1.Department of Chemistry, Purdue University, West Lafayette, IN 47906, USA
mao@purdue.edu
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Supramolecular Polymerization of DNA Double-Crossover-Like Motifs in Various Dimensions[J]. 高分子科学(英文版), 2023,41(10):1501-1507.
Cui-Zheng Zhang, Da-Ke Mao, Victoria E. Paluzzi, et al. Supramolecular Polymerization of DNA Double-Crossover-Like Motifs in Various Dimensions[J]. Chinese Journal of Polymer Science, 2023,41(10):1501-1507.
Supramolecular Polymerization of DNA Double-Crossover-Like Motifs in Various Dimensions[J]. 高分子科学(英文版), 2023,41(10):1501-1507. DOI: 10.1007/s10118-023-2998-z.
Cui-Zheng Zhang, Da-Ke Mao, Victoria E. Paluzzi, et al. Supramolecular Polymerization of DNA Double-Crossover-Like Motifs in Various Dimensions[J]. Chinese Journal of Polymer Science, 2023,41(10):1501-1507. DOI: 10.1007/s10118-023-2998-z.
A simple, two-stranded, DNA motif can be programmed to self-assembly into large structures by hybridization between the sticky ends (single-stranded overhangs) of the motif. Depending on the detailed configurations (length, complementarity) of the sticky ends, the final structures can be either one-, two-, or three-dimensional supramolecular polymers.
Double-crossover-like (DXL) molecules are a series of DNA motifs containing two strands with identical or different sequences. These homo- or hetero-dimers can further polymerize into bulk structures through specific hydrogen bonding between sticky ends. DXL molecules have high designability, predictivity and sequence robustness; and their supramolecular polymerization products would easily achieve controllable morphology. In addition, among all available DNA nanomotifs, DXL molecules are small in size so that the cost of DXL-based nanostructures is low. These properties together make DXL-based nanostructures good candidates for patterning, templating, information and matter storage,etc,. Herein, we will discuss DXL motifs in terms of the detailed molecular design, and their supramolecular polymerization in various dimensions, and related applications.
DNA nanotechnologyPalindromic sequenceHelical twistingSupramolecular polymerizationControllable morphology
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