4.8 Article

Direct Design of an Energy Landscape with Bistable DNA Origami Mechanisms

期刊

NANO LETTERS
卷 15, 期 3, 页码 1815-1821

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nl5045633

关键词

DNA origami; nanotechnology; compliant mechanisms; bistable nanomechanisms; free energy landscape

资金

  1. National Science Foundation [CMMI-1235060]
  2. Directorate For Engineering [1235060] Funding Source: National Science Foundation

向作者/读者索取更多资源

Structural DNA nanotechnology provides a feasible technique for the design and fabrication of complex geometries even exhibiting controllable dynamic behavior. Recently we have demonstrated the possibility of implementing macroscopic engineering design approaches to construct DNA origami mechanisms (DOM) with programmable motion and tunable flexibility. Here, we implement the design of compliant DNA origami mechanisms to extend from prescribing motion to prescribing an energy landscape. Compliant mechanisms facilitate motion via deformation of components with tunable stiffness resulting in well-defined mechanical energy stored in the structure. We design, fabricate, and characterize a DNA origami nanostructure with an energy landscape defined by two stable states (local energy minima) separated by a designed energy barrier. This nanostructure is a four-bar bistable mechanism with two undeformed states. Traversing between those states requires deformation, and hence mechanical energy storage, in a compliant arm of the linkage. The energy barrier for switching between two states was obtained from the conformational distribution based on a Boltzmann probability function and closely follows a predictive mechanical model. Furthermore, we demonstrated the ability to actuate the mechanism into one stable state via additional DNA inputs and then release the actuation via DNA strand displacement. This controllable multistate system establishes a foundation for direct design of energy landscapes that regulate conformational dynamics similar to biomolecular complexes.

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