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腔发夹 ThT 光核酸开关:构建无标记和无酶传感和成像平台。

Cavity hairpin ThT-light nucleic acid switches: the construction of label- and enzyme-free sensing and imaging platforms.

机构信息

Food Laboratory of Zhongyuan, Key Laboratory of Precision Nutrition and Food Quality, Department of Nutrition and Health, China Agricultural University, No. 17, Qinghua East Road, Beijing100193, China.

Key Laboratory of Safety Assessment of Genetically Modified Organism (Food Safety), College of Food Science and Nutritional Engineering, China Agricultural University, No. 17, Qinghua East Road, Beijing100083, China.

出版信息

Nucleic Acids Res. 2023 May 8;51(8):3556-3572. doi: 10.1093/nar/gkad179.

Abstract

Thioflavin T (ThT) is a classical fluorescent dye gaining prominence in current research regarding nucleic acid conformations (NACs). However, most NACs with the ability to excite ThT fluorescent are unique or form in demanding conditions, limiting the extensiveness and depth of ThT application in sensing and imaging. Therefore, this study proposed CGG-AAA mismatched cavity hairpin ThT-light nucleic acid switches (CHTLNAS) with excellent fluorescence excitation over 500-fold higher than spontaneous, 17∼20-fold higher than ssDNA and 2.5∼5-fold higher than complementary duplex. Based on the excellent fluorescence excitation, convenient conformation formation, good sequence programmability, and flexible allosteric ability (known as the Worm-crack pod mechanism mediated by the target), it achieved the label- and enzyme-free detection of tetracycline (TET) and berberine (BB) at the pM level within 10 min. Moreover, it was found enable to realize the sensitive tracking of intracellular carriers at the nM level of ThT entry concentration, and prolongated its cell nuclear-entry time of ThT over 8 h, overcoming the non-specific high background signal interference of ThT in the nuclear region, and expanding the diversified application of ThT in cell biology research. Therefore, CHTLNAS is a more universal, practical tool than G-quadruplex or other kinds of NACs for ThT development and utilization in sensing and imaging platforms.

摘要

硫黄素 T(ThT)是一种经典的荧光染料,在研究核酸构象(NACs)方面越来越受到关注。然而,大多数能够激发 ThT 荧光的 NACs 都是独特的或在苛刻的条件下形成的,这限制了 ThT 在传感和成像中的广泛应用和深入应用。因此,本研究提出了 CGG-AAA 错配腔发夹 ThT-光核酸开关(CHTLNAS),其荧光激发比自发荧光高 500 倍以上,比 ssDNA 高 17∼20 倍,比互补双链体高 2.5∼5 倍。基于优异的荧光激发、方便的构象形成、良好的序列可编程性和灵活的变构能力(称为由目标介导的 Worm-crack pod 机制),它实现了在 10 分钟内对四环素(TET)和小檗碱(BB)进行无需标记和酶的检测,检测限低至皮摩尔级。此外,还发现它能够以纳摩尔级的 ThT 进入浓度实现对细胞内载体的敏感跟踪,并将 ThT 进入细胞核的时间延长至 8 小时以上,克服了 ThT 在核区的非特异性高背景信号干扰,扩展了 ThT 在细胞生物学研究中的多样化应用。因此,与 G-四链体或其他 NACs 相比,CHTLNAS 是一种更通用、更实用的 ThT 开发和利用工具,可用于传感和成像平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15ce/10164568/75a1ffaf9a59/gkad179figgra1.jpg

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