Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology
The mechanical properties of DNA have enabled it to be a structural and sensory element in many nanotechnology applications. While specific base-pairing interactions and secondary structure formation have been the most widely utilized mechanism in designing DNA nanodevices and biosensors, the intrin...
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doaj-b95674ba59f64971bc639cc8be9050f52020-12-09T00:02:26ZengMDPI AGSensors1424-82202020-12-01207019701910.3390/s20247019Mechanical Flexibility of DNA: A Quintessential Tool for DNA NanotechnologyRunjhun Saran0Yong Wang1Isaac T. S. Li2Department of Chemistry, Biochemistry and Molecular Biology, Irving K. Barber Faculty of Science, The University of British Columbia, Kelowna, BC V1V1V7, CanadaDepartment of Physics, Materials Science and Engineering Program, Cell and Molecular Biology Program, University of Arkansas, Fayetteville, AR 72701, USADepartment of Chemistry, Biochemistry and Molecular Biology, Irving K. Barber Faculty of Science, The University of British Columbia, Kelowna, BC V1V1V7, CanadaThe mechanical properties of DNA have enabled it to be a structural and sensory element in many nanotechnology applications. While specific base-pairing interactions and secondary structure formation have been the most widely utilized mechanism in designing DNA nanodevices and biosensors, the intrinsic mechanical rigidity and flexibility are often overlooked. In this article, we will discuss the biochemical and biophysical origin of double-stranded DNA rigidity and how environmental and intrinsic factors such as salt, temperature, sequence, and small molecules influence it. We will then take a critical look at three areas of applications of DNA bending rigidity. First, we will discuss how DNA’s bending rigidity has been utilized to create molecular springs that regulate the activities of biomolecules and cellular processes. Second, we will discuss how the nanomechanical response induced by DNA rigidity has been used to create conformational changes as sensors for molecular force, pH, metal ions, small molecules, and protein interactions. Lastly, we will discuss how DNA’s rigidity enabled its application in creating DNA-based nanostructures from DNA origami to nanomachines.https://www.mdpi.com/1424-8220/20/24/7019DNA bendingDNA stiffnessbiosensorDNA nanostructures |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Runjhun Saran Yong Wang Isaac T. S. Li |
spellingShingle |
Runjhun Saran Yong Wang Isaac T. S. Li Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology Sensors DNA bending DNA stiffness biosensor DNA nanostructures |
author_facet |
Runjhun Saran Yong Wang Isaac T. S. Li |
author_sort |
Runjhun Saran |
title |
Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology |
title_short |
Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology |
title_full |
Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology |
title_fullStr |
Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology |
title_full_unstemmed |
Mechanical Flexibility of DNA: A Quintessential Tool for DNA Nanotechnology |
title_sort |
mechanical flexibility of dna: a quintessential tool for dna nanotechnology |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2020-12-01 |
description |
The mechanical properties of DNA have enabled it to be a structural and sensory element in many nanotechnology applications. While specific base-pairing interactions and secondary structure formation have been the most widely utilized mechanism in designing DNA nanodevices and biosensors, the intrinsic mechanical rigidity and flexibility are often overlooked. In this article, we will discuss the biochemical and biophysical origin of double-stranded DNA rigidity and how environmental and intrinsic factors such as salt, temperature, sequence, and small molecules influence it. We will then take a critical look at three areas of applications of DNA bending rigidity. First, we will discuss how DNA’s bending rigidity has been utilized to create molecular springs that regulate the activities of biomolecules and cellular processes. Second, we will discuss how the nanomechanical response induced by DNA rigidity has been used to create conformational changes as sensors for molecular force, pH, metal ions, small molecules, and protein interactions. Lastly, we will discuss how DNA’s rigidity enabled its application in creating DNA-based nanostructures from DNA origami to nanomachines. |
topic |
DNA bending DNA stiffness biosensor DNA nanostructures |
url |
https://www.mdpi.com/1424-8220/20/24/7019 |
work_keys_str_mv |
AT runjhunsaran mechanicalflexibilityofdnaaquintessentialtoolfordnananotechnology AT yongwang mechanicalflexibilityofdnaaquintessentialtoolfordnananotechnology AT isaactsli mechanicalflexibilityofdnaaquintessentialtoolfordnananotechnology |
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