VEGF G-四链体形成启动子上的氧化性DNA损伤通过长片BER修复。

IF 2.3 4区 医学 Q3 ENVIRONMENTAL SCIENCES Environmental and Molecular Mutagenesis Pub Date : 2023-08-22 DOI:10.1002/em.22570
Adil S. Hussen, Haley L. Kravitz, Bret D. Freudenthal, Amy M. Whitaker
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引用次数: 0

摘要

作为对氧化损伤的反应,碱基切除修复(BER)酶扰乱了VEGF启动子在B型和G4 DNA构象之间的结构平衡,导致基因表达的表观遗传学样修饰。然而,机制细节仍然是谜,包括BER酶在受损G4启动子上的活性和配位。为了解决这一问题,我们通过采用预稳态动力学分析和体外偶联BER分析,研究了每个BER因子在VEGF启动子G4 DNA底物上进行修复活性的能力。OGG1能够在双链VEGF启动子G4 DNA底物上引发BER。此外,预稳态动力学显示,与B型DNA相比,APE1对G4的修复活性降低了约两倍,这是产物释放较慢而不是链切割效率低下的结果。有趣的是,Polβ通过链置换DNA合成在G4底物上进行多次插入,而不是在B型DNA上进行单次插入。多次插入抑制了Polβ产物的连接,因此BER不能通过标准的短补片BER在VEGF G4启动子底物上完成。相反,修复需要FEN1的长片BER瓣核酸内切酶活性,以响应连接前Polβ的多次插入。由于BER蛋白及其修复活性是VEGF转录增强的关键部分,以应对G4 VEGF启动子的DNA氧化损伤,因此本文报道的关于该启动子的BER活性的新见解与理解转录调控机制有关。
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Oxidative DNA damage on the VEGF G-quadruplex forming promoter is repaired via long-patch BER

In response to oxidative damage, base excision repair (BER) enzymes perturb the structural equilibrium of the VEGF promoter between B-form and G4 DNA conformations, resulting in epigenetic-like modifications of gene expression. However, the mechanistic details remain enigmatic, including the activity and coordination of BER enzymes on the damaged G4 promoter. To address this, we investigated the ability of each BER factor to conduct its repair activity on VEGF promoter G4 DNA substrates by employing pre-steady-state kinetics assays and in vitro coupled BER assays. OGG1 was able to initiate BER on double-stranded VEGF promoter G4 DNA substrates. Moreover, pre-steady-state kinetics revealed that compared to B-form DNA, APE1 repair activity on the G4 was decreased ~two-fold and is the result of slower product release as opposed to inefficient strand cleavage. Interestingly, Pol β performs multiple insertions on G4 substrates via strand displacement DNA synthesis in contrast to a single insertion on B-form DNA. The multiple insertions inhibit ligation of the Pol β products, and hence BER is not completed on the VEGF G4 promoter substrates through canonical short-patch BER. Instead, repair requires the long-patch BER flap-endonuclease activity of FEN1 in response to the multiple insertions by Pol β prior to ligation. Because the BER proteins and their repair activities are a key part of the VEGF transcriptional enhancement in response to oxidative DNA damage of the G4 VEGF promoter, the new insights reported here on BER activity in the context of this promoter are relevant toward understanding the mechanism of transcriptional regulation.

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来源期刊
CiteScore
5.40
自引率
10.70%
发文量
52
审稿时长
12-24 weeks
期刊介绍: Environmental and Molecular Mutagenesis publishes original research manuscripts, reviews and commentaries on topics related to six general areas, with an emphasis on subject matter most suited for the readership of EMM as outlined below. The journal is intended for investigators in fields such as molecular biology, biochemistry, microbiology, genetics and epigenetics, genomics and epigenomics, cancer research, neurobiology, heritable mutation, radiation biology, toxicology, and molecular & environmental epidemiology.
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