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DNA 碱基切除修复中间体影响双链-四链平衡。

DNA Base Excision Repair Intermediates Influence Duplex-Quadruplex Equilibrium.

机构信息

Department of Pharmacology and Toxicology, University of Texas Medical Branch, 301 University Boulevard, Galveston, TX 77555, USA.

MD-PhD Combined Degree Program, University of Texas Medical Branch, 301 University Boulevard, Galveston, TX 77555, USA.

出版信息

Molecules. 2023 Jan 18;28(3):970. doi: 10.3390/molecules28030970.

Abstract

Although genomic DNA is predominantly duplex under physiological conditions, particular sequence motifs can favor the formation of alternative secondary structures, including the G-quadruplex. These structures can exist within gene promoters, telomeric DNA, and regions of the genome frequently found altered in human cancers. DNA is also subject to hydrolytic and oxidative damage, and its local structure can influence the type of damage and its magnitude. Although the repair of endogenous DNA damage by the base excision repair (BER) pathway has been extensively studied in duplex DNA, substantially less is known about repair in non-duplex DNA structures. Therefore, we wanted to better understand the effect of DNA damage and repair on quadruplex structure. We first examined the effect of placing pyrimidine damage products uracil, 5-hydroxymethyluracil, the chemotherapy agent 5-fluorouracil, and an abasic site into the loop region of a 22-base telomeric repeat sequence known to form a G-quadruplex. Quadruplex formation was unaffected by these analogs. However, the activity of the BER enzymes were negatively impacted. Uracil DNA glycosylase (UDG) and single-strand selective monofunctional uracil DNA glycosylase (SMUG1) were inhibited, and apurinic/apyrimidinic endonuclease 1 (APE1) activity was completely blocked. Interestingly, when we performed studies placing DNA repair intermediates into the strand opposite the quadruplex, we found that they destabilized the duplex and promoted quadruplex formation. We propose that while duplex is the preferred configuration, there is kinetic conversion between duplex and quadruplex. This is supported by our studies using a quadruplex stabilizing molecule, pyridostatin, that is able to promote quadruplex formation starting from duplex DNA. Our results suggest how DNA damage and repair intermediates can alter duplex-quadruplex equilibrium.

摘要

虽然生理条件下基因组 DNA 主要呈双链结构,但特定的序列基序可以促进形成替代的二级结构,包括 G-四链体。这些结构可以存在于基因启动子、端粒 DNA 以及人类癌症中经常发生改变的基因组区域。DNA 也容易受到水解和氧化损伤,其局部结构会影响损伤的类型及其程度。尽管碱基切除修复 (BER) 途径对双链 DNA 中的内源性 DNA 损伤修复进行了广泛研究,但对非双链 DNA 结构中的修复了解甚少。因此,我们希望更好地了解 DNA 损伤和修复对四链体结构的影响。我们首先研究了将嘧啶损伤产物尿嘧啶、5-羟甲基尿嘧啶、化疗药物 5-氟尿嘧啶和无碱基位点放置在已知形成 G-四链体的 22 个碱基端粒重复序列的环区中对四链体结构的影响。这些类似物对四链体形成没有影响。然而,BER 酶的活性受到负面影响。尿嘧啶 DNA 糖基化酶 (UDG) 和单链选择性单功能尿嘧啶 DNA 糖基化酶 (SMUG1) 受到抑制,AP 内切酶 1 (APE1) 的活性完全被阻断。有趣的是,当我们将 DNA 修复中间体放置在与四链体相对的链上进行研究时,我们发现它们使双链不稳定并促进四链体形成。我们提出,虽然双链是首选构象,但双链和四链体之间存在动力学转换。这一点得到了我们使用四链体稳定分子吡啶并哒嗪酮的研究的支持,该分子能够从双链 DNA 开始促进四链体形成。我们的结果表明 DNA 损伤和修复中间体如何改变双链-四链体平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ecf/9920732/a7734cdb5cb7/molecules-28-00970-g001.jpg

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