Wower I K, Zwieb C W, Guven S A, Wower J
Department of Animal and Dairy Sciences, Program in Cell and Molecular Biosciences, Auburn University, Auburn, AL 36849-5415, USA.
EMBO J. 2000 Dec 1;19(23):6612-21. doi: 10.1093/emboj/19.23.6612.
UV irradiation of an in vitro translation mixture induced cross-linking of 4-thioU-substituted tmRNA to Escherichia coli ribosomes by forming covalent complexes with ribosomal protein S1 and 16S rRNA. In the absence of S1, tmRNA was unable to bind and label ribosomal components. Mobility assays on native gels demonstrated that protein S1 bound to tmRNA with an apparent binding constant of 1 x 10(8) M(-1). A mutant tmRNA, lacking the tag coding region and pseudoknots pk2, pk3 and pk4, did not compete with full-length tmRNA, indicating that this region is required for S1 binding. This was confirmed by identification of eight cross-linked nucleotides: U85, located before the resume codon of tmRNA; U105, in the mRNA portion of tmRNA; U172 in pK2; U198, U212, U230 and U240 in pk3; and U246, in the junction between pk3 and pk4. We concluded that ribosomal protein S1, in concert with the previously identified elongation factor EF-Tu and protein SmpB, plays an important role in tmRNA-mediated trans-translation by facilitating the binding of tmRNA to ribosomes and forming complexes with free tmRNA.
对体外翻译混合物进行紫外线照射,通过与核糖体蛋白S1和16S rRNA形成共价复合物,诱导4-硫代尿苷取代的tmRNA与大肠杆菌核糖体发生交联。在没有S1的情况下,tmRNA无法结合并标记核糖体成分。天然凝胶上的迁移率分析表明,蛋白S1与tmRNA结合,其表观结合常数为1×10⁸ M⁻¹。一个缺少标签编码区以及假结pk2、pk3和pk4的突变型tmRNA,不能与全长tmRNA竞争,这表明该区域是S1结合所必需的。通过鉴定8个交联核苷酸证实了这一点:位于tmRNA恢复密码子之前的U85;tmRNA的mRNA部分中的U105;pK2中的U172;pk3中的U198、U212、U230和U240;以及pk3和pk4之间连接处的U246。我们得出结论,核糖体蛋白S1与先前鉴定的延伸因子EF-Tu和蛋白SmpB协同作用,通过促进tmRNA与核糖体的结合并与游离tmRNA形成复合物,在tmRNA介导的反式翻译中发挥重要作用。