Density Functional Theory Study into the Reaction Mechanism of Isonitrile Biosynthesis by the Nonheme Iron Enzyme ScoE

被引:14
作者
Ali, Hafiz Saqib [1 ,2 ]
Ghafoor, Sidra [1 ,3 ]
de Visser, Sam P. [1 ,3 ]
机构
[1] Manchester Inst Biotechnol, 131 Princess St, Manchester M1 7DN, Lancs, England
[2] Dept Chem, Oxford Rd, Manchester M13 9PL, Lancs, England
[3] Dept Chem Engn & Analyt Sci, Oxford Rd, Manchester M13 9PL, Lancs, England
关键词
Density functional theory; Enzyme mechanism; Cluster models; Hydroxylation; Nonheme iron; Dioxygenases; QUANTUM MECHANICS/MOLECULAR MECHANICS; KETOGLUTARATE DIOXYGENASE TAUD; C-H HYDROXYLATION; SUBSTRATE HYDROXYLATION; DEPENDENT OXYGENASES; ALKANE HYDROXYLATION; 2-STATE REACTIVITY; CATALYTIC CYCLE; BOND ACTIVATION; COMPOUND-I;
D O I
10.1007/s11244-021-01460-x
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The nonheme iron enzyme ScoE catalyzes the biosynthesis of an isonitrile substituent in a peptide chain. To understand details of the reaction mechanism we created a large active site cluster model of 212 atoms that contains substrate, the active oxidant and the first- and second-coordination sphere of the protein and solvent. Several possible reaction mechanisms were tested and it is shown that isonitrile can only be formed through two consecutive catalytic cycles that both use one molecule of dioxygen and alpha-ketoglutarate. In both cycles the active species is an iron(IV)-oxo species that in the first reaction cycle reacts through two consecutive hydrogen atom abstraction steps: first from the N-H group and thereafter from the C-H group to desaturate the NH-CH2 bond. The alternative ordering of hydrogen atom abstraction steps was also tested but found to be higher in energy. Moreover, the electronic configurations along that pathway implicate an initial hydride transfer followed by proton transfer. We highlight an active site Lys residue that is shown to donate charge in the transition states and influences the relative barrier heights and bifurcation pathways. A second catalytic cycle of the reaction of iron(IV)-oxo with desaturated substrate starts with hydrogen atom abstraction followed by decarboxylation to give isonitrile directly. The catalytic cycle is completed with a proton transfer to iron(II)-hydroxo to generate the iron(II)-water resting state. The work is compared with experimental observation and previous computational studies on this system and put in a larger perspective of nonheme iron chemistry.
引用
收藏
页码:528 / 543
页数:16
相关论文
共 103 条
[1]   Reaction mechanisms of mononuclear non-heme iron oxygenases [J].
Abu-Omar, MM ;
Loaiza, A ;
Hontzeas, N .
CHEMICAL REVIEWS, 2005, 105 (06) :2227-2252
[2]   Mechanism of Oxidative Ring-closure as Part of the Hygromycin Biosynthesis Step by a Nonheme Iron Dioxygenase [J].
Ali, Hafiz Saqib ;
Henchman, Richard H. ;
de Visser, Sam P. .
CHEMCATCHEM, 2021, 13 (13) :3054-3066
[3]   How Do Electrostatic Perturbations of the Protein Affect the Bifurcation Pathways of Substrate Hydroxylation versus Desaturation in the Nonheme Iron-Dependent Viomycin Biosynthesis Enzyme? [J].
Ali, Hafiz Saqib ;
Henchman, Richard H. ;
Warwicker, Jim ;
de Visser, Sam P. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2021, 125 (08) :1720-1737
[4]   What Determines the Selectivity of Arginine Dihydroxylation by the Nonheme Iron Enzyme OrfP? [J].
Ali, Hafiz Saqib ;
Henchman, Richard H. ;
de Visser, Sam P. .
CHEMISTRY-A EUROPEAN JOURNAL, 2021, 27 (05) :1795-1809
[5]   Lignin Biodegradation by a Cytochrome P450 Enzyme: A Computational Study into Syringol Activation by GcoA [J].
Ali, Hafiz Saqib ;
Henchman, Richard H. ;
de Visser, Sam P. .
CHEMISTRY-A EUROPEAN JOURNAL, 2020, 26 (57) :13093-13102
[6]   Atom Tunneling in the Hydroxylation Process of Taurine/α-Ketoglutarate Dioxygenase Identified by Quantum Mechanics/Molecular Mechanics Simulations [J].
Alvarez-Barcia, Sonia ;
Kaestner, Johannes .
JOURNAL OF PHYSICAL CHEMISTRY B, 2017, 121 (21) :5347-5354
[7]   DENSITY-FUNCTIONAL THERMOCHEMISTRY .3. THE ROLE OF EXACT EXCHANGE [J].
BECKE, AD .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (07) :5648-5652
[8]   The Protein Data Bank [J].
Berman, HM ;
Westbrook, J ;
Feng, Z ;
Gilliland, G ;
Bhat, TN ;
Weissig, H ;
Shindyalov, IN ;
Bourne, PE .
NUCLEIC ACIDS RESEARCH, 2000, 28 (01) :235-242
[9]   Mechanism of taurine:: α-ketoglutarate dioxygenase (TauD) from Escherichia coli [J].
Bollinger, JM ;
Price, JC ;
Hoffart, LM ;
Barr, EW ;
Krebs, C .
EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2005, (21) :4245-4254
[10]   SUBSTITUENT EFFECTS ON THE STABILITIES OF PHENOXYL RADICALS AND THE ACIDITIES OF PHENOXYL RADICAL CATIONS [J].
BORDWELL, FG ;
CHENG, JP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (05) :1736-1743