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来自利什曼原虫的吡哆醛激酶的结构属性和底物特异性。

Structural attributes and substrate specificity of pyridoxal kinase from Leishmania donovani.

机构信息

Department of Biotechnology and Bioinformatics, School of Life Sciences, University of Hyderabad, Hyderabad 500 046, Telangana, India.

Department of Biotechnology and Bioinformatics, School of Life Sciences, University of Hyderabad, Hyderabad 500 046, Telangana, India.

出版信息

Int J Biol Macromol. 2020 Jun 1;152:812-827. doi: 10.1016/j.ijbiomac.2020.02.257. Epub 2020 Feb 24.

Abstract

The enzyme pyridoxal kinase (PdxK) catalyzes the conversion of pyridoxal to pyridoxal-5'-phosphate (PLP) using ATP as the co-factor. The product pyridoxal-5'-phosphate plays a key role in several biological processes such as transamination, decarboxylation and deamination. In the present study, full-length ORF of PdxK from Leishmania donovani (LdPdxK) was cloned and then purified using affinity chromatography. LdPdxK exists as a homo-dimer in solution and shows more activity at near to physiological pH. Biochemical analysis of LdPdxK with pyridoxal, pyridoxamine, pyridoxine and ginkgotoxin revealed its affinity preference towards different substrates. The secondary structure analysis using circular dichroism spectroscopy showed LdPdxK to be predominantly α-helical in organization which tends to decline at lower and higher pH. Simultaneously, LdPdxK was crystallized and its three-dimensional structure in complex with ADP and different substrates were determined. Crystal structure of LdPdxK delineated that it has a central core of β-sheets surrounded by α-helices with a conserved GTGD ribokinase motif. The structures of LdPdxK disclosed no major structural changes between ADP and ADP- substrate bound structures. In addition, comparative structural analysis highlighted the key differences between the active site pockets of leishmanial and human PdxK, rendering LdPdxK an attractive candidate for the designing of novel and specific inhibitors.

摘要

吡哆醛激酶(PdxK)利用 ATP 作为辅助因子将吡哆醛转化为吡哆醛-5'-磷酸(PLP)。产物吡哆醛-5'-磷酸在转氨基、脱羧和脱氨等几种生物过程中发挥关键作用。在本研究中,从利什曼原虫(LdPdxK)中克隆了全长 ORF 的 PdxK,然后使用亲和层析进行纯化。LdPdxK 以溶液中的同二聚体形式存在,在接近生理 pH 值时表现出更高的活性。用吡哆醛、吡哆胺、吡哆醇和银杏毒素对 LdPdxK 的生化分析表明其对不同底物的亲和力偏好。圆二色性光谱学的二级结构分析表明,LdPdxK 主要以α-螺旋组织存在,在较低和较高 pH 值下趋于下降。同时,LdPdxK 被结晶,其与 ADP 和不同底物结合的三维结构被确定。LdPdxK 的晶体结构表明,它具有由α-螺旋环绕的中央β-sheet 核心,具有保守的 GTGD 核糖激酶基序。ADP 和 ADP-底物结合结构之间的 LdPdxK 结构没有发生重大结构变化。此外,比较结构分析突出了利什曼原虫和人 PdxK 的活性位点口袋之间的关键差异,使 LdPdxK 成为设计新型特异性抑制剂的有吸引力的候选者。

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