首页> 美国卫生研究院文献>Acta Crystallographica Section F: Structural Biology and Crystallization Communications >Solution-state NMR structure and biophysical characterization of zinc-substituted rubredoxin B (Rv3250c) from Mycobacterium tuberculosis
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Solution-state NMR structure and biophysical characterization of zinc-substituted rubredoxin B (Rv3250c) from Mycobacterium tuberculosis

机译:结核分枝杆菌中锌取代的rubredoxin B(Rv3250c)的溶液态NMR结构和生物物理特征

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摘要

Owing to the evolution of multi-drug-resistant and extremely drug-resistant Mycobacterium tuberculosis strains, there is an urgent need to develop new antituberculosis strategies to prevent TB epidemics in the industrial world. Among the potential new drug targets are two small nonheme iron-binding proteins, rubredoxin A (Rv3251c) and rubredoxin B (Rv3250c), which are believed to play a role in electron-transfer processes. Here, the solution structure and biophysical properties of one of these two proteins, rubredoxin B (Mt-RubB), determined in the zinc-substituted form are reported. The zinc-substituted protein was prepared by expressing Mt-RubB in minimal medium containing excess zinc acetate. Size-exclusion chromatography and NMR spectroscopy indicated that Mt-RubB was a monomer in solution. The structure (PDB entry ) was generally similar to those of other rubredoxins, containing a three-stranded anti­parallel β-sheet (β2–β1–β3) and a metal tetrahedrally coordinated to the S atoms of four cysteine residues (Cys9, Cys12, Cys42 and Cys45). The first pair of cysteine residues is at the C-terminal end of the first β-­strand and the second pair of cysteine residues is towards the C-terminal end of the loop between β2 and β3. The structure shows the metal buried deeply within the protein, an observation that is supported by the inability to remove the metal with excess EDTA at room temperature. Circular dichroism spectroscopy shows that this stability extends to high temperature, with essentially no change being observed in the CD spectrum of Mt-RubB upon heating to 353 K.
机译:由于具有多重耐药性和高度耐药性的结核分枝杆菌菌株的进化,迫切需要开发新的抗结核策略以预防工业界的结核病流行。在潜在的新药靶标中,有两个小的非血红素铁结合蛋白,即红氧还蛋白A(Rv3251c)和红氧还蛋白B(Rv3250c),据信它们在电子转移过程中起作用。在这里,报告了以锌取代形式确定的这两种蛋白质之一的氧化还原酶B(Mt-RubB)的溶液结构和生物物理特性。通过在含有过量乙酸锌的基本培养基中表达Mt-RubB来制备锌取代的蛋白。尺寸排阻色谱和NMR光谱表明,Mt-RubB是溶液中的单体。结构(PDB进入)通常与其他rubredoxins相似,包含三链反平行β-折叠(β2-β1-β3)和与四个半胱氨酸残基(Cys9,Cys12,Cys42)的S原子配位的金属四面体和Cys45)。第一对半胱氨酸残基在第一β-链的C末端,第二对半胱氨酸残基在β2和β3之间的环的C末端。该结构显示金属深深地埋在蛋白质中,这一观察结果得到了室温下无法用过量EDTA去除金属的支持。圆二色性光谱显示该稳定性延伸至高温,加热至353 K时,Mt-RubB的CD光谱基本上未观察到变化。

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