Suga H, Lohse P A, Szostak J W
Department of Molecular Biology, Massachusetts General Hospital, Boston 02114, USA.
J Am Chem Soc. 1998 Feb 18;120(6):1151-6. doi: 10.1021/ja972472s.
We have previously isolated, by in vitro selection, an acyl-transferase ribozyme that is capable of transferring a biotinylated methionyl group from the 3' end of a hexanucleotide substrate to its own 5'-hydroxyl. Comparison of the sequences of a family of evolved derivatives of this ribozyme allowed us to generate a model of the secondary structure of the ribozyme. The predicted secondary structure was extensively tested and confirmed by single-mutant and compensatory double-mutant analyses. The role of the template domain in aligning the acyl-donor oligonucleotide and acyl-acceptor region of the ribozyme was confirmed in a similar manner. The significance of different domains of the ribozyme structure and the importance of two tandem G:U wobble base pairs in the template domain were studied by kinetic characterization of mutant ribozymes. The wobble base pairs contribute to the catalytic rate enhancement, but only in the context of the complete ribozyme; the ribozyme in turn alters the metal binding properties of this site. Competitive inhibition experiments with unacylated substrate oligonucleotide are consistent with the ribozyme acting to stabilize substrate binding to the template, while negative interactions with the aminoacyl portion of the substrate destabilize binding.
我们之前通过体外筛选分离出一种酰基转移酶核酶,它能够将生物素化的甲硫氨酰基从六核苷酸底物的3'端转移到其自身的5'-羟基上。对该核酶一系列进化衍生物的序列进行比较,使我们能够构建出该核酶二级结构的模型。通过单突变和补偿性双突变分析对预测的二级结构进行了广泛测试和验证。以类似方式证实了模板结构域在使核酶的酰基供体寡核苷酸和酰基受体区域对齐中的作用。通过突变核酶的动力学表征研究了核酶结构不同结构域的重要性以及模板结构域中两个串联G:U摆动碱基对的重要性。摆动碱基对有助于提高催化速率,但仅在完整核酶的情况下如此;核酶反过来又改变了该位点的金属结合特性。用未酰化的底物寡核苷酸进行的竞争性抑制实验与核酶作用以稳定底物与模板的结合一致,而与底物的氨酰基部分的负相互作用则使结合不稳定。