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The model structure of the hammerhead ribozyme formed by RNAs of reciprocal chirality

机译:逆转录的锤头核酶的模型结构

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摘要

RNA-based tools are frequently used to modulate gene expression in living cells. However, the stability and effectiveness of such RNA-based tools is limited by cellular nuclease activity. One way to increase RNA’s resistance to nucleases is to replace its D-ribose backbone with L-ribose isomers. This modification changes chirality of an entire RNA molecule to L-form giving it more chance of survival when introduced into cells. Recently, we have described the activity of left-handed hammerhead ribozyme (L-Rz, L-HH) that can specifically hydrolyse RNA with the opposite chirality at a predetermined location. To understand the structural background of the RNA specific cleavage in a heterochiral complex, we used circular dichroism (CD) and nuclear magnetic resonance (NMR) spectroscopy as well as performed molecular modelling and dynamics simulations of homo- and heterochiral RNA complexes. The active ribozyme-target heterochiral complex showed a mixed chirality as well as low field imino proton NMR signals. We modelled the 3D structures of the oligoribonucleotides with their ribozyme counterparts of reciprocal chirality. L- or D-ribozyme formed a stable, homochiral helix 2, and two short double heterochiral helixes 1 and 3 of D- or L-RNA strand thorough irregular Watson–Crick base pairs. The formation of the heterochiral complexes is supported by the result of simulation molecular dynamics. These new observations suggest that L-catalytic nucleic acids can be used as tools in translational biology and diagnostics.
机译:基于RNA的工具经常用于调节活细胞中的基因表达。然而,基于RNA的工具的稳定性和有效性受细胞核酸酶活性的限制。提高RNA对核酸酶抗性的一种方法是用L-核糖异构体代替其D-核糖骨架。该修饰将整个RNA分子的手性变为L形式,使其在引入细胞时的存活率更多。最近,我们已经描述了左手锤头核酶(L-RZ,L-HH)的活性,其可以在预定位置具有特异性地水解RNA的RNA。为了了解异单元复合物中RNA特异性切割的结构背景,我们使用圆形二色性(CD)和核磁共振(NMR)光谱,以及进行同源和异细胞菌RNA复合物的分子建模和动力学模拟。活性核酶 - 靶标异量复合物显示出混合的手性以及低场氨基质子NMR信号。我们将寡核糖核苷酸的3D结构与互惠性胆怯的核酶对应物建模。 L-或D-核酶形成稳定的,同性量的螺旋2和两种短的双异单元螺旋螺旋1和3的D-或L-RNA链彻底不规则的Watson-Crick碱基对。通过模拟分子动力学的结果支持异细复合物的形成。这些新的观察结果表明,L-催化核酸可用作翻译生物学和诊断的工具。

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