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d-鸟氨酸/d-赖氨酸脱羧酶的晶体结构,一种立体反转脱羧酶:对 III 折叠脱羧酶的底物特异性和立体特异性的影响。

Crystal Structure of d-Ornithine/d-Lysine Decarboxylase, a Stereoinverting Decarboxylase: Implications for Substrate Specificity and Stereospecificity of Fold III Decarboxylases.

机构信息

Department of Chemistry , University of Georgia , Athens , Georgia 30602 , United States.

Department of Biochemistry and Molecular Biology , University of Georgia , Athens , Georgia 30602 , United States.

出版信息

Biochemistry. 2019 Feb 26;58(8):1038-1042. doi: 10.1021/acs.biochem.8b01319. Epub 2019 Feb 1.

DOI:10.1021/acs.biochem.8b01319
PMID:30699288
Abstract

A newly discovered Fold III pyridoxal 5'-phosphate (PLP)-dependent decarboxylase, d-ornithine/lysine decarboxylase (DOKDC), catalyzes decarboxylation of d-lysine and d-ornithine with inversion of stereochemistry. The X-ray crystal structure of DOKDC has been determined to 1.72 Å. DOKDC has a low level of sequence identity (<30%) with meso-diaminopimelate decarboxylase (DAPDC) and l-lysine/ornithine decarboxylase (LODC), but its three-dimensional structure is very similar. The distal binding site of DAPDC contains a conserved arginine that forms an ion pair with the l-carboxylate end of DAP. In both LODC and DOKDC, this distal site is modified by replacement of the arginine with aspartate, changing the substrate specificity. l-Ornithine decarboxylase (ODC) and LODC have a conserved phenylalanine on the re-face of the PLP complex that has been found to play a key role in the decarboxylation mechanism. We have found that both DAPDC and DOKDC have tyrosine instead of phenylalanine at this position, which precludes the binding of l-amino acids. Because the PLP-binding lysine in ODC, LODC, DAPDC, and DOKDC is located on the re-face of the PLP, we propose that this is the acid group responsible for protonation of the product, thus resulting in the observed retention of configuration for decarboxylation of l-amino acids and inversion for decarboxylation of d-amino acids. The reactions of DAPDC and DOKDC are likely accelerated by positive electrostatics on the re-face by the lysine ε-ammonium ion and on the si-face by closure of the lid over the active site, resulting in desolvation and destabilization of the d-amino acid carboxylate.

摘要

一种新发现的 III 折叠吡哆醛 5'-磷酸(PLP)依赖性脱羧酶,d-鸟氨酸/赖氨酸脱羧酶(DOKDC),催化 d-赖氨酸和 d-鸟氨酸的脱羧作用,立体化学发生反转。DOKDC 的 X 射线晶体结构已确定为 1.72Å。DOKDC 与 meso-二氨基庚二酸脱羧酶(DAPDC)和 l-赖氨酸/鸟氨酸脱羧酶(LODC)的序列同一性较低(<30%),但其三维结构非常相似。DAPDC 的远端结合位点含有一个保守的精氨酸,它与 DAP 的 l-羧基末端形成离子对。在 LODC 和 DOKDC 中,这个远端位点被天冬氨酸取代精氨酸修饰,改变了底物特异性。PLP 复合物的 re-面具有保守的苯丙氨酸,已发现其在脱羧机制中发挥关键作用。我们发现,DAPDC 和 DOKDC 在此位置都用天冬氨酸取代苯丙氨酸,从而阻止了 l-氨基酸的结合。由于 ODC、LODC、DAPDC 和 DOKDC 中的 PLP 结合赖氨酸位于 PLP 的 re-面,我们提出这是负责产物质子化的酸性基团,从而导致观察到 l-氨基酸脱羧保留构型和 d-氨基酸脱羧反转。DAPDC 和 DOKDC 的反应可能通过赖氨酸 ε-铵离子在 re-面和盖子关闭在活性位点上在 si-面的正静电加速,导致 d-氨基酸羧酸盐去溶剂化和失稳。

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