Kinjo M, Hasegawa T, Nagano K, Ishikura H, Ishigami M
J Mol Evol. 1986;23(4):320-7. doi: 10.1007/BF02100641.
A model primitive tRNA with the nucleotide sequence GGCCAAAAAAAGGCCp was synthesized using T4 RNA ligase. The nucleotide sequence of this newly synthesized oligonucleotide was confirmed by ladder analysis of several enzymatic digestion products. The secondary structure of the oligonucleotide was examined by comparison of the products of its digestion by single- and double-strand-specific nucleases with those of the digestion of the intermediate oligonucleotide GGCCAAAAAAAOH. The results indicated that the two GGCC segments of the 5' and 3' ends of the model tRNA may form base pairs in solution. The same conclusion was derived from the result of affinity-column chromatography of the model oligonucleotide. When 32pGGCCAAAAAAAGGCCOH was passed through a poly(U)-agarose column, about 70% of the applied sample bound to the poly(U)-agarose. In contrast, when the model oligonucleotide was passed through a poly(C)-agarose column, only 15% of the sample bound to the poly(C)-agarose. These results indicate that the newly synthesized oligonucleotide adopts a hairpin structure in solution. Two aspects of a potential biological activity of the synthetic model tRNA were examined. It was found that the oligonucleotide can bind to poly(U)-programmed 30S ribosomes and is recognized by Q beta replicase as a template for RNA synthesis.
使用T4 RNA连接酶合成了具有核苷酸序列GGCCAAAAAAAGGCCp的模型原始tRNA。通过对几种酶切产物的阶梯分析确定了这种新合成的寡核苷酸的核苷酸序列。通过比较其被单链和双链特异性核酸酶消化的产物与中间寡核苷酸GGCCAAAAAAAOH消化的产物,研究了该寡核苷酸的二级结构。结果表明,模型tRNA 5'和3'末端的两个GGCC片段在溶液中可能形成碱基对。该模型寡核苷酸的亲和柱层析结果也得出了相同的结论。当32pGGCCAAAAAAAGGCCOH通过聚(U)-琼脂糖柱时,约70%的上样样品与聚(U)-琼脂糖结合。相反,当模型寡核苷酸通过聚(C)-琼脂糖柱时,只有15%的样品与聚(C)-琼脂糖结合。这些结果表明,新合成的寡核苷酸在溶液中采用发夹结构。研究了合成模型tRNA潜在生物活性的两个方面。发现该寡核苷酸可以与聚(U)编程的30S核糖体结合,并被Qβ复制酶识别为RNA合成的模板。