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

被引:98
|
作者
Rhee, David B. [1 ]
Ghosh, Avik [1 ]
Lu, Jian [1 ]
Bohr, Vilhelm A. [1 ]
Liu, Yie [1 ]
机构
[1] NIA, Lab Mol Gerontol, NIH, Baltimore, MD 21224 USA
基金
美国国家卫生研究院;
关键词
Base excision repair; DNA glycosylase; Ogg1; Telomere; Oxidative base damage; ELECTRON-TRANSFER; EXCISION-REPAIR; CLEAVAGE; TRF1; SITE; SEQUENCE; COMPLEX; BINDING; PROTEIN; GG;
D O I
10.1016/j.dnarep.2010.09.008
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
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. Published by Elsevier B.V.
引用
收藏
页码:34 / 44
页数:11
相关论文
共 50 条
  • [21] DNA repair gene OGG1 polymorphism and its relation with oxidative DNA damage in patients with Alzheimer's disease
    Dincer, Yildiz
    Akkaya, Caglayan
    Mutlu, Tuba
    Yavuzer, Serap
    Erkol, Gokhan
    Bozluolcay, Melda
    Guven, Mehmet
    NEUROSCIENCE LETTERS, 2019, 709
  • [22] OGG1 in the Kidney: Beyond Base Excision Repair
    Zhao, Fan
    Zhu, Jiefu
    Shi, Lang
    Wu, Xiongfei
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2022, 2022
  • [23] Reassessing the roles of oxidative DNA base lesion 8-oxoGua and repair enzyme OGG1 in tumorigenesis
    Wang, Jing
    Li, Chunshuang
    Han, Jinling
    Xue, Yaoyao
    Zheng, Xu
    Wang, Ruoxi
    Radak, Zsolt
    Nakabeppu, Yusaku
    Boldogh, Istvan
    Ba, Xueqing
    JOURNAL OF BIOMEDICAL SCIENCE, 2025, 32 (01)
  • [24] Regulation of intracellular localization of human MTH1, OGG1, and MYH proteins for repair of oxidative DNA damage
    Nakabeppu, Y
    PROGRESS IN NUCLEIC ACID RESEARCH AND MOLECULAR BIOLOGY, VOL 68: BASE EXCISION REPAIR, 2001, 68 : 75 - 94
  • [25] O-GlcNAcylation of 8-Oxoguanine DNA Glycosylase (Ogg1) Impairs Oxidative Mitochondrial DNA Lesion Repair in Diabetic Hearts
    Cividini, Federico
    Scott, Brian T.
    Dai, Anzhi
    Han, Wenlong
    Suarez, Jorge
    Diaz-Juarez, Julieta
    Diemer, Tanja
    Casteel, Darren E.
    Dillmann, Wolfgang H.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2016, 291 (51) : 26515 - 26528
  • [26] OGG1 in the Kidney: Beyond Base Excision Repair
    Zhao, Fan
    Zhu, Jiefu
    Shi, Lang
    Wu, Xiongfei
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2022, 2022
  • [27] Mitochondria-Targeted DNA Repair Glycosylase OGG1 Protects Against HFD-Induced Obesity and Insulin Resistance in OGG1 Deficient Mice
    Yuzefovych, Larysa
    Rachek, Lyudmila
    DIABETES, 2019, 68
  • [28] Small-molecule activation of OGG1 increases oxidative DNA damage repair by gaining a new function
    Michel, Maurice
    Benitez-Buelga, Carlos
    Calvo, Patricia A.
    Hanna, Bishoy M. F.
    Mortusewicz, Oliver
    Masuyer, Geoffrey
    Davies, Jonathan
    Wallner, Olov
    Sanjiv, Kumar
    Albers, Julian J.
    Castaneda-Zegarra, Sergio
    Jemth, Ann-Sofie
    Visnes, Torkild
    Sastre-Perona, Ana
    Danda, Akhilesh N.
    Homan, Evert J.
    Marimuthu, Karthick
    Zhao Zhenjun
    Chi, Celestine N.
    Sarno, Antonio
    Wiita, Elisee
    von Nicolai, Catharina
    Komor, Anna J.
    Rajagopal, Varshni
    Muller, Sarah
    Hank, Emily C.
    Varga, Marek
    Scaletti, Emma R.
    Pandey, Monica
    Karsten, Stella
    Haslene-Hox, Hanne
    Loevenich, Simon
    Marttila, Petra
    Rasti, Azita
    Mamonov, Kirill
    Ortis, Florian
    Schoemberg, Fritz
    Loseva, Olga
    Stewart, Josephine
    D'Arcy-Evans, Nicholas
    Koolmeister, Tobias
    Henriksson, Martin
    Michel, Dana
    de Ory, Ana
    Acero, Lucia
    Calvete, Oriol
    Scobie, Martin
    Hertweck, Christian
    Vilotijevic, Ivan
    Kalderen, Christina
    SCIENCE, 2022, 376 (6600) : 1471 - +
  • [29] Interaction of OGG1 with NKX3.1 due to oxidative DNA damage
    Isel, Elif
    Butuner, Bilge Debelec
    JOURNAL OF RESEARCH IN PHARMACY, 2021, 25 (02): : 124 - 134
  • [30] Allelic loss of the DNA repair gene OGG1 against oxidative damage in esophageal squamous cell carcinoma
    Hagiwara, A
    Kitajima, Y
    Sato, S
    Miyazaki, K
    ONCOLOGY REPORTS, 2005, 13 (06) : 1009 - 1016