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A computational model for structural dynamics and reconfiguration of DNA assemblies

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  • Jae Young Lee

    (Seoul National University)

  • Heeyuen Koh

    (Seoul National University)

  • Do-Nyun Kim

    (Seoul National University
    Seoul National University
    Seoul National University
    Seoul National University)

Abstract

Recent advances in constructing a structured DNA assembly whose configuration can be dynamically changed in response to external stimuli have demanded the development of an efficient computational modeling approach to expedite its design process. Here, we present a computational framework capable of analyzing both equilibrium and non-equilibrium dynamics of structured DNA assemblies at the molecular level. The framework employs Langevin dynamics with structural and hydrodynamic finite element models that describe mechanical, electrostatic, base stacking, and hydrodynamic interactions. Equilibrium dynamic analysis for various problems confirms the solution accuracy at a near-atomic resolution, comparable to molecular dynamics simulations and experimental measurements. Furthermore, our model successfully simulates a long-time-scale close-to-open-to-close dynamic reconfiguration of the switch structure in response to changes in ion concentration. We expect that the proposed model will offer a versatile way of designing responsive and reconfigurable DNA machines.

Suggested Citation

  • Jae Young Lee & Heeyuen Koh & Do-Nyun Kim, 2023. "A computational model for structural dynamics and reconfiguration of DNA assemblies," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-42873-4
    DOI: 10.1038/s41467-023-42873-4
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    References listed on IDEAS

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    1. Hyungmin Jun & Xiao Wang & William P. Bricker & Mark Bathe, 2019. "Automated sequence design of 2D wireframe DNA origami with honeycomb edges," Nature Communications, Nature, vol. 10(1), pages 1-9, December.
    2. Pallav Kosuri & Benjamin D. Altheimer & Mingjie Dai & Peng Yin & Xiaowei Zhuang, 2019. "Rotation tracking of genome-processing enzymes using DNA origami rotors," Nature, Nature, vol. 572(7767), pages 136-140, August.
    3. Anna-Katharina Pumm & Wouter Engelen & Enzo Kopperger & Jonas Isensee & Matthias Vogt & Viktorija Kozina & Massimo Kube & Maximilian N. Honemann & Eva Bertosin & Martin Langecker & Ramin Golestanian &, 2022. "A DNA origami rotary ratchet motor," Nature, Nature, vol. 607(7919), pages 492-498, July.
    4. Erik Benson & Abdulmelik Mohammed & Johan Gardell & Sergej Masich & Eugen Czeizler & Pekka Orponen & Björn Högberg, 2015. "DNA rendering of polyhedral meshes at the nanoscale," Nature, Nature, vol. 523(7561), pages 441-444, July.
    5. Young-Joo Kim & Junho Park & Jae Young Lee & Do-Nyun Kim, 2021. "Programming ultrasensitive threshold response through chemomechanical instability," Nature Communications, Nature, vol. 12(1), pages 1-8, December.
    6. Keyao Pan & Do-Nyun Kim & Fei Zhang & Matthew R. Adendorff & Hao Yan & Mark Bathe, 2014. "Lattice-free prediction of three-dimensional structure of programmed DNA assemblies," Nature Communications, Nature, vol. 5(1), pages 1-7, December.
    7. Massimo Kube & Fabian Kohler & Elija Feigl & Baki Nagel-Yüksel & Elena M. Willner & Jonas J. Funke & Thomas Gerling & Pierre Stömmer & Maximilian N. Honemann & Thomas G. Martin & Sjors H. W. Scheres &, 2020. "Revealing the structures of megadalton-scale DNA complexes with nucleotide resolution," Nature Communications, Nature, vol. 11(1), pages 1-10, December.
    8. Shawn M. Douglas & Hendrik Dietz & Tim Liedl & Björn Högberg & Franziska Graf & William M. Shih, 2009. "Self-assembly of DNA into nanoscale three-dimensional shapes," Nature, Nature, vol. 459(7245), pages 414-418, May.
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