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Interdependence between DNA template secondary structure and priming efficiencies of short primers.

机译:DNA模板二级结构和短引物的引物效率之间的相互依赖性。

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Here we analyze the effect of DNA folding on the performance of short primers and describe a simple technique for assessing hitherto uncertain values of thermodynamic parameters that determine the folding of single-stranded DNA into secondary structure. An 8mer with two degenerate positions is extended simultaneously at several complementary sites on a known template (M13mp18) using one, two or three (but never all four) of the possible dNTPs. The length of the extension is site specific because it is limited by the first occurrence in the downstream template sequence of a base whose complementary dNTP is not present. The relative priming efficiencies of different sites are then ranked by comparing their band brightnesses on a gel. The priming efficiency of a short primer (unlike conventional long primers) depends dramatically on the secondary structure of the template at and around the priming site. We calculated the secondary structure and its effect on priming using a simple model with relatively few parameters which were then optimized to achieve the best match between the predictions and the actual rankings of the sites in terms of priming efficiency. This work introduces an efficient and conceptually novel approach that in the future can make use of more data to optimize a larger set of DNA folding parameters in a more refined model. The model we used, however crude it may be, significantly improved the prediction of priming efficiencies of 8mer primers and appreciably raised the success rate of our DNA sequencing technique (from 67 to 91% with a significance of P < 7 x 10(-5)), which uses such primers.
机译:在这里,我们分析了DNA折叠对短引物性能的影响,并描述了一种评估热力学参数迄今不确定值的简单技术,该参数确定了单链DNA折叠成二级结构的能力。使用一个,两个或三个(但绝不是全部四个)可能的dNTP,在两个已知位置(M13mp18)上的几个互补位点同时延伸一个具有两个简并位置的8mer。延伸的长度是位点特异性的,因为它受到下游模板序列中首次出现的碱基的限制,该碱基不存在互补的dNTP。然后通过比较它们在凝胶上的条带亮度,对不同部位的相对启动效率进行排序。短引物(与常规长引物不同)的引物效率在很大程度上取决于引物位点及其周围模板的二级结构。我们使用具有相对较少参数的简单模型计算了二级结构及其对启动的影响,然后对该模型进行了优化,以根据启动效率对站点的实际预测和排名进行最佳匹配。这项工作引入了一种有效的概念上新颖的方法,该方法在将来可以利用更多的数据在更精细的模型中优化更大的DNA折叠参数集。我们使用的模型可能粗略地改进了8mer引物的引物效率的预测,并显着提高了我们DNA测序技术的成功率(从67%提高到91%,显着性P <7 x 10(-5) )),使用此类引物。

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