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Major groove substituents and polymerase recognition of a class of predominantly hydrophobic unnatural base pairs

机译:一类主要为疏水性非天然碱基对的主要凹槽取代基和聚合酶识别

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Expansion of the genetic alphabet with an unnatural base pair is a long-standing goal of synthetic biology. We have developed a class of unnatural base pairs, formed between d5SICS and analogues of dMMO2 that are efficiently and selectively replicated by the Klenow fragment (Kf) DNA polymerase. In an effort to further characterize and optimize replication, we report the synthesis of five new dMMO2 analogues bearing different substituents designed to be oriented into the developing major groove and an analysis of their insertion opposite d5SICS by Kf and Thermus aquaticus DNA polymerasea I (Taq). We also expand the analysis of the previously optimized pair, dNaM-d5SICS, to include replication by Taq. Finally, the efficiency and fidelity of PCR amplification of the base pairs by Taq or Deep Vent polymerases was examined. The resulting structure-activity relationship data suggest that the major determinants of efficient replication are the minimization of desolvation effects and the introduction of favorable hydrophobic packing, and that Taq is more sensitive than Kf to structural changes. In addition, we identify an analogue (dNMO1) that is a better partner for d5SICS than any of the previously identified dMMO2 analogues with the exception of dNaM. We also found that dNaM-d5SICS is replicated by both Kf and Taq with rates approaching those of a natural base pair. Greasing up the groove: The optimization of a predominantly hydrophobic class of unnatural base pairs is reported (see figure). Minimizing the cost of nucleobase desolvation and optimizing packing interactions is a promising route toward optimization. An improved base pair was identified, but continued analysis of a previously reported pair revealed that it is replicated with an efficiency and fidelity approaching that of natural DNA.
机译:用非天然碱基对扩展遗传字母是合成生物学的长期目标。我们已经开发出一类非自然碱基对,由d5SICS和dMMO2的类似物形成,可以通过Klenow片段(Kf)DNA聚合酶选择性地复制。为了进一步表征和优化复制,我们报道了五个新的带有不同取代基的dMMO2类似物的合成,这些取代基旨在进入正在发展的主要凹槽,并通过Kf和Thermus aquaticus DNA聚合酶I(Taq)对与d5SICS相对的插入物进行了分析。 。我们还扩展了对先前优化的dNaM-d5SICS对的分析,以包括Taq的复制。最后,检查了通过Taq或Deep Vent聚合酶PCR扩增碱基对的效率和保真度。所得的结构-活性关系数据表明,有效复制的主要决定因素是去溶剂化作用的最小化和有利的疏水性填充的引入,并且Taq比Kf对结构变化更敏感。此外,我们确定了一个类似物(dNMO1),它是d5SICS的最佳搭档,除了dNaM之外,它比任何先前确定的dMMO2类似物都更好。我们还发现dNaM-d5SICS被Kf和Taq复制,其速率接近天然碱基对。润滑凹槽:据报道,主要对疏水类的非天然碱基进行了优化(见图)。最小化核碱基去溶剂化的成本并优化包装相互作用是实现优化的一种有希望的途径。鉴定出了改进的碱基对,但是对先前报道的碱基对的持续分析显示,其复制效率和保真度接近天然DNA。

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