首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Highly sensitive fluorescence assay of DNA methyltransferase activity by methylation-sensitive cleavage-based primer generation exponential isothermal amplification-induced G-quadruplex formation
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Highly sensitive fluorescence assay of DNA methyltransferase activity by methylation-sensitive cleavage-based primer generation exponential isothermal amplification-induced G-quadruplex formation

机译:基于甲基化敏感裂解的引物生成指数等温扩增诱导的G-四链体形成的DNA甲基转移酶活性的高灵敏度荧光测定

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摘要

Site-specific identification of DNA methylation and assay of MTase activity are imperative for determining specific cancer types, provide insights into the mechanism of gene repression, and develop novel drugs to treat methylation-related diseases. Herein, we developed a highly sensitive fluorescence assay of DNA methyltransferase by methylation-sensitive cleavage-based primer generation exponential isothermal amplification (PG-EXPA) coupled with supramolecular fluorescent Zinc(II)-protoporphyrin IX (ZnPPIX)/G-quadruplex. In the presence of DNA adenine methylation (Dam) MTase, the methylation-responsive sequence of hairpin probe is methylated and cleaved by the methylation-sensitive restriction endonuclease Dpn I. The cleaved hairpin probe then functions as a signal primer to initiate the exponential isothermal amplification reaction (EXPAR) by hybridizing with a unimolecular DNA containing three functional domains as the amplification template, producing a large number of G-quadruplex nanostructures by utilizing polymerases and nicking enzymes as mechanical activators. The G-quadruplex nanostructures act as host for ZnPPIX that lead to supramolecular complexes ZnPPIX/G-quadruplex, which provides optical labels for amplified fluorescence detection of Dam MTase. While in the absence of Dam MTase, neither methylation/cleavage nor PG-EXPA reaction can be initiated and no fluorescence signal is observed. The proposed method exhibits a wide dynamic range from 0.0002 to 20 U/mL and an extremely low detection limit of 8.6 x 10(-5) U/mL, which is superior to most conventional approaches for the MTase assay. Owing to the specific site recognition of MTase toward its substrate, the proposed sensing system was able to readily discriminate Dam MTase from other MTase such as M.SssI and even detect the target in a complex biological matrix. Furthermore, the application of the proposed sensing strategy for screening Dam MTase inhibitors was also demonstrated with satisfactory results. This novel method not only provides a promising platform for monitoring activity and inhibition of DNA MTases, but also shows great potentials in biological process researches, drugs discovery and clinical diagnostics. (C) 2014 Elsevier B.V. All rights reserved.
机译:DNA甲基化的位点特异性鉴定和MTase活性测定对于确定特定的癌症类型,提供基因阻抑机制的见解以及开发治疗甲基化相关疾病的新药至关重要。在本文中,我们通过基于甲基化敏感性裂解的引物生成指数等温扩增(PG-EXPA)结合超分子荧光锌(II)-原卟啉IX(ZnPPIX)/ G-四联体,开发了DNA甲基转移酶的高灵敏度荧光测定法。在存在DNA腺嘌呤甲基化(Dam)MTase的情况下,发夹探针的甲基化响应序列被甲基化并被甲基化敏感的限制性核酸内切酶Dpn I裂解。然后,裂解的发夹探针将用作信号引物,以启动指数等温扩增通过与包含三个功能域的单分子DNA杂交作为扩增模板(EXPAR),利用聚合酶和切口酶作为机械激活剂产生大量G-四链体纳米结构。 G-四链体纳米结构充当ZnPPIX的宿主,导致形成超分子复合物ZnPPIX / G-四链体,后者为Dam MTase的荧光扩增检测提供光学标记。在没有Dam MTase的情况下,甲基化/裂解或PG-EXPA反应均无法启动,并且未观察到荧光信号。所提出的方法具有从0.0002到20 U / mL的宽动态范围和8.6 x 10(-5)U / mL的极低检测限,这优于大多数传统的MTase检测方法。由于MTase朝向其底物的特定位点识别,因此拟议的传感系统能够轻松地将Dam MTase与其他MTase(例如M.SssI)区分开,甚至可以在复杂的生物基质中检测目标。此外,还证明了拟议的传感策略在筛选Dam MTase抑制剂中的应用具有令人满意的结果。这种新颖的方法不仅为监测DNA MTase的活性和抑制提供了有希望的平台,而且在生物学过程研究,药物发现和临床诊断中显示出巨大的潜力。 (C)2014 Elsevier B.V.保留所有权利。

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