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Thermodynamic Aspects of DNA Nanoconstruct Stability and Design

Abstract:
In the present study, we use the fluorescent DNA base analog tCå to investigate the thermal stability of a small DNA hexagon and the thermodynamie factors that govern the formation of such a structure. The DNA molecule is becoming increasingly popular as a material for bottom-up construction of nanostructures; however, relatively little attention has been given to the thermodynamics of such biomacromolecule-based constructs. With the goal of increasing information density and structural complexity, the size of the nanoarchitectures decreases and, more importantly, the fine structure is becoming more detailed. In this process the thermal stability and formation of unwanted byproducts will become critical features to consider in the design and assembly of such structures. Using tCå as a fluorescent probe in fluorescence monitored DNA melting allows for individually observing the denaturing of each of the six 10-mer sides in the pseudohexagonal multicomponent system. Experimental results demonstrate that the ring-opening of the cyclized hexamer is virtually exclusive to one side and that the stability of this side is increased as a result of the cyclization. Moreover, a theoretical model describing the formation and melting of the nanostructure is presented. The results show that the cyclized structure is thermodynamically favored over linear polymeric structures under the conditions and concentrations used for the self-assembly. © 2009 American Chemical Society.
Publication status:
Published

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Publisher copy:
10.1021/jp808239a

Authors


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Institution:
University of Oxford
Division:
MPLS
Department:
Chemistry
Sub department:
Organic Chemistry
Role:
Author


Journal:
JOURNAL OF PHYSICAL CHEMISTRY C More from this journal
Volume:
113
Issue:
15
Pages:
5941-5946
Publication date:
2009-04-16
DOI:
EISSN:
1932-7455
ISSN:
1932-7447


Language:
English
Pubs id:
pubs:400156
UUID:
uuid:4c24b3f0-7b7b-4c87-8c49-415201db56db
Local pid:
pubs:400156
Source identifiers:
400156
Deposit date:
2013-11-16

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