DNAMAKER · Molecular additive manufacturing through DNA nanotechnology
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-10-01 → 2021-09-30
- EU contribution
- €224,934
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Molecular additive manufacturing through DNA nanotechnology
Today, objects and materials that are manipulated on the nano-scale form essential parts of our everyday life. One important example is electronics, powered by computer chips with miniscule features. Several techniques exist for manufacturing of such materials, most of which rely on top-down approaches. These techniques require careful control of clean-room conditions and are expensive and complicated to implement. In contrast, nature uses bottoms-up approaches to construct atomically precise materials like proteins with a low energy expenditure and extreme speed and precision. Drawing inspiration from the bottoms-up approaches found in nature, DNA nanotechnology use carefully programmed DNA strands to self-assemble complex structures and machines on the nanometre scale. In this project, we aimed at using DNA nanotechnology to produce tiny motors called linear actuators. The plan was to use external control strands to drive the position of the motors and then utilize the motors for nanoscale patterning through the addition of a write-head function. We found that DNA nanotechnology, specifically through the technique DNA origami could create linear actuators through creating a two-component DNA origami structure consisting of a linear rail and a topologically locked slider structure. The slider was capable of diffusing freely along the rail, and when control strands were added, we could lock it at a programmed position. Importantly, this locking was reversible through the addition of invader strands releasing the slider to diffuse freely again along the rail. We were also able to connect multiple slider devices together to create a 2D gantry where a slider could be positioned in two dimensions over a surface. Finally, we were able to use the slider in the 2D gantry to pattern a canvas at programmed positions.
Data: CORDIS, © European Union
Project objective
In the last decades, DNA nanotechnology has been established as a robust method for the production of static, large two- and three-dimensional structures as well as dynamic systems based on the interaction of multiple small strands through strand displacement. In the proposed project, Dr. Erik Benson will join Professor Turberfield’s group to develop the first demonstration of atomically precise manufacturing based on DNA nanotechnology. In his Ph.D. studies, Erik developed methods for the design of wireframe DNA nanostructures and used several experimental techniques to study their assembly. He will combine these skills with Professor Turberfield’s expertise in DNA nanomachines and dynamic DNA toehold systems to develop a first-generation molecular printer. The printer will be constructed by DNA origami, and consist of a guide rail that host a sliding write head whose movements are externally controlled by the introduction of DNA strands. The addition of activator strands will trigger a DNA hybridization catalyst placed at the tip of the write head, causing it to modify the target surface at the precisely determined positions. The principles developed in this project can be expanded into two and three dimensions by the connection of multiple linear motors. The development of robust, externally controlled linear motion at the nanoscale can also find application in other fields including nano-manipulation, biophysics, and controlled catalysis.
Original text from CORDIS.
Participants
- THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OxfordCoordinatorUnited Kingdom
Links
- View on CORDIS
- DOI: 10.3030/842291
- https://www.physics.ox.ac.uk/research/group/self-assembled-structures-and-devices
Data: CORDIS, © European Union
