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亚砜还原酶对底物结合态脑型血红素加氧酶活性中心结构的影响:1H NMR 研究。

Influence of substrate modification and C-terminal truncation on the active site structure of substrate-bound heme oxygenase from Neisseriae meningitidis. A 1H NMR study.

机构信息

Department of Chemistry, University of California, Davis, Davis, California 95616, USA.

出版信息

Biochemistry. 2011 Oct 18;50(41):8823-33. doi: 10.1021/bi200978g. Epub 2011 Sep 21.

DOI:10.1021/bi200978g
PMID:21870860
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3250371/
Abstract

Heme oxygenase (HO), from the pathogenic bacterium N. meningitidis(NmHO), which secures host iron, shares many properties with mammalian HOs but also exhibits some key differences. The crystal structure appears more compact, and the crystal-undetected C-terminus interacts with substrate in solution. The unique nature of substrate-protein, specifically pyrrole-I/II-helix-2, peripheral interactions in NmHO are probed by 2D (1)H NMR to reveal unique structural features controlling substrate orientation. The thermodynamics of substrate orientational isomerism are mapped for substrates with individual vinyl → methyl → hydrogen substitutions and with enzyme C-terminal deletions. NmHO exhibits significantly stronger orientational preference, reflecting much stronger and selective pyrrole-I/II interactions with the protein matrix, than in mammalian HOs. Thus, replacing bulky vinyls with hydrogens results in a 180° rotation of substrate about the α,γ-meso axis in the active site. A "collapse" of the substrate pocket as substrate size decreases is reflected in movement of helix-2 toward the substrate as indicated by significant and selective increased NOESY cross-peak intensity, increase in steric Fe-CN tilt reflected in the orientation of the major magnetic axis, and decrease in steric constraints controlling the rate of aromatic ring reorientation. The active site of NmHO appears "stressed" for native protohemin, and its "collapse" upon replacing vinyls by hydrogen leads to a factor ~10(2) increase in substrate affinity. Interaction of the C-terminus with the active site destabilizes the crystallographic protohemin orientation by ~0.7 kcal/mol, which is consistent with optimizing the His207-Asp27 H-bond. Implications of the active site "stress" for product release are discussed.

摘要

血红素加氧酶(HO)来自致病性细菌脑膜炎奈瑟菌(NmHO),它可以保护宿主铁,与哺乳动物 HOs 有许多共同特性,但也表现出一些关键差异。晶体结构看起来更紧凑,并且未检测到的晶体 C 末端与溶液中的底物相互作用。通过二维(1)H NMR 探测 NmHO 中底物-蛋白质的独特性质,特别是吡咯-I/II-螺旋-2 的周边相互作用,以揭示控制底物取向的独特结构特征。通过对具有单个乙烯基→甲基→氢取代的底物和酶 C 末端缺失的底物进行热力学研究,揭示了底物取向异构的热力学。与哺乳动物 HOs 相比,NmHO 表现出明显更强的取向偏好,反映出与蛋白质基质的更强和更具选择性的吡咯-I/II 相互作用。因此,用氢取代大的乙烯基会导致底物在活性位点中绕α,γ-中位轴旋转 180°。随着底物尺寸的减小,底物口袋的“崩溃”反映在螺旋-2向底物的移动,这表现为显著且选择性增加的 NOESY 交叉峰强度增加,反映在主磁轴取向的立体 Fe-CN 倾斜增加,以及控制芳环重排速率的立体约束减少。NmHO 的活性位点似乎对天然原卟啉有“压力”,用氢取代乙烯基会导致底物亲和力增加约 10^2 倍。C 末端与活性位点的相互作用通过~0.7 kcal/mol 使晶体学原卟啉取向不稳定,这与优化 His207-Asp27 H 键一致。讨论了活性位点“压力”对产物释放的影响。

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本文引用的文献

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Solution 1H NMR characterization of substrate-free C. diphtheriae heme oxygenase: pertinence for determining magnetic axes in paramagnetic substrate complexes.无底物条件下白喉棒状杆菌血红素加氧酶的 1H NMR 特征:对确定顺磁底物复合物中磁轴的相关性。
J Inorg Biochem. 2010 Oct;104(10):1063-70. doi: 10.1016/j.jinorgbio.2010.06.003. Epub 2010 Jul 1.
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1H NMR study of the influence of mutation on the interaction of the C-terminus with the active site in heme oxygenase from Neisseria meningitidis: implications for product release.1H NMR 研究突变对脑膜炎奈瑟菌血红素加氧酶 C 端与活性部位相互作用的影响:对产物释放的影响。
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Biochemistry. 2012 Sep 11;51(36):7054-63. doi: 10.1021/bi3007803. Epub 2012 Aug 30.
The orbital ground state of the azide-substrate complex of human heme oxygenase is an indicator of distal H-bonding: implications for the enzyme mechanism.
人血红素加氧酶叠氮化物-底物复合物的轨道基态是远端氢键的一个指标:对酶作用机制的启示。
Biochemistry. 2009 Apr 14;48(14):3127-37. doi: 10.1021/bi802360g.
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1H NMR study of the effect of variable ligand on heme oxygenase electronic and molecular structure.可变配体对血红素加氧酶电子和分子结构影响的核磁共振氢谱研究
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Alteration of the regiospecificity of human heme oxygenase-1 by unseating of the heme but not disruption of the distal hydrogen bonding network.通过血红素的移位而非远端氢键网络的破坏改变人血红素加氧酶-1的区域特异性。
Biochemistry. 2006 Jan 10;45(1):61-73. doi: 10.1021/bi051645k.
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J Inorg Biochem. 2006 Jan;100(1):97-107. doi: 10.1016/j.jinorgbio.2005.08.010. Epub 2005 Dec 6.