Suppr超能文献

核糖核酸酶III的晶体学和建模研究揭示了双链RNA切割的机制。

Crystallographic and modeling studies of RNase III suggest a mechanism for double-stranded RNA cleavage.

作者信息

Blaszczyk J, Tropea J E, Bubunenko M, Routzahn K M, Waugh D S, Court D L, Ji X

机构信息

Macromolecular Crystallography Laboratory, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Frederick, MD 21702, USA.

出版信息

Structure. 2001 Dec;9(12):1225-36. doi: 10.1016/s0969-2126(01)00685-2.

Abstract

BACKGROUND

Aquifex aeolicus Ribonuclease III (Aa-RNase III) belongs to the family of Mg(2+)-dependent endonucleases that show specificity for double-stranded RNA (dsRNA). RNase III is conserved in all known bacteria and eukaryotes and has 1-2 copies of a 9-residue consensus sequence, known as the RNase III signature motif. The bacterial RNase III proteins are the simplest, consisting of two domains: an N-terminal endonuclease domain, followed by a double-stranded RNA binding domain (dsRBD). The three-dimensional structure of the dsRBD in Escherichia coli RNase III has been elucidated; no structural information is available for the endonuclease domain of any RNase III.

RESULTS

We present the crystal structures of the Aa-RNase III endonuclease domain in its ligand-free form and in complex with Mn(2+). The structures reveal a novel protein fold and suggest a mechanism for dsRNA cleavage. On the basis of structural, genetic, and biological data, we have constructed a hypothetical model of Aa-RNase III in complex with dsRNA and Mg(2+) ion, which provides the first glimpse of RNase III in action.

CONCLUSIONS

The functional Aa-RNase III dimer is formed via mainly hydrophobic interactions, including a "ball-and-socket" junction that ensures accurate alignment of the two monomers. The fold of the polypeptide chain and its dimerization create a valley with two compound active centers at each end of the valley. The valley can accommodate a dsRNA substrate. Mn(2+) binding has significant impact on crystal packing, intermolecular interactions, thermal stability, and the formation of two RNA-cutting sites within each compound active center.

摘要

背景

嗜热栖热菌核糖核酸酶III(Aa-RNase III)属于依赖Mg(2+)的核酸内切酶家族,对双链RNA(dsRNA)具有特异性。核糖核酸酶III在所有已知细菌和真核生物中都保守存在,并且有1至2个9个残基的共有序列拷贝,即核糖核酸酶III特征基序。细菌核糖核酸酶III蛋白是最简单的,由两个结构域组成:一个N端核酸内切酶结构域,后面跟着一个双链RNA结合结构域(dsRBD)。大肠杆菌核糖核酸酶III中dsRBD的三维结构已被阐明;任何核糖核酸酶III的核酸内切酶结构域都没有结构信息。

结果

我们展示了无配体形式以及与Mn(2+)结合的Aa-RNase III核酸内切酶结构域的晶体结构。这些结构揭示了一种新的蛋白质折叠方式,并提出了dsRNA切割的机制。基于结构、遗传和生物学数据,我们构建了Aa-RNase III与dsRNA和Mg(2+)离子结合的假设模型,这首次展示了核糖核酸酶III的作用方式。

结论

功能性Aa-RNase III二聚体主要通过疏水相互作用形成,包括一个“球窝”连接,可确保两个单体精确对齐。多肽链的折叠及其二聚化形成了一个凹槽,在凹槽两端各有两个复合活性中心。该凹槽可容纳dsRNA底物。Mn(2+)结合对晶体堆积、分子间相互作用、热稳定性以及每个复合活性中心内两个RNA切割位点的形成有显著影响。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验