首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Structural and functional determination of homologs of the Mycobacterium tuberculosis N-acetylglucosamine-6-phosphate deacetylase (NagA)
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Structural and functional determination of homologs of the Mycobacterium tuberculosis N-acetylglucosamine-6-phosphate deacetylase (NagA)

机译:结核分枝杆菌N-乙酰氨基葡萄糖6-磷酸脱乙酰酶(NagA)的同源物的结构和功能测定

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摘要

The Mycobacterium tuberculosis (Mtb) pathogen encodes a GlcNAc-6-phosphate deacetylase enzyme, NagA (Rv3332), that belongs to the amidohydrolase superfamily. NagA enzymes catalyze the deacetylation of GlcNAc-6-phosphate (GlcNAc6P) to glucosamine-6-phosphate (GlcN6P). NagA is a potential antitubercular drug target because it represents the key enzymatic step in the generation of essential amino-sugar precursors required for Mtb cell wall biosynthesis and also influences recycling of cell wall peptidoglycan fragments. Here, we report the structural and functional characterization of NagA from Mycobacterium smegmatis (MSNagA) and Mycobacterium marinum (MMNagA), close relatives of Mtb. Using a combination of X-ray crystallography, site-directed mutagenesis, and biochemical and biophysical assays, we show that these mycobacterial NagA enzymes are selective for GlcNAc6P. Site-directed mutagenesis studies revealed crucial roles of conserved residues in the active site that underpin stereoselective recognition, binding, and catalysis of substrates. Moreover, we report the crystal structure of MSNagA in both ligand-free form and in complex with the GlcNAc6P substrate at 2.6 and 2.0 Å resolutions, respectively. The GlcNAc6P complex structure disclosed the precise mode of GlcNAc6P binding and the structural framework of the active site, including two divalent metals located in the α/β binuclear site. Furthermore, we observed a cysteine residue located on a flexible loop region that occludes the active site. This cysteine is unique to mycobacteria and may represent a unique subsite for targeting mycobacterial NagA enzymes. Our results provide critical insights into the structural and mechanistic properties of mycobacterial NagA enzymes having an essential role in amino-sugar and nucleotide metabolism in mycobacteria.
机译:结核分枝杆菌(Mtb)病原体编码GlcNAc-6磷酸脱乙酰酶NagA(Rv3332),属于酰胺水解酶超家族。 NagA酶催化将GlcNAc-6-磷酸(GlcNAc6P)脱乙酰基化为6-磷酸氨基葡萄糖(GlcN6P)。 NagA是潜在的抗结核药物靶标,因为它代表了Mtb细胞壁生物合成所需的必需氨基糖前体的生成中的关键酶促步骤,并且还影响细胞壁肽聚糖片段的回收。在这里,我们报道了耻垢分枝杆菌(MSNagA)和海洋分枝杆菌(MMNagA)的NagA的结构和功能表征,它们是Mtb的近亲。使用X射线晶体学,定向诱变,生化和生物物理分析的组合,我们表明这些分枝杆菌NagA酶对GlcNAc6P具有选择性。定点诱变研究揭示了活性位点中保守残基的关键作用,这些残基支持对底物的立体选择性识别,结合和催化。此外,我们报告了无配体形式和与GlcNAc6P底物复合的MSNagA的晶体结构,分别为2.6和2.0 and分辨率。 GlcNAc6P复合物结构揭示了GlcNAc6P结合的精确模式和活性位点的结构框架,包括位于α/β双核位点的两种二价金属。此外,我们观察到半胱氨酸残基位于柔性环区域,该区域封闭了活性位点。这种半胱氨酸是分枝杆菌所独有的,可能代表了靶向分枝杆菌NagA酶的独特亚位点。我们的研究结果提供了对分枝杆菌NagA酶的结构和机制特性的重要见解,该酶在分枝杆菌的氨基糖和核苷酸代谢中起着至关重要的作用。

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