首页> 美国卫生研究院文献>Nucleic Acids Research >Circularized synthetic oligodeoxynucleotides serve as promoterless RNA polymerase III templates for small RNA generation in human cells
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Circularized synthetic oligodeoxynucleotides serve as promoterless RNA polymerase III templates for small RNA generation in human cells

机译:环状合成寡聚脱氧核苷酸可作为无启动子的RNA聚合酶III模板用于在人类细胞中生成小RNA

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摘要

Synthetic RNA formulations and viral vectors are the two main approaches for delivering small therapeutic RNA to human cells. Here we report findings supporting an alternative strategy in which an endogenous human RNA polymerase (RNAP) is harnessed to make RNA hairpin-containing small RNA from synthetic single-stranded DNA oligonucleotides. We report that circularizing a DNA template strand encoding a pre-microRNA hairpin mimic can trigger its circumtranscription by human RNAP III in vitro and in human cells. Sequence and secondary structure preferences that appear to promote productive transcription are described. The circular topology of the template is required for productive transcription, at least in part, to stabilize the template against exonucleases. In contrast to bacteriophage and Escherichia coli RNAPs, human RNAPs do not carry out rolling circle transcription on circularized templates. While transfected DNA circles distribute between the nucleus and cytosol, their transcripts are found mainly in the cytosol. Circularized oligonucleotides are synthetic, free of the hazards of viral vectors and maintain small RNA information in a stable form that RNAP III can access in a cellular context with, in some cases, near promoter-like precision and biologically relevant efficiency.
机译:合成RNA制剂和病毒载体是将小型治疗性RNA输送至人类细胞的两种主要方法。在这里,我们报告了支持另一种策略的发现,其中利用一种内源性人类RNA聚合酶(RNAP)从合成的单链DNA寡核苷酸制备包含RNA发夹的小RNA。我们报告说,环化编码pre-microRNA发夹模拟物的DNA模板链可以在体外和在人细胞中通过人RNAP III触发其环转录。描述了似乎促进生产性转录的序列和二级结构偏好。模板的环状拓扑是生产转录所必需的,至少部分是稳定模板以防止核酸外切酶。与噬菌体和大肠杆菌RNAP相比,人RNAP不会在环化模板上进行滚环转录。虽然转染的DNA圈分布在细胞核和细胞质之间,但它们的转录本主要存在于细胞质中。环化寡核苷酸是合成的,没有病毒载体的危害,并以稳定的形式保持小RNA信息,在某些情况下RNAP III可以在细胞环境中以接近启动子样的精确度和生物学相关的效率访问。

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