Faculty of Chemistry and Chemical Engineering, Babes-Bolyai University, Cluj-Napoca 400028, Romania.
J Mol Model. 2011 Jul;17(7):1551-63. doi: 10.1007/s00894-010-0849-7. Epub 2010 Oct 5.
Possible reaction intermediates of the histidine ammonia-lyase (HAL) reaction were investigated within the tightly closed active site of HAL from Pseudomonas putida (PpHAL). The closed structure of PpHAL was derived from the crystal structure of PpHAL inhibited with L-cysteine, in which the 39-80 loop including the catalytically essential Tyr53 was replaced. This modified loop with closed conformation was modeled using the structure of phenylalanine ammonia-lyase from Anabaena variabilis (AvPAL) with a tightly closed active site as a template. Three hypothetical structures of the covalently bound intermediate in the PpHAL active site were investigated by conformational analysis. The distances between the acidic pro-S β-hydrogen of the ligand and the appropriate oxygen atoms of Tyr53, Ty280 and Glu414--which may act as enzymic bases--in the conformations of the three hypothetical intermediate structures were analyzed together with the substrate and product arrangements. The calculations indicated that the most plausible HAL reaction pathway involves the N-MIO intermediate structure in which the L-histidine substrate is covalently bound to the N-3,5-dihydro-5-methylidene-4H-imidazol-4-one (MIO) prosthetic group of the apoenzyme via the amino group. Density functional theory (DFT) calculations--on a truncated model of the N-MIO intermediate containing a Zn²⁺ ion coordinated to the imidazole ring of the ligand and to His83, Met382 and a water molecule--indicated that Zn-complex formation plays a role in the reactivity and substrate specificity of HAL.
在假单胞菌属(Pseudomonas putida)的组氨酸氨裂解酶(HAL)的紧密关闭的活性部位内,研究了组氨酸氨裂解酶(HAL)反应的可能反应中间体。PpHAL 的封闭结构源自与 L-半胱氨酸抑制的 PpHAL 的晶体结构,其中包括催化必需的 Tyr53 的 39-80 环被取代。该带封闭构象的修饰环使用具有紧密关闭活性部位的鱼腥蓝细菌(Anabaena variabilis)的苯丙氨酸氨裂解酶(AvPAL)的结构作为模板进行建模。通过构象分析研究了 PpHAL 活性部位中共价结合的中间产物的三个假设结构。在三个假设中间结构的构象中,配体的酸性 Pro-Sβ-氢与 Tyr53、Ty280 和 Glu414(可能作为酶碱)的适当氧原子之间的距离与底物和产物排列一起进行了分析。计算表明,最合理的 HAL 反应途径涉及 N-MIO 中间结构,其中 L-组氨酸底物通过氨基共价结合到脱辅基酶的 N-3,5-二氢-5-亚甲基-4H-咪唑-4-酮(MIO)辅基上。密度泛函理论(DFT)计算 - 对含有与配体的咪唑环配位的 Zn²⁺离子以及 His83、Met382 和一个水分子的 N-MIO 中间物的截断模型进行了计算 - 表明 Zn 配合物的形成在 HAL 的反应性和底物特异性中起作用。