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用光触发钉状物锁定G-四链体可提高拓扑、热力学和代谢稳定性。

Locking up G-Quadruplexes with Light-Triggered Staples Leads to Increased Topological, Thermodynamic, and Metabolic Stability.

作者信息

Barr Jack, Cadoni Enrico, Schellinck Sofie, Laudadio Emiliano, Martins José C, Madder Annemieke

机构信息

Organic and Biomimetic Chemistry Research Group, Department of Organic and Macromolecular Chemistry, Ghent University, Krijgslaan 281-S4, 9000, Gent, Belgium.

NMR and Structure Analysis Unit, Department of Organic and Macromolecular Chemistry, Ghent University, Krijgslaan 281-S4, 9000, Gent, Belgium.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 24;64(9):e202420592. doi: 10.1002/anie.202420592. Epub 2024 Dec 2.

Abstract

G-quadruplexes (G4 s) are secondary, tetraplexed DNA structures abundant in non-coding regions of the genome, implicated in gene transcription processes and currently firmly recognised as important potential therapeutic targets. Given their affinity for human proteins, G4 structures are investigated as potential decoys and aptamers. However, G4 s tend to adopt different conformations depending on the exact environmental conditions, and often only one displays the specifically desired biological activity. Their less intensively studied counterparts, the elusive tetraplexed intercalated-motifs (IMs) are typically unstable at neutral pH, hampering the investigation of their potential involvement in a biological context. We herein report on a photochemical method for "stapling" such tetraplexed-structures, to increase their stability, lock their topology and enhance their enzymatic resistance, while maintaining biological activity. The chemical structure and topology of the stapled Thrombin Binding Aptamer (TBA) was spectroscopically characterised and rationalised in silico. The method was then extended to other biologically relevant G4- and IM-prone sequences, hinting towards potential application of such stapled structures in a therapeutic context.

摘要

G-四链体(G4)是基因组非编码区中丰富的二级四链DNA结构,与基因转录过程有关,目前已被确认为重要的潜在治疗靶点。鉴于其对人类蛋白质的亲和力,G4结构被作为潜在的诱饵和适体进行研究。然而,G4往往会根据具体的环境条件采取不同的构象,而且通常只有一种构象表现出特定所需的生物活性。它们研究较少的对应物,即难以捉摸的四链插入基序(IM),通常在中性pH值下不稳定,这阻碍了对其在生物学背景下潜在作用的研究。我们在此报告一种光化学方法,用于“固定”此类四链结构,以提高其稳定性、锁定其拓扑结构并增强其酶抗性,同时保持生物活性。对固定化凝血酶结合适体(TBA)的化学结构和拓扑结构进行了光谱表征,并在计算机上进行了合理化分析。然后该方法扩展到其他与生物学相关的易形成G4和IM的序列,这暗示了此类固定化结构在治疗方面的潜在应用。

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