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Updated: Jul 27, 2025

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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
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Single DNA Translocation and Electrical Characterization Based on Atomic Force Microscopy and Nanoelectrodes.
B O Ma1, Jin-Woo Kim2,3,4, Steve Tung1
1Department of Mechanical Engineering, University of Arkansas, Fayetteville, AR 72701 USA.
Summary
This study presents an atomic force microscopy (AFM) method for precise DNA translocation control, enabling accurate electrical characterization of DNA during sequencing. The technique linearizes DNA, facilitating detailed analysis of its properties.
Area of Science:
- Nanotechnology
- Biophysics
- Molecular Biology
Background:
- Accurate single-molecule DNA sequencing requires precise control over DNA translocation.
- Characterizing the electrical properties of DNA during translocation is essential for developing advanced sequencing technologies.
Purpose of the Study:
- To develop and demonstrate an atomic force microscopy (AFM)-based method for linearizing and controlling DNA translocation.
- To characterize the electrical properties of translocating DNA using a platinum (Pt) nanoelectrode gap.
Main Methods:
- Utilized AFM to deposit, identify, and electrostatically attach single lambda-DNA (λDNA) strands to a probe without chemical functionalization.
- Lifted DNA off a charged mica surface using the AFM probe and translocated it across a Pt nanoelectrode gap for electrical measurements.
- Performed finite element analysis to model the effect of translocating DNA on nanoelectrode gap conductivity.
Main Results:
- Successfully demonstrated controlled linearization and translocation of DNA using AFM.
- Measured electrical properties of DNA during translocation across a Pt nanoelectrode gap.
- Finite element analysis validated experimental measurements of gap current during DNA translocation.
Conclusions:
- The developed AFM-based method offers precise control over DNA translocation for single-molecule sequencing applications.
- This technique allows for effective characterization of the electrical properties of DNA as it moves through a nanoelectrode gap.
- The findings support the potential of this method for advancing high-accuracy DNA sequencing technologies.

