Böck A, Faiman L E, Neidhardt F C
J Bacteriol. 1966 Oct;92(4):1076-82. doi: 10.1128/jb.92.4.1076-1082.1966.
Böck, August (Purdue University, Lafayette, Ind.), Lia Eidlic Faiman, and Frederick C. Neidhardt. Biochemical and genetic characterization of a mutant of Escherichia coli with a temperature-sensitive valyl ribonucleic acid synthetase. J. Bacteriol. 92:1076-1082. 1966.-To test our conclusion that Escherichia coli mutant I-9 possesses a valyl soluble ribonucleic acid (sRNA) synthetase that functions in vivo at 30 C but not at 37 C, measurements were made by use of the periodate method, of the level of charged valyl sRNA in this strain. A shift of temperature from 30 to 40 C resulted in a rapid discharging of valyl sRNA coordinate with the cessation of protein synthesis; at the same time, other species of sRNA, such as those for leucine, became fully charged. Identical results were obtained with a derivative of I-9 with relaxed ribonucleic acid (RNA) control. When P1 phage were grown on wild cells and then used at low multiplicities of infection to transduce temperature-resistant growth into I-9, complete cotransduction of normal valyl sRNA synthetase occurred. By means of the interrupted-mating technique, the structural gene for valyl sRNA synthetase was located on the E. coli chromosome map and found to be near thr, one-fifth of the length of the chromosome removed from the structural genes for the isoleucine-valine biosynthetic enzymes. Therefore, (i) the major valyl sRNA synthetase activity of I-9 appears to be temperature-sensitive in vivo, (ii) relaxed amino acid control over RNA synthesis does not appear to be a consequence of a normal charging of sRNA with a substitute molecule, and (iii) one structural gene for valyl sRNA synthetase is located on the E. coli chromosome not closely linked to the cistrons for the valine-biosynthetic enzymes.
博克,奥古斯特(普渡大学,印第安纳州拉斐特)、利亚·艾德利克·费曼和弗雷德里克·C·尼德哈特。一株具有温度敏感型缬氨酰核糖核酸合成酶的大肠杆菌突变体的生化及遗传学特性。《细菌学杂志》92:1076 - 1082。1966年。——为验证我们的结论,即大肠杆菌突变体I - 9拥有一种缬氨酰可溶性核糖核酸(sRNA)合成酶,该酶在30℃时能在体内发挥作用,但在37℃时不能,我们采用高碘酸盐法对该菌株中带电荷的缬氨酰sRNA水平进行了测定。温度从30℃升至40℃会导致缬氨酰sRNA迅速去电荷,同时蛋白质合成停止;与此同时,其他种类的sRNA,如亮氨酰sRNA则会完全带电荷。具有松弛型核糖核酸(RNA)调控的I - 9衍生物也得到了相同的结果。当P1噬菌体在野生型细胞上生长,然后以低感染复数用于将耐温生长特性转导至I - 9时,正常的缬氨酰sRNA合成酶会完全共转导。通过中断杂交技术,缬氨酰sRNA合成酶的结构基因被定位在大肠杆菌染色体图谱上,发现它靠近苏氨酸基因,距离异亮氨酸 - 缬氨酸生物合成酶的结构基因有染色体长度的五分之一远。因此,(i)I - 9的主要缬氨酰sRNA合成酶活性在体内似乎对温度敏感,(ii)对RNA合成的松弛型氨基酸调控似乎并非sRNA被替代分子正常带电荷的结果,(iii)缬氨酰sRNA合成酶的一个结构基因位于大肠杆菌染色体上,与缬氨酸生物合成酶的顺反子没有紧密连锁。