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Modular construction for function of a ribonucleoprotein enzyme: the catalytic domain of Bacillus subtilis RNase P complexed with B.subtilis RNase P protein

机译:功能模块化设计 核糖核酸酶的结构:芽孢杆菌的催化结构域 枯草杆菌 与枯草芽孢杆菌RNase P蛋白复合的RNase P

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摘要

The bacterial RNase P holoenzyme catalyzes the formation of the mature 5′-end of tRNAs and is composed of an RNA and a protein subunit. Among the two folding domains of the RNase P RNA, the catalytic domain (C-domain) contains the active site of this ribozyme. We investigated specific binding of the Bacillus subtilis C-domain with the B.subtilis RNase P protein and examined the catalytic activity of this C-domain–P protein complex. The C-domain forms a specific complex with the P protein with a binding constant of ∼0.1 µM. The C-domain–P protein complex and the holoenzyme are equally efficient in cleaving single-stranded RNA (∼0.9 min–1 at pH 7.8) and substrates with a hairpin–loop 3′ to the cleavage site (∼40 min–1). The holoenzyme reaction is much more efficient with a pre-tRNA substrate, binding at least 100-fold better and cleaving 10–500 times more efficiently. These results demonstrate that the RNase P holoenzyme is functionally constructed in three parts. The catalytic domain alone contains the active site, but has little specificity and affinity for most substrates. The specificity and affinity for the substrate is generated by either the specificity domain of RNase P RNA binding to a T stem–loop-like hairpin or RNase P protein binding to a single-stranded RNA. This modular construction may be exploited to obtain RNase P-based ribonucleoprotein complexes with altered substrate specificity.
机译:细菌RNase P全酶催化tRNA的成熟5'末端的形成,由RNA和蛋白质亚基组成。在RNase P RNA的两个折叠域中,催化域(C域)包含该核酶的活性位点。我们研究了枯草芽孢杆菌C结构域与枯草芽孢杆菌RNase P蛋白的特异性结合,并研究了该C结构域-P蛋白复合物的催化活性。 C结构域与P蛋白形成特异性复合物,结合常数约为0.1 µM。 C结构域-P蛋白复合物和全酶在切割单链RNA(pH值为7.8时约0.9 min -1 )和具有发夹环3'到裂解位点的底物方面同样有效。 (约40分钟 –1 )。完整的酶反应与pre-tRNA底物相比要有效得多,结合至少好100倍,裂解效率高10-500倍。这些结果表明,RNA酶P全酶在功能上分为三个部分。单独的催化结构域包含活性位点,但几乎没有 对大多数底物的特异性和亲和力。特异性和 对底物的亲和力是由特异性域产生的 核糖核酸酶P RNA与T茎环样发夹或 RNase P蛋白与单链RNA结合。这种模块化的结构 可被利用来获得基于RNase P的核糖核蛋白复合物 具有改变的底物特异性。

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