmed High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title_short High-fidelity ATP imaging via an isothermal cascade catalytic amplifier
title_sort high-fidelity atp imaging via an isothermal cascade catalytic amplifier
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9601329/
https://www.ncbi.nlm.nih.gov/pubmed/36349106
http://dx.doi.org/10.1039/d2sc04560e
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