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Rolling circle amplification-driven encoding of different fluorescent molecules for simultaneous detection of multiple DNA repair enzymes at the single-molecule level

机译:不同荧光分子的滚动圈扩增驱动编码,用于同时检测单分子水平的多个DNA修复酶

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DNA repair enzymes ( e.g. , DNA glycosylases) play a critical role in the repair of DNA lesions, and their aberrant levels are associated with various diseases. Herein, we develop a sensitive method for simultaneous detection of multiple DNA repair enzymes based on the integration of single-molecule detection with rolling circle amplification (RCA)-driven encoding of different fluorescent molecules. We use human alkyladenine DNA glycosylase (hAAG) and uracil DNA glycosylase (UDG) as the target analytes. We design a bifunctional double-stranded DNA (dsDNA) substrate with a hypoxanthine base (I) in one strand for hAAG recognition and an uracil (U) base in the other strand for UDG recognition, whose cleavage by APE1 generates two corresponding primers. The resultant two primers can hybridize with their respective circular templates to initiate RCA, resulting in the incorporation of multiple Cy3-dCTP and Cy5-dGTP nucleotides into the amplified products. After magnetic separation and exonuclease cleavage, the Cy3 and Cy5 fluorescent molecules in the amplified products are released into the solution and subsequently quantified by total internal reflection fluorescence (TIRF)-based single-molecule detection, with Cy3 indicating the presence of hAAG and Cy5 indicating the presence of UDG. This strategy greatly increases the number of fluorescent molecules per concatemer through the introduction of RCA-driven encoding of different fluorescent molecules, without the requirement of any specially labeled detection probes for simultaneous detection. Due to the high amplification efficiency of RCA and the high signal-to-ratio of single-molecule detection, this method can achieve a detection limit of 6.10 × 10 ~(?9) U mL ~(?1) for hAAG and 1.54 × 10 ~(?9) U mL ~(?1) for UDG. It can be further applied for simultaneous detection of multiple DNA glycosylases in cancer cells at the single-cell level and the screening of DNA glycosylase inhibitors, holding great potential in early clinical diagnosis and drug discovery.
机译:DNA修复酶(例如,DNA糖基酶)在DNA病变的修复中起重要作用,并且它们的异常水平与各种疾病相关。在此,我们开发了一种基于单分子检测与不同荧光分子的滚动圆扩增(RCA)的分子检测的整合同时检测多个DNA修复酶的敏感方法。我们使用人烷基苯胺DNA糖基酶(HAAG)和URACIL DNA糖基酶(UDG)作为靶分析物。我们将双官能双链DNA(DSDNA)底物与缺氧基碱(I)中的一个悬停底座(I)进行左核识别,其在另一链中的尿嘧啶(U)碱用于UDG识别,其通过APE1的切割产生两个相应的引物。所得两种引物可以与它们各自的圆形模板杂交以引发RCA,导致将多种Cy3-DCTP和Cy5-DGTP核苷酸掺入扩增产物中。在磁性分离和外切核酸酶切割后,将扩增产物中的Cy3和Cy5荧光分子释放到溶液中,随后通过全内反射荧光(TiRF)的单分子检测量化,具有Cy3,表明存在Haag和Cy5的存在UDG的存在。通过引入不同荧光分子的RCA驱动的编码,该策略极大地增加了每个联系人的荧光分子数量,而不需要任何特殊标记的检测探针进行同时检测。由于RCA的高扩增效率和单分子检测的高信示比,该方法可以达到6.10×10〜(α9)U ml〜(α1)的检出限,为1.54× UDG 10〜(?9)U ml〜(?1)。可以进一步应用于在单细胞水平的癌细胞中同时检测多个DNA糖基化酶和DNA糖基酶抑制剂的筛选,在早期临床诊断和药物发现中占据了巨大潜力。

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