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Folding and Characterization of a Bio-responsive Robot from DNA Origami
Published on: December 3, 2015
A programmable DNA origami nanosyringe for directed membrane translocation
Longjiang Ding1,2, Sisi Fan1,2, Xiang Hao3
12nd Physics Institute, University of Stuttgart, Stuttgart, Germany.
Nature Nanotechnology
|August 11, 2026
Summary
Researchers developed a DNA origami nanosyringe for programmable membrane penetration. This synthetic system mimics bacterial injection systems, enabling controlled cargo delivery and regulation of biochemical processes at membrane interfaces.
Area of Science:
- Nanotechnology
- Biophysics
- Synthetic Biology
Background:
- Bacterial contractile injection systems serve as models for membrane penetration and molecular cargo delivery.
- Replicating these complex functions in synthetic nanoscale systems presents significant challenges, particularly in integrating structural organization with dynamic actuation, reversibility, and spatiotemporal control.
Purpose of the Study:
- To engineer a synthetic nanoscale system capable of programmable membrane translocation.
- To develop a DNA origami nanosyringe that mimics bacterial injection systems for controlled cargo delivery and biochemical regulation.
Main Methods:
- Fabrication of a DNA origami nanosyringe composed of two DNA origami bundles crosslinked by a gold nanoparticle.
- Functionalization of one bundle as a membrane-anchoring base and the other as a DNA fuel-driven sliding needle.
- Utilizing DNA fuel to actuate the needle for membrane penetration and subsequent retraction for membrane resealing.
Main Results:
- The DNA origami nanosyringe successfully binds to lipid bilayers and vesicles.
- Actuation drives needle penetration in ~14-nm steps, enabling cargo delivery into lipid-bounded compartments.
- Demonstrated regulation of biochemical processes, including hybridization chain reactions, RNA transcription, and catalytic RNA cleavage, within cell-sized environments.
Conclusions:
- The developed DNA origami nanosyringe effectively integrates structural organization with dynamic actuation for programmable membrane translocation.
- This synthetic system provides a versatile platform for controlled molecular cargo delivery and regulation of biochemical functions at membrane interfaces.
- The strategy advances the design of dynamic DNA devices operating at biological interfaces, coordinating mechanical action with biochemical outcomes.
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