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RNA-directed construction of structurally complex and active ligase ribozymes through recombination

机译:通过重组重组技术指导结构复杂和活性的连接酶核酶的构建

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摘要

RNA-directed recombination can be used to catalyze a disproportionation reaction among small RNA substrates to create new combinations of sequences. But the accommodation of secondary and tertiary structural constraints in the substrates by recombinase ribozymes has not been explored. Here, we show that the Azoarcus group I intron can recombine oligoribonucleotides to construct class I ligase ribozymes, which are catalytically active upon synthesis. The substrate oligonucleotides, ranging in size from 58 to 104 nucleotides (nt), along with the 152-nt ligase ribozymes they reconstitute, can contain significant amounts of secondary structure. However, substrate recognition by the Azoarcus ribozyme depends on the existence of a single accessible CAU triplet for effective recombination. A biphasic temperature reaction profile was designed such that the sequential recombination/ligation events could take place in a thermocycler without human intervention. A temperature-dependent pH shift of the reaction buffer contributes to the success of the net reaction. When the substrate for the ligase ribozyme is introduced into the reaction mixture, as much as 11% can be observed being converted to product by the recombined ligase in the same reaction vessel. Recombination followed by ligation can also occur under isothermal conditions at 37°C. Tertiary structure formation of the ligase upon construction can provide some protection from cleavage by the Azoarcus ribozyme when compared to the constituent substrates. These data suggest that RNA-directed recombination can, in fact, articulate complex ribozymes, and that there are logical rules that can guide the optimal placement of the CAU recognition sequence.
机译:RNA指导的重组可用于催化小RNA底物之间的歧化反应,以创建新的序列组合。但是,尚未研究通过重组酶核酶在底物中适应二级和三级结构限制。在这里,我们显示了偶氮类群I内含子可以重组寡核糖核苷酸以构建I类连接酶核酶,这些酶在合成后​​具有催化活性。大小为58至104个核苷酸(nt)的底物寡核苷酸,以及它们构成的152-nt连接酶核酶,可以包含大量的二级结构。然而,偶氮固氮菌核酶对底物的识别取决于有效重组的单个可及的CAU三联体的存在。设计了双相温度反应曲线,使得顺序重组/连接事件可以在热循环仪中发生,而无需人工干预。反应缓冲液的温度依赖性pH改变有助于净反应的成功。当将连接酶核酶的底物引入反应混合物中时,在同一反应容器中可以观察到多达11%的重组连接酶将其转化为产物。在37°C等温条件下也可能发生重组后再连接的现象。当与组成底物相比时,在构建时连接酶的三级结构形成可以提供一些保护,以免其被固氮核酶裂解。这些数据表明,RNA指导的重组实际上可以表达复杂的核酶,并且存在一些逻辑规则可以指导CAU识别序列的最佳位置。

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