Smolina V S, Andrianova V M, Bekker M L
Genetika. 1978 Sep;14(9):1495-1502.
Aza 165 and aza 238 Saccharomyces cerevisiae mutants characterized by a 2.5 times higher sensitivity of the de novo purine synthesis to the inhibitory effect of exogenous guanine, as compared with the wild type strain, have been selected by their sensitivity to 8-azaguanine. The exogenous guanine somewhat inhibits the growth and synthesis of nucleis acids in mutants, this being due in vivo neither to permeability changes of the cell membrane, nor to concentration changes of guanilic derivatives in the acid-soluble pool of yeast cells. Using cell-free extract of the strain aza 165, it has been shown that the synthesis of the first product of metabolic pathway for de novo formation of purines, phosphoribosylamine, is inhibited by GMP by 81% and only by 35% in the 15V-P4 strain of the wild type. The inhibition by other end products, IMP and AMP, is the same in both wild and mutant strains. The enhanced sensitivity of the purine synthesis to guanine in vivo is thus due to changes in regulatory properties of the key enzyme of purine nucleotide formation, phosphoribosylpyrophosphate amido-transferase (EC 2.4.2.14). This change in the regulation of purine synthesis in yeast is likely to be a mechanism to compensate the genetically controlled defect in end steps of the biosynthesis pathway, i.e. the incapability of converting guanilic derivatives to adenilic ones. However, the information concerning the regulation of PRPP-amido-transferase activity responsible for differential sensitivity to adenilic and guanilic nucleotides in yeast is not lost but only strongly repressed.
通过对8-氮杂鸟嘌呤的敏感性,筛选出了酿酒酵母Aza 165和Aza 238突变体,与野生型菌株相比,其嘌呤从头合成对外源鸟嘌呤抑制作用的敏感性高2.5倍。外源鸟嘌呤对突变体的生长和核酸合成有一定抑制作用,这在体内既不是由于细胞膜通透性的改变,也不是由于酵母细胞酸溶性池中鸟苷酸衍生物浓度的变化。利用Aza 165菌株的无细胞提取物,已表明在野生型的15V-P4菌株中,嘌呤从头合成代谢途径的第一个产物磷酸核糖胺的合成被GMP抑制81%,而仅被抑制35%。野生型和突变体菌株中,其他终产物IMP和AMP的抑制作用相同。因此,嘌呤合成在体内对鸟嘌呤敏感性增强是由于嘌呤核苷酸形成的关键酶磷酸核糖焦磷酸酰胺转移酶(EC 2.4.2.14)调节特性的改变。酵母中嘌呤合成调节的这种变化可能是一种机制,以补偿生物合成途径终末步骤中基因控制的缺陷,即无法将鸟苷酸衍生物转化为腺苷酸衍生物。然而,关于负责酵母中对腺苷酸和鸟苷酸核苷酸差异敏感性的PRPP-酰胺转移酶活性调节的信息并未丢失,只是受到强烈抑制。