Favorova O O, Fasiolo F, Keith G, Vassilenko S K, Ebel J P
Biochemistry. 1981 Feb 17;20(4):1006-11. doi: 10.1021/bi00507a055.
Transfer RNA molecules have been labeled with 32P at the 5' or 3' end and digested with cobra venom ribonuclease, which preferentially cuts double-stranded regions. The products of yeast tRNAPhe and tRNAVal were analyzed by high-resolution gel electrohporesis. In the free state, these tRNAs were cut predominantly in the acceptor and anticodon stems. Minor cuts occurred in the T psi stem in tRNAVal. The topography of zones interacting with their cognate synthetases was studied by determining the tRNA regions shielded by protein. Nearly 100% protection was found in the anticodon and acceptor stem of tRNAVal, while in tRNAPhe only the stem of the anticodon was protected. Noncognate interactions between tRNAPhe and tryptophanyl-tRNA synthetase from beef pancreas were examined. The beef enzyme did not protect tRNAPhe despite the fact that efficient misaminoacylation occurred. The pattern of shielding obtained for each tRNA-synthetase complex was compared with the results of direct ultraviolet cross-linking experiments with these complexes.
已将转运RNA分子在5′或3′末端用32P进行标记,并用眼镜蛇毒核糖核酸酶消化,该酶优先切割双链区域。通过高分辨率凝胶电泳分析酵母苯丙氨酸tRNA和缬氨酸tRNA的产物。在游离状态下,这些tRNA主要在受体茎和反密码子茎处被切割。缬氨酸tRNA的TψC茎处有少量切割。通过确定被蛋白质屏蔽的tRNA区域,研究了与它们相应合成酶相互作用区域的拓扑结构。在缬氨酸tRNA的反密码子和受体茎中发现了近100%的保护作用,而在苯丙氨酸tRNA中只有反密码子茎受到保护。研究了苯丙氨酸tRNA与来自牛胰腺的色氨酰-tRNA合成酶之间的非同源相互作用。尽管发生了有效的错误氨酰化作用,但牛胰腺的这种酶并没有保护苯丙氨酸tRNA。将每种tRNA-合成酶复合物获得的屏蔽模式与这些复合物直接紫外线交联实验的结果进行了比较。