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生物化学和结构特征分析揭示 Rv3400 编码结核分枝杆菌中的β-磷酸葡萄糖变位酶。

Biochemical and structural characterization reveals Rv3400 codes for β-phosphoglucomutase in Mycobacterium tuberculosis.

机构信息

Division of Protein Science and Engineering, Council of Scientific and Industrial Research-Institute of Microbial Technology (CSIR-IMTECH), Chandigarh, India.

出版信息

Protein Sci. 2024 Apr;33(4):e4943. doi: 10.1002/pro.4943.

Abstract

Mycobacterium tuberculosis (Mtb) adapt to various host environments and utilize a variety of sugars and lipids as carbon sources. Among these sugars, maltose and trehalose, also play crucial role in bacterial physiology and virulence. However, some key enzymes involved in trehalose and maltose metabolism in Mtb are not yet known. Here we structurally and functionally characterized a conserved hypothetical gene Rv3400. We determined the crystal structure of Rv3400 at 1.7 Å resolution. The crystal structure revealed that Rv3400 adopts Rossmann fold and shares high structural similarity with haloacid dehalogenase family of proteins. Our comparative structural analysis suggested that Rv3400 could perform either phosphatase or pyrophosphatase or β-phosphoglucomutase (β-PGM) activity. Using biochemical studies, we further confirmed that Rv3400 performs β-PGM activity and hence, Rv3400 encodes for β-PGM in Mtb. Our data also confirm that Mtb β-PGM is a metal dependent enzyme having broad specificity for divalent metal ions. β-PGM converts β-D-glucose-1-phosphate to β-D-glucose-6-phosphate which is required for the generation of ATP and NADPH through glycolysis and pentose phosphate pathway, respectively. Using site directed mutagenesis followed by biochemical studies, we show that two Asp residues in the highly conserved DxD motif, D29 and D31, are crucial for enzyme activity. While D29A, D31A, D29E, D31E and D29N mutants lost complete activity, D31N mutant retained about 30% activity. This study further helps in understanding the role of β-PGM in the physiology of Mtb.

摘要

结核分枝杆菌(Mtb)适应各种宿主环境,并利用各种糖和脂类作为碳源。在这些糖中,麦芽糖和海藻糖也在细菌生理和毒力中起关键作用。然而,Mtb 中参与海藻糖和麦芽糖代谢的一些关键酶尚不清楚。在这里,我们对一个保守的假定基因 Rv3400 进行了结构和功能表征。我们确定了 Rv3400 的晶体结构,分辨率为 1.7Å。晶体结构表明,Rv3400 采用 Rossmann 折叠,与卤代酸脱卤酶家族的蛋白质具有高度结构相似性。我们的比较结构分析表明,Rv3400 可以执行磷酸酶或焦磷酸酶或β-磷酸葡萄糖变位酶(β-PGM)活性。通过生化研究,我们进一步证实 Rv3400 具有β-PGM 活性,因此,Rv3400 在 Mtb 中编码β-PGM。我们的数据还证实,Mtb β-PGM 是一种依赖金属的酶,对二价金属离子具有广泛的特异性。β-PGM 将β-D-葡萄糖-1-磷酸转化为β-D-葡萄糖-6-磷酸,这是通过糖酵解和戊糖磷酸途径分别生成 ATP 和 NADPH 所必需的。通过定点突变和生化研究,我们表明高度保守的 DxD 基序中的两个天冬氨酸残基(D29 和 D31)对于酶活性至关重要。虽然 D29A、D31A、D29E、D31E 和 D29N 突变体完全丧失活性,但 D31N 突变体保留了约 30%的活性。这项研究进一步有助于理解β-PGM 在 Mtb 生理中的作用。

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