Ivanova Natalia, Pavlov Michael Y, Bouakaz Elli, Ehrenberg Måns, Schiavone Lovisa Holmberg
Department of Cell and Molecular Biology, BMC, Uppsala University Box 596, S-75 124 Uppsala, Sweden.
Nucleic Acids Res. 2005 Jun 21;33(11):3529-39. doi: 10.1093/nar/gki666. Print 2005.
In trans-translation transfer messenger RNA (tmRNA) and small protein B (SmpB) rescue ribosomes stalled on truncated or in other ways problematic mRNAs. SmpB promotes the binding of tmRNA to the ribosome but there is uncertainty about the number of participating SmpB molecules as well as their ribosomal location. Here, the interaction of SmpB with ribosomal subunits and ribosomes was studied by isolation of SmpB containing complexes followed by chemical modification of ribosomal RNA with dimethyl sulfate, kethoxal and hydroxyl radicals. The results show that SmpB binds 30S and 50S subunits with 1:1 molar ratios and the 70S ribosome with 2:1 molar ratio. SmpB-footprints are similar on subunits and the ribosome. In the 30S subunit, SmpB footprints nucleotides that are in the vicinity of the P-site facing the E-site, and in the 50S subunit SmpB footprints nucleotides that are located below the L7/L12 stalk in the 3D structure of the ribosome. Based on these results, we suggest a mechanism where two molecules of SmpB interact with tmRNA and the ribosome during trans-translation. The first SmpB molecule binds near the factor-binding site on the 50S subunit helping tmRNA accommodation on the ribosome, whereas the second SmpB molecule may functionally substitute for a missing anticodon stem-loop in tmRNA during later steps of trans-translation.
在反式翻译中,转移信使核糖核酸(tmRNA)和小蛋白B(SmpB)拯救停滞在截短的或以其他方式有问题的信使核糖核酸(mRNA)上的核糖体。SmpB促进tmRNA与核糖体的结合,但关于参与的SmpB分子数量及其核糖体定位存在不确定性。在这里,通过分离含有SmpB的复合物,然后用硫酸二甲酯、乙二醛和羟基自由基对核糖体RNA进行化学修饰,研究了SmpB与核糖体亚基和核糖体的相互作用。结果表明,SmpB以1:1的摩尔比结合30S和50S亚基,以2:1的摩尔比结合70S核糖体。SmpB在亚基和核糖体上的足迹相似。在30S亚基中,SmpB覆盖面向E位点的P位点附近的核苷酸,在50S亚基中,SmpB覆盖核糖体三维结构中L7/L12茎下方的核苷酸。基于这些结果,我们提出了一种机制,即在反式翻译过程中,两个SmpB分子与tmRNA和核糖体相互作用。第一个SmpB分子在50S亚基上的因子结合位点附近结合,帮助tmRNA在核糖体上定位,而第二个SmpB分子可能在反式翻译的后期步骤中在功能上替代tmRNA中缺失的反密码子茎环。