» Articles » PMID: 19519596

DNA in the Material World: Electrical Properties and Nano-applications

Overview
Specialty Biotechnology
Date 2009 Jun 13
PMID 19519596
Citations 4
Authors
Affiliations
Soon will be listed here.
Abstract

Contradictory experimental findings and theoretical interpretations have spurred intense debate over the electrical properties of the DNA double helix. In the present review article the various factors responsible for these divergences are discussed. The enlightenment of this issue could improve long range chemistry of oxidative DNA damage and repair processes, monitoring protein-DNA interactions and possible applications in nano-electronic circuit technology. The update experimental situation concerning measurements of the electrical conductivity is given. The character of the carriers responsible for the electrical conductivity measured in DNA is investigated. A theoretical model for the temperature dependence of the electrical conductivity of DNA is presented, based on microscopic models and percolation theoretical arguments. The theoretical results, excluding or including correlation effects, are applied to recent experimental findings for DNA, considering it as a one dimensional molecular wire. The results indicate that correlation effects are probably responsible for large hopping distances in DNA samples. Other theoretical conductivity models proposed for the interpretation of the responsible transport mechanism are also reviewed. Some of the most known and pioneering works on DNA's nano-applications, future developments and perspectives along with current technological limitations and patents are presented and discussed.

Citing Articles

Relation between DNA ionization potentials, single base substitutions and pathogenic variants.

Pucci F, Rooman M BMC Genomics. 2019; 20(Suppl 8):551.

PMID: 31307386 PMC: 6631442. DOI: 10.1186/s12864-019-5867-y.


Antitumor therapeutic application of self-assembled RNAi-AuNP nanoconstructs: Combination of VEGF-RNAi and photothermal ablation.

Son S, Kim N, You D, Yoon H, Yhee J, Kim K Theranostics. 2017; 7(1):9-22.

PMID: 28042312 PMC: 5196881. DOI: 10.7150/thno.16042.


Sequence and conformation effects on ionization potential and charge distribution of homo-nucleobase stacks using M06-2X hybrid density functional theory calculations.

Rooman M, Wintjens R J Biomol Struct Dyn. 2013; 32(4):532-45.

PMID: 23582046 PMC: 3919198. DOI: 10.1080/07391102.2013.783508.


Biomolecular and structural analyses of cauliflower-like DNAs by ultraviolet, circular dichroism, and fluorescence spectroscopies in comparison with natural DNA.

Gill P, Ranjbar B, Saber R, Khajeh K, Mohammadian M J Biomol Tech. 2011; 22(2):60-6.

PMID: 21738438 PMC: 3121149.