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首页> 外文期刊>Journal of Molecular Biology >A conserved element in the yeast RNase MRP RNA subunit can participate in a long-range base-pairing interaction.
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A conserved element in the yeast RNase MRP RNA subunit can participate in a long-range base-pairing interaction.

机译:酵母RNase MRP RNA亚基中的保守元件可以参与远程碱基配对相互作用。

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摘要

RNase MRP is a ribonucleoprotein endoribonuclease involved in eukaryotic pre-rRNA processing. The enzyme possesses a putatively catalytic RNA subunit, structurally related to that of RNase P. A thorough structure analysis of Saccharomyces cerevisiae MRP RNA, entailing enzymatic and chemical probing, mutagenesis and thermal melting, identifies a previously unrecognised stem that occupies a position equivalent to the P7 stem of RNase P. Inclusion of this P7-like stem confers on yeast MRP RNA a greater degree of similarity to the core RNase P RNA structure than that described previously and better delimits domain 2, the proposed specificity domain. The additional stem is created by participation of a conserved sequence element (ymCR-II) in a long-range base-pairing interaction. There is potential for this base-pairing throughout the known yeast MRP RNA sequences. Formation of a P7-like stem is not required, however, for the pre-rRNA processing or essential function of RNase MRP. Mutants that can base-pairare nonetheless detrimental to RNase MRP function, indicating that the stem will form in vivo but that only the wild-type pairing is accommodated. Although the alternative MRP RNA structure described is clearly not part of the active RNase MRP enzyme, it would be the more stable structure in the absence of protein subunits and the probability that it represents a valid intermediate species in the process of yeast RNase MRP assembly is discussed.
机译:RNase MRP是一种核糖蛋白核糖核酸内切酶,参与真核前rRNA加工。该酶具有一个假定的催化RNA亚基,在结构上与RNase P有关。对酿酒酵母MRP RNA进行彻底的结构分析,包括酶和化学探测,诱变和热熔,可鉴定先前未被识别的茎,该茎占据与RNase P的P7茎。这种P7样茎的包含在酵母MRP RNA上,与核心RNase P RNA结构的相似性高于先前描述的范围,并且更好地界定了结构域2(拟议的特异性结构域)。额外的茎是通过保守序列元件(ymCR-II)参与远程碱基配对相互作用而产生的。在整个已知的酵母MRP RNA序列中,存在这种碱基配对的潜力。但是,对于rRNA之前的加工或RNase MRP的基本功能,不需要形成P7样茎。仍然可以碱基配对的突变体仍然不利于RNase MRP功能,表明茎将在体内形成,但仅能容纳野生型配对。尽管描述的替代MRP RNA结构显然不是活性RNase MRP酶的一部分,但在没有蛋白质亚基的情况下它将是更稳定的结构,并且它在酵母RNase MRP组装过程中代表有效中间物种的可能性为讨论过。

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