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Thiamine Diphosphate Adenylyl Transferase from E. Coli: Functional Characterization of the Enzyme Synthesizing Adenosine Thiamine Triphosphate

机译:大肠杆菌中的硫胺素二磷酸腺苷基转移酶:酶合成腺苷三磷酸硫胺素的功能表征

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摘要

BACKGROUND: We have recently identified a new thiamine derivative, adenosine thiamine triphosphate (AThTP), in E. coli. In intact bacteria, this nucleotide is synthesized only in the absence of a metabolizable carbon source and quickly disappears as soon as the cells receive a carbon source such as glucose. Thus, we hypothesized that AThTP may be a signal produced in response to carbon starvation. RESULTS: Here we show that, in bacterial extracts, the biosynthesis of AThTP is carried out from thiamine diphosphate (ThDP) and ADP or ATP by a soluble high molecular mass nucleotidyl transferase. We partially purified this enzyme and characterized some of its functional properties. The enzyme activity had an absolute requirement for divalent metal ions, such as Mn2+ or Mg2+, as well as for a heat-stable soluble activator present in bacterial extracts. The enzyme has a pH optimum of 6.5-7.0 and a high Km for ThDP (5 mM), suggesting that, in vivo, the rate of AThTP synthesis is proportional to the free ThDP concentration. When ADP was used as the variable substrate at a fixed ThDP concentration, a sigmoid curve was obtained, with a Hill coefficient of 2.1 and an S0.5 value of 0.08 mM. The specificity of the AThTP synthesizing enzyme with respect to nucleotide substrate is restricted to ATP/ADP, and only ThDP can serve as the second substrate of the reaction. We tentatively named this enzyme ThDP adenylyl transferase (EC 2.7.7.65). CONCLUSION: This is the first demonstration of an enzyme activity transferring a nucleotidyl group on thiamine diphosphate to produce AThTP. The existence of a mechanism for the enzymatic synthesis of this compound is in agreement with the hypothesis of a non-cofactor role for thiamine derivatives in living cells.
机译:背景:我们最近在大肠杆菌中鉴定了一种新的硫胺素衍生物,三磷酸腺苷硫胺素(AThTP)。在完整细菌中,仅在不存在可代谢碳源的情况下才合成该核苷酸,一旦细胞接受碳源(如葡萄糖),该核苷酸就会迅速消失。因此,我们假设AThTP可能是响应碳饥饿而产生的信号。结果:在这里我们表明,在细菌提取物中,AthTP的生物合成是通过可溶性高分子核苷酸转移酶由硫代磷酸二胺(ThDP)和ADP或ATP进行的。我们部分纯化了这种酶,并表征了其某些功能特性。酶活性对二价金属离子(例如Mn2 +或Mg2 +)以及细菌提取物中存在的热稳定可溶性活化剂具有绝对要求。该酶的pH最适值为6.5-7.0,对于ThDP具有较高的Km(5 mM),这表明在体内,AThTP的合成速率与游离ThDP浓度成正比。当以固定的ThDP浓度将ADP用作可变底物时,获得了S型曲线,希尔系数为2.1,S0.5值为0.08 mM。 AThTP合成酶相对于核苷酸底物的特异性仅限于ATP / ADP,只有ThDP可以用作反应的第二种底物。我们暂时将该酶命名为ThDP腺苷酸转移酶(EC 2.7.7.65)。结论:这是首次证明硫胺二磷酸硫胺素上的核苷酸基转移产生AThTP的酶活性。酶促合成该化合物的机制的存在与活细胞中硫胺素衍生物的非辅因子作用的假设相符。

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