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DNA加合物8-羟基-2'-脱氧鸟苷(8-羟基鸟嘌呤)影响人类DNA甲基转移酶的功能。

DNA adduct 8-hydroxyl-2'-deoxyguanosine (8-hydroxyguanine) affects function of human DNA methyltransferase.

作者信息

Turk P W, Laayoun A, Smith S S, Weitzman S A

机构信息

Department of Medicine, Northwestern University Medical School, Chicago, IL 60611, USA.

出版信息

Carcinogenesis. 1995 May;16(5):1253-5. doi: 10.1093/carcin/16.5.1253.

Abstract

8-Hydroxyl-2'-deoxyguanosine (also referred to as 8-hydroxyguanine [8-OH-dG] or 7,8-dihydro-8-oxoguanine), a common DNA adduct resulting from injury to DNA via reactive oxygen species, affects the in vitro methylation of nearby cytosine moieties by the human DNA methyltransferase. The exact position of 8-OH-deoxyguanosine relative to a CpG dinucleotide appears important to this effect. Our data indicate that 8-OH-deoxyguanosine diminishes the ability of the methyltransferase to methylate a target cytosine when the 8-OH-deoxyguanosine is one or two nucleotides 3' from the cytosine, on the same strand. On the other hand 8-OH-deoxyguanosine does not diminish the ability of the enzyme to respond to a methyl director (5-methylcytosine) when the 8-OH-deoxyguanosine is on the same strand but one or two nucleotides 3' from the methyl director. Differences in methylation rates as great as 13-fold have been detected using various 8-OH-deoxyguanosine-containing oligonucleotides as substrates in methylation assays. Our findings suggest that oxidative damage of parental strand guanines would permit normal copying of methylation patterns through maintenance methylation, while oxidative damage of guanines in the nascent strand DNA would inhibit such methylation.

摘要

8-羟基-2'-脱氧鸟苷(也称为8-羟基鸟嘌呤[8-OH-dG]或7,8-二氢-8-氧代鸟嘌呤)是一种常见的DNA加合物,由活性氧对DNA造成损伤而产生,它会影响人类DNA甲基转移酶对附近胞嘧啶基团的体外甲基化作用。8-OH-脱氧鸟苷相对于CpG二核苷酸的确切位置对这种作用似乎很重要。我们的数据表明,当8-OH-脱氧鸟苷在同一条链上且位于胞嘧啶3'端一或两个核苷酸处时,它会降低甲基转移酶使目标胞嘧啶甲基化的能力。另一方面,当8-OH-脱氧鸟苷在同一条链上但位于甲基化指导物(5-甲基胞嘧啶)3'端一或两个核苷酸处时,8-OH-脱氧鸟苷不会降低该酶对甲基化指导物的反应能力。在甲基化测定中,使用各种含8-OH-脱氧鸟苷的寡核苷酸作为底物时,已检测到甲基化率的差异高达13倍。我们的研究结果表明,亲代链鸟嘌呤的氧化损伤将允许通过维持甲基化正常复制甲基化模式,而新生链DNA中鸟嘌呤的氧化损伤将抑制这种甲基化。

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