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DNA bipedal motor walking dynamics: an experimental and theoretical study of the dependency on step size
File | Description | Size | Format | |
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gkx1282.pdf | Published version | 3.6 MB | Adobe PDF | View/Open |
Title: | DNA bipedal motor walking dynamics: an experimental and theoretical study of the dependency on step size |
Authors: | Khara, DC Schreck, JS Tomov, TE Berger, Y Ouldridge, TE Doye, JPK Nir, E |
Item Type: | Journal Article |
Abstract: | We present a detailed coarse-grained computer simulation and single molecule fluorescence study of the walking dynamics and mechanism of a DNA bipedal motor striding on a DNA origami. In particular, we study the dependency of the walking efficiency and stepping kinetics on step size. The simulations accurately capture and explain three different experimental observations. These include a description of the maximum possible step size, a decrease in the walking efficiency over short distances and a dependency of the efficiency on the walking direction with respect to the origami track. The former two observations were not expected and are non-trivial. Based on this study, we suggest three design modifications to improve future DNA walkers. Our study demonstrates the ability of the oxDNA model to resolve the dynamics of complex DNA machines, and its usefulness as an engineering tool for the design of DNA machines that operate in the three spatial dimensions. |
Issue Date: | 27-Dec-2017 |
Date of Acceptance: | 20-Dec-2017 |
URI: | http://hdl.handle.net/10044/1/55610 |
DOI: | https://dx.doi.org/10.1093/nar/gkx1282 |
ISSN: | 0305-1048 |
Publisher: | Oxford University Press |
Start Page: | 1553 |
End Page: | 1561 |
Journal / Book Title: | Nucleic Acids Research |
Volume: | 46 |
Issue: | 3 |
Copyright Statement: | © The Author(s) 2017. Published by Oxford University Press on behalf of Nucleic Acids Research. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited. |
Sponsor/Funder: | The Royal Society |
Funder's Grant Number: | UF150067 |
Keywords: | Science & Technology Life Sciences & Biomedicine Biochemistry & Molecular Biology SINGLE-MOLECULE FLUORESCENCE NANOSCALE SHAPES FORCE CLAMP FOLDING DNA ORIGAMI WALKER NANOTECHNOLOGY DEVICES DESIGN NANOSTRUCTURES 05 Environmental Sciences 06 Biological Sciences 08 Information And Computing Sciences Developmental Biology |
Publication Status: | Published |
Appears in Collections: | Bioengineering Faculty of Engineering |