Inosine incorporation in DNA nanostructures and 3D DNA crystals
Chandrasekaran, A. R.
Show abstract
DNA nanotechnology is based on programmable base pairing, resulting in the precise construction of nanoscale structures. Sequence variability in DNA nanostructure self-assembly is achieved by the use of xeno nucleic acids, chemically modified bases and base analogs. The naturally occurring base inosine, while well studied in RNA editing, has not been used in the context of DNA nanotechnology. In this work, I demonstrate the use of inosine in DNA nanostructures, specifically by incorporating inosine within the duplex regions or junctions of a double crossover DNA motif. In strand displacement and competition assays, I show that canonical complements do not displace inosine containing strands post-assembly but dominate in product formation when competing with inosine containing strands during assembly. Finally, sticky ends with inosine base pairs enable the formation of rationally designed 3D DNA crystals based on the tensegrity triangle motif. Overall, this work shows that inosine is a useful addition to the library of sequence variations in DNA nanotechnology.
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