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Zip Nucleic Acids: new high affinity oligonucleotides as potent primers for PCR and reverse transcription

机译:Zip Nucleic Acids:新的高亲和力寡核苷酸,可作为PCR和逆转录的有效引物

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Most nucleic acid-based technologies rely upon sequence recognition between an oligonucleotide and its nucleic acid target. With the aim of improving hybridization by decreasing electrostatic repulsions between the negatively charged strands, novel modified oligonucleotides named Zip nucleic acids (ZNAs) were recently developed. ZNAs are oligonucleotide–oligocation conjugates whose global charge is modulated by the number of cationic spermine moieties grafted on the oligonucleotide. It was demonstrated that the melting temperature of a hybridized ZNA is easily predictable and increases linearly with the length of the oligocation. Furthermore, ZNAs retain the ability to discriminate between a perfect match and a single base-pair-mismatched complementary sequence. Using quantitative PCR, we show here that ZNAs are specific and efficient primers displaying an outstanding affinity toward their genomic target. ZNAs are particularly efficient at low magnesium concentration, low primer concentrations and high annealing temperatures, allowing to improve the amplification in AT-rich sequences and potentially multiplex PCR applications. In reverse transcription experiments, ZNA gene-specific primers improve the yield of cDNA synthesis, thus increasing the accuracy of detection, especially for genes expressed at low levels. Our data suggest that ZNAs exhibit faster binding kinetics than standard and locked nucleic acid-containing primers, which could explain why their target recognition is better for rare targets.
机译:大多数基于核酸的技术都依赖于寡核苷酸及其核酸靶标之间的序列识别。为了通过减少带负电荷的链之间的静电排斥来改善杂交,最近开发了新颖的修饰寡核苷酸,称为Zip核酸(ZNA)。 ZNA是寡核苷酸-寡聚阳离子缀合物,其总电荷由嫁接到寡核苷酸上的阳离子精胺部分的数量来调节。已经证明,杂交的ZNA的熔融温度是容易预测的,并且随着寡聚化的长度线性增加。此外,ZNA保留了区分完美匹配和单个碱基对不匹配互补序列的能力。使用定量PCR,我们在这里显示ZNA是特异性和有效的引物,对它们的基因组靶标表现出出色的亲和力。 ZNA在低镁浓度,低引物浓度和高退火温度下特别有效,从而可以改善富含AT的序列中的扩增以及潜在的多重PCR应用。在逆转录实验中,ZNA基因特异性引物可提高cDNA合成的产量,从而提高检测的准确性,尤其是对于低水平表达的基因而言。我们的数据表明,ZNAs的结合动力学比标准的含锁定核酸的引物快,这可以解释为什么其靶标识别对于稀有靶标更好。

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