Jagannathan Indu, Culver Gloria M
Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, 4258 Molecular Biology Building, Ames, IA 50011, USA.
J Mol Biol. 2004 Jan 30;335(5):1173-85. doi: 10.1016/j.jmb.2003.11.031.
Ribosomal protein S15 binds specifically to the central domain of 16 S ribosomal RNA (16 S rRNA) and directs the assembly of four additional proteins to this domain. The central domain of 16 S rRNA along with these five proteins form the platform of the 30 S subunit. Previously, directed hydroxyl radical probing from Fe(II)-S15 in small ribonucleoprotein complexes was used to study assembly of the central domain of 16 S rRNA. Here, this same approach was used to understand the 16 S rRNA environment of Fe(II)-S15 in 30 S subunits and to determine the ribosomal proteins that are involved in forming the mature S15-16 S rRNA environment. We have identified additional sites of Fe(II)-S15-directed cleavage in 30S subunits compared to the binary complex of Fe(II)-S15/16 S rRNA. Along with novel targets in the central domain, sites within the 5' and 3' minor domains are also cleaved. This suggests that during the course of 30S subunit assembly these elements are positioned in the vicinity of S15. Besides the previously determined role for S8, roles for S5, S6+S18, and S16 in altering the 16 S rRNA environment of S15 were established. These studies reveal that ribosomal proteins can alter the assembly of regions of the 30 S subunit from a considerable distance and influence the overall conformation of this ribonucleoprotein particle.
核糖体蛋白S15特异性结合16S核糖体RNA(16S rRNA)的中央结构域,并引导另外四种蛋白质组装到该结构域。16S rRNA的中央结构域与这五种蛋白质一起构成了30S亚基的平台。此前,利用小核糖核蛋白复合物中Fe(II)-S15的定向羟基自由基探测来研究16S rRNA中央结构域的组装。在此,采用相同的方法来了解30S亚基中Fe(II)-S15的16S rRNA环境,并确定参与形成成熟S15-16S rRNA环境的核糖体蛋白。与Fe(II)-S15/16S rRNA二元复合物相比,我们在30S亚基中鉴定出了Fe(II)-S15定向切割的其他位点。除了中央结构域中的新靶点外,5'和3'小结构域内的位点也被切割。这表明在30S亚基组装过程中,这些元件位于S15附近。除了先前确定的S8的作用外,还确定了S5、S6+S18和S16在改变S15的16S rRNA环境中的作用。这些研究表明,核糖体蛋白可以在相当远的距离改变30S亚基区域的组装,并影响这种核糖核蛋白颗粒的整体构象。