Publication: Multi-micron crisscross structures grown from DNA-origami slats
No Thumbnail Available
Open/View Files
Date
2022-12-21
Published Version
Journal Title
Journal ISSN
Volume Title
Publisher
Springer Science and Business Media LLC
The Harvard community has made this article openly available. Please share how this access benefits you.
Citation
Wintersinger, Christopher, Dionis Minev, Anastasia Ershova, Hiroshi Sasaki, Gokul Gowri, Jonathan Berengut, Franklin Corea-Dilbert et al. "Multi-micron crisscross structures grown from DNA-origami slats." Nat. Nanotechnol. 18, no. 3 (2022): 281-289. DOI: 10.1038/s41565-022-01283-1
Research Data
Abstract
Living systems achieve robust self-assembly across a wide range of length scales. In the synthetic realm, nanofabrication strategies such as DNA origami have enabled robust self-assembly of submicron-scale shapes from a multitude of single-stranded components. To achieve greater complexity, subsequent hierarchical joining of origami can be pursued. However, erroneous and missing linkages restrict the number of unique origami that can be practically combined into a single design. Here we extend crisscross polymerization, a strategy previously demonstrated with single-stranded components, to DNA-origami “slats” for fabrication of custom multi-micron shapes with user-defined nanoscale surface patterning. Using a library of ~2000 strands that are combinatorially arranged to create unique DNA-origami slats, we realize finite structures composed of >1000 uniquely addressable slats, with a mass exceeding 5 GDa and with lateral dimensions of roughly 2 µm, as well as a multitude of periodic structures. Robust production of target crisscross structures is enabled through strict control over initiation, rapid growth and minimal premature termination, and highly orthogonal binding specificities. Thus crisscross growth provides a route for prototyping and scalable production of structures integrating thousands of unique components (i.e. origami slats) that each are sophisticated and molecularly precise.
Description
Other Available Sources
Keywords
Electrical and Electronic Engineering, Condensed Matter Physics, General Materials Science, Biomedical Engineering, Atomic and Molecular Physics, and Optics, Bioengineering
Terms of Use
Metadata Only