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December 2, 2025Nature Materials6 citationsOpen Access

Self-assembled cell-scale containers made from DNA origami membranes

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CKChristoph KarfusehrMEMarkus EderHYHao Yuan Yang

Key Points

  • DNA origami membranes create versatile compartments at the nanoscale, enhancing biological functions.
  • The study found DNA origami can form vesicles from 100 nm to over 1 μm in diameter.
  • Self-assembly techniques using DNA origami enable novel approaches in compartmentalization and robotics.
  • This work highlights potential impacts in soft robotics and bottom-up biology.

Abstract

Abstract Biological compartmentalization creates and controls localized environments to ensure that chemical processes are efficient, thus enabling life’s complexity and functionality. Biological systems use crystalline protein cages for nanoscale compartments, whereas larger, dynamic structures, such as vesicles and cell membranes, are formed from lipid bilayers. Although membrane-based approaches have prevailed in bottom-up synthetic biology, DNA and protein nanotechnology has focused on designing rigid cage assemblies. Here we report on the self-assembly of radially symmetric DNA origami subunits that are inspired by the structure and interactions of lipids. The formed DNA origami monolayer membranes can be readily programmed to form vesicles or hollow tubes with diameters ranging from 100 nm to over 1 μm. These DNA origami membranes represent an approach for compartmentalization that opens possibilities in bottom-up biology and cell-scale soft robotics.

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Cite This Study

Karfusehr et al. (2025) studied this question.

synapsesocial.com/papers/692e3d796c9b3ab28c187198https://doi.org/10.1038/s41563-025-02418-0
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