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脱氧胞苷三磷酸脱氨酶:鼠伤寒沙门氏菌中的鉴定与功能

Deoxycytidine triphosphate deaminase: identification and function in Salmonella typhimurium.

作者信息

Neuhard J, Thomassen E

出版信息

J Bacteriol. 1971 Feb;105(2):657-65. doi: 10.1128/jb.105.2.657-665.1971.

Abstract

The biosynthesis of 2'-deoxyuridine monophosphate (dUMP) has been studied in a cytidine- and uracil-requiring mutant of Salmonella typhimurium (DP-55). The dUMP pool and the thymidine monophosphate (dTMP) pool of DP-55, grown in the presence of (3)H-uracil and unlabeled cytidine, are found to have the same specific activities. However, only 30% of the dUMP and the dTMP is synthesized from a uridine nucleotide. Seventy per cent is derived directly from a cytosine compound. The identification and partial purification of a Mg(2+)-dependent 2'-deoxycytidine triphosphate (dCTP) deaminase from S. typhimurium suggests that the combined action of dCTP deaminase and 2'-deoxyuridine triphosphate pyrophosphatase accounts for 70% of the dUMP, and therefore the dTMP, synthesized in vivo. The introduction of a thymine requirement (i.e., a block in thymidylate synthetase) into DP-55 results in a 100-fold increase in the size of the dUMP pool. However, the relative contribution of the uridine and cytidine pathways to dUMP synthesis is unaltered. The high dUMP pool is accompanied by extensive catabolism of dUMP to uracil. Partial thymine starvation of the cells results in a significant increase in the dUMP and dCTP pools. Moreover, an increase in the contribution of the dCTP pathway to dUMP synthesis is observed. As a result of these changes the catabolism of dUMP to uracil is augmented.

摘要

在鼠伤寒沙门氏菌(DP - 55)的一个需要胞嘧啶和尿嘧啶的突变体中,对单磷酸2'-脱氧尿苷(dUMP)的生物合成进行了研究。在含有(3)H - 尿嘧啶和未标记胞嘧啶的条件下生长的DP - 55的dUMP库和单磷酸胸苷(dTMP)库,发现具有相同的比活性。然而,只有30%的dUMP和dTMP是由尿苷核苷酸合成的。70%直接来源于胞嘧啶化合物。从鼠伤寒沙门氏菌中鉴定并部分纯化了一种依赖Mg(2+)的三磷酸2'-脱氧胞苷(dCTP)脱氨酶,这表明dCTP脱氨酶和三磷酸2'-脱氧尿苷焦磷酸酶的联合作用占体内合成的dUMP的70%,因此也占dTMP的70%。在DP - 55中引入对胸腺嘧啶的需求(即胸苷酸合成酶的阻断)导致dUMP库的大小增加100倍。然而,尿苷和胞苷途径对dUMP合成的相对贡献没有改变。高dUMP库伴随着dUMP大量分解代谢为尿嘧啶。细胞的部分胸腺嘧啶饥饿导致dUMP和dCTP库显著增加。此外,观察到dCTP途径对dUMP合成的贡献增加。由于这些变化,dUMP分解代谢为尿嘧啶的过程增强。

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