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Exceptional biostability of paranemic crossover (PX) DNA, crossover-dependent nuclease resistance, and implications for DNA nanotechnology

View ORCID ProfileArun Richard Chandrasekaran, Javier Vilcapoma, View ORCID ProfileKen Halvorsen
doi: https://doi.org/10.1101/801407
Arun Richard Chandrasekaran
The RNA Institute, University at Albany, State University of New York, Albany, NY, USA
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  • For correspondence: arunrichard@nyu.edu
Javier Vilcapoma
The RNA Institute, University at Albany, State University of New York, Albany, NY, USA
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Ken Halvorsen
The RNA Institute, University at Albany, State University of New York, Albany, NY, USA
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  • ORCID record for Ken Halvorsen
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Abstract

Inherent nanometer-sized features and molecular recognition properties make DNA a useful material in constructing nanoscale objects, with alluring applications in biosensing and drug delivery. However, DNA can be easily degraded by nucleases present in biological fluids, posing a considerable roadblock to realizing the full potential of DNA nanotechnology for biomedical applications. Here we investigated the nuclease resistance and biostability of the multi-stranded motif called paranemic crossover (PX) DNA and discovered a remarkable and previously unreported resistance to nucleases. We show that PX DNA has more than an order of magnitude increased resistance to degradation by DNase I, serum, and urine compared to double stranded DNA. We further demonstrate that the degradation resistance decreases monotonically as DNA crossovers are removed from the structure, suggesting that frequent DNA crossovers disrupt either the binding or catalysis of nucleases or both. These results have important implications for building DNA nanostructures with enhanced biostability, either by adopting PX-based architectures or by carefully engineering crossovers. We contend that such crossover-dependent nuclease resistance could potentially be used to add “tunable biostability” to the many features of DNA nanotechnology.

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Posted October 10, 2019.
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Exceptional biostability of paranemic crossover (PX) DNA, crossover-dependent nuclease resistance, and implications for DNA nanotechnology
Arun Richard Chandrasekaran, Javier Vilcapoma, Ken Halvorsen
bioRxiv 801407; doi: https://doi.org/10.1101/801407
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Exceptional biostability of paranemic crossover (PX) DNA, crossover-dependent nuclease resistance, and implications for DNA nanotechnology
Arun Richard Chandrasekaran, Javier Vilcapoma, Ken Halvorsen
bioRxiv 801407; doi: https://doi.org/10.1101/801407

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