Zeng Q, Hall K B
Department of Biochemistry, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
RNA. 1997 Mar;3(3):303-14.
The N-terminal RNA binding domain (RBD1) of the human U1A protein interacts specifically with a short RNA hairpin containing the U1 snRNA stem/loop II sequence. Previous RNA binding studies have suggested that the C-terminal tail of RBD1 contributes to RNA recognition in addition to interactions on the beta-sheet surface of the protein. To evaluate the contributions of these C-terminal residues in RBD1 to RNA binding affinity and specificity, as well as to study the thermodynamic stability of RBDs, a number of RBD1 mutants with truncated tails, with single amino acid substitutions, and with both a truncation and an amino acid substitution, have been constructed. The thermodynamic stabilities of these mutants have been measured and compared by GdnHCI unfolding experiments. The RNA binding affinity and specificity of these mutant proteins have been assessed by measuring the binding of each protein to the wild-type RNA hairpin and to selected RNA mutants with nucleotide substitutions in the RNA loop. The results demonstrate first that, although the C-terminal tail of RBD1 makes significant contributions to RNA binding affinity, it is not required for RNA binding, and second, its contributions to binding specificity are mediated only through selected nucleotides in the RNA loop, for in the absence of the tail, the protein continues to use other nucleotides to discriminate among RNAs. In these truncated proteins, the secondary structure intrinsic to the C-terminal tail is absent, yet their affinity and discrimination for RNAs are not lost. Thus, a structured tail is not required for RNA recognition.
人U1A蛋白的N端RNA结合结构域(RBD1)与包含U1 snRNA茎/环II序列的短RNA发夹特异性相互作用。先前的RNA结合研究表明,RBD1的C端尾巴除了在蛋白质的β-折叠表面上相互作用外,还对RNA识别有贡献。为了评估RBD1中这些C端残基对RNA结合亲和力和特异性的贡献,以及研究RBD的热力学稳定性,构建了许多具有截短尾巴、单个氨基酸取代以及同时具有截短和氨基酸取代的RBD1突变体。通过盐酸胍展开实验测量并比较了这些突变体的热力学稳定性。通过测量每种蛋白质与野生型RNA发夹以及与RNA环中具有核苷酸取代的选定RNA突变体的结合,评估了这些突变蛋白的RNA结合亲和力和特异性。结果首先表明,虽然RBD1的C端尾巴对RNA结合亲和力有显著贡献,但RNA结合并不需要它;其次,它对结合特异性的贡献仅通过RNA环中的选定核苷酸介导,因为在没有尾巴的情况下,蛋白质继续利用其他核苷酸来区分不同的RNA。在这些截短的蛋白质中,C端尾巴固有的二级结构不存在,但它们对RNA的亲和力和区分能力并未丧失。因此,RNA识别不需要结构化的尾巴。