Long-range charge transport in single G-quadruplex DNA molecules

被引:0
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作者
Gideon I. Livshits
Avigail Stern
Dvir Rotem
Natalia Borovok
Gennady Eidelshtein
Agostino Migliore
Erika Penzo
Shalom J. Wind
Rosa Di Felice
Spiros S. Skourtis
Juan Carlos Cuevas
Leonid Gurevich
Alexander B. Kotlyar
Danny Porath
机构
[1] Institute of Chemistry and The Center for Nanoscience and Nanotechnology,Department of Biochemistry and Molecular Biology
[2] The Hebrew University of Jerusalem,Department of Chemistry
[3] George S. Wise Faculty of Life Sciences and Center of Nanoscience and Nanotechnology,Department of Physics and Astronomy
[4] Tel Aviv University,Department of Physics
[5] Duke University,Departamento de Física Teórica de la Materia Condensada and Condensed Matter Physics Center (IFIMAC)
[6] School of Chemistry,Department of Physics and Nanotechnology
[7] Tel Aviv University,undefined
[8] Department of Applied Physics and Applied Mathematics,undefined
[9] University of Southern California,undefined
[10] Center S3,undefined
[11] CNR Institute of Nanoscience,undefined
[12] University of Cyprus,undefined
[13] Universidad Autónoma de Madrid,undefined
[14] Aalborg University,undefined
来源
Nature Nanotechnology | 2014年 / 9卷
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摘要
DNA and DNA-based polymers are of interest in molecular electronics because of their versatile and programmable structures. However, transport measurements have produced a range of seemingly contradictory results due to differences in the measured molecules and experimental set-ups, and transporting significant current through individual DNA-based molecules remains a considerable challenge. Here, we report reproducible charge transport in guanine-quadruplex (G4) DNA molecules adsorbed on a mica substrate. Currents ranging from tens of picoamperes to more than 100 pA were measured in the G4-DNA over distances ranging from tens of nanometres to more than 100 nm. Our experimental results, combined with theoretical modelling, suggest that transport occurs via a thermally activated long-range hopping between multi-tetrad segments of DNA. These results could re-ignite interest in DNA-based wires and devices, and in the use of such systems in the development of programmable circuits.
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页码:1040 / 1046
页数:6
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