DNA Charge Transport: from Chemical Principles to the Cell

The DNA double helix has captured the imagination of many, bringing it to the forefront of biological research. DNA has unique features that extend our interest into areas of chemistry, physics, material science, and engineering. Our laboratory has focused on studies of DNA charge transport (CT), wh...

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Veröffentlicht in:Cell chemical biology 2016-01, Vol.23 (1), p.183-197
Hauptverfasser: Arnold, Anna R., Grodick, Michael A., Barton, Jacqueline K.
Format: Artikel
Sprache:eng
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Zusammenfassung:The DNA double helix has captured the imagination of many, bringing it to the forefront of biological research. DNA has unique features that extend our interest into areas of chemistry, physics, material science, and engineering. Our laboratory has focused on studies of DNA charge transport (CT), wherein charges can efficiently travel long molecular distances through the DNA helix while maintaining an exquisite sensitivity to base pair π-stacking. Because DNA CT chemistry reports on the integrity of the DNA duplex, this property may be exploited to develop electrochemical devices to detect DNA lesions and DNA-binding proteins. Furthermore, studies now indicate that DNA CT may also be used in the cell by, for example, DNA repair proteins, as a cellular diagnostic, in order to scan the genome to localize efficiently to damage sites. In this review, we describe this evolution of DNA CT chemistry from the discovery of fundamental chemical principles to applications in diagnostic strategies and possible roles in biology. Charges can travel long molecular distances through the DNA helix with an exquisite sensitivity to base pair stacking. This review describes the evolution of DNA charge transport from the discovery of fundamental chemical principles to applications as sensitive diagnostics and possible roles in DNA repair and DNA processing.
ISSN:2451-9456
2451-9456
DOI:10.1016/j.chembiol.2015.11.010