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1.
PLoS One ; 18(4): e0280975, 2023.
Article in English | MEDLINE | ID: mdl-37079572

ABSTRACT

Nucleotide Sugar Transporters (NSTs) belong to the SLC35 family (human solute carrier) of membrane transport proteins and are crucial components of the glycosylation machinery. NSTs are localized in the ER and Golgi apparatus membranes, where they accumulate nucleotide sugars from the cytosol for subsequent polysaccharide biosynthesis. Loss of NST function impacts the glycosylation of cell surface molecules. Mutations in NSTs cause several developmental disorders, immune disorders, and increased susceptibility to infection. Atomic resolution structures of three NSTs have provided a blueprint for a detailed molecular interpretation of their biochemical properties. In this work, we have identified, cloned, and expressed 18 members of the SLC35 family from various eukaryotic organisms in Saccharomyces cerevisiae. Out of 18 clones, we determined Vrg4 from Chaetomium thermophilum (CtVrg4) is a GDP-mannose transporter with an enhanced melting point temperature (Tm) of 56.9°C, which increases with the addition of substrates, GMP and GDP-mannose. In addition, we report-for the first time-that the CtVrg4 shows an affinity to bind to phosphatidylinositol lipids.


Subject(s)
Carrier Proteins , Saccharomyces cerevisiae Proteins , Humans , Carrier Proteins/metabolism , Biological Transport , Saccharomyces cerevisiae/genetics , Glycosylation , Nucleotides/metabolism , Golgi Apparatus/metabolism , Membrane Transport Proteins/metabolism , Saccharomyces cerevisiae Proteins/metabolism
2.
J Biol Chem ; 297(4): 101113, 2021 10.
Article in English | MEDLINE | ID: mdl-34437902

ABSTRACT

There are five known general catalytic mechanisms used by enzymes to catalyze carbohydrate epimerization. The amino sugar epimerase N-acetylmannosamine-6-phosphate 2-epimerase (NanE) has been proposed to use a deprotonation-reprotonation mechanism, with an essential catalytic lysine required for both steps. However, the structural determinants of this mechanism are not clearly established. We characterized NanE from Staphylococcus aureus using a new coupled assay to monitor NanE catalysis in real time and found that it has kinetic constants comparable with other species. The crystal structure of NanE from Staphylococcus aureus, which comprises a triosephosphate isomerase barrel fold with an unusual dimeric architecture, was solved with both natural and modified substrates. Using these substrate-bound structures, we identified the following active-site residues lining the cleft at the C-terminal end of the ß-strands: Gln11, Arg40, Lys63, Asp124, Glu180, and Arg208, which were individually substituted and assessed in relation to the mechanism. From this, we re-evaluated the central role of Glu180 in this mechanism alongside the catalytic lysine. We observed that the substrate is bound in a conformation that ideally positions the C5 hydroxyl group to be activated by Glu180 and donate a proton to the C2 carbon. Taken together, we propose that NanE uses a novel substrate-assisted proton displacement mechanism to invert the C2 stereocenter of N-acetylmannosamine-6-phosphate. Our data and mechanistic interpretation may be useful in the development of inhibitors of this enzyme or in enzyme engineering to produce biocatalysts capable of changing the stereochemistry of molecules that are not amenable to synthetic methods.


Subject(s)
Bacterial Proteins/chemistry , Carbohydrate Epimerases/chemistry , Hexosamines/chemistry , Staphylococcus aureus/enzymology , Sugar Phosphates/chemistry , Amino Acid Substitution , Bacterial Proteins/genetics , Carbohydrate Epimerases/genetics , Catalysis , Hexosamines/genetics , Hexosamines/metabolism , Mutation, Missense , Protein Conformation, beta-Strand , Protein Domains , Staphylococcus aureus/genetics , Sugar Phosphates/genetics , Sugar Phosphates/metabolism
3.
Proteins ; 2020 Aug 31.
Article in English | MEDLINE | ID: mdl-32865821

ABSTRACT

N-acetylglucosamine 6-phosphate deacetylase (NagA) catalyzes the conversion of N-acetylglucosamine-6-phosphate to glucosamine-6-phosphate in amino sugar catabolism. This conversion is an essential step in the catabolism of sialic acid in several pathogenic bacteria, including Pasteurella multocida, and thus NagA is identified as a potential drug target. Here, we report the unique structural features of NagA from P. multocida (PmNagA) resolved to 1.95 Å. PmNagA displays an altered quaternary architecture with unique interface interactions compared to its close homolog, the Escherichia coli NagA (EcNagA). We confirmed that the altered quaternary structure is not a crystallographic artifact using single particle electron cryo-microscopy. Analysis of the determined crystal structure reveals a set of hot-spot residues involved in novel interactions at the dimer-dimer interface. PmNagA binds to one Zn2+ ion in the active site and demonstrates kinetic parameters comparable to other bacterial homologs. Kinetic studies reveal that at high substrate concentrations (~10-fold the KM ), the tetrameric PmNagA displays hysteresis similar to its distant neighbor, the dimeric Staphylococcus aureus NagA (SaNagA). Our findings provide key information on structural and functional properties of NagA in P. multocida that could be utilized to design novel antibacterials.

4.
Acta Crystallogr F Struct Biol Commun ; 74(Pt 7): 431-440, 2018 07 01.
Article in English | MEDLINE | ID: mdl-29969107

ABSTRACT

Sialic acids are nine-carbon sugars that are found abundantly on the cell surfaces of mammals as glycoprotein or glycolipid complexes. Several Gram-negative and Gram-positive bacteria have the ability to scavenge and catabolize sialic acids to use as a carbon source. This gives them an advantage in colonizing sialic acid-rich environments. The genes of the sialic acid catabolic pathway are generally present as the operon nanAKE. The third gene in the operon encodes the enzyme N-acetylmannosamine-6-phosphate 2-epimerase (NanE), which catalyzes the conversion of N-acetylmannosamine 6-phosphate to N-acetylglucosamine 6-phosphate, thus committing it to enter glycolysis. The NanE enzyme belongs to the isomerase class of enzymes possessing the triose phosphate isomerase (TIM) barrel fold. Here, comparative structural and functional characterizations of the NanE epimerases from two pathogenic Gram-negative bacteria, Fusobacterium nucleatum (Fn) and Vibrio cholerae (Vc), have been carried out. Structures of NanE from Vc (VcNanE) with and without ligand bound have been determined to 1.7 and 2.7 Šresolution, respectively. The structure of NanE from Fn (FnNanE) has been determined to 2.2 Šresolution. The enzymes show kinetic parameters that are consistent with those of Clostridium perfringens NanE. These studies allowed an evaluation of whether NanE may be a good drug target against these pathogenic bacteria.


Subject(s)
Bacterial Proteins/chemistry , Bacterial Proteins/pharmacokinetics , Carbohydrate Epimerases/chemistry , Carbohydrate Epimerases/pharmacokinetics , Fusobacterium nucleatum/enzymology , Vibrio cholerae/enzymology , Amino Acid Sequence , Bacterial Proteins/genetics , Carbohydrate Epimerases/genetics , Crystallization , Fusobacterium nucleatum/genetics , Kinetics , Protein Structure, Secondary , Protein Structure, Tertiary , Vibrio cholerae/genetics
5.
Microb Biotechnol ; 11(2): 420-428, 2018 03.
Article in English | MEDLINE | ID: mdl-29345069

ABSTRACT

The process of obtaining a well-expressing, soluble and correctly folded constructs can be made easier and quicker by automating the optimization of cloning, expression and purification. While there are many semiautomated pipelines available for cloning, expression and purification, there is hardly any pipeline that involves complete automation. Here, we achieve complete automation of all the steps involved in cloning and in vivo expression screening. This is demonstrated using 18 genes involved in sialic acid catabolism and the surface sialylation pathway. Our main objective was to clone these genes into a His-tagged Gateway vector, followed by their small-scale expression optimization in vivo. The constructs that showed best soluble expression were then selected for purification studies and scaled up for crystallization studies. Our technique allowed us to quickly find conditions for producing significant quantities of soluble proteins in Escherichia coli, their large-scale purification and successful crystallization of a number of these proteins. The method can be implemented in other cases where one needs to screen a large number of constructs, clones and expression vectors for successful recombinant production of functional proteins.


Subject(s)
Automation, Laboratory/methods , Cloning, Molecular/methods , Enzymes/isolation & purification , Escherichia coli/metabolism , Gene Expression , Metabolic Networks and Pathways/genetics , N-Acetylneuraminic Acid/metabolism , Enzymes/genetics , Enzymes/metabolism , Escherichia coli/enzymology , Escherichia coli/genetics , Genetic Testing/methods , Recombinant Proteins/genetics , Recombinant Proteins/isolation & purification , Recombinant Proteins/metabolism
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