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Energetic signatures of single base bulges: thermodynamic consequences and biological implications

DNA bulges are biologically consequential defects that can arise from template-primer misalignments during replication and pose challenges to the cellular DNA repair machinery. Calorimetric and spectroscopic characterizations of defect-containing duplexes reveal systematic patterns of sequence-conte...

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Autores principales: Minetti, Conceição A. S. A., Remeta, David P., Dickstein, Rian, Breslauer, Kenneth J.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2800203/
https://www.ncbi.nlm.nih.gov/pubmed/19946018
http://dx.doi.org/10.1093/nar/gkp1036
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author Minetti, Conceição A. S. A.
Remeta, David P.
Dickstein, Rian
Breslauer, Kenneth J.
author_facet Minetti, Conceição A. S. A.
Remeta, David P.
Dickstein, Rian
Breslauer, Kenneth J.
author_sort Minetti, Conceição A. S. A.
collection PubMed
description DNA bulges are biologically consequential defects that can arise from template-primer misalignments during replication and pose challenges to the cellular DNA repair machinery. Calorimetric and spectroscopic characterizations of defect-containing duplexes reveal systematic patterns of sequence-context dependent bulge-induced destabilizations. These distinguishing energetic signatures are manifest in three coupled characteristics, namely: the magnitude of the bulge-induced duplex destabilization (ΔΔG(Bulge)); the thermodynamic origins of ΔΔG(Bulge) (i.e. enthalpic versus entropic); and, the cooperativity of the duplex melting transition (i.e. two-state versus non-two state). We find moderately destabilized duplexes undergo two-state dissociation and exhibit ΔΔG(Bulge) values consistent with localized, nearest neighbor perturbations arising from unfavorable entropic contributions. Conversely, strongly destabilized duplexes melt in a non-two-state manner and exhibit ΔΔG(Bulge) values consistent with perturbations exceeding nearest-neighbor expectations that are enthalpic in origin. Significantly, our data reveal an intriguing correlation in which the energetic impact of a single bulge base centered in one strand portends the impact of the corresponding complementary bulge base embedded in the opposite strand. We discuss potential correlations between these bulge-specific differential energetic profiles and their overall biological implications in terms of DNA recognition, repair and replication.
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spelling pubmed-28002032009-12-31 Energetic signatures of single base bulges: thermodynamic consequences and biological implications Minetti, Conceição A. S. A. Remeta, David P. Dickstein, Rian Breslauer, Kenneth J. Nucleic Acids Res Genome Integrity, Repair and Replication DNA bulges are biologically consequential defects that can arise from template-primer misalignments during replication and pose challenges to the cellular DNA repair machinery. Calorimetric and spectroscopic characterizations of defect-containing duplexes reveal systematic patterns of sequence-context dependent bulge-induced destabilizations. These distinguishing energetic signatures are manifest in three coupled characteristics, namely: the magnitude of the bulge-induced duplex destabilization (ΔΔG(Bulge)); the thermodynamic origins of ΔΔG(Bulge) (i.e. enthalpic versus entropic); and, the cooperativity of the duplex melting transition (i.e. two-state versus non-two state). We find moderately destabilized duplexes undergo two-state dissociation and exhibit ΔΔG(Bulge) values consistent with localized, nearest neighbor perturbations arising from unfavorable entropic contributions. Conversely, strongly destabilized duplexes melt in a non-two-state manner and exhibit ΔΔG(Bulge) values consistent with perturbations exceeding nearest-neighbor expectations that are enthalpic in origin. Significantly, our data reveal an intriguing correlation in which the energetic impact of a single bulge base centered in one strand portends the impact of the corresponding complementary bulge base embedded in the opposite strand. We discuss potential correlations between these bulge-specific differential energetic profiles and their overall biological implications in terms of DNA recognition, repair and replication. Oxford University Press 2010-01 2009-11-27 /pmc/articles/PMC2800203/ /pubmed/19946018 http://dx.doi.org/10.1093/nar/gkp1036 Text en © The Author(s) 2009. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/2.5/uk/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5/uk/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Genome Integrity, Repair and Replication
Minetti, Conceição A. S. A.
Remeta, David P.
Dickstein, Rian
Breslauer, Kenneth J.
Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title_full Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title_fullStr Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title_full_unstemmed Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title_short Energetic signatures of single base bulges: thermodynamic consequences and biological implications
title_sort energetic signatures of single base bulges: thermodynamic consequences and biological implications
topic Genome Integrity, Repair and Replication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2800203/
https://www.ncbi.nlm.nih.gov/pubmed/19946018
http://dx.doi.org/10.1093/nar/gkp1036
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