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影响 DNA 糖苷酶 OGG1 修复端粒氧化碱基损伤的因素。

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

机构信息

Laboratory of Molecular Gerontology, National Institute on Aging, National Institutes of Health, Baltimore, MD 21224, United States.

出版信息

DNA Repair (Amst). 2011 Jan 2;10(1):34-44. doi: 10.1016/j.dnarep.2010.09.008. Epub 2010 Oct 16.


DOI:10.1016/j.dnarep.2010.09.008
PMID:20951653
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3010491/
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.

摘要

端粒是真核生物线性染色体末端的核蛋白复合物,对于防止染色体末端被识别为断裂的 DNA 末端至关重要。端粒缩短与细胞衰老和人类衰老有关,氧化应激是主要的促成因素。7,8-二氢-8-氧鸟嘌呤(8-oxodG)是最丰富的氧化鸟嘌呤损伤之一,8-氧鸟嘌呤 DNA 糖基化酶(OGG1)参与其清除。在这项研究中,我们研究了端粒 DNA 是否特别容易受到氧化碱基损伤,以及端粒特异性因素是否会影响 OGG1 对氧化鸟嘌呤的切割。我们证明,端粒 TTAGGG 重复序列比体内非端粒 TG 重复序列更容易受到氧化碱基损伤,修复效率也更低。我们还表明,OGG1 在端粒和非端粒双链底物中的 8-oxodG 切口活性相似。此外,端粒重复结合因子 TRF1 和 TRF2 不会损害 OGG1 的切口活性。然而,某些端粒结构(例如,叉开放、3'-突出和 D 环)中的 8-oxodG 被 OGG1 切除的效率较低,这取决于其在这些底物中的位置。总之,我们的数据表明,端粒重复序列的序列上下文和某些端粒结构可能导致端粒对氧化 DNA 损伤处理的易感性。

相似文献

[1]
Factors that influence telomeric oxidative base damage and repair by DNA glycosylase OGG1.

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[2]
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[3]
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[6]
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[7]
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[4]
PARP2 promotes Break Induced Replication-mediated telomere fragility in response to replication stress.

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[5]
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J Assist Reprod Genet. 2024-2

[6]
Telomere Attrition in Chronic Kidney Diseases.

Antioxidants (Basel). 2023-2-25

[7]
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Oxid Med Cell Longev. 2022

[8]
Telomere Length Is Correlated with Resting Metabolic Rate and Aerobic Capacity in Women: A Cross-Sectional Study.

Int J Mol Sci. 2022-11-1

[9]
Mammalian MutY Homolog (MYH or MUTYH) is Critical for Telomere Integrity under Oxidative Stress.

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[10]
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本文引用的文献

[1]
TRF2 and apollo cooperate with topoisomerase 2alpha to protect human telomeres from replicative damage.

Cell. 2010-7-23

[2]
Characterization of oxidative guanine damage and repair in mammalian telomeres.

PLoS Genet. 2010-5-13

[3]
Linking functional decline of telomeres, mitochondria and stem cells during ageing.

Nature. 2010-3-25

[4]
Deletion of Ogg1 DNA glycosylase results in telomere base damage and length alteration in yeast.

EMBO J. 2009-11-26

[5]
Telomeric D-loops containing 8-oxo-2'-deoxyguanosine are preferred substrates for Werner and Bloom syndrome helicases and are bound by POT1.

J Biol Chem. 2009-11-6

[6]
Multiple roles for MRE11 at uncapped telomeres.

Nature. 2009-8-13

[7]
Telomere length regulation: coupling DNA end processing to feedback regulation of telomerase.

EMBO J. 2009-8-19

[8]
Mammalian telomeres resemble fragile sites and require TRF1 for efficient replication.

Cell. 2009-7-10

[9]
The recombination protein RAD52 cooperates with the excision repair protein OGG1 for the repair of oxidative lesions in mammalian cells.

Mol Cell Biol. 2009-8

[10]
DNA repair in mammalian cells: Base excision repair: the long and short of it.

Cell Mol Life Sci. 2009-3

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