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1.
Methods Enzymol ; 685: 57-93, 2023.
Article in English | MEDLINE | ID: mdl-37245915

ABSTRACT

Phosphate ester analogs in which the bridging oxygen is replaced with a methylene or fluoromethylene group are well known non-hydrolyzable mimics of use as inhibitors and substrate analogs for reactions involving phosphate esters. Properties of the replaced oxygen are often best mimicked by a mono-fluoromethylene group, but such groups are challenging to synthesize and can exist as two stereoisomers. Here, we describe the protocol for our method of synthesizing the α-fluoromethylene analogs of d-glucose 6-phosphate (G6P), as well as the methylene and difluoromethylene analogs, and their application in the study of 1l-myo-inositol-1-phosphate synthase (mIPS). mIPS catalyzes the synthesis of 1l-myo-inositol 1-phosphate (mI1P) from G6P, in an NAD-dependent aldol cyclization. Its key role in myo-inositol metabolism makes it a putative target for the treatment of several health disorders. The design of these inhibitors allowed for the possibility of substrate-like behavior, reversible inhibition, or mechanism-based inactivation. In this chapter, the synthesis of these compounds, expression and purification of recombinant hexahistidine-tagged mIPS, the mIPS kinetic assay and methods for determining the behavior of the phosphate analogs in the presence of mIPS, and a docking approach to rationalizing the observed behavior are described.


Subject(s)
Glucose-6-Phosphate , Organophosphonates , Myo-Inositol-1-Phosphate Synthase/chemistry , Myo-Inositol-1-Phosphate Synthase/metabolism , Phosphates , Glucose
2.
Angew Chem Int Ed Engl ; 62(6): e202214539, 2023 Feb 01.
Article in English | MEDLINE | ID: mdl-36484780

ABSTRACT

Michael addition reactions are highly useful in organic synthesis and are commonly accomplished using organocatalysts. However, the corresponding biocatalytic Michael additions are rare, typically lack synthetically useful substrate scope, and suffer from low stereoselectivity. Herein we report a biocatalytic nitro-Michael addition, catalyzed by NahE, that proceeds with low catalyst loading at room temperature in moderate to excellent enantioselectivity and high yields. A series of ß-nitrostyrenes reacted with pyruvate in the presence of NahE to give, after oxidative decarboxylation, ß-aryl-γ-nitrobutyric acids in up to 99 % yield without need for chromatography, providing a simple preparative-scale route to chiral GABA analogues. This reaction represents the first example of an aldolase displaying promiscuous Michaelase activity and opens the use of nitroalkenes in place of aldehydes as substrates for aldolases.

3.
Chembiochem ; 23(20): e202200285, 2022 10 19.
Article in English | MEDLINE | ID: mdl-35943842

ABSTRACT

Phosphonates are produced across all domains of life and used widely in medicine and agriculture. Biosynthesis almost universally originates from the enzyme phosphoenolpyruvate mutase (Ppm), EC 5.4.2.9, which catalyzes O-P bond cleavage in phosphoenolpyruvate (PEP) and forms a high energy C-P bond in phosphonopyruvate (PnPy). Mechanistic scrutiny of this unusual intramolecular O-to-C phosphoryl transfer began with the discovery of Ppm in 1988 and concluded in 2008 with computational evidence supporting a concerted phosphoryl transfer via a dissociative metaphosphate-like transition state. This mechanism deviates from the standard 'in-line attack' paradigm for enzymatic phosphoryl transfer that typically involves a phosphoryl-enzyme intermediate, but definitive evidence is sparse. Here we review the experimental evidence leading to our current mechanistic understanding and highlight the roles of previously underappreciated conserved active site residues. We then identify remaining opportunities to evaluate overlooked residues and unexamined substrates/inhibitors.


Subject(s)
Organophosphonates , Phosphotransferases (Phosphomutases) , Phosphoenolpyruvate/chemistry , Phosphotransferases (Phosphomutases)/chemistry , Catalysis
4.
Biochemistry ; 61(10): 868-878, 2022 05 17.
Article in English | MEDLINE | ID: mdl-35467843

ABSTRACT

The biosynthesis of myo-inositol (mI) is central to the function of many organisms across all kingdoms of life. The first and rate-limiting step in this pathway is catalyzed by 1l-myo-inositol 1-phosphate synthase (mIPS), which converts d-glucose 6-phosphate (G6P) into 1l-myo-inositol 1-phosphate (mI1P). Extensive studies have shown that this reaction occurs through a stepwise NAD+-dependent redox aldol cyclization mechanism producing enantiomerically pure mI1P. Although the stereochemical nature of the mechanism has been elucidated, there is a lack of understanding of the importance of amino acid residues in the active site. Crystal structures of mIPS in the ternary complex with substrate analogues and NAD(H) show different ligand orientations. We therefore proposed to use isosteric and isoelectronic analogues of G6P to probe the active site. Here, we report the synthesis of the methylenephosphonate, difluoromethylenephosphonate, and (R)- and (S)-monofluoromethylenephosphonate analogues of G6P and their evaluation as inhibitors of mIPS activity. While the CH2 and CF2 analogues were produced with slight modification of a previously described route, the CHF analogues were synthesized through a new, shorter pathway. Kinetic behavior shows that all compounds are reversible competitive inhibitors with respect to G6P, with Ki values in the order CF2 (0.18 mM) < (S)-CHF (0.24 mM) < (R)-CHF (0.59 mM) < CH2 (1.2 mM). Docking studies of these phosphonates using published crystal structures show that substitution of the oxygen atom of the substrate changes the conformation of the resulting inhibitors, altering the position of carbon-6 and carbon-5, and this change is more pronounced with fluorine substitution.


Subject(s)
Myo-Inositol-1-Phosphate Synthase , Organophosphonates , Carbon , Catalytic Domain , Glucose , Glucose-6-Phosphate , Inositol Phosphates , Myo-Inositol-1-Phosphate Synthase/chemistry , NAD/metabolism , Organophosphonates/chemistry , Phosphates
5.
J Bacteriol ; 203(17): e0021321, 2021 08 09.
Article in English | MEDLINE | ID: mdl-34124938

ABSTRACT

Gardnerella spp. in the vaginal microbiome are associated with bacterial vaginosis, in which a lactobacillus-dominated community is replaced with mixed bacteria, including Gardnerella species. Co-occurrence of multiple Gardnerella species in the vaginal environment is common, but different species are dominant in different women. Competition for nutrients, including glycogen, could play an important role in determining the microbial community structure. Digestion of glycogen into products that can be taken up and further processed by bacteria requires the combined activities of several enzymes collectively known as amylases, which belong to glycoside hydrolase family 13 (GH13) within the CAZy classification system. GH13 is a large and diverse family of proteins, making prediction of their activities challenging. SACCHARIS annotation of the GH13 family in Gardnerella resulted in identification of protein domains belonging to eight subfamilies. Phylogenetic analysis of predicted amylase sequences from 26 genomes demonstrated that a putative α-glucosidase-encoding sequence, CG400_06090, was conserved in all Gardnerella spp. The predicted α-glucosidase enzyme was expressed, purified, and functionally characterized. The enzyme was active on a variety of maltooligosaccharides with maximum activity at pH 7. Km, kcat, and kcat/Km values for the substrate 4-nitrophenyl α-d-glucopyranoside were 8.3 µM, 0.96 min-1, and 0.11 µM-1 min-1, respectively. Glucose was released from maltose, maltotriose, maltotetraose, and maltopentaose, but no products were detected when the enzyme was incubated with glycogen. Our findings show that Gardnerella spp. produce an α-glucosidase enzyme that may contribute to the multistep process of glycogen metabolism by releasing glucose from maltooligosaccharides. IMPORTANCE Increased abundance of Gardnerella spp. is a diagnostic characteristic of bacterial vaginosis, an imbalance in the human vaginal microbiome associated with troubling symptoms, and negative reproductive health outcomes, including increased transmission of sexually transmitted infections and preterm birth. Competition for nutrients is likely an important factor in causing dramatic shifts in the vaginal microbial community but little is known about the contribution of bacterial enzymes to the metabolism of glycogen, a major carbon source available to vaginal bacteria. The significance of our research is characterizing the activity of an enzyme conserved in Gardnerella species that likely contributes to the ability of these bacteria to utilize glycogen.


Subject(s)
Bacterial Proteins/chemistry , Gardnerella/enzymology , Gardnerella/isolation & purification , Microbiota , Vagina/microbiology , alpha-Glucosidases/chemistry , Amino Acid Sequence , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Enzyme Stability , Female , Gardnerella/classification , Gardnerella/genetics , Humans , Hydrogen-Ion Concentration , Kinetics , Phylogeny , Sequence Alignment , Temperature , alpha-Glucosidases/genetics , alpha-Glucosidases/metabolism
6.
Biochemistry ; 60(24): 1926-1932, 2021 06 22.
Article in English | MEDLINE | ID: mdl-34096710

ABSTRACT

Kanosamine is an antibiotic and antifungal compound synthesized from glucose 6-phosphate (G6P) in Bacillus subtilis by the action of three enzymes: NtdC, which catalyzes NAD-dependent oxidation of the C3-hydroxyl; NtdA, a PLP-dependent aminotransferase; and NtdB, a phosphatase. We previously demonstrated that NtdC can also oxidize substrates such as glucose and xylose, though at much lower rates, suggesting that the phosphoryloxymethylene moiety of the substrate is critical for effective catalysis. To probe this, we synthesized two phosphonate analogues of G6P in which the bridging oxygen is replaced by methylene and difluoromethylene groups. These analogues are substrates for NtdC, with second-order rate constants an order of magnitude lower than those for G6P. NtdA converts the resulting 3-keto products to the corresponding kanosamine 6-phosphonate analogues. We compared the rates to the rate of NtdC oxidation of glucose and xylose and showed that the low reactivity of xylose could be rescued 4-fold by the presence of phosphite, mimicking G6P in two pieces. These results allow the evaluation of the individual energetic contributions to catalysis of the bridging oxygen, the bridging C6 methylene, the phosphodianion, and the entropic gain of one substrate versus two substrate pieces. Phosphite also rescued the reversible formation 3-amino-3-deoxy-d-xylose by NtdA, demonstrating that truncated and nonhydrolyzable analogues of kanosamine 6-phosphate can be generated enzymatically.


Subject(s)
Organophosphonates/chemistry , Phosphites/chemistry , Bacillus subtilis/metabolism , Catalysis , Glucosamine/biosynthesis , Glucosamine/chemistry , Glucosamine/metabolism , Glucose/metabolism , Glucose-6-Phosphate , Kinetics , Organophosphonates/metabolism , Oxidation-Reduction , Phosphites/metabolism , Transaminases/metabolism , Xylose/metabolism
7.
J Struct Biol ; 213(2): 107744, 2021 06.
Article in English | MEDLINE | ID: mdl-33984505

ABSTRACT

Kanosamine is an antibiotic and antifungal monosaccharide. The kanosamine biosynthetic pathway from glucose 6-phosphate in Bacillus cereus UW85 was recently reported, and the functions of each of the three enzymes in the pathway, KabA, KabB and KabC, were demonstrated. KabA, a member of a subclass of the VIß family of PLP-dependent aminotransferases, catalyzes the second step in the pathway, generating kanosamine 6-phosphate (K6P) using l-glutamate as the amino-donor. KabA catalysis was shown to be extremely efficient, with a second-order rate constant with respect to K6P transamination of over 107 M-1s-1. Here we report the high-resolution structure of KabA in both the PLP- and PMP-bound forms. In addition, co-crystallization with K6P allowed the structure of KabA in complex with the covalent PLP-K6P adduct to be solved. Co-crystallization or soaking with glutamate or 2-oxoglutarate did not result in crystals with either substrate/product. Reduction of the PLP-KabA complex with sodium cyanoborohydride gave an inactivated enzyme, and crystals of the reduced KabA were soaked with the l-glutamate analog glutarate to mimic the KabA-PLP-l-glutamate complex. Together these four structures give a complete picture of how the active site of KabA recognizes substrates for each half-reaction. The KabA structure is discussed in the context of homologous aminotransferases.


Subject(s)
Bacillus cereus/metabolism , Bacterial Proteins/chemistry , Transaminases/chemistry , Transaminases/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/isolation & purification , Bacterial Proteins/metabolism , Binding Sites , Catalysis , Catalytic Domain , Coenzymes/metabolism , Crystallography, X-Ray , Glucosamine/biosynthesis , Glutarates/chemistry , Glutarates/metabolism , Lysine/metabolism , Models, Molecular , Protein Conformation , Pyridoxal Phosphate/metabolism , Transaminases/genetics , Transaminases/isolation & purification
8.
Biochemistry ; 59(32): 2974-2985, 2020 08 18.
Article in English | MEDLINE | ID: mdl-32786400

ABSTRACT

myo-Inositol (mI) is widely distributed in all domains of life and is important for several cellular functions, including bacterial survival. The enzymes responsible for the bacterial catabolism of mI, encoded in the iol operon, can vary from one organism to another, and these pathways have yet to be fully characterized. We previously identified a new scyllo-inositol dehydrogenase (sIDH) in the iol operon of Lactobacillus casei that can oxidize mI in addition to the natural substrate, scyllo-inositol, but the product of mI oxidation was not determined. Here we report the identification of these metabolites by monitoring the reaction with 13C nuclear magnetic resonance. We prepared all six singly 13C-labeled mI isotopomers through a biocatalytic approach and used these labeled inositols as substrates for sIDH. The use of all six singly labeled mI isotopomers allowed for metabolite characterization without isolation steps. sIDH oxidation of mI produces 1l-5-myo-inosose preferentially, but also two minor products, 1d-chiro-inosose and 1l-chiro-inosose. Together with previous crystal structure data for sIDH, we were able to rationalize the observed oxidation preference. Our relatively simple procedure for the preparation of isotopically labeled mI standards can have broad applications for the study of mI biotransformations.


Subject(s)
Carbon Isotopes/chemistry , Inositol/chemistry , Inositol/metabolism , Lacticaseibacillus casei/metabolism , Oxidation-Reduction
9.
ACS Chem Biol ; 15(8): 2205-2211, 2020 08 21.
Article in English | MEDLINE | ID: mdl-32786294

ABSTRACT

NtdC is an NAD-dependent dehydrogenase that catalyzes the conversion of glucose 6-phosphate (G6P) to 3-oxo-glucose 6-phosphate (3oG6P), the first step in kanosamine biosynthesis in Bacillus subtilis and other closely-related bacteria. The NtdC-catalyzed reaction is unusual because 3oG6P undergoes rapid ring opening, resulting in a 1,3-dicarbonyl compound that is inherently unstable due to enolate formation. We have reported the steady-state kinetic behavior of NtdC, but many questions remain about the nature of this reaction, including whether it is the α-anomer, ß-anomer, or open-chain form that is the substrate for the enzyme. Here, we report the synthesis of carbocyclic G6P analogues by two routes, one based upon the Ferrier II rearrangement to generate the carbocycle and one based upon a Claisen rearrangement. We were able to synthesize both pseudo-anomers of carbaglucose 6-phosphate (C6P) using the Ferrier approach, and activity assays revealed that the pseudo-α-anomer is a good substrate for NtdC, while the pseudo-ß-anomer and the open-chain analogue, sorbitol 6-phosphate (S6P), are not substrates. A more efficient synthesis of α-C6P was achieved using the Claisen rearrangement approach, which allowed for a thorough evaluation of the NtdC-catalyzed oxidation of α-C6P. The requirement for the α-anomer indicates that NtdC and NtdA, the subsequent enzyme in the pathway, have co-evolved to recognize the α-anomer in order to avoid mutarotation between enzymatic steps.


Subject(s)
Glucose-6-Phosphate/metabolism , Bacillus subtilis/metabolism , Catalysis , Glucosamine/biosynthesis , Kinetics , Substrate Specificity
10.
J Struct Biol ; 209(1): 107409, 2020 01 01.
Article in English | MEDLINE | ID: mdl-31678256

ABSTRACT

Dihydrodipicolinate synthase (DHDPS) from Campylobacter jejuni is a natively homotetrameric enzyme that catalyzes the first unique reaction of (S)-lysine biosynthesis and is feedback-regulated by lysine through binding to an allosteric site. High-resolution structures of the DHDPS-lysine complex have revealed significant insights into the binding events. One key asparagine residue, N84, makes hydrogen bonds with both the carboxyl and the α-amino group of the bound lysine. We generated two mutants, N84A and N84D, to study the effects of these changes on the allosteric site properties. However, under normal assay conditions, N84A displayed notably lower catalytic activity, and N84D showed no activity. Here we show that these mutations disrupt the quaternary structure of DHDPS in a concentration-dependent fashion, as demonstrated by size-exclusion chromatography, multi-angle light scattering, dynamic light scattering, small-angle X-ray scattering (SAXS) and high-resolution protein crystallography.


Subject(s)
Asparagine/genetics , Campylobacter jejuni/enzymology , Hydro-Lyases/genetics , Protein Structure, Quaternary , Allosteric Regulation/genetics , Asparagine/chemistry , Hydro-Lyases/chemistry , Hydro-Lyases/ultrastructure
11.
Arch Biochem Biophys ; 676: 108139, 2019 11 15.
Article in English | MEDLINE | ID: mdl-31622586

ABSTRACT

Kanosamine is an aminosugar antibiotic, and component of complex antibiotics such as kanamycin. The biosynthesis of kanosamine varies among different bacteria; best known is a pathway starting from UDP-glucose, but Bacillus subtilis can produce kanosamine in a three-step pathway from glucose 6-phosphate. A set of genes proposed to encode a kanosamine pathway has previously been identified within the zwittermicin A gene cluster of Bacillus cereus UW85. These genes, designated kabABC, are similar to the B. subtilis kanosamine pathway genes (ntdABC), but have never been studied experimentally. We have expressed each of the kab genes, and studied the in vitro substrate scope and reaction rates and kinetic mechanisms of all three enzymes. The kab genes encode enzymes that catalyze a route similar to that found in B. subtilis from glucose 6-phosphate to kanosamine, passing through an unusual and unstable 3-keto intermediate. Kinetic studies show the first step in the pathway, the KabC-catalyzed oxidation of glucose 6-phosphate at carbon-3, is very slow relative to the subsequent KabA-catalyzed aminotransferase and KabB-catalyzed phosphatase reactions. KabC differs from its homolog, NtdC, in that it is NADP- rather than NAD-dependent. The KabA kinetic study is the first such report for a kanosamine 6-phosphate aminotransferase, revealing an extremely efficient PLP-dependent reaction. These results show that this kanosamine biosynthesis pathway occurs in more than one organism, and that the reactions are tuned in order to avoid any accumulation of the unstable intermediate.


Subject(s)
Bacillus cereus/metabolism , Bacterial Proteins/metabolism , Bacillus cereus/enzymology , Biocatalysis , Coenzymes/metabolism , Glucosamine/biosynthesis , Kinetics , Niacinamide/metabolism
12.
Biochim Biophys Acta Proteins Proteom ; 1866(11): 1115-1124, 2018 11.
Article in English | MEDLINE | ID: mdl-30282609

ABSTRACT

Many bacteria can use myo-inositol as the sole carbon source using enzymes encoded in the iol operon. The first step is catalyzed by the well-characterized myo-inositol dehydrogenase (mIDH), which oxidizes the axial hydroxyl group of the substrate to form scyllo-inosose. Some bacteria, including Lactobacillus casei, contain more than one apparent mIDH-encoding gene in the iol operon, but such redundant enzymes have not been investigated. scyllo-Inositol, a stereoisomer of myo-inositol, is not a substrate for mIDH, but scyllo-inositol dehydrogenase (sIDH) enzymes have been reported, though never observed to be encoded within the iol operon. Sequences indicate these enzymes are related, but the structural basis by which they distinguish their substrates has not been determined. Here we report the substrate selectivity, kinetics, and high-resolution crystal structures of the proteins encoded by iolG1 and iolG2 from L. casei BL23, which we show encode a mIDH and sIDH, respectively. Comparison of the ternary complex of each enzyme with its preferred substrate reveals the key variations allowing for oxidation of an equatorial versus an axial hydroxyl group. Despite the overall similarity of the active site residues, scyllo-inositol is bound in an inverted, tilted orientation by sIDH relative to the orientation of myo-inositol by mIDH.


Subject(s)
Bacterial Proteins/metabolism , Genes, Bacterial , Lacticaseibacillus casei/enzymology , Sugar Alcohol Dehydrogenases/metabolism , Bacterial Proteins/genetics , Catalysis , Cloning, Molecular , Crystallization , Crystallography, X-Ray , DNA, Bacterial/genetics , Gene Expression Regulation, Bacterial , Inositol/metabolism , Lacticaseibacillus casei/genetics , Operon , Protein Conformation , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Sugar Alcohol Dehydrogenases/genetics
13.
Biochemistry ; 56(14): 2001-2009, 2017 04 11.
Article in English | MEDLINE | ID: mdl-28353336

ABSTRACT

Glucose-6-phosphate 3-dehydrogenase (NtdC) is an NAD-dependent oxidoreductase encoded in the NTD operon of Bacillus subtilis. The oxidation of glucose 6-phosphate by NtdC is the first step in kanosamine biosynthesis. The product, 3-oxo-d-glucose 6-phosphate (3oG6P), has never been synthesized or isolated. The NtdC-catalyzed reaction is very slow at low and neutral pH, and its rate increases to a maximum near pH 9.5. However, under alkaline conditions, the product is not stable because of ring opening followed by deprotonation of the 1,3-dicarbonyl compound. The absorbance band due to this enolate at 310 nm overlaps with that of the other enzymatic product, NADH, complicating kinetic measurements. We report the deconvolution of the resulting spectra of the reaction to determine the rate constants and likely kinetic mechanism. In doing so, we were able to determine the extinction coefficient of the enolate of 3oG6P (23000 M-1 cm-1), which allowed the measurement of the first-order rate constant (5.51 × 10-3 s-1) and activation energy (93 kJ mol-1) of nonenzymatic enolate formation. Using deuterium-labeled substrates, we show that hydride transfer from carbon 3 is partially rate-limiting in the enzymatic reaction, and deuterium substitution on carbon 2 has no significant effect on the enzymatic reaction but lowers the rate of deprotonation of 3oG6P 4-fold. These experiments clearly establish the regiochemistry of the reactions. Coupling of the NtdC reaction with the subsequent step in the pathway, NtdA-catalyzed glutamate-dependent amino transfer, has a small but significant effect on the rate of NAD reduction, consistent with these enzymes working together to process the unstable metabolite.


Subject(s)
Bacillus subtilis/metabolism , Bacterial Proteins/metabolism , Gene Expression Regulation, Bacterial , Glucosephosphate Dehydrogenase/metabolism , Protons , Bacillus subtilis/genetics , Bacterial Proteins/genetics , Biocatalysis , Deuterium , Escherichia coli/genetics , Escherichia coli/metabolism , Glucosamine/biosynthesis , Glucose-6-Phosphate , Glucosephosphate Dehydrogenase/genetics , Glutamic Acid/metabolism , Hydrogen-Ion Concentration , Kinetics , NAD/metabolism , Operon , Oxidation-Reduction , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Thermodynamics
14.
Biochemistry ; 55(38): 5413-22, 2016 09 27.
Article in English | MEDLINE | ID: mdl-27604304

ABSTRACT

Dihydrodipicolinate synthase is a tetrameric enzyme of the diaminopimelate pathway in bacteria and plants. The protein catalyzes the condensation of pyruvate (Pyr) and aspartate semialdehyde en route to the end product lysine (Lys). Dihydrodipicolinate synthase from Campylobacter jejuni (CjDHDPS) is allosterically inhibited by Lys. CjDHDPS is a promising antibiotic target, as highlighted by the recent development of a potent bis-lysine (bisLys) inhibitor. The mechanism whereby Lys and bisLys allosterically inhibit CjDHDPS remains poorly understood. In contrast to the case for other allosteric enzymes, crystallographically detectable conformational changes in CjDHDPS upon inhibitor binding are very minor. Also, it is difficult to envision how Pyr can access the active site; the available X-ray data seemingly imply that each turnover step requires diffusion-based mass transfer through a narrow access channel. This study employs hydrogen/deuterium exchange mass spectrometry for probing the structure and dynamics of CjDHDPS in a native solution environment. The deuteration kinetics reveal that the most dynamic protein regions are in the direct vicinity of the substrate access channel. This finding is consistent with the view that transient opening/closing fluctuations facilitate access of the substrate to the active site. Under saturating conditions, both Lys and bisLys cause dramatically reduced dynamics in the inhibitor binding region. In addition, rigidification extends to regions close to the substrate access channel. This finding strongly suggests that allosteric inhibitors interfere with conformational fluctuations that are required for CjDHDPS substrate turnover. In particular, our data imply that Lys and bisLys suppress opening/closing events of the access channel, thereby impeding diffusion of the substrate into the active site. Overall, this work illustrates why allosteric control does not have to be associated with crystallographically detectable large-scale transitions. Our experiments provide evidence that in CjDHDPS allostery is mediated by changes in the extent of thermally activated conformational fluctuations.


Subject(s)
Hydro-Lyases/chemistry , Allosteric Regulation , Crystallography, X-Ray , Deuterium/chemistry , Hydrogen/chemistry , Protein Conformation
15.
J Am Chem Soc ; 138(6): 2014-20, 2016 Feb 17.
Article in English | MEDLINE | ID: mdl-26836694

ABSTRACT

Dihydrodipicolinate synthase (DHDPS), an enzyme required for bacterial peptidoglycan biosynthesis, catalyzes the condensation of pyruvate and ß-aspartate semialdehyde (ASA) to form a cyclic product which dehydrates to form dihydrodipicolinate. DHDPS has, for several years, been considered a putative target for novel antibiotics. We have designed the first potent inhibitor of this enzyme by mimicking its natural allosteric regulation by lysine, and obtained a crystal structure of the protein-inhibitor complex at 2.2 Å resolution. This novel inhibitor, which we named "bislysine", resembles two lysine molecules linked by an ethylene bridge between the α-carbon atoms. Bislysine is a mixed partial inhibitor with respect to the first substrate, pyruvate, and a noncompetitive partial inhibitor with respect to ASA, and binds to all forms of the enzyme with a Ki near 200 nM, more than 300 times more tightly than lysine. Hill plots show that the inhibition is cooperative, indicating that the allosteric sites are not independent despite being located on opposite sides of the protein tetramer, separated by approximately 50 Å. A mutant enzyme resistant to lysine inhibition, Y110F, is strongly inhibited by this novel inhibitor, suggesting this may be a promising strategy for antibiotic development.


Subject(s)
Biomimetics , Campylobacter jejuni/enzymology , Enzyme Inhibitors/pharmacology , Hydro-Lyases/antagonists & inhibitors , Allosteric Regulation , Crystallography, X-Ray , Enzyme Inhibitors/chemistry
16.
PLoS One ; 10(7): e0133033, 2015.
Article in English | MEDLINE | ID: mdl-26197050

ABSTRACT

Abscisic acid ((+)-ABA) is a phytohormone involved in the modulation of developmental processes and stress responses in plants. A chemical proteomics approach using an ABA mimetic probe was combined with in vitro assays, isothermal titration calorimetry (ITC), x-ray crystallography and in silico modelling to identify putative (+)-ABA binding-proteins in crude extracts of Arabidopsis thaliana. Ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) was identified as a putative ABA-binding protein. Radiolabelled-binding assays yielded a Kd of 47 nM for (+)-ABA binding to spinach Rubisco, which was validated by ITC, and found to be similar to reported and experimentally derived values for the native ribulose-1,5-bisphosphate (RuBP) substrate. Functionally, (+)-ABA caused only weak inhibition of Rubisco catalytic activity (Ki of 2.1 mM), but more potent inhibition of Rubisco activation (Ki of ~ 130 µM). Comparative structural analysis of Rubisco in the presence of (+)-ABA with RuBP in the active site revealed only a putative low occupancy (+)-ABA binding site on the surface of the large subunit at a location distal from the active site. However, subtle distortions in electron density in the binding pocket and in silico docking support the possibility of a higher affinity (+)-ABA binding site in the RuBP binding pocket. Overall we conclude that (+)-ABA interacts with Rubisco. While the low occupancy (+)-ABA binding site and weak non-competitive inhibition of catalysis may not be relevant, the high affinity site may allow ABA to act as a negative effector of Rubisco activation.


Subject(s)
Abscisic Acid/metabolism , Ribulose-Bisphosphate Carboxylase/chemistry , Abscisic Acid/chemistry , Amino Acid Sequence , Arabidopsis/metabolism , Binding Sites , Molecular Sequence Data , Protein Binding , Ribulose-Bisphosphate Carboxylase/metabolism
17.
Biochemistry ; 53(47): 7396-406, 2014 Dec 02.
Article in English | MEDLINE | ID: mdl-25369463

ABSTRACT

Dihydrodipicolinate synthase (DHDPS), an enzyme found in most bacteria and plants, controls a critical step in the biosynthesis of l-lysine and meso-diaminopimelate, necessary components for bacterial cell wall biosynthesis. DHDPS catalyzes the condensation of pyruvate and (S)-aspartate-ß-semialdehyde, forming an unstable product that is dehydrated to dihydrodipicolinate. The tetrameric enzyme is allosterically inhibited by l-lysine, and a better understanding of the allosteric inhibition mechanism is necessary for the design of potent antibacterial therapeutics. Here we describe the high-resolution crystal structures of DHDPS from Campylobacter jejuni with and without its inhibitor bound to the allosteric sites. These structures reveal a role for Y110 in the regulation of the allosteric inhibition by lysine. Mutation of Y110 to phenylalanine results in insensitivity to lysine inhibition, although the mutant crystal structure reveals that lysine does bind in the allosteric site. Comparison of the lysine-bound Y110F structure with wild-type structures reveals that key structural changes due to lysine binding are absent in this mutant.


Subject(s)
Campylobacter jejuni/enzymology , Enzyme Inhibitors/pharmacology , Hydro-Lyases/chemistry , Hydro-Lyases/metabolism , Lysine/pharmacology , Tyrosine/metabolism , Allosteric Regulation/drug effects , Catalytic Domain/drug effects , Enzyme Inhibitors/metabolism , Hydro-Lyases/antagonists & inhibitors , Hydro-Lyases/genetics , Ligands , Lysine/metabolism , Models, Molecular , Movement , Mutagenesis, Site-Directed , Mutation
18.
Acta Crystallogr F Struct Biol Commun ; 70(Pt 7): 979-83, 2014 Jul.
Article in English | MEDLINE | ID: mdl-25005103

ABSTRACT

Lactobacillus casei BL23 contains two genes, iolG1 and iolG2, homologous with inositol dehydrogenase encoding genes from many bacteria. Inositol dehydrogenase catalyzes the oxidation of inositol with concomitant reduction of NAD+. The protein encoded by iolG2, LcIDH2, has been purified to homogeneity, crystallized and cryoprotected for diffraction at 77 K. The crystals had a high mosaicity and poor processing statistics. Subsequent diffraction measurements were performed without cryoprotectant at room temperature. These crystals were radiation-resistant and a full diffraction data set was collected at room temperature to 1.6 Šresolution.


Subject(s)
Bacterial Proteins/chemistry , Lacticaseibacillus casei/chemistry , Sugar Alcohol Dehydrogenases/chemistry , Amino Acid Sequence , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Cloning, Molecular , Crystallization , Crystallography, X-Ray , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Lacticaseibacillus casei/enzymology , Molecular Sequence Data , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Sequence Alignment , Sequence Homology, Amino Acid , Sugar Alcohol Dehydrogenases/genetics , Sugar Alcohol Dehydrogenases/metabolism
19.
J Biol Chem ; 288(47): 34121-34130, 2013 Nov 22.
Article in English | MEDLINE | ID: mdl-24097983

ABSTRACT

NtdA from Bacillus subtilis is a sugar aminotransferase that catalyzes the pyridoxal phosphate-dependent equatorial transamination of 3-oxo-α-D-glucose 6-phosphate to form α-D-kanosamine 6-phosphate. The crystal structure of NtdA shows that NtdA shares the common aspartate aminotransferase fold (Type 1) with residues from both monomers forming the active site. The crystal structures of NtdA alone, co-crystallized with the product α-D-kanosamine 6-phosphate, and incubated with the amine donor glutamate reveal three key structures in the mechanistic pathway of NtdA. The structure of NtdA alone reveals the internal aldimine form of NtdA with the cofactor pyridoxal phosphate covalently attached to Lys-247. The addition of glutamate results in formation of pyridoxamine phosphate. Co-crystallization with kanosamine 6-phosphate results in the formation of the external aldimine. Only α-D-kanosamine 6-phosphate is observed in the active site of NtdA, not the ß-anomer. A comparison of the structure and sequence of NtdA with other sugar aminotransferases enables us to propose that the VIß family of aminotransferases should be divided into subfamilies based on the catalytic lysine motif.


Subject(s)
Bacillus subtilis/enzymology , Bacterial Proteins/chemistry , Transaminases/chemistry , Amino Acid Motifs , Bacterial Proteins/metabolism , Catalytic Domain , Crystallography, X-Ray , Glucosamine/biosynthesis , Glucosamine/chemistry , Pyridoxal Phosphate/chemistry , Pyridoxal Phosphate/metabolism , Pyridoxamine/analogs & derivatives , Pyridoxamine/chemistry , Pyridoxamine/metabolism , Structural Homology, Protein , Transaminases/metabolism
20.
Biochemistry ; 52(34): 5876-83, 2013 Aug 27.
Article in English | MEDLINE | ID: mdl-23952058

ABSTRACT

myo-Inositol dehydrogenase (IDH, EC 1.1.1.18) from Bacillus subtilis converts myo-inositol to scyllo-inosose and is strictly dependent on NAD for activity. We sought to alter the coenzyme specificity to generate an NADP-dependent enzyme in order to enhance our understanding of coenzyme selectivity and to create an enzyme capable of recycling NADP in biocatalytic processes. Examination of available structural information related to the GFO/MocA/IDH family of dehydrogenases and precedents for altering coenzyme selectivity allowed us to select residues for substitution, and nine single, double, and triple mutants were constructed. Mutagenesis experiments with B. subtilis IDH proved extremely successful; the double mutant D35S/V36R preferred NADP to NAD by a factor of 5. This mutant is an excellent catalyst with a second-order rate constant with respect to NADP of 370 000 s⁻¹ M⁻¹, and the triple mutant A12K/D35S/V36R had a value of 570 000 s⁻¹ M⁻¹, higher than that of the wild-type IDH with NAD. The high-resolution X-ray crystal structure of the double mutant A12K/D35S was solved in complex with NADP. Surprisingly, the binding of the coenzyme is altered such that although the nicotinamide ring maintains the required position for catalysis, the coenzyme has twisted by nearly 90°, so the adenine moiety no longer binds to a hydrophobic cleft in the Rossmann fold as in the wild-type enzyme. This change in binding conformation has not previously been observed in mutated dehydrogenases.


Subject(s)
NADP/metabolism , Sugar Alcohol Dehydrogenases/metabolism , Amino Acid Sequence , Catalysis , Crystallography, X-Ray , Kinetics , Molecular Conformation , Mutagenesis, Site-Directed , NAD/metabolism , Substrate Specificity , Sugar Alcohol Dehydrogenases/genetics
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