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将立体化学构型(3S,5S)-克拉维酸转化为(3R,5R)-克拉维酸:一种基于实验证据的计算辅助方法。

Inversion of the stereochemical configuration (3S, 5S)-clavaminic acid into (3R, 5R)-clavulanic acid: A computationally-assisted approach based on experimental evidence.

作者信息

Ramirez-Malule Howard, Restrepo Albeiro, Cardona Wilson, Junne Stefan, Neubauer Peter, Rios-Estepa Rigoberto

机构信息

Grupo de Bioprocesos, Departamento de Ingeniería Química, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, Colombia.

Grupo de Química Física Teórica, Instituto de Química, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, Colombia.

出版信息

J Theor Biol. 2016 Apr 21;395:40-50. doi: 10.1016/j.jtbi.2016.01.028. Epub 2016 Feb 2.

Abstract

Clavulanic acid (CA), a potent inhibitor of β-lactamase enzymes, is produced by Streptomyces clavuligerus (Sc) cultivation processes, for which low yields are commonly obtained. Improved knowledge of the clavam biosynthetic pathway, especially the steps involved in the inversion of 3S-5S into 3R-5R stereochemical configuration, would help to eventually identify bottlenecks in the pathway. In this work, we studied the role of acetate in CA biosynthesis by a combined continuous culture and computational simulation approach. From this we derived a new model for the synthesis of N-acetyl-glycyl-clavaminic acid (NAG-clavam) by Sc. Acetylated compounds, such as NAG-clavam and N-acetyl-clavaminic acid, have been reported in the clavam pathway. Although the acetyl group is present in the β-lactam intermediate NAG-clavam, it is unknown how this group is incorporated. Hence, under the consideration of the experimentally proven accumulation of acetate during CA biosynthesis, and the fact that an acetyl group is present in the NAG-clavam structure, a computational evaluation of the tentative formation of NAG-clavam was performed for the purpose of providing further understanding. The proposed reaction mechanism consists of two steps: first, acetate reacts with ATP to produce a reactive acylphosphate intermediate; second, a direct nucleophilic attack of the terminal amino group of N-glycyl-clavaminic on the carbonyl carbon of the acylphosphate intermediate leads to a tetrahydral intermediate, which collapses and produces ADP and N-acetyl-glycyl-clavaminic acid. The calculations suggest that for the proposed reaction mechanism, the reaction proceeds until completion of the first step, without the direct action of an enzyme, where acetate and ATP are involved. For this step, the computed activation energy was ≅2.82kcal/mol while the reaction energy was ≅2.38kcal/mol. As this is an endothermic chemical process with a relatively small activation energy, the reaction rate should be considerably high. The calculations offered in this work should not be considered as a definite characterization of the potential energy surface for the reaction between acetate and ATP, but rather as a first approximation that provides valuable insight about the reaction mechanism. Finally, a complete route for the inversion of the stereochemical configuration from (3S, 5S)-clavaminic acid into (3R, 5R)-clavulanic acid is proposed, including a novel alternative for the double epimerization using proline racemase and NAG-clavam formation.

摘要

克拉维酸(CA)是一种β-内酰胺酶的强效抑制剂,由棒状链霉菌(Sc)培养过程产生,但其产量通常较低。深入了解棒酸生物合成途径,特别是3S-5S立体化学构型转化为3R-5R立体化学构型所涉及的步骤,将有助于最终确定该途径中的瓶颈。在这项工作中,我们通过连续培养和计算模拟相结合的方法研究了乙酸盐在CA生物合成中的作用。由此我们推导出了Sc合成N-乙酰甘氨酰棒酸(NAG-棒酸)的新模型。在棒酸途径中已报道了乙酰化化合物,如NAG-棒酸和N-乙酰棒酸。尽管乙酰基存在于β-内酰胺中间体NAG-棒酸中,但该基团是如何掺入的尚不清楚。因此,考虑到实验证明的CA生物合成过程中乙酸盐的积累,以及NAG-棒酸结构中存在乙酰基这一事实,为了进一步理解,对NAG-棒酸的暂定形成进行了计算评估。提出的反应机制包括两个步骤:首先,乙酸盐与ATP反应生成活性酰基磷酸中间体;其次,N-甘氨酰棒酸的末端氨基对酰基磷酸中间体的羰基碳进行直接亲核攻击,生成四面体中间体,该中间体分解并产生ADP和N-乙酰甘氨酰棒酸。计算表明,对于提出的反应机制,在没有酶直接作用的情况下,乙酸盐和ATP参与反应,反应进行到第一步完成。对于这一步,计算得到的活化能约为2.82千卡/摩尔,反应能量约为2.38千卡/摩尔。由于这是一个具有相对较小活化能的吸热化学过程,反应速率应该相当高。这项工作中的计算不应被视为乙酸盐与ATP反应势能面的确定表征,而应被视为提供有关反应机制有价值见解的初步近似。最后,提出了从(3S,5S)-棒酸到(3R,5R)-克拉维酸立体化学构型转化的完整途径,包括使用脯氨酸消旋酶进行双差向异构化和形成NAG-棒酸的新替代方法。

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