用2′-脱氧-5-羟基尿苷完全或部分取代探测类端粒G4结构

Zoltán Szeltner , Györgyi Ferenc , Tünde Juhász , Zoltán Kupihár , Zoltán Váradi , Dávid Szüts , Lajos Kovács
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引用次数: 0

摘要

鸟嘌呤四链体(G4s)是由非经典G-G碱基四分体连接在一起的稳定的四链二级DNA结构。我们合成了核苷类似物2′-脱氧-5-羟基尿苷(H),并将其磷酰胺插入端粒重复型模型寡核苷酸中。进行完全和部分取代,取代三层G4结构的所有三个四分体中的所有鸟嘌呤,或仅取代假定的上部、中部或下部四分体。我们使用CD、UV吸收光谱、天然凝胶研究和基于捕获寡聚物的G4破坏动力学测定来表征这些修饰的结构。还研究了BLM解旋酶对这些取代结构的链分离活性。两种部分H-取代的构建体采用类似G4的结构,但与未取代的G4相比显示出较低的热稳定性。在其中心四分体中修饰的构建体大部分保持变性,但完全取代的变体具有特殊结构的可能性仍然存在。H取代不干扰BLM解旋酶的G4分解活性,但其效率受到构建体拓扑结构的高度影响,甚至更多地受到G4配体PhenDC3的影响。我们的结果表明,H修饰可以结合到G四链体中,但只能在某些位置保持G4的稳定性。观察到的2′-脱氧-5-羟基尿苷的失稳作用表明,胞嘧啶脱氨基产物5-羟基尿嘧啶及其在RNA中的核苷对应物(5-羟基尿苷)也可能在细胞DNA和RNA四链体中失稳。本研究中使用的动力学测定通常可用于快速比较各种G4s在其游离或配体结合状态下的稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probing telomeric-like G4 structures with full or partial 2′-deoxy-5-hydroxyuridine substitutions

Guanine quadruplexes (G4s) are stable four-stranded secondary DNA structures held together by noncanonical G-G base tetrads. We synthesised the nucleoside analogue 2′-deoxy-5-hydroxyuridine (H) and inserted its phosphoramidite into telomeric repeat-type model oligonucleotides. Full and partial substitutions were made, replacing all guanines in all the three tetrads of a three-tier G4 structure, or only in the putative upper, central, or lower tetrads. We characterised these modified structures using CD, UV absorbance spectroscopy, native gel studies, and a capture oligo-based G4 disruption kinetic assay. The strand separation activity of BLM helicase on these substituted structures was also investigated. Two of the partially H-substituted constructs adopted G4-like structures, but displayed lower thermal stabilities compared to unsubstituted G4. The construct modified in its central tetrad remained mostly denatured, but the possibility of a special structure for the fully replaced variant remained open. H substitutions did not interfere with the G4-resolving activity of BLM helicase, but its efficiency was highly influenced by construct topology and even more by the G4 ligand PhenDC3. Our results suggest that the H modification can be incorporated into G quadruplexes, but only at certain positions to maintain G4 stability. The destabilizing effect observed for 2′-deoxy-5-hydroxyuridine indicates that the cytosine deamination product 5-hydroxyuracil and its nucleoside counterpart in RNA (5-hydroxyuridine), might also be destabilizing in cellular DNA and RNA quadruplexes. The kinetic assay employed in this study can be generally employed for a fast comparison of the stabilities of various G4s either in their free or ligand-bound states.

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