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2
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Mutual synergy between catalase and peroxidase activities of the bifunctional enzyme KatG is facilitated by electron hole-hopping within the enzyme.双功能酶KatG的过氧化氢酶和过氧化物酶活性之间的相互协同作用通过酶内的电子空穴跳跃来促进。
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本文引用的文献

1
A radical on the Met-Tyr-Trp modification required for catalase activity in catalase-peroxidase is established by isotopic labeling and site-directed mutagenesis.通过同位素标记和定点突变,确定了与过氧化氢酶-过氧化物酶的过氧化氢酶活性相关的 Met-Tyr-Trp 修饰所需的自由基。
J Am Chem Soc. 2010 Jun 23;132(24):8268-9. doi: 10.1021/ja103311e.
2
Isoniazid-resistance conferring mutations in Mycobacterium tuberculosis KatG: catalase, peroxidase, and INH-NADH adduct formation activities.结核分枝杆菌 KatG 中异烟肼耐药相关突变:过氧化氢酶、过氧化物酶和 INH-NADH 加合物的形成活性。
Protein Sci. 2010 Mar;19(3):458-74. doi: 10.1002/pro.324.
3
The catalase-peroxidase KatG is required for virulence of Xanthomonas campestris pv. campestris in a host plant by providing protection against low levels of H2O2.过氧化氢酶-过氧化物酶KatG对于野油菜黄单胞菌野油菜致病变种在寄主植物中的致病性是必需的,它通过提供对低水平过氧化氢的保护作用来实现。
J Bacteriol. 2009 Dec;191(23):7372-7. doi: 10.1128/JB.00788-09. Epub 2009 Sep 25.
4
An oxyferrous heme/protein-based radical intermediate is catalytically competent in the catalase reaction of Mycobacterium tuberculosis catalase-peroxidase (KatG).基于亚铁血红素/蛋白质的自由基中间体在结核分枝杆菌过氧化氢酶-过氧化物酶(KatG)的过氧化氢酶反应中具有催化活性。
J Biol Chem. 2009 Mar 13;284(11):7017-29. doi: 10.1074/jbc.M808106200. Epub 2009 Jan 12.
5
Role of the oxyferrous heme intermediate and distal side adduct radical in the catalase activity of Mycobacterium tuberculosis KatG revealed by the W107F mutant.W107F突变体揭示亚铁血红素中间体和远端侧加合物自由基在结核分枝杆菌KatG过氧化氢酶活性中的作用
J Biol Chem. 2009 Mar 13;284(11):7030-7. doi: 10.1074/jbc.M808107200. Epub 2009 Jan 12.
6
Spin trapping investigation of peroxide- and isoniazid-induced radicals in Mycobacterium tuberculosis catalase-peroxidase.结核分枝杆菌过氧化氢酶-过氧化物酶中过氧化物和异烟肼诱导自由基的自旋捕获研究
Biochemistry. 2008 Oct 28;47(43):11377-85. doi: 10.1021/bi800952b. Epub 2008 Oct 2.
7
Redox intermediates in the catalase cycle of catalase-peroxidases from Synechocystis PCC 6803, Burkholderia pseudomallei, and Mycobacterium tuberculosis.来自集胞藻PCC 6803、类鼻疽伯克霍尔德菌和结核分枝杆菌的过氧化氢酶-过氧化物酶催化循环中的氧化还原中间体。
Biochemistry. 2007 Feb 6;46(5):1183-93. doi: 10.1021/bi062266+.
8
Hydrogen peroxide oxidation by catalase-peroxidase follows a non-scrambling mechanism.过氧化氢酶-过氧化物酶催化的过氧化氢氧化遵循非重排机制。
FEBS Lett. 2007 Jan 23;581(2):320-4. doi: 10.1016/j.febslet.2006.12.037. Epub 2007 Jan 10.
9
Roles for Arg426 and Trp111 in the modulation of NADH oxidase activity of the catalase-peroxidase KatG from Burkholderia pseudomallei inferred from pH-induced structural changes.从pH诱导的结构变化推断,嗜麦芽窄食单胞菌过氧化氢酶-过氧化物酶KatG中Arg426和Trp111在调节NADH氧化酶活性中的作用。
Biochemistry. 2006 Apr 25;45(16):5171-9. doi: 10.1021/bi060017f.
10
Hydrogen peroxide-mediated isoniazid activation catalyzed by Mycobacterium tuberculosis catalase-peroxidase (KatG) and its S315T mutant.过氧化氢介导的结核分枝杆菌过氧化氢酶-过氧化物酶(KatG)及其S315T突变体催化的异烟肼活化。
Biochemistry. 2006 Apr 4;45(13):4131-40. doi: 10.1021/bi051967o.

过氧化物酶 KatG 非典型过氧化氢酶反应中 Met-Tyr-Trp 加合物自由基以及残基 Arg-418 和 Asp-137 的特定功能。

Specific function of the Met-Tyr-Trp adduct radical and residues Arg-418 and Asp-137 in the atypical catalase reaction of catalase-peroxidase KatG.

机构信息

Department of Chemistry, Brooklyn College, Brooklyn, New York 11210, USA.

出版信息

J Biol Chem. 2012 Oct 26;287(44):37057-65. doi: 10.1074/jbc.M112.401208. Epub 2012 Aug 23.

DOI:10.1074/jbc.M112.401208
PMID:22918833
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3481306/
Abstract

Catalase activity of the dual-function heme enzyme catalase-peroxidase (KatG) depends on several structural elements, including a unique adduct formed from covalently linked side chains of three conserved amino acids (Met-255, Tyr-229, and Trp-107, Mycobacterium tuberculosis KatG numbering) (MYW). Mutagenesis, electron paramagnetic resonance, and optical stopped-flow experiments, along with calculations using density functional theory (DFT) methods revealed the basis of the requirement for a radical on the MYW-adduct, for oxyferrous heme, and for conserved residues Arg-418 and Asp-137 in the rapid catalase reaction. The participation of an oxyferrous heme intermediate (dioxyheme) throughout the pH range of catalase activity is suggested from our finding that carbon monoxide inhibits the activity at both acidic and alkaline pH. In the presence of H(2)O(2), the MYW-adduct radical is formed normally in KatG[D137S] but this mutant is defective in forming dioxyheme and lacks catalase activity. KatG[R418L] is also catalase deficient but exhibits normal formation of the adduct radical and dioxyheme. Both mutants exhibit a coincidence between MYW-adduct radical persistence and H(2)O(2) consumption as a function of time, and enhanced subunit oligomerization during turnover, suggesting that the two mutations disrupting catalase turnover allow increased migration of the MYW-adduct radical to protein surface residues. DFT calculations showed that an interaction between the side chain of residue Arg-418 and Tyr-229 in the MYW-adduct radical favors reaction of the radical with the adjacent dioxyheme intermediate present throughout turnover in WT KatG. Release of molecular oxygen and regeneration of resting enzyme are thereby catalyzed in the last step of a proposed catalase reaction.

摘要

双功能血红素酶过氧化氢酶-过氧化物酶(KatG)的过氧化氢酶活性取决于几个结构元素,包括由三个保守氨基酸(结核分枝杆菌KatG 编号的 Met-255、Tyr-229 和 Trp-107)的侧链共价连接形成的独特加合物(MYW)。突变、电子顺磁共振和光停流实验,以及使用密度泛函理论(DFT)方法的计算,揭示了需要 MYW 加合物上的自由基、氧亚铁血红素以及保守残基 Arg-418 和 Asp-137 的快速过氧化氢酶反应的基础。从我们发现一氧化碳在酸性和碱性 pH 下均抑制活性这一发现中可以推断出,在过氧化氢酶活性的整个 pH 范围内都存在氧亚铁血红素中间体(双氧血红素)。在 H2O2 的存在下,MYW 加合物自由基在 KatG[D137S]中正常形成,但该突变体在形成双氧血红素方面存在缺陷,且缺乏过氧化氢酶活性。KatG[R418L]也是过氧化氢酶缺陷型,但表现出正常的加合物自由基和双氧血红素形成。两种突变体的 MYW 加合物自由基的持久性与 H2O2 消耗之间存在时间上的巧合,并且在周转过程中增强了亚基寡聚化,这表明两种破坏过氧化氢酶周转的突变允许 MYW 加合物自由基向蛋白质表面残基的迁移增加。DFT 计算表明,侧链 Arg-418 与 MYW 加合物自由基中的 Tyr-229 之间的相互作用有利于自由基与相邻的双氧血红素中间物反应,该中间物在 WT KatG 的整个周转过程中都存在。因此,在提出的过氧化氢酶反应的最后一步中,催化了分子氧的释放和休息酶的再生。