Cargando…

DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics

Activatable aptamers have emerged as promising molecular tools for cancer theranostics, but reported monovalent activatable aptamer probes remain problematic due to their unsatisfactory affinity and poor stability. To address this problem, we designed a novel theranostic strategy of DNA nanotriangle...

Descripción completa

Detalles Bibliográficos
Autores principales: Lei, Yanli, Qiao, Zhenzhen, Tang, Jinlu, He, Xiaoxiao, Shi, Hui, Ye, Xiaosheng, Yan, Lv'an, He, Dinggeng, Wang, Kemin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6096399/
https://www.ncbi.nlm.nih.gov/pubmed/30128036
http://dx.doi.org/10.7150/thno.24683
_version_ 1783348097839005696
author Lei, Yanli
Qiao, Zhenzhen
Tang, Jinlu
He, Xiaoxiao
Shi, Hui
Ye, Xiaosheng
Yan, Lv'an
He, Dinggeng
Wang, Kemin
author_facet Lei, Yanli
Qiao, Zhenzhen
Tang, Jinlu
He, Xiaoxiao
Shi, Hui
Ye, Xiaosheng
Yan, Lv'an
He, Dinggeng
Wang, Kemin
author_sort Lei, Yanli
collection PubMed
description Activatable aptamers have emerged as promising molecular tools for cancer theranostics, but reported monovalent activatable aptamer probes remain problematic due to their unsatisfactory affinity and poor stability. To address this problem, we designed a novel theranostic strategy of DNA nanotriangle-scaffolded multivalent split activatable aptamer probe (NTri-SAAP), which combines advantages of programmable self-assembly, multivalent effect and target-activatable architecture. Methods: NTri-SAAP was assembled by conjugating multiple split activatable aptamer probes (SAAPs) on a planar DNA nanotriangle scaffold (NTri). Leukemia CCRF-CEM cell line was used as the model to investigate its detection, imaging and therapeutic effect both in vitro and in vivo. Binding affinity and stability were evaluated using flow cytometry and nuclease resistance assays. Results: In the free state, NTri-SAAP was stable with quenched signals and loaded doxorubicin, while upon binding to target cells, it underwent a conformation change with fluorescence activation and drug release after internalization. Compared to monovalent SAAP, NTri-SAAP displayed greatly-improved target binding affinity, ultralow nonspecific background and robust stability in harsh conditions, thus affording contrast-enhanced tumor imaging within an extended time window of 8 h. Additionally, NTri-SAAP increased doxorubicin loading capacity by ~5 times, which further realized a high anti-tumor efficacy in vivo with 81.95% inhibition but no obvious body weight loss. Conclusion: These results strongly suggest that the biocompatible NTri-SAAP strategy would provide a promising platform for precise and high-quality theranostics.
format Online
Article
Text
id pubmed-6096399
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-60963992018-08-20 DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics Lei, Yanli Qiao, Zhenzhen Tang, Jinlu He, Xiaoxiao Shi, Hui Ye, Xiaosheng Yan, Lv'an He, Dinggeng Wang, Kemin Theranostics Research Paper Activatable aptamers have emerged as promising molecular tools for cancer theranostics, but reported monovalent activatable aptamer probes remain problematic due to their unsatisfactory affinity and poor stability. To address this problem, we designed a novel theranostic strategy of DNA nanotriangle-scaffolded multivalent split activatable aptamer probe (NTri-SAAP), which combines advantages of programmable self-assembly, multivalent effect and target-activatable architecture. Methods: NTri-SAAP was assembled by conjugating multiple split activatable aptamer probes (SAAPs) on a planar DNA nanotriangle scaffold (NTri). Leukemia CCRF-CEM cell line was used as the model to investigate its detection, imaging and therapeutic effect both in vitro and in vivo. Binding affinity and stability were evaluated using flow cytometry and nuclease resistance assays. Results: In the free state, NTri-SAAP was stable with quenched signals and loaded doxorubicin, while upon binding to target cells, it underwent a conformation change with fluorescence activation and drug release after internalization. Compared to monovalent SAAP, NTri-SAAP displayed greatly-improved target binding affinity, ultralow nonspecific background and robust stability in harsh conditions, thus affording contrast-enhanced tumor imaging within an extended time window of 8 h. Additionally, NTri-SAAP increased doxorubicin loading capacity by ~5 times, which further realized a high anti-tumor efficacy in vivo with 81.95% inhibition but no obvious body weight loss. Conclusion: These results strongly suggest that the biocompatible NTri-SAAP strategy would provide a promising platform for precise and high-quality theranostics. Ivyspring International Publisher 2018-07-16 /pmc/articles/PMC6096399/ /pubmed/30128036 http://dx.doi.org/10.7150/thno.24683 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Lei, Yanli
Qiao, Zhenzhen
Tang, Jinlu
He, Xiaoxiao
Shi, Hui
Ye, Xiaosheng
Yan, Lv'an
He, Dinggeng
Wang, Kemin
DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title_full DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title_fullStr DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title_full_unstemmed DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title_short DNA nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
title_sort dna nanotriangle-scaffolded activatable aptamer probe with ultralow background and robust stability for cancer theranostics
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6096399/
https://www.ncbi.nlm.nih.gov/pubmed/30128036
http://dx.doi.org/10.7150/thno.24683
work_keys_str_mv AT leiyanli dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT qiaozhenzhen dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT tangjinlu dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT hexiaoxiao dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT shihui dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT yexiaosheng dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT yanlvan dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT hedinggeng dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics
AT wangkemin dnananotrianglescaffoldedactivatableaptamerprobewithultralowbackgroundandrobuststabilityforcancertheranostics