Cargando…

Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells

We developed a novel strategy for ATP detection in vitro and imaging in living cells based on integrating proximity hybridization-induced strand displacement and metal ion-dependent DNAzyme recycling amplification. Four DNA oligonucleotides were used in the sensing system including two aptamer probe...

Descripción completa

Detalles Bibliográficos
Autores principales: Gao, Fenglei, Wu, Jing, Yao, Yao, Zhang, Yu, Liao, Xianjiu, Geng, Deqin, Tang, Daoquan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9084323/
https://www.ncbi.nlm.nih.gov/pubmed/35542748
http://dx.doi.org/10.1039/c8ra05193c
_version_ 1784703588436541440
author Gao, Fenglei
Wu, Jing
Yao, Yao
Zhang, Yu
Liao, Xianjiu
Geng, Deqin
Tang, Daoquan
author_facet Gao, Fenglei
Wu, Jing
Yao, Yao
Zhang, Yu
Liao, Xianjiu
Geng, Deqin
Tang, Daoquan
author_sort Gao, Fenglei
collection PubMed
description We developed a novel strategy for ATP detection in vitro and imaging in living cells based on integrating proximity hybridization-induced strand displacement and metal ion-dependent DNAzyme recycling amplification. Four DNA oligonucleotides were used in the sensing system including two aptamer probes, enzymatic sequences and FAM-linked substrate strands. Upon the addition of ATP, the proximity binding of two aptamers to ATP led to the release of the enzymatic sequences, which hybridized with the FAM-linked substrate strand on the graphene oxide (GO) surface to form the ion-dependent DNAzyme. Subsequent catalytic cleavage of the DNAzyme by the corresponding metal ions results in recycling of the enzymatic sequences and cyclic cleavage of the substrate strand, liberating many short FAM-linked oligonuleotide fragments separated from the GO surface, which results in fluorescence enhancement due to the weak affinity of the short FAM-linked oligonuleotide fragment to GO. The amount of produced short FAM-linked oligonuleotide fragments is positively related to the concentration of ATP. This means that one target binding could result in cleaving multiplex fluorophore labelled substrate strands, which provided effective signal amplification. The vivo studies suggested that the nanoprobe was efficiently delivered into living cells and worked for specific, high-contrast imaging of target ATP. More importantly, this target-responsive nanoscissor model is an important approach for intracellular amplified detection and imaging of various analytes by selecting appropriate affinity ligands.
format Online
Article
Text
id pubmed-9084323
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90843232022-05-09 Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells Gao, Fenglei Wu, Jing Yao, Yao Zhang, Yu Liao, Xianjiu Geng, Deqin Tang, Daoquan RSC Adv Chemistry We developed a novel strategy for ATP detection in vitro and imaging in living cells based on integrating proximity hybridization-induced strand displacement and metal ion-dependent DNAzyme recycling amplification. Four DNA oligonucleotides were used in the sensing system including two aptamer probes, enzymatic sequences and FAM-linked substrate strands. Upon the addition of ATP, the proximity binding of two aptamers to ATP led to the release of the enzymatic sequences, which hybridized with the FAM-linked substrate strand on the graphene oxide (GO) surface to form the ion-dependent DNAzyme. Subsequent catalytic cleavage of the DNAzyme by the corresponding metal ions results in recycling of the enzymatic sequences and cyclic cleavage of the substrate strand, liberating many short FAM-linked oligonuleotide fragments separated from the GO surface, which results in fluorescence enhancement due to the weak affinity of the short FAM-linked oligonuleotide fragment to GO. The amount of produced short FAM-linked oligonuleotide fragments is positively related to the concentration of ATP. This means that one target binding could result in cleaving multiplex fluorophore labelled substrate strands, which provided effective signal amplification. The vivo studies suggested that the nanoprobe was efficiently delivered into living cells and worked for specific, high-contrast imaging of target ATP. More importantly, this target-responsive nanoscissor model is an important approach for intracellular amplified detection and imaging of various analytes by selecting appropriate affinity ligands. The Royal Society of Chemistry 2018-08-06 /pmc/articles/PMC9084323/ /pubmed/35542748 http://dx.doi.org/10.1039/c8ra05193c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gao, Fenglei
Wu, Jing
Yao, Yao
Zhang, Yu
Liao, Xianjiu
Geng, Deqin
Tang, Daoquan
Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title_full Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title_fullStr Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title_full_unstemmed Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title_short Proximity hybridization triggered strand displacement and DNAzyme assisted strand recycling for ATP fluorescence detection in vitro and imaging in living cells
title_sort proximity hybridization triggered strand displacement and dnazyme assisted strand recycling for atp fluorescence detection in vitro and imaging in living cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9084323/
https://www.ncbi.nlm.nih.gov/pubmed/35542748
http://dx.doi.org/10.1039/c8ra05193c
work_keys_str_mv AT gaofenglei proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT wujing proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT yaoyao proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT zhangyu proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT liaoxianjiu proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT gengdeqin proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells
AT tangdaoquan proximityhybridizationtriggeredstranddisplacementanddnazymeassistedstrandrecyclingforatpfluorescencedetectioninvitroandimaginginlivingcells