Williams Marni, Sprenger Janina, Human Esmaré, Al-Karadaghi Salam, Persson Lo, Louw Abraham I, Birkholtz Lyn-Marie
Department of Biochemistry, University of Pretoria, Hatfield, South Africa.
Mol Biochem Parasitol. 2011 Nov;180(1):17-26. doi: 10.1016/j.molbiopara.2011.07.004. Epub 2011 Jul 22.
Plasmodium falciparum like other organisms is dependent on polyamines for proliferation. Polyamine biosynthesis in these parasites is regulated by a unique bifunctional S-adenosylmethionine decarboxylase/ornithine decarboxylase (PfAdoMetDC/ODC). Only limited biochemical and structural information is available on the bifunctional enzyme due to the low levels and impurity of an instable recombinantly expressed protein from the native gene. Here we describe the high level expression of stable monofunctional PfAdoMetDC from a codon-harmonised construct, which permitted its biochemical characterisation indicating similar catalytic properties to AdoMetDCs of orthologous parasites. In the absence of structural data, far-UV CD showed that at least on secondary structure level, PfAdoMetDC corresponds well to that of the human protein. The kinetic properties of the monofunctional enzyme were also found to be different from that of PfAdoMetDC/ODC as mainly evidenced by an increased K(m). We deduced that complex formation of PfAdoMetDC and PfODC could enable coordinated modulation of the decarboxylase activities since there is a convergence of their k(cat) and lowering of their K(m). Such coordination results in the aligned production of decarboxylated AdoMet and putrescine for the subsequent synthesis of spermidine. Furthermore, based on the results obtained in this study we propose a new AdoMetDC subclass for plasmodial AdoMetDCs.
恶性疟原虫与其他生物一样,其增殖依赖于多胺。这些寄生虫中的多胺生物合成由一种独特的双功能S -腺苷甲硫氨酸脱羧酶/鸟氨酸脱羧酶(PfAdoMetDC/ODC)调控。由于从天然基因重组表达的不稳定蛋白水平低且不纯,关于这种双功能酶仅有有限的生化和结构信息。在此,我们描述了从密码子优化构建体中稳定单功能PfAdoMetDC的高水平表达,这使得我们能够对其进行生化特性表征,结果表明其催化特性与直系同源寄生虫的AdoMetDC相似。在缺乏结构数据的情况下,远紫外圆二色光谱显示,至少在二级结构水平上,PfAdoMetDC与人类蛋白的二级结构非常相似。还发现单功能酶的动力学特性与PfAdoMetDC/ODC不同,主要表现为K(m)增加。我们推断,PfAdoMetDC和PfODC的复合物形成能够实现脱羧酶活性的协同调节,因为它们的k(cat)趋同且K(m)降低。这种协同作用导致脱羧化的腺苷甲硫氨酸和腐胺的同步产生,用于随后亚精胺的合成。此外,基于本研究获得的结果,我们为疟原虫的腺苷甲硫氨酸脱羧酶提出了一个新的AdoMetDC亚类。