A full understanding of the catalytic action of non-heme iron (NHFe) and non-heme diiron (NHFe) enzymes is still beyond the grasp of contemporary computational and experimental techniques. Many of these enzymes exhibit fascinating chemo-, regio-, and stereoselectivity, in spite of employing highly reactive intermediates which are necessary for activations of most stable chemical bonds. Herein, we study in detail one intriguing representative of the NHFe family of enzymes: soluble Δ desaturase (ΔD), which desaturates rather than performing the thermodynamically favorable hydroxylation of substrate. Its catalytic mechanism has been explored in great detail by using QM(DFT)/MM and multireference wave function methods. Starting from the spectroscopically observed 1,2-μ-peroxo diferric intermediate, the proton-electron uptake by is the favored mechanism for catalytic activation, since it allows a significant reduction of the barrier of the initial (and rate-determining) H-atom abstraction from the stearoyl substrate as compared to the "proton-only activated" pathway. Also, we ruled out that a -like intermediate (high-valent diamond-core bis-μ-oxo-[Fe] unit) is involved in the reaction mechanism. Our mechanistic picture is consistent with the experimental data available for ΔD and satisfies fairly stringent conditions required by Nature: the chemo-, stereo-, and regioselectivity of the desaturation of stearic acid. Finally, the mechanisms evaluated are placed into a broader context of NHFe chemistry, provided by an amino acid sequence analysis through the families of the NHFe enzymes. Our study thus represents an important contribution toward understanding the catalytic action of the NHFe enzymes and may inspire further work in NHFe biomimetic chemistry.
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http://dx.doi.org/10.1021/jacs.0c01786 | DOI Listing |
Catal Sci Technol
January 2025
Department of Chemistry, Boston University Boston Massachusetts 02215 USA
α-Ketoglutarate-dependent non-haem iron (αKG-NHFe) enzymes play a crucial role in natural product biosynthesis, and in some cases exhibiting multifunctional catalysis capability. This study focuses on αKG-NHFe enzyme FtmOx1, which catalyzes endoperoxidation, dealkylation, and alcohol oxidation reactions in verruculogen biosynthesis. We explore the hypothesis that the conformational dynamics of the active site Y224 confer the multifunctional activities of FtmOx1-catalysis.
View Article and Find Full Text PDFbioRxiv
May 2023
Department of Chemistry, University of Minnesota, Twin Cities, Minneapolis, MN 55455, USA.
Non-heme iron halogenases (NHFe-Hals) catalyze the direct insertion of a chloride/bromide ion at an unactivated carbon position using a high-valent haloferryl intermediate. Despite more than a decade of structural and mechanistic characterization, how NHFe-Hals preferentially bind specific anions and substrates for C-H functionalization remains unknown. Herein, using lysine halogenating BesD and HalB enzymes as model systems, we demonstrate strong positive cooperativity between anion and substrate binding to the catalytic pocket.
View Article and Find Full Text PDFComput Struct Biotechnol J
March 2022
Institute of Organic Chemistry and Biochemistry, Czech Academy of Sciences, Flemingovo nám. 2, Prague 16610, Czech Republic.
A recently proposed reaction mechanism of soluble Δ desaturase (ΔD) allowed us to identify auxiliary residues His203, Asp101, Thr206 and Cys222 localized near the di-iron active site that are supposedly involved in the proton transfer (PT) to and from the active site. The PT, along with the electron transfer (ET), seems to be crucial for efficient desaturation. Thus, perturbing the major PT chains is expected to impair the native reaction and (potentially) amplify minor reaction channels, such as the substrate hydroxylation.
View Article and Find Full Text PDFJ Am Chem Soc
June 2020
J. Heyrovský Institute of Physical Chemistry, The Czech Academy of Sciences, Dolejškova 3, Prague 8 182 23, Czech Republic.
A full understanding of the catalytic action of non-heme iron (NHFe) and non-heme diiron (NHFe) enzymes is still beyond the grasp of contemporary computational and experimental techniques. Many of these enzymes exhibit fascinating chemo-, regio-, and stereoselectivity, in spite of employing highly reactive intermediates which are necessary for activations of most stable chemical bonds. Herein, we study in detail one intriguing representative of the NHFe family of enzymes: soluble Δ desaturase (ΔD), which desaturates rather than performing the thermodynamically favorable hydroxylation of substrate.
View Article and Find Full Text PDFNat Prod Rep
August 2018
Department of Chemistry, Boston University, Boston, MA 02215, USA.
Covering: up to 2018 α-Ketoglutarate (αKG, also known as 2-oxoglutarate)-dependent mononuclear non-haem iron (αKG-NHFe) enzymes catalyze a wide range of biochemical reactions, including hydroxylation, ring fragmentation, C-C bond cleavage, epimerization, desaturation, endoperoxidation and heterocycle formation. These enzymes utilize iron(ii) as the metallo-cofactor and αKG as the co-substrate. Herein, we summarize several novel αKG-NHFe enzymes involved in natural product biosyntheses discovered in recent years, including halogenation reactions, amino acid modifications and tailoring reactions in the biosynthesis of terpenes, lipids, fatty acids and phosphonates.
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