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ATP结合型DNA适配体中的G-四链体结构强烈调节配体结合活性。

G-Quadruplex Structure in the ATP-Binding DNA Aptamer Strongly Modulates Ligand Binding Activity.

作者信息

Edwards Aleah N, Iannucci Alexandria N, VanDenBerg Jacob, Kesti Annastiina, Rice Tommie, Sethi Srishty, Dhakal Soma, Yangyuoru Philip M

机构信息

Northern Michigan University, 1401 Presque Isle Ave, Marquette, Michigan 49855, United States.

Virginia Commonwealth University, 1001 W Main St., Richmond, Virginia 23284, United States.

出版信息

ACS Omega. 2024 Mar 15;9(12):14343-14350. doi: 10.1021/acsomega.3c10386. eCollection 2024 Mar 26.

Abstract

Secondary structures formed by single-stranded DNA aptamers can allow for the binding of small-molecule ligands. Some of these secondary structures are highly stable in solution and are great candidates for use in the development of molecular tools for biomarker detection, environmental monitoring, and others. In this paper, we explored adenosine triphosphate (ATP)-binding aptamers for the simultaneous detection of two small-molecule ligands: adenosine triphosphate (ATP) and thioflavin T (ThT). The aptamer can form a G-quadruplex (G4) structure with two G-quartets, and our results show that each of these quartets is equally involved in binding. Using fluorescently labeled and label-free methods, we further explored the role of the G4 motif in modulating the ligand binding property of the aptamer by making two extended variants that can form three or four G-quartet G4 structures. Through equilibrium binding and electrospray ionization mass spectrometry (ESI-MS) analysis, we observed a stronger affinity of aptamers to ATP by the variant G4 constructs relative to the native aptamer ( range of 0.040-0.042 μM for variants as compared to 0.15 μM for the native ATP aptamer). Additionally, we observed a dual binding of ThT and ATP to the G4 constructs in the label-free and ESI-MS analyses. These findings together suggest that the G4 motif in the ATP aptamer is a critical structural element that is required for optimum ATP binding and can be modulated for the binding of multiple ligands. These findings are instrumental for designing smart molecular tools for a wide range of applications, including biomarker monitoring and ligand binding studies.

摘要

单链 DNA 适配体形成的二级结构可允许小分子配体结合。其中一些二级结构在溶液中高度稳定,是用于开发生物标志物检测、环境监测等分子工具的理想选择。在本文中,我们探索了用于同时检测两种小分子配体的三磷酸腺苷(ATP)结合适配体:三磷酸腺苷(ATP)和硫黄素 T(ThT)。该适配体可形成具有两个 G-四联体的 G-四链体(G4)结构,我们的结果表明,每个四联体在结合中发挥同等作用。通过荧光标记和无标记方法,我们通过构建两种可形成三个或四个 G-四联体 G4 结构的延伸变体,进一步探索了 G4 基序在调节适配体配体结合特性中的作用。通过平衡结合和电喷雾电离质谱(ESI-MS)分析,我们观察到与天然适配体相比,变体 G4 构建体的适配体对 ATP 具有更强的亲和力(变体的亲和力范围为 0.040 - 0.042 μM,而天然 ATP 适配体为 0.15 μM)。此外,我们在无标记和 ESI-MS 分析中观察到 ThT 和 ATP 与 G4 构建体的双重结合。这些发现共同表明,ATP 适配体中的 G4 基序是最佳 ATP 结合所需的关键结构元件,并且可以针对多种配体的结合进行调节。这些发现有助于设计适用于广泛应用的智能分子工具,包括生物标志物监测和配体结合研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8e6/10976393/0240b71c9772/ao3c10386_0001.jpg

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