由4(5)-氨基咪唑合成的新型维生素b12类似物7-氮杂苯并咪唑酰脲和5,6-二甲基-7-氮杂苯并咪唑酰脲。

B Endres, A Würfel, B Vogler, P Renz
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引用次数: 7

摘要

在厌氧细菌中,甘氨酸、甲酸酯和谷氨酰胺酰胺n是维生素b12基5,6-二甲基苯并咪唑的咪唑部分生物合成的基础。这些构建块也用于嘌呤碱基的咪唑部分的生物合成。因此,我们测试了嘌呤核苷酸前体5-氨基咪唑核糖核苷酸的碱基部分4(5)-氨基咪唑,以确定其作为5,6-二甲基苯并咪唑前体的假定功能。在[2-13C]4(5)-氨基咪唑存在下生长的厌氧维生素B12产生菌,合成了无标记维生素B12,但也合成了[2-13C]7-氮杂苯并咪唑酰基酰胺和[2-13C]5,6-二甲基-7-氮杂苯并咪唑酰基酰胺。[2-13C]咪唑由E. limosum合成[2-13C]咪唑酰脲。同时合成了未标记的维生素B12。说明4(5)-氨基咪唑和咪唑不是5,6-二甲基苯并咪唑生物合成的中间体。然而,4(5)-氨基咪唑的结构明显类似于维生素b12碱基的未知前体的结构,因此转化为aza类似物。为了制备参比化合物4(5)-氮杂苯并咪唑,在谢尔曼丙酸杆菌培养物和E. limosum培养物中分别添加了4(5)-氮杂苯并咪唑,P. shermanil将该碱基主要转化为4-氮杂苯并咪唑酰脲,通过1H nmr (NOE实验)测定。相比之下,E. limosum主要产生7-氮杂苯并咪唑酰脲。讨论了造成这种差异的原因。
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7-Azabenzimidazolylcobamide and 5,6-dimethyl-7-azabenzimidazolylcobamide, new vitamin B12-analogs synthesized from 4(5)-aminoimidazole by Eubacterium limosum.

In anaerobic bacteria, glycine, formate, and the amide-N of glutamine are building blocks for the biosynthesis of the imidazole moiety of the vitamin B12-base 5,6-dimethylbenzimidazole. These building blocks are also used for the biosynthesis of the imidazole moiety of purine bases. Therefore we tested 4(5)-aminoimidazole, the base moiety of the purine nucleotide precursor 5-aminoimidazole ribonucleotide, for its putative function as precursor of 5,6-dimethylbenzimidazole. The anaerobic vitamin B12-producer Eubacterium limosum, grown in the presence of [2-13C]4(5)-aminoimidazole, synthesized nonlabeled vitamin B12, but also [2-13C]7-azabenzimidazolylcobamide and [2-13C]5,6-dimethyl-7-azabenzimidazolylcobamide. [2-13C]limidazole was used by E. limosum to form [2-13C]imidazolylcobamide. Simultaneously nonlabeled vitamin B12 was synthesized. This shows that 4(5)-aminoimidazole and imidazole are not intermediates in the biosynthesis of 5,6-dimethylbenzimidazole. However, 4(5)-aminoimidazole has obviously a structure similar to the structure of an as yet unknown precursor of the vitamin B12-base, and is therefore transformed into the aza analogs. In order to prepare a reference compound 4(5)-azabenzimidazole was added to a culture of Propionibacterium shermanii and to a culture of E. limosum, P. shermanil transformed this base mainly to 4-azabenzimidazolylcobamide, as determined by 1H NMR-spectroscopy (NOE experiment). In contrast E. limosum produced mainly 7-azabenzimidazolylcobamide. The reason for this difference is discussed.

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