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DNA nanostructure-based nucleic acid probes: construction and biological applications

In recent years, DNA has been widely noted as a kind of material that can be used to construct building blocks for biosensing, in vivo imaging, drug development, and disease therapy because of its advantages of good biocompatibility and programmable properties. However, traditional DNA-based sensing...

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Autores principales: Wang, Dong-Xia, Wang, Jing, Wang, Ya-Xin, Du, Yi-Chen, Huang, Yan, Tang, An-Na, Cui, Yun-Xi, Kong, De-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8188511/
https://www.ncbi.nlm.nih.gov/pubmed/34168817
http://dx.doi.org/10.1039/d1sc00587a
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author Wang, Dong-Xia
Wang, Jing
Wang, Ya-Xin
Du, Yi-Chen
Huang, Yan
Tang, An-Na
Cui, Yun-Xi
Kong, De-Ming
author_facet Wang, Dong-Xia
Wang, Jing
Wang, Ya-Xin
Du, Yi-Chen
Huang, Yan
Tang, An-Na
Cui, Yun-Xi
Kong, De-Ming
author_sort Wang, Dong-Xia
collection PubMed
description In recent years, DNA has been widely noted as a kind of material that can be used to construct building blocks for biosensing, in vivo imaging, drug development, and disease therapy because of its advantages of good biocompatibility and programmable properties. However, traditional DNA-based sensing processes are mostly achieved by random diffusion of free DNA probes, which were restricted by limited dynamics and relatively low efficiency. Moreover, in the application of biosystems, single-stranded DNA probes face challenges such as being difficult to internalize into cells and being easily decomposed in the cellular microenvironment. To overcome the above limitations, DNA nanostructure-based probes have attracted intense attention. This kind of probe showed a series of advantages compared to the conventional ones, including increased biostability, enhanced cell internalization efficiency, accelerated reaction rate, and amplified signal output, and thus improved in vitro and in vivo applications. Therefore, reviewing and summarizing the important roles of DNA nanostructures in improving biosensor design is very necessary for the development of DNA nanotechnology and its applications in biology and pharmacology. In this perspective, DNA nanostructure-based probes are reviewed and summarized from several aspects: probe classification according to the dimensions of DNA nanostructures (one, two, and three-dimensional nanostructures), the common connection modes between nucleic acid probes and DNA nanostructures, and the most important advantages of DNA self-assembled nanostructures in the applications of biosensing, imaging analysis, cell assembly, cell capture, and theranostics. Finally, the challenges and prospects for the future development of DNA nanostructure-based nucleic acid probes are also discussed.
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spelling pubmed-81885112021-06-23 DNA nanostructure-based nucleic acid probes: construction and biological applications Wang, Dong-Xia Wang, Jing Wang, Ya-Xin Du, Yi-Chen Huang, Yan Tang, An-Na Cui, Yun-Xi Kong, De-Ming Chem Sci Chemistry In recent years, DNA has been widely noted as a kind of material that can be used to construct building blocks for biosensing, in vivo imaging, drug development, and disease therapy because of its advantages of good biocompatibility and programmable properties. However, traditional DNA-based sensing processes are mostly achieved by random diffusion of free DNA probes, which were restricted by limited dynamics and relatively low efficiency. Moreover, in the application of biosystems, single-stranded DNA probes face challenges such as being difficult to internalize into cells and being easily decomposed in the cellular microenvironment. To overcome the above limitations, DNA nanostructure-based probes have attracted intense attention. This kind of probe showed a series of advantages compared to the conventional ones, including increased biostability, enhanced cell internalization efficiency, accelerated reaction rate, and amplified signal output, and thus improved in vitro and in vivo applications. Therefore, reviewing and summarizing the important roles of DNA nanostructures in improving biosensor design is very necessary for the development of DNA nanotechnology and its applications in biology and pharmacology. In this perspective, DNA nanostructure-based probes are reviewed and summarized from several aspects: probe classification according to the dimensions of DNA nanostructures (one, two, and three-dimensional nanostructures), the common connection modes between nucleic acid probes and DNA nanostructures, and the most important advantages of DNA self-assembled nanostructures in the applications of biosensing, imaging analysis, cell assembly, cell capture, and theranostics. Finally, the challenges and prospects for the future development of DNA nanostructure-based nucleic acid probes are also discussed. The Royal Society of Chemistry 2021-05-11 /pmc/articles/PMC8188511/ /pubmed/34168817 http://dx.doi.org/10.1039/d1sc00587a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Wang, Dong-Xia
Wang, Jing
Wang, Ya-Xin
Du, Yi-Chen
Huang, Yan
Tang, An-Na
Cui, Yun-Xi
Kong, De-Ming
DNA nanostructure-based nucleic acid probes: construction and biological applications
title DNA nanostructure-based nucleic acid probes: construction and biological applications
title_full DNA nanostructure-based nucleic acid probes: construction and biological applications
title_fullStr DNA nanostructure-based nucleic acid probes: construction and biological applications
title_full_unstemmed DNA nanostructure-based nucleic acid probes: construction and biological applications
title_short DNA nanostructure-based nucleic acid probes: construction and biological applications
title_sort dna nanostructure-based nucleic acid probes: construction and biological applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8188511/
https://www.ncbi.nlm.nih.gov/pubmed/34168817
http://dx.doi.org/10.1039/d1sc00587a
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