Membrane-Assisted Growth of DNA Origami Nanostructure Arrays

Samet Kocabey, Susanne Kempter, Jonathan List, Yongzheng Xing, Wooli Bae, Daniel Schiffels, William M. Shih, Friedrich C. Simmel, Tim Liedl

Research output: Contribution to journalArticlepeer-review

147 Scopus citations

Abstract

Biological membranes fulfill many important tasks within living organisms. In addition to separating cellular volumes, membranes confine the space available to membrane-associated proteins to two dimensions (2D), which greatly increases their probability to interact with each other and assemble into multiprotein complexes. We here employed two DNA origami structures functionalized with cholesterol moieties as membrane anchors'-'a three-layered rectangular block and a Y-shaped DNA structure'-'to mimic membrane-assisted assembly into hierarchical superstructures on supported lipid bilayers and small unilamellar vesicles. As designed, the DNA constructs adhered to the lipid bilayers mediated by the cholesterol anchors and diffused freely in 2D with diffusion coefficients depending on their size and number of cholesterol modifications. Different sets of multimerization oligonucleotides added to bilayer-bound origami block structures induced the growth of either linear polymers or two-dimensional lattices on the membrane. Y-shaped DNA origami structures associated into triskelion homotrimers and further assembled into weakly ordered arrays of hexagons and pentagons, which resembled the geometry of clathrin-coated pits. Our results demonstrate the potential to realize artificial self-assembling systems that mimic the hierarchical formation of polyhedral lattices on cytoplasmic membranes.

Original languageEnglish
Pages (from-to)3530-3539
Number of pages10
JournalACS Nano
Volume9
Issue number4
DOIs
StatePublished - 28 Apr 2015

Keywords

  • DNA nanotechnology
  • DNA origami
  • arrays
  • cholesterol
  • clathrin
  • diffusion
  • lipid membrane

Fingerprint

Dive into the research topics of 'Membrane-Assisted Growth of DNA Origami Nanostructure Arrays'. Together they form a unique fingerprint.

Cite this