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Human DNA repair genes possess potential G-quadruplex sequences in their promoters and 5`-untranslated regions

机译:人类DNA修复基因在其启动子和5非翻译区中具有潜在的G四联体序列

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摘要

The cellular response to oxidative stress includes transcriptional changes, particularly for genes involved in DNA repair. Recently, our laboratory demonstrated that oxidation of 2`-deoxyguanosine (G) to 8-oxo-7,8-dihydro-2`-deoxyguanosine (OG) in G-rich potential G-quadruplex sequences (PQSs) in gene promoters impacts the level of gene expression up or down depending on the position of the PQS in the promoter. In the present report, bioinformatic analysis found that the 390 human DNA repair genes in the genome ontology initiative harbor 2,936 PQSs in their promoters and 5`-untranslated regions (5`-UTRs). The average density of PQSs in human DNA repair genes was found to be nearly twofold greater than the average density of PQSs in all coding and non-coding human genes (7.5 vs. 4.3 per gene). The distribution of the PQSs in the DNA repair genes on the non-transcribed (coding) vs. transcribed strands reflects that of PQSs in all human genes. Next, literature data were interrogated to select 30 PQSs to catalog their ability to adopt G-quadruplex (G4) folds in vitro using five different experimental tests. The G4 characterization experiments concluded that 26 of the 30 sequences could adopt G4 topologies in solution. Last, four PQSs were synthesized into the promoter of a luciferase plasmid and co-transfected with the G4-specific ligands pyridostatin, Phen-DC3, or BRACO-19 in human cells to determine whether the PQSs could adopt G4 folds. The cell studies identified changes in luciferase expression when the G4 ligands were present, and the magnitude of the expression changes dependent on the PQS and the coding vs. template strand on which the sequence resided. Our studies demonstrate PQSs exist at a high density in human DNA repair gene promoters and a subset of the identified sequences fold in vitro and in vivo.
机译:细胞对氧化应激的反应包括转录变化,特别是对于涉及DNA修复的基因。最近,我们的实验室证明,基因启动子中富含G的潜在G-四链体序列(PQSs)中2`-脱氧鸟苷(G)氧化为8-oxo-7,8-dihydro-2`-脱氧鸟苷(OG)会影响基因表达水平的高低取决于启动子中PQS的位置。在本报告中,生物信息学分析发现,基因组本体论倡议中的390个人类DNA修复基因在其启动子和5'非翻译区(5'-UTR)中包含2,936个PQS。发现人类DNA修复基因中PQS的平均密度几乎是所有编码和非编码人类基因中PQS的平均密度的两倍(每个基因7.5对4.3)。非转录(编码)链与转录链上DNA修复基因中PQS的分布反映了所有人类基因中PQS的分布。接下来,使用五种不同的实验测试方法,对文献数据进行查询,以选择30种PQS,以对它们在体外采用G-四联体(G4)折叠的能力进行分类。 G4表征实验得出的结论是,30个序列中的26个可以在溶液中采用G4拓扑。最后,将四个PQS合成到萤光素酶质粒的启动子中,并与人细胞中的G4特异性配体吡ido他汀,Phen-DC3或BRACO-19共转染,以确定PQS是否可以采用G4折叠。细胞研究确定了当存在G4配体时萤光素酶表达的变化,并且表达的幅度取决于PQS以及序列所在的编码链与模板链。我们的研究表明,PQS在人类DNA修复基因启动子中以高密度存在,并且已鉴定序列的一部分在体内和体外折叠。

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