Mitchell A, Finch L R
J Bacteriol. 1977 Jun;130(3):1047-54. doi: 10.1128/jb.130.3.1047-1054.1977.
By measuring the specific activity of nucleotides isolated from ribonucleic acid after the incorporation of (14)C-labeled precursors under various conditions of growth, we have defined the major pathways of ribonucleotide synthesis in Mycoplasma mycoides subsp. mycoides. M. mycoides did not possess pathways for the de novo synthesis of nucleotides but was capable of interconversion of nucleotides. Thus, uracil provided the requirement for both pyrimidine ribonucleotides. Thymine is also required, suggesting that the methylation step is unavailable. No use was made of cytosine. Uridine was rapidly degraded to uracil. Cytidine competed effectively with uracil to provide most of the cytidine nucleotide and also provided an appreciable proportion of uridine nucleotide. In keeping with these results, there was a slow deamination of cytidine to uridine with further degradation to uracil in cultures of M. mycoides. Guanine was capable of meeting the full requirement of the organism for purine nucleotide, presumably by conversion of guanosine 5'-monophosphate to adenosine 5'-monophosphate via the intermediate inosine 5'-monophosphate. When available with guanine, adenine effectively gave a complete provision of adenine nucleotide, whereas hypoxanthine gave a partial provision. Neither adenine nor hypoxanthine was able to act as a precursor for the synthesis of guanine nucleotide. Exogenous guanosine, inosine, and adenosine underwent rapid cleavage to the corresponding bases and so show a pattern of utilization similar to that of the latter.
通过在不同生长条件下掺入(14)C标记的前体后测量从核糖核酸中分离出的核苷酸的比活性,我们确定了蕈状支原体亚种蕈状支原体中核糖核苷酸合成的主要途径。蕈状支原体不具备核苷酸从头合成的途径,但能够进行核苷酸的相互转化。因此,尿嘧啶是两种嘧啶核糖核苷酸的必需原料。胸腺嘧啶也是必需的,这表明甲基化步骤无法进行。未利用胞嘧啶。尿苷迅速降解为尿嘧啶。胞苷能有效地与尿嘧啶竞争,提供大部分胞苷核苷酸,也提供相当比例的尿苷核苷酸。与这些结果一致的是,在蕈状支原体培养物中,胞苷缓慢脱氨生成尿苷,并进一步降解为尿嘧啶。鸟嘌呤能够满足该生物体对嘌呤核苷酸的全部需求,推测是通过鸟苷5'-单磷酸经由中间产物次黄苷5'-单磷酸转化为腺苷5'-单磷酸。当与鸟嘌呤同时存在时,腺嘌呤能有效地完全提供腺嘌呤核苷酸,而次黄嘌呤只能部分提供。腺嘌呤和次黄嘌呤都不能作为鸟嘌呤核苷酸合成的前体。外源性鸟苷、肌苷和腺苷迅速裂解为相应的碱基,因此显示出与后者相似的利用模式。