Zhang Xinxin, Champion Erica A, Tran Elizabeth J, Brown Bernard A, Baserga Susan J, Maxwell E Stuart
Department of Molecular and Structural Biochemistry, North Carolina State University, Raleigh, 27695, USA.
RNA. 2006 Jun;12(6):1092-103. doi: 10.1261/rna.2230106. Epub 2006 Apr 6.
Archaeal box C/D sRNAs guide the methylation of specific nucleotides in archaeal ribosomal and tRNAs. Three Methanocaldococcus jannaschii sRNP core proteins (ribosomal protein L7, Nop56/58, and fibrillarin) bind the box C/D sRNAs to assemble the sRNP complex, and these core proteins are essential for nucleotide methylation. A distinguishing feature of the Nop56/58 core protein is the coiled-coil domain, established by alpha-helices 4 and 5, that facilitates Nop56/58 self-dimerization in vitro. The function of this coiled-coil domain has been assessed for box C/D sRNP assembly, sRNP structure, and sRNP-guided nucleotide methylation by mutating or deleting this protein domain. Protein pull-down experiments demonstrated that Nop56/58 self-dimerization and Nop56/58 dimerization with the core protein fibrillarin are mutually exclusive protein:protein interactions. Disruption of Nop56/58 homodimerization by alteration of specific amino acids or deletion of the entire coiled-coil domain had no obvious effect upon core protein binding and sRNP assembly. Site-directed mutation of the Nop56/58 homodimerization domain also had no apparent effect upon either box C/D RNP- or C'/D' RNP-guided nucleotide modification. However, deletion of this domain disrupted guided methylation from both RNP complexes. Nuclease probing of the sRNP assembled with Nop56/58 proteins mutated in the coiled-coil domain indicated that while functional complexes were assembled, box C/D and C'/D' RNPs were altered in structure. Collectively, these experiments revealed that the self-dimerization of the Nop56/58 coiled-coil domain is not required for assembly of a functional sRNP, but the coiled-coil domain is important for the establishment of wild-type box C/D and C'/D' RNP structure essential for nucleotide methylation.
古菌盒C/D小RNA引导古菌核糖体RNA和转运RNA中特定核苷酸的甲基化。三种嗜热栖热甲烷球菌sRNP核心蛋白(核糖体蛋白L7、Nop56/58和纤维蛋白原)与盒C/D小RNA结合以组装sRNP复合物,并且这些核心蛋白对于核苷酸甲基化至关重要。Nop56/58核心蛋白的一个显著特征是由α螺旋4和5形成的卷曲螺旋结构域,该结构域在体外促进Nop56/58自身二聚化。通过突变或缺失该蛋白结构域,已对该卷曲螺旋结构域在盒C/D sRNP组装、sRNP结构和sRNP引导的核苷酸甲基化方面的功能进行了评估。蛋白质下拉实验表明,Nop56/58自身二聚化以及Nop56/58与核心蛋白纤维蛋白原的二聚化是相互排斥的蛋白质-蛋白质相互作用。通过改变特定氨基酸或缺失整个卷曲螺旋结构域来破坏Nop56/58同二聚化,对核心蛋白结合和sRNP组装没有明显影响。Nop56/58同二聚化结构域的定点突变对盒C/D RNP或C'/D' RNP引导的核苷酸修饰也没有明显影响。然而,缺失该结构域会破坏来自两种RNP复合物的引导甲基化。对与卷曲螺旋结构域中发生突变的Nop56/58蛋白组装的sRNP进行核酸酶探测表明,虽然组装了功能性复合物,但盒C/D和C'/D' RNPs的结构发生了改变。总的来说,这些实验表明,功能性sRNP的组装不需要Nop56/58卷曲螺旋结构域的自身二聚化,但卷曲螺旋结构域对于建立核苷酸甲基化所必需的野生型盒C/D和C'/D' RNP结构很重要。