Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides

Ruthenium polypyridyl complexes which can sensitise the photo-oxidation of nucleic acids and other biological molecules show potential for photo-therapeutic applications. In this article a combination of transient visible absorption (TrA) and time-resolved infra-red (TRIR) spectroscopy are used to c...

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Main Authors: Keane, Páraic M., O'Sullivan, Kyra, Poynton, Fergus E., Poulsen, Bjørn C., Sazanovich, Igor V., Towrie, Michael, Cardin, Christine J., Sun, Xue-Zhong, George, Michael W., Gunnlaugsson, Thorfinnur, Quinn, Susan J., Kelly, John M.
Format: Article
Language:English
Published: Royal Society of Chemistry 2020
Online Access:https://eprints.nottingham.ac.uk/63449/
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author Keane, Páraic M.
O'Sullivan, Kyra
Poynton, Fergus E.
Poulsen, Bjørn C.
Sazanovich, Igor V.
Towrie, Michael
Cardin, Christine J.
Sun, Xue-Zhong
George, Michael W.
Gunnlaugsson, Thorfinnur
Quinn, Susan J.
Kelly, John M.
author_facet Keane, Páraic M.
O'Sullivan, Kyra
Poynton, Fergus E.
Poulsen, Bjørn C.
Sazanovich, Igor V.
Towrie, Michael
Cardin, Christine J.
Sun, Xue-Zhong
George, Michael W.
Gunnlaugsson, Thorfinnur
Quinn, Susan J.
Kelly, John M.
author_sort Keane, Páraic M.
building Nottingham Research Data Repository
collection Online Access
description Ruthenium polypyridyl complexes which can sensitise the photo-oxidation of nucleic acids and other biological molecules show potential for photo-therapeutic applications. In this article a combination of transient visible absorption (TrA) and time-resolved infra-red (TRIR) spectroscopy are used to compare the photo-oxidation of guanine by the enantiomers of [Ru(TAP)2(dppz)]2+ in both polymeric {poly(dG-dC), poly(dA-dT) and natural DNA} and small mixed-sequence duplex-forming oligodeoxynucleotides. The products of electron transfer are readily monitored by the appearance of a characteristic TRIR band centred at ca. 1700 cm-1 for the guanine radical cation and a band centered at ca. 515 nm in the TrA for the reduced ruthenium complex. It is found that efficient electron transfer requires that the complex be intercalated at a G-C base-pair containing site. Significantly, changes in the nucleobase vibrations of the TRIR spectra induced by the bound excited state before electron transfer takes place are used to identify preferred intercalation sites in mixed-sequence oligodeoxynucleotides and natural DNA. Interestingly, with natural DNA, while it is found that quenching is inefficient in the picosecond range, a slower electron transfer process occurs, which is not found with the mixed-sequence duplex-forming oligodeoxynucleotides studied.
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spelling nottingham-634492020-10-12T03:46:06Z https://eprints.nottingham.ac.uk/63449/ Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides Keane, Páraic M. O'Sullivan, Kyra Poynton, Fergus E. Poulsen, Bjørn C. Sazanovich, Igor V. Towrie, Michael Cardin, Christine J. Sun, Xue-Zhong George, Michael W. Gunnlaugsson, Thorfinnur Quinn, Susan J. Kelly, John M. Ruthenium polypyridyl complexes which can sensitise the photo-oxidation of nucleic acids and other biological molecules show potential for photo-therapeutic applications. In this article a combination of transient visible absorption (TrA) and time-resolved infra-red (TRIR) spectroscopy are used to compare the photo-oxidation of guanine by the enantiomers of [Ru(TAP)2(dppz)]2+ in both polymeric {poly(dG-dC), poly(dA-dT) and natural DNA} and small mixed-sequence duplex-forming oligodeoxynucleotides. The products of electron transfer are readily monitored by the appearance of a characteristic TRIR band centred at ca. 1700 cm-1 for the guanine radical cation and a band centered at ca. 515 nm in the TrA for the reduced ruthenium complex. It is found that efficient electron transfer requires that the complex be intercalated at a G-C base-pair containing site. Significantly, changes in the nucleobase vibrations of the TRIR spectra induced by the bound excited state before electron transfer takes place are used to identify preferred intercalation sites in mixed-sequence oligodeoxynucleotides and natural DNA. Interestingly, with natural DNA, while it is found that quenching is inefficient in the picosecond range, a slower electron transfer process occurs, which is not found with the mixed-sequence duplex-forming oligodeoxynucleotides studied. Royal Society of Chemistry 2020-08-06 Article PeerReviewed application/pdf en cc_by https://eprints.nottingham.ac.uk/63449/1/Understanding%20the%20factors%20controlling%20the%20photo-oxidation%20of%20natural%20DNA%20by%20enantiomerically%20pure%20intercalating%20ruthenium%20polypyridyl%20complexes%20through.pdf Keane, Páraic M., O'Sullivan, Kyra, Poynton, Fergus E., Poulsen, Bjørn C., Sazanovich, Igor V., Towrie, Michael, Cardin, Christine J., Sun, Xue-Zhong, George, Michael W., Gunnlaugsson, Thorfinnur, Quinn, Susan J. and Kelly, John M. (2020) Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides. Chemical Science, 11 (32). pp. 8600-8609. ISSN 2041-6520 http://dx.doi.org/10.1039/d0sc02413a doi:10.1039/d0sc02413a doi:10.1039/d0sc02413a
spellingShingle Keane, Páraic M.
O'Sullivan, Kyra
Poynton, Fergus E.
Poulsen, Bjørn C.
Sazanovich, Igor V.
Towrie, Michael
Cardin, Christine J.
Sun, Xue-Zhong
George, Michael W.
Gunnlaugsson, Thorfinnur
Quinn, Susan J.
Kelly, John M.
Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title_full Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title_fullStr Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title_full_unstemmed Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title_short Understanding the factors controlling the photo-oxidation of natural DNA by enantiomerically pure intercalating ruthenium polypyridyl complexes through TA/TRIR studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
title_sort understanding the factors controlling the photo-oxidation of natural dna by enantiomerically pure intercalating ruthenium polypyridyl complexes through ta/trir studies with polydeoxynucleotides and mixed sequence oligodeoxynucleotides
url https://eprints.nottingham.ac.uk/63449/
https://eprints.nottingham.ac.uk/63449/
https://eprints.nottingham.ac.uk/63449/