首页> 美国卫生研究院文献>The Journal of Biological Chemistry >An Oxyferrous Heme/Protein-based Radical Intermediate Is Catalytically Competent in the Catalase Reaction of Mycobacterium tuberculosis Catalase-Peroxidase (KatG)
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An Oxyferrous Heme/Protein-based Radical Intermediate Is Catalytically Competent in the Catalase Reaction of Mycobacterium tuberculosis Catalase-Peroxidase (KatG)

机译:氧化亚铁血红素/蛋白质基自由基中间体 胜任结核分枝杆菌过氧化氢酶反应 过氧化氢酶-过氧化物酶 (KatG)

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摘要

A mechanism accounting for the robust catalase activity in catalase-peroxidases (KatG) presents a new challenge in heme protein enzymology. In Mycobacterium tuberculosis, KatG is the sole catalase and is also responsible for peroxidative activation of isoniazid, an anti-tuberculosis pro-drug. Here, optical stopped-flow spectrophotometry, rapid freeze-quench EPR spectroscopy both at the X-band and at the D-band, and mutagenesis are used to identify catalase reaction intermediates in M. tuberculosis KatG. In the presence of millimolar H2O2 at neutral pH, oxyferrous heme is formed within milliseconds from ferric (resting) KatG, whereas at pH 8.5, low spin ferric heme is formed. Using rapid freeze-quench EPR at X-band under both of these conditions, a narrow doublet radical signal with an 11 G principal hyperfine splitting was detected within the first milliseconds of turnover. The radical and the unique heme intermediates persist in wild-type KatG only during the time course of turnover of excess H2O2 (1000-fold or more). Mutation of Met255, Tyr229, or Trp107, which have covalently linked side chains in a unique distal side adduct (MYW) in wild-type KatG, abolishes this radical and the catalase activity. The D-band EPR spectrum of the radical exhibits a rhombic g tensor with dual gx values (2.00550 and 2.00606) and unique gy (2.00344) and gz values (2.00186) similar to but not typical of native tyrosyl radicals. Density functional theory calculations based on a model of an MYW adduct radical built from x-ray coordinates predict experimentally observed hyperfine interactions and a shift in g values away from the native tyrosyl radical. A catalytic role for an MYW adduct radical in the catalase mechanism of KatG is proposed.
机译:解释过氧化氢酶过氧化物酶(KatG)中强健的过氧化氢酶活性的机制提出了血红素蛋白酶学的新挑战。在结核分枝杆菌中,KatG是唯一的过氧化氢酶,并且还负责抗结核病的前药异烟肼的过氧化激活。在这里,使用光学停流分光光度法,X波段和D波段的快速冷冻猝灭EPR光谱以及诱变来鉴定结核分枝杆菌KatG中的过氧化氢酶反应中间体。在中性pH值存在毫摩尔H2O2的情况下,氧化亚铁血红素会在数秒内从三价(静止的)KatG生成,而在pH值为8.5时,会形成低自旋铁血红素。在这两个条件下,均使用X波段的快速冷冻猝灭EPR,在转换的前几毫秒内检测到了具有11 G主超精细分裂的双峰自由基信号。自由基和独特的血红素中间体仅在过量H2O2(1000倍或更多)转换的时间过程中存在于野生型KatG中。 Met 255 ,Tyr 229 或Trp 107 的突变,它们在独特的远端加合物(MYW)中具有共价连接的侧链 在野生型KatG中,它消除了这种自由基和过氧化氢酶活性。的 自由基的D带EPR谱显示出具有双偶数的菱形g张量 gx值(2.00550和2.00606)和唯一 gy(2.00344)和gz值(2.00186) 类似于但不典型的天然酪氨酸基团。密度功能 X射线建立的MYW加合物自由基模型的理论计算 坐标预测实验观察到的超精细相互作用和位移 以g表示的值远离天然酪氨酸基团。 MYW的催化作用 提出了KatG过氧化氢酶机制中的加合物自由基。

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