a Department of Chemistry and Konstanz Research School Chemical Biology (KoRS-CB) , University of Konstanz , Konstanz , Germany.
RNA Biol. 2018 Feb 1;15(2):231-241. doi: 10.1080/15476286.2017.1397870. Epub 2017 Dec 8.
Recent bioinformatics studies have demonstrated a wide-spread occurrence of the hammerhead ribozyme (HHR) and similar small endonucleolytic RNA motifs in all domains of life. It is becoming increasingly evident that such ribozyme motifs participate in important genetic processes in diverse organisms. Although the HHR motif has been studied for more than three decades, only little is known about the consequences of ribozyme activity on gene expression. In the present study we analysed eight different naturally occurring HHR sequences in diverse genetic and organismal contexts. We investigated the influence of active ribozymes incorporated into mRNAs in mammalian, yeast and bacterial expression systems. The experiments show an unexpectedly high degree of organism-specific variability of ribozyme-mediated effects on gene expression. The presented findings demonstrate that ribozyme cleavage profoundly affect gene expression. However, the extent of this effect varies and depends strongly on the respective genetic context. The fast-cleaving type 3 HHRs [CChMVd(-) and sLTSV(-)] generally tended to cause the strongest effects on intracellular gene expression. The presented results are important in order to address potential functions of naturally occurring ribozymes in RNA processing and post-transcriptional regulation of gene expression. Additionally, our results are of interest for biotechnology and synthetic biology approaches that aim at the utilisation of self-cleaving ribozymes as widely applicable tools for controlling genetic processes.
最近的生物信息学研究表明,锤头状核酶(Hammerhead ribozyme,HHR)和类似的小核酸内切酶 RNA 基序广泛存在于所有生命领域。越来越明显的是,这种核酶基序参与了不同生物体中重要的遗传过程。尽管 HHR 基序已经研究了三十多年,但人们对核酶活性对基因表达的影响知之甚少。在本研究中,我们分析了来自不同遗传和生物背景的 8 种不同的天然存在的 HHR 序列。我们研究了在哺乳动物、酵母和细菌表达系统中整合到 mRNA 中的活性核酶对基因表达的影响。实验结果显示,核酶介导的基因表达调控具有出乎意料的高度的生物体特异性变异性。研究结果表明,核酶切割会深刻影响基因表达。然而,这种影响的程度因不同的遗传背景而有很大差异。快速切割的 3 型 HHR(CChMVd(-) 和 sLTSV(-))通常会对细胞内基因表达产生最强的影响。这些结果对于研究自然存在的核酶在 RNA 加工和基因表达的转录后调控中的潜在功能非常重要。此外,我们的结果对于生物技术和合成生物学方法也具有重要意义,这些方法旨在利用自切割核酶作为控制遗传过程的广泛适用的工具。