类异戊二烯的生物合成:结核分枝杆菌H37Rv中功能活性重组2- c -甲基- d -赤藓糖醇4-磷酸胞基转移酶(IspD)的表征

Wenjun Shi, Jianfang Feng, Min Zhang, Xuhui Lai, Shengfeng Xu, Xuelian Zhang, Honghai Wang
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引用次数: 27

摘要

由结核分枝杆菌引起的结核病仍然是人类的主要传染病之一。发现新的药物靶点是开发抗结核药物的迫切需要。类异戊二烯生物合成的2- c -甲基- d - erythrit醇-4-磷酸(MEP)途径被认为是发现新型抗生素的一个有吸引力的靶点,因为它在细菌中必不可少而在哺乳动物中缺乏。MEP胞基转移酶(IspD)是该途径的第三步酶,催化MEP和CTP生成4-二磷酸胞基-2- c -甲基赤四醇(CDP-ME)和PPi。本研究克隆并表达了结核分枝杆菌H37Rv的ispD基因(MtIspD)。通过n端融合组氨酸标记序列,MtIspD可以通过一步镍亲和层析纯化到均匀性。MtIspD以同二聚体形式存在,表观分子质量为52 kDa。酶学性质分析表明,MtIspD对嘧啶碱基和窄二价阳离子有很高的特异性,在CTP和Mg(2+)存在时活性最大。MtIspD的周转次数为3.4 s(-1)。MEP和CTP的Km分别为43和92 ma。此外,MtIspD在50℃以上表现出热不稳定性,圆二色光谱显示,三级构象的改变与高温下酶活性的急剧丧失密切相关。本研究将有助于更好地了解IspD的特点,并为开发治疗结核分枝杆菌的新型抗生素提供有用的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biosynthesis of isoprenoids: characterization of a functionally active recombinant 2-C-methyl-D-erythritol 4-phosphate cytidyltransferase (IspD) from Mycobacterium tuberculosis H37Rv.

Tuberculosis, caused by Mycobacterium tuberculosis, continues to be one of the leading infectious diseases to humans. It is urgent to discover novel drug targets for the development of antitubercular agents. The 2-C-methyl-D-erythritol-4-phosphate (MEP) pathway for isoprenoid biosynthesis has been considered as an attractive target for the discovery of novel antibiotics for its essentiality in bacteria and absence in mammals. MEP cytidyltransferase (IspD), the third-step enzyme of the pathway, catalyzes MEP and CTP to form 4-diphosphocytidyl-2-C-methylerythritol (CDP-ME) and PPi. In the work, ispD gene from M. tuberculosis H37Rv (MtIspD) was cloned and expressed. With N-terminal fusion of a histidine-tagged sequence, MtIspD could be purified to homogeneity by one-step nickel affinity chromatography. MtIspD exists as a homodimer with an apparent molecular mass of 52 kDa. Enzyme property analysis revealed that MtIspD has high specificity for pyrimidine bases and narrow divalent cation requirements, with maximal activity found in the presence of CTP and Mg(2+). The turnover number of MtIspD is 3.4 s(-1). The Km for MEP and CTP are 43 and 92 muM, respectively. Furthermore, MtIspD shows thermal instable above 50 degrees C. Circular dichroism spectra revealed that the alteration of tertiary conformation is closely related with sharp loss of enzyme activity at higher temperature. This study is expected to help better understand the features of IspD and provide useful information for the development of novel antibiotics to treat M. tuberculosis.

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