| Literature DB >> 29242318 |
Dongran Han1,2, Xiaodong Qi3,4, Cameron Myhrvold1,2, Bei Wang2,5, Mingjie Dai1,2, Shuoxing Jiang3,4, Maxwell Bates6, Yan Liu3,4, Byoungkwon An7, Fei Zhang8,4, Hao Yan8,4, Peng Yin9,2.
Abstract
Self-folding of an information-carrying polymer into a defined structure is foundational to biology and offers attractive potential as a synthetic strategy. Although multicomponent self-assembly has produced complex synthetic nanostructures, unimolecular folding has seen limited progress. We describe a framework to design and synthesize a single DNA or RNA strand to self-fold into a complex yet unknotted structure that approximates an arbitrary user-prescribed shape. We experimentally construct diverse multikilobase single-stranded structures, including a ~10,000-nucleotide (nt) DNA structure and a ~6000-nt RNA structure. We demonstrate facile replication of the strand in vitro and in living cells. The work here thus establishes unimolecular folding as a general strategy for constructing complex and replicable nucleic acid nanostructures, and expands the design space and material scalability for bottom-up nanotechnology.Entities:
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Year: 2017 PMID: 29242318 PMCID: PMC6384012 DOI: 10.1126/science.aao2648
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728