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1.
Appl Microbiol Biotechnol ; 108(1): 410, 2024 Jul 08.
Article in English | MEDLINE | ID: mdl-38976076

ABSTRACT

We characterise a reversible bacterial zinc-containing benzyl alcohol dehydrogenase (BaDH) accepting either NAD+ or NADP+ as a redox cofactor. Remarkably, its redox cofactor specificity is pH-dependent with the phosphorylated cofactors favored at lower and the dephospho-forms at higher pH. BaDH also shows different steady-state kinetic behavior with the two cofactor forms. From a structural model, the pH-dependent shift may affect the charge of a histidine in the 2'-phosphate-binding pocket of the redox cofactor binding site. The enzyme is phylogenetically affiliated to a new subbranch of the Zn-containing alcohol dehydrogenases, which share this conserved residue. BaDH appears to have some specificity for its substrate, but also turns over many substituted benzyl alcohol and benzaldehyde variants, as well as compounds containing a conjugated C=C double bond with the aldehyde carbonyl group. However, compounds with an sp3-hybridised C next to the alcohol/aldehyde group are not or only weakly turned over. The enzyme appears to contain a Zn in its catalytic site and a mixture of Zn and Fe in its structural metal-binding site. Moreover, we demonstrate the use of BaDH in an enzyme cascade reaction with an acid-reducing tungsten enzyme to reduce benzoate to benzyl alcohol. KEY POINTS: •Zn-containing BaDH has activity with either NAD + or NADP+ at different pH optima. •BaDH converts a broad range of substrates. •BaDH is used in a cascade reaction for the reduction of benzoate to benzyl alcohol.


Subject(s)
Alcohol Oxidoreductases , Benzyl Alcohol , Coenzymes , NADP , Oxidation-Reduction , Zinc , Hydrogen-Ion Concentration , NADP/metabolism , Substrate Specificity , Benzyl Alcohol/metabolism , Benzyl Alcohol/chemistry , Kinetics , Zinc/metabolism , Coenzymes/metabolism , Alcohol Oxidoreductases/metabolism , Alcohol Oxidoreductases/chemistry , Alcohol Oxidoreductases/genetics , NAD/metabolism , Benzaldehydes/metabolism , Benzaldehydes/chemistry , Catalytic Domain , Binding Sites , Phylogeny , Models, Molecular
2.
Appl Microbiol Biotechnol ; 108(1): 391, 2024 Jun 24.
Article in English | MEDLINE | ID: mdl-38910188

ABSTRACT

Metal cofactors are essential for catalysis and enable countless conversions in nature. Interestingly, the metal cofactor is not always static but mobile with movements of more than 4 Å. These movements of the metal can have different functions. In the case of the xylose isomerase and medium-chain dehydrogenases, it clearly serves a catalytic purpose. The metal cofactor moves during substrate activation and even during the catalytic turnover. On the other hand, in class II aldolases, the enzymes display resting states and active states depending on the movement of the catalytic metal cofactor. This movement is caused by substrate docking, causing the metal cofactor to take the position essential for catalysis. As these metal movements are found in structurally and mechanistically unrelated enzymes, it has to be expected that this metal movement is more common than currently perceived. KEY POINTS: • Metal ions are essential cofactors that can move during catalysis. • In class II aldolases, the metal cofactors can reside in a resting state and an active state. • In MDR, the movement of the metal cofactor is essential for substrate docking.


Subject(s)
Coenzymes , Metals , Metals/metabolism , Coenzymes/metabolism , Aldose-Ketose Isomerases/metabolism , Aldose-Ketose Isomerases/chemistry , Aldose-Ketose Isomerases/genetics , Catalysis , Oxidoreductases/metabolism , Oxidoreductases/chemistry
3.
Appl Environ Microbiol ; 90(6): e0023324, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38727223

ABSTRACT

Vanillin is one of the world's most important flavor and fragrance compounds used in foods and cosmetics. In plants, vanillin is reportedly biosynthesized from ferulic acid via the hydratase/lyase-type enzyme VpVAN. However, in biotechnological and biocatalytic applications, the use of VpVAN limits the production of vanillin. Although microbial enzymes are helpful as substitutes for plant enzymes, synthesizing vanillin from ferulic acid in one step using microbial enzymes remains a challenge. Here, we developed a single enzyme that catalyzes vanillin production from ferulic acid in a coenzyme-independent manner via the rational design of a microbial dioxygenase in the carotenoid cleavage oxygenase family using computational simulations. This enzyme acquired catalytic activity toward ferulic acid by introducing mutations into the active center to increase its affinity for ferulic acid. We found that the single enzyme can catalyze not only the production of vanillin from ferulic acid but also the synthesis of other aldehydes from p-coumaric acid, sinapinic acid, and coniferyl alcohol. These results indicate that the approach used in this study can greatly expand the range of substrates available for the dioxygenase family of enzymes. The engineered enzyme enables efficient production of vanillin and other value-added aldehydes from renewable lignin-derived compounds. IMPORTANCE: The final step of vanillin biosynthesis in plants is reportedly catalyzed by the enzyme VpVAN. Prior to our study, VpVAN was the only reported enzyme that directly converts ferulic acid to vanillin. However, as many characteristics of VpVAN remain unknown, this enzyme is not yet suitable for biocatalytic applications. We show that an enzyme that converts ferulic acid to vanillin in one step could be constructed by modifying a microbial dioxygenase-type enzyme. The engineered enzyme is of biotechnological importance as a tool for the production of vanillin and related compounds via biocatalytic processes and metabolic engineering. The results of this study may also provide useful insights for understanding vanillin biosynthesis in plants.


Subject(s)
Benzaldehydes , Coumaric Acids , Dioxygenases , Benzaldehydes/metabolism , Coumaric Acids/metabolism , Dioxygenases/metabolism , Dioxygenases/genetics , Metabolic Engineering , Coenzymes/metabolism , Protein Engineering , Bacterial Proteins/genetics , Bacterial Proteins/metabolism
4.
Sci Rep ; 14(1): 11165, 2024 05 15.
Article in English | MEDLINE | ID: mdl-38750092

ABSTRACT

Kinetic aspects of enzymatic reactions are described by equations based on the Michaelis-Menten theory for the initial stage. However, the kinetic parameters provide little information on the atomic mechanism of the reaction. In this study, we analyzed structures of glutamate dehydrogenase in the initial and steady stages of the reaction using cryoEM at near-atomic resolution. In the initial stage, four metastable conformations displayed different domain motions and cofactor/ligand association modes. The most striking finding was that the enzyme-cofactor-substrate complex, treated as a single state in the enzyme kinetic theory, comprised at least three different metastable conformations. In the steady stage, seven conformations, including derivatives from the four conformations in the initial stage, made the reaction pathway complicated. Based on the visualized conformations, we discussed stage-dependent pathways to illustrate the dynamics of the enzyme in action.


Subject(s)
Cryoelectron Microscopy , Glutamate Dehydrogenase , Protein Conformation , Glutamate Dehydrogenase/chemistry , Glutamate Dehydrogenase/metabolism , Cryoelectron Microscopy/methods , Ligands , Kinetics , Models, Molecular , Coenzymes/metabolism , Coenzymes/chemistry , Catalysis , Protein Binding
5.
FEMS Yeast Res ; 242024 Jan 09.
Article in English | MEDLINE | ID: mdl-38637306

ABSTRACT

Anaerobic alcoholic fermentation, particularly in high-sugar environments, presents metabolic challenges for yeasts. Crabtree-positive yeasts, including Saccharomyces cerevisiae, prefer fermentation even in the presence of oxygen. These yeasts rely on internal NAD+ recycling and extracellular assimilation of its precursor, nicotinic acid (vitamin B3), rather than de novo NAD+ production. Surprisingly, nicotinic acid assimilation is poorly characterized, even in S. cerevisiae. This study elucidated the timing of nicotinic acid uptake during grape juice-like fermentation and its impact on NAD(H) levels, the NAD+/NADH ratio, and metabolites produced. Complete uptake of extracellular nicotinic acid occurred premid-exponential phase, thereafter small amounts of vitamin B3 were exported back into the medium. Suboptimal levels of nicotinic acid were correlated with slower fermentation and reduced biomass, disrupting redox balance and impeding NAD+ regeneration, thereby affecting metabolite production. Metabolic outcomes varied with nicotinic acid concentrations, linking NAD+ availability to fermentation efficiency. A model was proposed encompassing rapid nicotinic acid uptake, accumulation during cell proliferation, and recycling with limited vitamin B3 export. This research enhances the understanding of nicotinic acid uptake dynamics during grape juice-like fermentation. These insights contribute to advancing yeast metabolism research and have profound implications for the enhancement of biotechnological practices and the wine-making industry.


Subject(s)
Fermentation , NAD , Niacin , Oxidation-Reduction , Saccharomyces cerevisiae , Saccharomyces cerevisiae/metabolism , Niacin/metabolism , NAD/metabolism , Ethanol/metabolism , Coenzymes/metabolism
6.
Biochim Biophys Acta Mol Cell Res ; 1871(5): 119731, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38631442

ABSTRACT

Molybdenum cofactor (Moco) biosynthesis is a complex process that involves the coordinated function of several proteins. In the recent years it has become evident that the availability of Fe-S clusters play an important role for the biosynthesis of Moco. First, the MoaA protein binds two [4Fe-4S] clusters per monomer. Second, the expression of the moaABCDE and moeAB operons is regulated by FNR, which senses the availability of oxygen via a functional [4Fe-4S] cluster. Finally, the conversion of cyclic pyranopterin monophosphate to molybdopterin requires the availability of the L-cysteine desulfurase IscS, which is an enzyme involved in the transfer of sulfur to various acceptor proteins with a main role in the assembly of Fe-S clusters. In this review, we dissect the dependence of the production of active molybdoenzymes in detail, starting from the regulation of gene expression and further explaining sulfur delivery and Fe-S cluster insertion into target enzymes. Further, Fe-S cluster assembly is also linked to iron availability. While the abundance of selected molybdoenzymes is largely decreased under iron-limiting conditions, we explain that the expression of the genes is dependent on an active FNR protein. FNR is a very important transcription factor that represents the master-switch for the expression of target genes in response to anaerobiosis. Moco biosynthesis is further directly dependent on the presence of ArcA and also on an active Fur protein.


Subject(s)
Coenzymes , Iron-Sulfur Proteins , Metalloproteins , Molybdenum Cofactors , Pteridines , Metalloproteins/metabolism , Metalloproteins/genetics , Metalloproteins/biosynthesis , Iron-Sulfur Proteins/metabolism , Iron-Sulfur Proteins/genetics , Coenzymes/metabolism , Coenzymes/biosynthesis , Coenzymes/genetics , Pteridines/metabolism , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Iron/metabolism , Sulfur/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Carbon-Sulfur Lyases/metabolism , Carbon-Sulfur Lyases/genetics , Gene Expression Regulation, Bacterial , Operon , Isomerases
7.
Neurosci Lett ; 821: 137623, 2024 Jan 31.
Article in English | MEDLINE | ID: mdl-38184017

ABSTRACT

Metal ions participate in various biochemical processes such as electron transport chain, gene transcription, and enzymatic reactions. Furthermore, the aggregation promoting effect of several metal ions on neuronal proteins such as prion, tau, Aß peptide, and α-synuclein, has been reported. NAP-22 (also called BASP1 or CAP-23) is a neuron-enriched calmodulin-binding protein and one of the major proteins in the detergent-resistant membrane microdomain fraction of the neuronal cell membrane. Previously, we showed oligomer formation of NAP-22 in the presence of several phospholipids and fatty acids. In this study, we found the aggregation of NAP-22 by FeCl2, FeCl3, and AlCl3 using native-PAGE. Oligomer or aggregate formation of NAP-22 by ZnCl2 or CuSO4 was shown with SDS-PAGE after cross-linking with glutaraldehyde. Morphological analysis with electron microscopy revealed the formation of large aggregates composed of small annular oligomers in the presence of FeCl3, AlCl3, or CuSO4. In case of FeCl2 or ZnCl2, instead of large aggregates, scattered annular and globular oligomers were observed. Interestingly, metal ion induced aggregation of NAP-22 was inhibited by several coenzymes such as NADP+, NADPH, or thiamine pyrophosphate. Since NAP-22 is highly expressed in the presynaptic region of the synapse, this result suggests the participation of metal ions not only on the protein and membrane dynamics at the presynaptic region, but also on the metabolic regulation though the interaction with coenzymes.


Subject(s)
Calmodulin-Binding Proteins , Chlorides , Ferric Compounds , Nerve Tissue Proteins , Nerve Tissue Proteins/metabolism , Calmodulin-Binding Proteins/metabolism , Ions , Coenzymes/metabolism
8.
Chem Biol Interact ; 390: 110876, 2024 Feb 25.
Article in English | MEDLINE | ID: mdl-38266864

ABSTRACT

The medium-chain dehydrogenase/reductase (MDR) superfamily has more than 600,000 members in UniProt as of March 2023. As the family has been growing, the proportion of functionally characterized proteins has been falling behind. The aim of this project was to investigate the binding pockets of nine different MDR protein families based on sequence conservation patterns and three-dimensional structures of members within the respective families. A search and analysis methodology was developed. Using this, a total of 2000 eukaryotic MDR sequences belonging to nine different families were identified. The pairwise sequence identities within each of the families were 80-90 % for the mammalian sequences, like the levels observed for alcohol dehydrogenase, another MDR family. Twenty conserved residues were identified in the coenzyme part of the binding site by matching structural and conservation data of all nine protein families. The conserved residues in the substrate part of the binding pocket varied between the nine MDR families, implying divergent functions for the different families. Studying each family separately made it possible to identify multiple conserved residues that are expected to be important for substrate binding or catalysis of the enzymatic reaction. By combining structural data with the conservation of the amino acid residues in each protein, important residues in the binding pocket were identified for each of the nine MDRs. The obtained results add new positions of interest for the binding and activity of the enzyme family as well as fit well to earlier published data. Three distinct types of binding pockets were identified, containing no, one, or two tyrosine residues.


Subject(s)
Alcohol Dehydrogenase , Coenzymes , Animals , Humans , Coenzymes/metabolism , Alcohol Dehydrogenase/metabolism , Mammals/metabolism
9.
Chembiochem ; 25(1): e202300409, 2024 01 02.
Article in English | MEDLINE | ID: mdl-37948327

ABSTRACT

Cofactor regeneration systems are of major importance for the applicability of oxidoreductases in biocatalysis. Previously, geranylgeranyl reductases have been investigated for the enzymatic reduction of isolated C=C bonds. However, an enzymatic cofactor-regeneration system for in vitro use is lacking. In this work, we report a ferredoxin from the archaea Archaeoglobus fulgidus that regenerates the flavin of the corresponding geranylgeranyl reductase. The proteins were heterologously produced, and the regeneration was coupled to a ferredoxin reductase from Escherichia coli and a glucose dehydrogenase from Bacillus subtilis, thereby enabling the reduction of isolated C=C bonds by purified enzymes. The system was applied in crude, cell-free extracts and gave conversions comparable to those of a previous method using sodium dithionite for cofactor regeneration. Hence, an enzymatic approach to the reduction of isolated C=C bonds can be coupled with common systems for the regeneration of nicotinamide cofactors, thereby opening new perspectives for the application of geranylgeranyl reductases in biocatalysis.


Subject(s)
Coenzymes , Ferredoxins , Coenzymes/metabolism , Ferredoxins/metabolism , Oxidoreductases/metabolism , Escherichia coli/metabolism , Oxidation-Reduction
10.
Cell Rep ; 42(12): 113571, 2023 12 26.
Article in English | MEDLINE | ID: mdl-38096053

ABSTRACT

Natural polyamines such as spermidine and spermine cations have characteristics that make them highly likely to be sensed by riboswitches, such as their general affinity to polyanionic RNA and their broad contributions to cell physiology. Despite previous claims that polyamine riboswitches exist, evidence of their biological functions has remained unconvincing. Here, we report that rare variants of bacterial S-adenosylmethionine-I (SAM-I) riboswitches reject SAM and have adapted to selectively sense spermidine. These spermidine-sensing riboswitch variants are associated with genes whose protein products are directly involved in the production of spermidine and other polyamines. Biochemical and genetic assays demonstrate that representatives of this riboswitch class robustly function as genetic "off" switches, wherein spermidine binding causes premature transcription termination to suppress the expression of polyamine biosynthetic genes. These findings confirm the existence of natural spermidine-sensing riboswitches in bacteria and expand the list of variant riboswitch classes that have adapted to bind different ligands.


Subject(s)
Riboswitch , Riboswitch/genetics , S-Adenosylmethionine/metabolism , Spermidine , Coenzymes/metabolism , Oligonucleotides , Bacteria/genetics , Bacteria/metabolism , Nucleic Acid Conformation
11.
mBio ; 14(5): e0158823, 2023 Oct 31.
Article in English | MEDLINE | ID: mdl-37823641

ABSTRACT

IMPORTANCE: In addition to proteins, microbes can use structured RNAs such as riboswitches for the important task of regulating gene expression. Riboswitches control gene expression by changing their structure in response to binding a small molecule and are widespread among bacteria. Here we determine the mechanism of regulation in a riboswitch that responds to corrinoids-a family of coenzymes related to vitamin B12. We report the alternative RNA secondary structures that couple corrinoid sensing with response in a repressing and novel activating corrinoid riboswitch. We then applied this knowledge to flipping the regulatory sign by constructing synthetic riboswitches that activate expression to a higher level than the natural one. In the process, we observed patterns in which sequence, in addition to structure, impacts function in paired RNA regions. The synthetic riboswitches we describe here have potential applications as biosensors.


Subject(s)
Riboswitch , Riboswitch/genetics , Vitamin B 12 , Bacteria/genetics , Coenzymes/metabolism , Genetic Engineering
12.
Int J Mol Sci ; 24(19)2023 Oct 07.
Article in English | MEDLINE | ID: mdl-37834433

ABSTRACT

Pseudomonas aeruginosa PAO1, as an experimental model for Gram-negative bacteria, harbors two NADP+-dependent isocitrate dehydrogenases (NADP-IDHs) that were evolved from its ancient counterpart NAD-IDHs. For a better understanding of PaIDH1 and PaIDH2, we cloned the genes, overexpressed them in Escherichia coli and purified them to homogeneity. PaIDH1 displayed higher affinity to NADP+ and isocitrate, with lower Km values when compared to PaIDH2. Moreover, PaIDH1 possessed higher temperature tolerance (50 °C) and wider pH range tolerance (7.2-8.5) and could be phosphorylated. After treatment with the bifunctional PaIDH kinase/phosphatase (PaIDH K/P), PaIDH1 lost 80% of its enzymatic activity in one hour due to the phosphorylation of Ser115. Small-molecule compounds like glyoxylic acid and oxaloacetate can effectively inhibit the activity of PaIDHs. The mutant PaIDH1-D346I347A353K393 exhibited enhanced affinity for NAD+ while it lost activity towards NADP+, and the Km value (7770.67 µM) of the mutant PaIDH2-L589 I600 for NADP+ was higher than that observed for NAD+ (5824.33 µM), indicating a shift in coenzyme specificity from NADP+ to NAD+ for both PaIDHs. The experiments demonstrated that the mutation did not alter the oligomeric state of either protein. This study provides a foundation for the elucidation of the evolution and function of two NADP-IDHs in the pathogenic bacterium P. aeruginosa.


Subject(s)
Coenzymes , Pseudomonas aeruginosa , Coenzymes/metabolism , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/metabolism , NADP/metabolism , NAD/metabolism , Amino Acid Sequence , Isocitrate Dehydrogenase/metabolism , Isocitrates/metabolism , Kinetics
13.
FEBS J ; 290(23): 5514-5535, 2023 12.
Article in English | MEDLINE | ID: mdl-37682540

ABSTRACT

The structure of hexameric glutamate dehydrogenase (GDH) in the presence of the coenzyme nicotinamide adenine dinucleotide phosphate (NADP) was visualized using cryogenic transmission electron microscopy to investigate the ligand-binding pathways to the active site of the enzyme. Each subunit of GDH comprises one hexamer-forming core domain and one nucleotide-binding domain (NAD domain), which spontaneously opens and closes the active-site cleft situated between the two domains. In the presence of NADP, the potential map of GDH hexamer, assuming D3 symmetry, was determined at a resolution of 2.4 Å, but the NAD domain was blurred due to the conformational variety. After focused classification with respect to the NAD domain, the potential maps interpreted as NADP molecules appeared at five different sites in the active-site cleft. The subunits associated with NADP molecules were close to one of the four metastable conformations in the unliganded state. Three of the five binding sites suggested a pathway of NADP molecules to approach the active-site cleft for initiating the enzymatic reaction. The other two binding modes may rarely appear in the presence of glutamate, as demonstrated by the reaction kinetics. Based on the visualized structures and the results from the enzymatic kinetics, we discussed the binding modes of NADP to GDH in the absence and presence of glutamate.


Subject(s)
Coenzymes , Glutamate Dehydrogenase , Glutamate Dehydrogenase/chemistry , Coenzymes/metabolism , NADP/metabolism , Cryoelectron Microscopy , NAD/metabolism , Binding Sites , Glutamates , Kinetics
14.
J Biol Chem ; 299(9): 105152, 2023 09.
Article in English | MEDLINE | ID: mdl-37567475

ABSTRACT

The ESKAPE bacteria are the six highly virulent and antibiotic-resistant pathogens that require the most urgent attention for the development of novel antibiotics. Detailed knowledge of target proteins specific to bacteria is essential to develop novel treatment options. The methylerythritol-phosphate (MEP) pathway, which is absent in humans, represents a potentially valuable target for the development of novel antibiotics. Within the MEP pathway, the enzyme 1-deoxy-D-xylulose-5-phosphate synthase (DXPS) catalyzes a crucial, rate-limiting first step and a branch point in the biosynthesis of the vitamins B1 and B6. We report the high-resolution crystal structures of DXPS from the important ESKAPE pathogens Pseudomonas aeruginosa and Klebsiella pneumoniae in both the co-factor-bound and the apo forms. We demonstrate that the absence of the cofactor thiamine diphosphate results in conformational changes that lead to disordered loops close to the active site that might be important for the design of potent DXPS inhibitors. Collectively, our results provide important structural details that aid in the assessment of DXPS as a potential target in the ongoing efforts to combat antibiotic resistance.


Subject(s)
Coenzymes , Klebsiella pneumoniae , Pseudomonas aeruginosa , Transferases , Humans , Anti-Bacterial Agents/pharmacology , Klebsiella pneumoniae/drug effects , Klebsiella pneumoniae/enzymology , Pseudomonas aeruginosa/drug effects , Pseudomonas aeruginosa/enzymology , Transferases/chemistry , Transferases/metabolism , Protein Conformation , Coenzymes/metabolism , Vitamin B 6/biosynthesis , Thiamine/biosynthesis , Apoenzymes/chemistry , Apoenzymes/metabolism , Thiamine Pyrophosphate/metabolism , Catalytic Domain , Drug Resistance, Bacterial
15.
Plant Physiol Biochem ; 201: 107895, 2023 Aug.
Article in English | MEDLINE | ID: mdl-37478728

ABSTRACT

Glutamate dehydrogenase (GDH) is an enzyme at the crossroad of plant nitrogen and carbon metabolism. GDH catalyzes the conversion of 2-oxoglutarate into glutamate (2OG → Glu), utilizing ammonia as cosubstrate and NADH as coenzyme. The GDH reaction is reversible, meaning that the NAD+-dependent reaction (Glu → 2OG) releases ammonia. In Arabidopsis thaliana, three GDH isoforms exist, AtGDH1, AtGDH2, and AtGDH3. The subject of this work is AtGDH2. Previous reports have suggested that enzymes homologous to AtGDH2 contain a calcium-binding EF-hand motif located in the coenzyme binding domain. Here, we show that while AtGDH2 indeed does bind calcium, the binding occurs elsewhere and the region predicted to be the EF-hand motif has a completely different structure. As the true calcium binding site is > 20 Å away from the active site, it seems to play a structural, rather than catalytic role. We also performed comparative kinetic characterization of AtGDH1 and AtGDH2 using spectroscopic methods and isothermal titration calorimetry, to note that the isoenzymes generally exhibit similar behavior, with calcium having only a minor effect. However, the spatial and temporal changes in the gene expression profiles of the three AtGDH genes point to AtGDH2 as the most prevalent isoform.


Subject(s)
Arabidopsis , Glutamate Dehydrogenase , Glutamate Dehydrogenase/genetics , Glutamate Dehydrogenase/metabolism , Arabidopsis/metabolism , Calcium/metabolism , NAD/metabolism , Ammonia/metabolism , Coenzymes/metabolism , Glutamic Acid/metabolism , Binding Sites , Isoenzymes/genetics , Isoenzymes/metabolism
16.
J Biol Chem ; 299(9): 105109, 2023 09.
Article in English | MEDLINE | ID: mdl-37517695

ABSTRACT

G-protein metallochaperones are essential for the proper maturation of numerous metalloenzymes. The G-protein chaperone MMAA in humans (MeaB in bacteria) uses GTP hydrolysis to facilitate the delivery of adenosylcobalamin (AdoCbl) to AdoCbl-dependent methylmalonyl-CoA mutase, an essential metabolic enzyme. This G-protein chaperone also facilitates the removal of damaged cobalamin (Cbl) for repair. Although most chaperones are standalone proteins, isobutyryl-CoA mutase fused (IcmF) has a G-protein domain covalently attached to its target mutase. We previously showed that dimeric MeaB undergoes a 180° rotation to reach a state capable of GTP hydrolysis (an active G-protein state), in which so-called switch III residues of one protomer contact the G-nucleotide of the other protomer. However, it was unclear whether other G-protein chaperones also adopted this conformation. Here, we show that the G-protein domain in a fused system forms a similar active conformation, requiring IcmF oligomerization. IcmF oligomerizes both upon Cbl damage and in the presence of the nonhydrolyzable GTP analog, guanosine-5'-[(ß,γ)-methyleno]triphosphate, forming supramolecular complexes observable by mass photometry and EM. Cryo-EM structural analysis reveals that the second protomer of the G-protein intermolecular dimer props open the mutase active site using residues of switch III as a wedge, allowing for AdoCbl insertion or damaged Cbl removal. With the series of structural snapshots now available, we now describe here the molecular basis of G-protein-assisted AdoCbl-dependent mutase maturation, explaining how GTP binding prepares a mutase for cofactor delivery and how GTP hydrolysis allows the mutase to capture the cofactor.


Subject(s)
Cobamides , Methylmalonyl-CoA Mutase , Models, Molecular , Molecular Chaperones , Cobamides/metabolism , GTP-Binding Proteins/chemistry , GTP-Binding Proteins/metabolism , Guanosine Triphosphate/metabolism , Isomerases/chemistry , Isomerases/metabolism , Methylmalonyl-CoA Mutase/chemistry , Methylmalonyl-CoA Mutase/metabolism , Molecular Chaperones/metabolism , Protein Subunits/chemistry , Protein Subunits/metabolism , Cupriavidus/chemistry , Cupriavidus/enzymology , Protein Structure, Quaternary , Catalytic Domain , Coenzymes/metabolism
17.
J Biol Chem ; 299(9): 105086, 2023 09.
Article in English | MEDLINE | ID: mdl-37495113

ABSTRACT

Reductive dehalogenases are corrinoid and iron-sulfur cluster-containing enzymes that catalyze the reductive removal of a halogen atom. The oxygen-sensitive and membrane-associated nature of the respiratory reductive dehalogenases has hindered their detailed kinetic study. In contrast, the evolutionarily related catabolic reductive dehalogenases are oxygen tolerant, with those that are naturally fused to a reductase domain with similarity to phthalate dioxygenase presenting attractive targets for further study. We present efficient heterologous expression of a self-sufficient catabolic reductive dehalogenase from Jhaorihella thermophila in Escherichia coli. Combining the use of maltose-binding protein as a solubility-enhancing tag with the btuCEDFB cobalamin uptake system affords up to 40% cobalamin occupancy and a full complement of iron-sulfur clusters. The enzyme is able to efficiently perform NADPH-dependent dehalogenation of brominated and iodinated phenolic compounds, including the flame retardant tetrabromobisphenol, under both anaerobic and aerobic conditions. NADPH consumption is tightly coupled to product formation. Surprisingly, corresponding chlorinated compounds only act as competitive inhibitors. Electron paramagnetic resonance spectroscopy reveals loss of the Co(II) signal observed in the resting state of the enzyme under steady-state conditions, suggesting accumulation of Co(I)/(III) species prior to the rate-limiting step. In vivo reductive debromination activity is readily observed, and when the enzyme is expressed in E. coli strain W, supports growth on 3-bromo-4-hydroxyphenylacetic as a sole carbon source. This demonstrates the potential for catabolic reductive dehalogenases for future application in bioremediation.


Subject(s)
Hydrolases , NADP , Rhodobacteraceae , Escherichia coli/genetics , NADP/metabolism , Oxygen/chemistry , Vitamin B 12/metabolism , Phenols/chemistry , Phenols/metabolism , Electron Spin Resonance Spectroscopy , Hydrolases/chemistry , Hydrolases/genetics , Hydrolases/isolation & purification , Hydrolases/metabolism , Rhodobacteraceae/enzymology , Rhodobacteraceae/genetics , Protein Structure, Tertiary , Models, Molecular , Maltose-Binding Proteins/genetics , Maltose-Binding Proteins/metabolism , Recombinant Fusion Proteins/metabolism , Coenzymes/metabolism
18.
Int J Mol Sci ; 24(14)2023 Jul 13.
Article in English | MEDLINE | ID: mdl-37511187

ABSTRACT

Isocitrate dehydrogenase (IDH) can be divided into NAD+-dependent and NADP+-dependent types based on the coenzyme specificity. It is worth noting that some IDHs exhibit dual coenzyme specificity characteristics. Herein, a dual coenzyme-dependent IDH from Umbonibacter Marinipuiceus (UmIDH) was expressed, purified, and identified in detail for the first time. SDS-PAGE and Gel filtration chromatography analyses showed that UmIDH is an 84.7 kDa homodimer in solution. The Km values for NAD+ and NADP+ are 1800.0 ± 64.4 µM and 1167.7 ± 113.0 µM in the presence of Mn2+, respectively. Meanwhile, the catalytic efficiency (kcat/Km) of UmIDH is only 2.3-fold greater for NADP+ than NAD+. The maximal activity for UmIDH occurred at pH 8.5 (with Mn2+) or pH 8.7 (with Mg2+) and at 35 °C (with Mn2+ or Mg2+). Heat inactivation assay revealed that UmIDH sustained 50% of maximal activity after incubation at 57 °C for 20 min with either Mn2+ or Mg2+. Moreover, three putative core coenzyme binding residues (R345, L346, and V352) of UmIDH were evaluated by site-directed mutagenesis. This recent work identified a unique dual coenzyme-dependent IDH and achieved the groundbreaking bidirectional modification of this specific IDH's coenzyme dependence for the first time. This provides not only a reference for the study of dual coenzyme-dependent IDH, but also a basis for the investigation of the coenzyme-specific evolutionary mechanisms of IDH.


Subject(s)
Coenzymes , NAD , Coenzymes/metabolism , NAD/metabolism , NADP/metabolism , Isocitrate Dehydrogenase/metabolism , Amino Acid Sequence , Kinetics
19.
Sheng Wu Gong Cheng Xue Bao ; 39(6): 2158-2189, 2023 Jun 25.
Article in Chinese | MEDLINE | ID: mdl-37401588

ABSTRACT

The synthesis of fine chemicals using multi-enzyme cascade reactions is a recent hot research topic in the field of biocatalysis. The traditional chemical synthesis methods were replaced by constructing in vitro multi-enzyme cascades, then the green synthesis of a variety of bifunctional chemicals can be achieved. This article summarizes the construction strategies of different types of multi-enzyme cascade reactions and their characteristics. In addition, the general methods for recruiting enzymes used in cascade reactions, as well as the regeneration of coenzyme such as NAD(P)H or ATP and their application in multi-enzyme cascade reactions are summarized. Finally, we illustrate the application of multi-enzyme cascades in the synthesis of six bifunctional chemicals, including ω-amino fatty acids, alkyl lactams, α, ω-dicarboxylic acids, α, ω-diamines, α, ω-diols, and ω-amino alcohols.


Subject(s)
Amino Acids , Amino Alcohols , Biocatalysis , Coenzymes/metabolism , Diamines
20.
J Am Chem Soc ; 145(24): 13357-13370, 2023 06 21.
Article in English | MEDLINE | ID: mdl-37278531

ABSTRACT

Coenzymes are involved in ≥30% of enzymatic reactions and likely predate enzymes, going back to prebiotic chemistry. However, they are considered poor organocatalysts, and thus their pre-enzymatic function remains unclear. Since metal ions are known to catalyze metabolic reactions in the absence of enzymes, here we explore the influence of metal ions on coenzyme catalysis under conditions relevant to the origin of life (20-75 °C, pH 5-7.5). Specifically, Fe or Al, the two most abundant metals in the Earth's crust, were found to exhibit substantial cooperative effects in transamination reactions catalyzed by pyridoxal (PL), a coenzyme scaffold used by roughly 4% of all enzymes. At 75 °C and 7.5 mol % loading of PL/metal ion, Fe3+-PL was found to be 90-fold faster at catalyzing transamination than PL alone and 174-fold faster than Fe3+ alone, whereas Al3+-PL was 85-fold faster than PL alone and 38-fold faster than Al3+ alone. Under milder conditions, reactions catalyzed by Al3+-PL were >1000 times faster than those catalyzed by PL alone. Pyridoxal phosphate (PLP) exhibited similar behavior to PL. Experimental and theoretical mechanistic studies indicate that the rate-determining step in the PL-metal-catalyzed transamination is different from metal-free and biological PL-based catalysis. Metal coordination to PL lowers the pKa of the PL-metal complex by several units and slows the hydrolysis of imine intermediates by up to 259-fold. Coenzymes, specifically pyridoxal derivatives, could have exhibited useful catalytic function even before enzymes.


Subject(s)
Pyridoxal Phosphate , Pyridoxal , Pyridoxal Phosphate/metabolism , Metals , Coenzymes/metabolism , Amination , Catalysis
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