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Dimensions and Global Twist of Single-Layer DNA Origami Measured by Small-Angle X-ray Scattering.
Baker, Matthew A B; Tuckwell, Andrew J; Berengut, Jonathan F; Bath, Jonathan; Benn, Florence; Duff, Anthony P; Whitten, Andrew E; Dunn, Katherine E; Hynson, Robert M; Turberfield, Andrew J; Lee, Lawrence K.
Afiliação
  • Baker MAB; EMBL Australia Node for Single Molecule Science, School of Medical Sciences , The University of New South Wales , Sydney 2052 , Australia.
  • Tuckwell AJ; EMBL Australia Node for Single Molecule Science, School of Medical Sciences , The University of New South Wales , Sydney 2052 , Australia.
  • Berengut JF; EMBL Australia Node for Single Molecule Science, School of Medical Sciences , The University of New South Wales , Sydney 2052 , Australia.
  • Bath J; Clarendon Laboratory, Department of Physics , University of Oxford , Parks Road , Oxford OX1 3PU , United Kingdom.
  • Benn F; Clarendon Laboratory, Department of Physics , University of Oxford , Parks Road , Oxford OX1 3PU , United Kingdom.
  • Duff AP; Australian Nuclear Science and Technology Organisation , Lucas Heights 2234 , Australia.
  • Whitten AE; Australian Nuclear Science and Technology Organisation , Lucas Heights 2234 , Australia.
  • Dunn KE; Clarendon Laboratory, Department of Physics , University of Oxford , Parks Road , Oxford OX1 3PU , United Kingdom.
  • Hynson RM; Structural and Computational Biology Division , The Victor Chang Cardiac Research Institute , Darlinghurst 2010 , Australia.
  • Turberfield AJ; Clarendon Laboratory, Department of Physics , University of Oxford , Parks Road , Oxford OX1 3PU , United Kingdom.
  • Lee LK; EMBL Australia Node for Single Molecule Science, School of Medical Sciences , The University of New South Wales , Sydney 2052 , Australia.
ACS Nano ; 12(6): 5791-5799, 2018 06 26.
Article em En | MEDLINE | ID: mdl-29812934
ABSTRACT
The rational design of complementary DNA sequences can be used to create nanostructures that self-assemble with nanometer precision. DNA nanostructures have been imaged by atomic force microscopy and electron microscopy. Small-angle X-ray scattering (SAXS) provides complementary structural information on the ensemble-averaged state of DNA nanostructures in solution. Here we demonstrate that SAXS can distinguish between different single-layer DNA origami tiles that look identical when immobilized on a mica surface and imaged with atomic force microscopy. We use SAXS to quantify the magnitude of global twist of DNA origami tiles with different crossover periodicities these measurements highlight the extreme structural sensitivity of single-layer origami to the location of strand crossovers. We also use SAXS to quantify the distance between pairs of gold nanoparticles tethered to specific locations on a DNA origami tile and use this method to measure the overall dimensions and geometry of the DNA nanostructure in solution. Finally, we use indirect Fourier methods, which have long been used for the interpretation of SAXS data from biomolecules, to measure the distance between DNA helix pairs in a DNA origami nanotube. Together, these results provide important methodological advances in the use of SAXS to analyze DNA nanostructures in solution and insights into the structures of single-layer DNA origami.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Difração de Raios X / DNA / Espalhamento a Baixo Ângulo Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Difração de Raios X / DNA / Espalhamento a Baixo Ângulo Idioma: En Ano de publicação: 2018 Tipo de documento: Article