Modelling DNA origami self-assembly at the domain level

We present a modelling framework, and basic model parameterization, for the study of DNA origami folding at the level of DNA domains. Our approach is explicitly kinetic and does not assume a specific folding pathway. The binding of each staple is associated with a free-energy change that depends on...

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Autors principals: Dannenberg, F, Dunn, KE, Bath, J, Kwiatkowska, M, Turberfield, AJ, Ouldridge, TE
Format: Journal article
Idioma:English
Publicat: American Institute of Physics 2015
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author Dannenberg, F
Dunn, KE
Bath, J
Kwiatkowska, M
Turberfield, AJ
Ouldridge, TE
author_facet Dannenberg, F
Dunn, KE
Bath, J
Kwiatkowska, M
Turberfield, AJ
Ouldridge, TE
author_sort Dannenberg, F
collection OXFORD
description We present a modelling framework, and basic model parameterization, for the study of DNA origami folding at the level of DNA domains. Our approach is explicitly kinetic and does not assume a specific folding pathway. The binding of each staple is associated with a free-energy change that depends on staple sequence, the possibility of coaxial stacking with neighbouring domains, and the entropic cost of constraining the scaffold by inserting staple crossovers. A rigorous thermodynamic model is difficult to implement as a result of the complex, multiply connected geometry of the scaffold: we present a solution to this problem for planar origami. Coaxial stacking of helices and entropic terms, particularly when loop closure exponents are taken to be larger than those for ideal chains, introduce interactions between staples. These cooperative interactions lead to the prediction of sharp assembly transitions with notable hysteresis that are consistent with experimental observations. We show that the model reproduces the experimentally observed consequences of reducing staple concentration, accelerated cooling, and absent staples. We also present a simpler methodology that gives consistent results and can be used to study a wider range of systems including non-planar origami.
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spelling oxford-uuid:cdfc7812-1164-4ceb-bf60-936d49af93ee2022-03-27T07:32:44ZModelling DNA origami self-assembly at the domain levelJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:cdfc7812-1164-4ceb-bf60-936d49af93eeEnglishSymplectic Elements at OxfordAmerican Institute of Physics2015Dannenberg, FDunn, KEBath, JKwiatkowska, MTurberfield, AJOuldridge, TEWe present a modelling framework, and basic model parameterization, for the study of DNA origami folding at the level of DNA domains. Our approach is explicitly kinetic and does not assume a specific folding pathway. The binding of each staple is associated with a free-energy change that depends on staple sequence, the possibility of coaxial stacking with neighbouring domains, and the entropic cost of constraining the scaffold by inserting staple crossovers. A rigorous thermodynamic model is difficult to implement as a result of the complex, multiply connected geometry of the scaffold: we present a solution to this problem for planar origami. Coaxial stacking of helices and entropic terms, particularly when loop closure exponents are taken to be larger than those for ideal chains, introduce interactions between staples. These cooperative interactions lead to the prediction of sharp assembly transitions with notable hysteresis that are consistent with experimental observations. We show that the model reproduces the experimentally observed consequences of reducing staple concentration, accelerated cooling, and absent staples. We also present a simpler methodology that gives consistent results and can be used to study a wider range of systems including non-planar origami.
spellingShingle Dannenberg, F
Dunn, KE
Bath, J
Kwiatkowska, M
Turberfield, AJ
Ouldridge, TE
Modelling DNA origami self-assembly at the domain level
title Modelling DNA origami self-assembly at the domain level
title_full Modelling DNA origami self-assembly at the domain level
title_fullStr Modelling DNA origami self-assembly at the domain level
title_full_unstemmed Modelling DNA origami self-assembly at the domain level
title_short Modelling DNA origami self-assembly at the domain level
title_sort modelling dna origami self assembly at the domain level
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AT dunnke modellingdnaorigamiselfassemblyatthedomainlevel
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AT kwiatkowskam modellingdnaorigamiselfassemblyatthedomainlevel
AT turberfieldaj modellingdnaorigamiselfassemblyatthedomainlevel
AT ouldridgete modellingdnaorigamiselfassemblyatthedomainlevel