Vid Kočar (Avtor), John S. Schreck (Avtor), Slavko Čeru (Avtor), Helena Gradišar (Avtor), Nino Bašić (Avtor), Tomaž Pisanski (Avtor), Jonathan P. K. Doye (Avtor), Roman Jerala (Avtor)

Povzetek

Knots are some of the most remarkable topological features in nature. Self-assembly of knotted polymers without breaking or forming covalent bonds is challenging, as the chain needs to be threaded through previously formed loops in an exactly defined order. Here we describe principles to guide the folding of highly knotted single-chain DNA nanostructures as demonstrated on a nano-sized square pyramid. Folding of knots is encoded by the arrangement of modules of different stability based on derived topological and kinetic rules. Among DNA designs composed of the same modules and encoding the same topology, only the one with the folding pathway designed according to the "free-end" rule folds efficiently into the target structure. Besides high folding yield on slow annealing, this design also folds rapidly on temperature quenching and dilution from chemical denaturant. This strategy could be used to design folding of other knotted programmable polymers such as RNA or proteins.

Ključne besede

biokemija;DNA;nanostrukture;struktura snovi;

Podatki

Jezik: Angleški jezik
Leto izida:
Tipologija: 1.01 - Izvirni znanstveni članek
Organizacija: KI - Kemijski inštitut
UDK: 577.2
COBISS: 5880858 Povezava se bo odprla v novem oknu
ISSN: 2041-1723
Št. ogledov: 3738
Št. prenosov: 1108
Ocena: 0 (0 glasov)
Metapodatki: JSON JSON-RDF JSON-LD TURTLE N-TRIPLES XML RDFA MICRODATA DC-XML DC-RDF RDF

Ostali podatki

Sekundarne ključne besede: biokemija;DNA;nanostrukture;struktura snovi;
Vrsta dela (COBISS): Članek v reviji
Komentar vira: Sodelavci: John S. Schreck, Slavko Čeru, Helena Gradišar, Nino Bašić, Tomaž Pisanski, Jonathan P. K. Doye & Roman Jerala; Opis vira z dne 7. 3. 2016; Nasl. z nasl. zaslona; Št. članka 10803;
Strani: str. 1-8
Zvezek: ǂVol. ǂ7
Čas izdaje: Feb. 2016
DOI: 10.1038/ncomms10803
ID: 9145169
Priporočena dela:
, lecture at the Konan University, FIBER Future College, 22. 6. 2015
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