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A Ninaber

Publications and source records attributed to A Ninaber.

2 recordsLinked to original sources

DNA conformation and dynamics.

Nucleotide conformation and dynamics are important for the study of radiation damage to DNA at the atomic level. It is necessary to study not only normal oligonucleotide structure but also those containing modified bases which result from interaction with OH-radicals. There are now over 8000 atomic coordinate entries in the Brookhaven Protein Data Bank, of which over 900 relate to experimentally determined structures of nucleic acids and nucleic acid/protein complexes. We review some of these data which have led to the elucidation of novel DNA conformations, insight into DNA sequence specificity and knowledge of protein/DNA interactions. Further understanding of the conformation, stability and dynamics of nucleic acids has come from molecular modelling. We have used such techniques to study chemical modifications to bases such as alkylation of thymine and guanine and the effects of curvature in longer sequences. Recent improvements in this area include the inclusions of explicit counter-ions and solvent molecules, the use of Particle Mesh Ewald methods to incorporate the long-range electrostatic interactions and the use of longer time scale simulations. We have employed these methods to analyse the effects of incorporation of 8-oxodeoxyguanosine into duplex DNA. This lesion is a common result of radiation damage and is known to have important effects in mutagenesis, cancer and ageing.

8-Hydroxy-2'-Deoxyguanosine↗

The biological implications of damage to DNA incorporating an 8-oxodeoxyguanine:cytosine basepair.

DNA damage produced by free radicals is probably the most frequent lesion encountered by cells (Wallace, S.S., Environmental and Molecular Mutagenesis 12, 431-477, 1988 (1)). One of the most common effects is the formation of 7-hydro-8-oxodeoxyguanine due to oxygen radicals interacting with the normal guanine base. Such chemical changes appear to be important in mutagenesis, cancer and aging. We have used computer simulation techniques to model the effect of inclusion of such a modified base within a duplex strand of DNA. We find that such modifications can be stabilized within a normal sequence. The conformation of the modified base relative to the sugar residue depends on many local interactions not accessible to the isolated nucleoside. We have also studied the essential dynamics of both normal and modified sequences and show that there are only subtle changes to the dynamics on inclusion of such a modification.

Base Pairing↗