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Characterisation of methionine adenosyltransferase from Mycobacterium smegmatis and M. tuberculosis

机译:耻垢分枝杆菌和结核分枝杆菌蛋氨酸腺苷基转移酶的表征

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Tuberculosis remains a serious world-wide health threat which requires the characterisation of novel drug targets for the development of future antimycobacterials. One of the key obstacles in the definition of new targets is the large variety of metabolic alterations that occur between cells in the active growth and chronic/dormant phases of tuberculosis. The ideal biochemical target should be active in both growth phases. Methionine adenosyltransferase, which catalyses the formation of S-adenosylmethionine from methionine and ATP, is involved in polyamine biosynthesis during active growth and is also required for the methylation and cyclopropylation of mycolipids necessary for survival in the chronic phase. The gene encoding methionine adenosyltransferase has been cloned from Mycobacterium tuberculosis and the model organism M. smegmatis. Both enzymes retained all amino acids known to be involved in catalysing the reaction. While the M. smegmatis enzyme could be functionally expressed, the M. tuberculosis homologue was insoluble and inactive under a large variety of expression conditions. For the M. smegmatis enzyme, the Vmax for S-adenosylmethionine formation was 1.30 μmol/min/mg protein and the Km for methionine and ATP was 288 μM and 76 μM respectively. In addition, the enzyme was competitively inhibited by 8-azaguanine and azathioprine with a Ki of 4.7 mM and 3.7 mM respectively. Azathioprine inhibited the in vitro growth of M. smegmatis with a minimal inhibitory concentration (MIC) of 500 μM, while the MIC for 8-azaguanine was 1.0 mM. The methionine adenosyltransferase from both organisms had a primary structure very similar those previously characterised in other prokaryotic and eukaryotic organisms. The kinetic properties of the M. smegmatis enzyme were also similar to known prokaryotic methionine adenosyltransferases. Inhibition of the enzyme by 8-azaguanine and azathioprine provides a starting point for the synthesis of higher affinity purine-based inhibitors.
机译:结核病仍然是严重的全球性健康威胁,需要对新型药物靶进行表征,以开发未来的抗分枝杆菌药。定义新靶标的主要障碍之一是在结核的活跃生长期和慢性/休眠期的细胞之间发生的多种代谢变化。理想的生化指标应在两个生长期都活跃。蛋氨酸腺苷基转移酶催化由蛋氨酸和ATP形成S-腺苷蛋氨酸,在活跃的生长过程中参与多胺的生物合成,并且对于长期生存所必需的脂蛋白的甲基化和环丙基化也是必需的。已经从结核分枝杆菌和模型生物耻垢分枝杆菌中克隆了编码蛋氨酸腺苷基转移酶的基因。两种酶均保留了已知参与催化反应的所有氨基酸。尽管耻垢分枝杆菌酶可以功能性表达,但结核分枝杆菌同源物在多种表达条件下均不溶且无活性。对于耻垢分枝杆菌酶,S-腺苷甲硫氨酸形成的Vmax为1.30μmol/ min / mg蛋白,甲硫氨酸和ATP的Km分别为288μM和76μM。另外,该酶被8-氮杂鸟嘌呤和硫唑嘌呤竞争性抑制,Ki分别为4.7mM和3.7mM。硫唑嘌呤以500μM的最小抑菌浓度(MIC)抑制耻垢分枝杆菌的体外生长,而8-氮杂鸟嘌呤的MIC> 1.0 mM。来自这两种生物的蛋氨酸腺苷基转移酶的一级结构与先前在其他原核和真核生物中表征的那些非常相似。耻垢分枝杆菌酶的动力学性质也类似于已知的原核蛋氨酸蛋氨酸腺苷基转移酶。 8-氮杂鸟嘌呤和硫唑嘌呤对酶的抑制作用为合成更高亲和力的基于嘌呤的抑制剂提供了一个起点。

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