Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1

Research output: Contribution to journalJournal articleResearchpeer-review

Standard

Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1. / Rhee, David B; Ghosh, Avik; Lu, Jian; Bohr, Vilhelm A; Liu, Yie.

In: DNA Repair, Vol. 10, No. 1, 02.01.2011, p. 34-44.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Rhee, DB, Ghosh, A, Lu, J, Bohr, VA & Liu, Y 2011, 'Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1', DNA Repair, vol. 10, no. 1, pp. 34-44. https://doi.org/10.1016/j.dnarep.2010.09.008

APA

Rhee, D. B., Ghosh, A., Lu, J., Bohr, V. A., & Liu, Y. (2011). Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1. DNA Repair, 10(1), 34-44. https://doi.org/10.1016/j.dnarep.2010.09.008

Vancouver

Rhee DB, Ghosh A, Lu J, Bohr VA, Liu Y. Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1. DNA Repair. 2011 Jan 2;10(1):34-44. https://doi.org/10.1016/j.dnarep.2010.09.008

Author

Rhee, David B ; Ghosh, Avik ; Lu, Jian ; Bohr, Vilhelm A ; Liu, Yie. / Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1. In: DNA Repair. 2011 ; Vol. 10, No. 1. pp. 34-44.

Bibtex

@article{d965dd7c36d54410bf1af045e16b6958,
title = "Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1",
abstract = "Telomeres are nucleoprotein complexes at the ends of linear chromosomes in eukaryotes, and are essential in preventing chromosome termini from being recognized as broken DNA ends. Telomere shortening has been linked to cellular senescence and human aging, with oxidative stress as a major contributing factor. 7,8-Dihydro-8-oxogaunine (8-oxodG) is one of the most abundant oxidative guanine lesions, and 8-oxoguanine DNA glycosylase (OGG1) is involved in its removal. In this study, we examined if telomeric DNA is particularly susceptible to oxidative base damage and if telomere-specific factors affect the incision of oxidized guanines by OGG1. We demonstrated that telomeric TTAGGG repeats were more prone to oxidative base damage and repaired less efficiently than non-telomeric TG repeats in vivo. We also showed that the 8-oxodG-incision activity of OGG1 is similar in telomeric and non-telomeric double-stranded substrates. In addition, telomere repeat binding factors TRF1 and TRF2 do not impair OGG1 incision activity. Yet, 8-oxodG in some telomere structures (e.g., fork-opening, 3'-overhang, and D-loop) were less effectively excised by OGG1, depending upon its position in these substrates. Collectively, our data indicate that the sequence context of telomere repeats and certain telomere configurations may contribute to telomere vulnerability to oxidative DNA damage processing.",
author = "Rhee, {David B} and Avik Ghosh and Jian Lu and Bohr, {Vilhelm A} and Yie Liu",
note = "Published by Elsevier B.V.",
year = "2011",
month = jan,
day = "2",
doi = "10.1016/j.dnarep.2010.09.008",
language = "English",
volume = "10",
pages = "34--44",
journal = "DNA Repair",
issn = "1568-7864",
publisher = "Elsevier",
number = "1",

}

RIS

TY - JOUR

T1 - Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1

AU - Rhee, David B

AU - Ghosh, Avik

AU - Lu, Jian

AU - Bohr, Vilhelm A

AU - Liu, Yie

N1 - Published by Elsevier B.V.

PY - 2011/1/2

Y1 - 2011/1/2

N2 - Telomeres are nucleoprotein complexes at the ends of linear chromosomes in eukaryotes, and are essential in preventing chromosome termini from being recognized as broken DNA ends. Telomere shortening has been linked to cellular senescence and human aging, with oxidative stress as a major contributing factor. 7,8-Dihydro-8-oxogaunine (8-oxodG) is one of the most abundant oxidative guanine lesions, and 8-oxoguanine DNA glycosylase (OGG1) is involved in its removal. In this study, we examined if telomeric DNA is particularly susceptible to oxidative base damage and if telomere-specific factors affect the incision of oxidized guanines by OGG1. We demonstrated that telomeric TTAGGG repeats were more prone to oxidative base damage and repaired less efficiently than non-telomeric TG repeats in vivo. We also showed that the 8-oxodG-incision activity of OGG1 is similar in telomeric and non-telomeric double-stranded substrates. In addition, telomere repeat binding factors TRF1 and TRF2 do not impair OGG1 incision activity. Yet, 8-oxodG in some telomere structures (e.g., fork-opening, 3'-overhang, and D-loop) were less effectively excised by OGG1, depending upon its position in these substrates. Collectively, our data indicate that the sequence context of telomere repeats and certain telomere configurations may contribute to telomere vulnerability to oxidative DNA damage processing.

AB - Telomeres are nucleoprotein complexes at the ends of linear chromosomes in eukaryotes, and are essential in preventing chromosome termini from being recognized as broken DNA ends. Telomere shortening has been linked to cellular senescence and human aging, with oxidative stress as a major contributing factor. 7,8-Dihydro-8-oxogaunine (8-oxodG) is one of the most abundant oxidative guanine lesions, and 8-oxoguanine DNA glycosylase (OGG1) is involved in its removal. In this study, we examined if telomeric DNA is particularly susceptible to oxidative base damage and if telomere-specific factors affect the incision of oxidized guanines by OGG1. We demonstrated that telomeric TTAGGG repeats were more prone to oxidative base damage and repaired less efficiently than non-telomeric TG repeats in vivo. We also showed that the 8-oxodG-incision activity of OGG1 is similar in telomeric and non-telomeric double-stranded substrates. In addition, telomere repeat binding factors TRF1 and TRF2 do not impair OGG1 incision activity. Yet, 8-oxodG in some telomere structures (e.g., fork-opening, 3'-overhang, and D-loop) were less effectively excised by OGG1, depending upon its position in these substrates. Collectively, our data indicate that the sequence context of telomere repeats and certain telomere configurations may contribute to telomere vulnerability to oxidative DNA damage processing.

U2 - 10.1016/j.dnarep.2010.09.008

DO - 10.1016/j.dnarep.2010.09.008

M3 - Journal article

C2 - 20951653

VL - 10

SP - 34

EP - 44

JO - DNA Repair

JF - DNA Repair

SN - 1568-7864

IS - 1

ER -

ID: 33492334