7NPN | pdb_00007npn

B-brick bare in 5 mM Mg2+


Experimental Data Snapshot

  • Method: ELECTRON MICROSCOPY
  • Resolution: 10.3 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 

wwPDB Validation   3D Report Full Report

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This is version 1.2 of the entry. See complete history


Literature

Cryo-Electron Microscopy and Mass Analysis of Oligolysine-Coated DNA Nanostructures.

Bertosin, E.Stommer, P.Feigl, E.Wenig, M.Honemann, M.N.Dietz, H.

(2021) ACS Nano 15: 9391-9403

  • DOI: https://doi.org/10.1021/acsnano.0c10137
  • Primary Citation of Related Structures:  
    7NPN

  • PubMed Abstract: 

    Cationic coatings can enhance the stability of synthetic DNA objects in low ionic strength environments such as physiological fluids. Here, we used single-particle cryo-electron microscopy (cryo-EM), pseudoatomic model fitting, and single-molecule mass photometry to study oligolysine and polyethylene glycol (PEG)-oligolysine-coated multilayer DNA origami objects. The coatings preserve coarse structural features well on a resolution of multiple nanometers but can also induce deformations such as twisting and bending. Higher-density coatings also led to internal structural deformations in the DNA origami test objects, in which a designed honeycomb-type helical lattice was deformed into a more square-lattice-like pattern. Under physiological ionic strength, where the uncoated objects disassembled, the coated objects remained intact but they shrunk in the helical direction and expanded in the direction perpendicular to the helical axis. Helical details like major/minor grooves and crossover locations were not discernible in cryo-EM maps that we determined of DNA origami coated with oligolysine and PEG-oligolysine, whereas these features were visible in cryo-EM maps determined from the uncoated reference objects. Blunt-ended double-helical interfaces remained accessible underneath the coating and may be used for the formation of multimeric DNA origami assemblies that rely on stacking interactions between blunt-ended helices. The ionic strength requirements for forming multimers from coated DNA origami differed from those needed for uncoated objects. Using single-molecule mass photometry, we found that the mass of coated DNA origami objects prior to and after incubation in low ionic strength physiological conditions remained unchanged. This finding indicated that the coating effectively prevented strand dissociation but also that the coating itself remained stable in place. Our results validate oligolysine coatings as a powerful stabilization method for DNA origami but also reveal several potential points of failure that experimenters should watch to avoid working with false premises.


  • Organizational Affiliation
    • Department of Physics, Technical University of Munich, Garching 85748, Germany.

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Experimental Data & Validation

Experimental Data

  • Method: ELECTRON MICROSCOPY
  • Resolution: 10.3 Å
  • Aggregation State: PARTICLE 
  • Reconstruction Method: SINGLE PARTICLE 

Structure Validation

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Currently 7NPN does not have a validation slider image.



Entry History & Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
German Research Foundation (DFG)GermanyGottfried-Wilhelm-Leibniz Program
European Research Council (ERC)GermanyConsolidator Grant (GA #724261)
Max Planck SocietyGermanyMax Planck School Matter to Life
German Research Foundation (DFG)GermanySFB863 TPA9 Project ID 111166240

Revision History  (Full details and data files)

  • Version 1.0: 2021-03-31
    Type: Initial release
  • Version 1.1: 2021-07-07
    Changes: Database references
  • Version 1.2: 2024-07-10
    Changes: Data collection, Database references