Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, Tennessee 37323-0146.
Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, Tennessee 37323-0146.
J Biol Chem. 2020 May 1;295(18):6092-6107. doi: 10.1074/jbc.RA120.012829. Epub 2020 Mar 25.
Incorporation of ribonucleotides into DNA can severely diminish genome integrity. However, how ribonucleotides instigate DNA damage is poorly understood. In DNA, they can promote replication stress and genomic instability and have been implicated in several diseases. We report here the impact of the ribonucleotide rATP and of its naturally occurring damaged analog 1,-ethenoadenosine (1,-ϵrA) on translesion synthesis (TLS), mediated by human DNA polymerase η (hpol η), and on RNase H2-mediated incision. Mass spectral analysis revealed that 1,-ϵrA in DNA generates extensive frameshifts during TLS, which can lead to genomic instability. Moreover, steady-state kinetic analysis of the TLS process indicated that deoxypurines ( dATP and dGTP) are inserted predominantly opposite 1,-ϵrA. We also show that hpol η acts as a reverse transcriptase in the presence of damaged ribonucleotide 1,-ϵrA but has poor RNA primer extension activities. Steady-state kinetic analysis of reverse transcription and RNA primer extension showed that hpol η favors the addition of dATP and dGTP opposite 1,-ϵrA. We also found that RNase H2 recognizes 1,-ϵrA but has limited incision activity across from this lesion, which can lead to the persistence of this detrimental DNA adduct. We conclude that the damaged and unrepaired ribonucleotide 1,-ϵrA in DNA exhibits mutagenic potential and can also alter the reading frame in an mRNA transcript because 1,-ϵrA is incompletely incised by RNase H2.
核苷酸掺入 DNA 会严重降低基因组的完整性。然而,核苷酸如何引发 DNA 损伤还知之甚少。在 DNA 中,它们可以促进复制应激和基因组不稳定性,并与几种疾病有关。我们在这里报告了核苷酸 rATP 及其天然存在的受损类似物 1,- 乙烯基腺嘌呤 (1,-ϵrA) 对人类 DNA 聚合酶 η (hpol η) 介导的跨损伤合成 (TLS) 以及对核糖核酸酶 H2 介导的切口的影响。质谱分析显示,DNA 中的 1,-ϵrA 在 TLS 过程中会产生广泛的移码,从而导致基因组不稳定。此外,TLS 过程的稳态动力学分析表明,脱氧嘌呤 (dATP 和 dGTP) 主要插入 1,-ϵrA 的对面。我们还表明,在存在受损核糖核苷酸 1,-ϵrA 的情况下,hpol η 充当逆转录酶,但 RNA 引物延伸活性较差。逆转录和 RNA 引物延伸的稳态动力学分析表明,hpol η 优先在 1,-ϵrA 的对面添加 dATP 和 dGTP。我们还发现核糖核酸酶 H2 识别 1,-ϵrA,但在该损伤对面的切口活性有限,这可能导致这种有害 DNA 加合物的持续存在。我们得出结论,DNA 中受损且未修复的核糖核苷酸 1,-ϵrA 具有诱变潜力,并且还可以改变 mRNA 转录本的阅读框,因为 1,-ϵrA 不能被核糖核酸酶 H2 完全切割。