Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 5 de 5
Filter
Add more filters










Database
Language
Publication year range
1.
J Biol Inorg Chem ; 29(4): 395-405, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38782786

ABSTRACT

Periplasmic nitrate reductase NapA from Campylobacter jejuni (C. jejuni) contains a molybdenum cofactor (Moco) and a 4Fe-4S cluster and catalyzes the reduction of nitrate to nitrite. The reducing equivalent required for the catalysis is transferred from NapC → NapB → NapA. The electron transfer from NapB to NapA occurs through the 4Fe-4S cluster in NapA. C. jejuni NapA has a conserved lysine (K79) between the Mo-cofactor and the 4Fe-4S cluster. K79 forms H-bonding interactions with the 4Fe-4S cluster and connects the latter with the Moco via an H-bonding network. Thus, it is conceivable that K79 could play an important role in the intramolecular electron transfer and the catalytic activity of NapA. In the present study, we show that the mutation of K79 to Ala leads to an almost complete loss of activity, suggesting its role in catalytic activity. The inhibition of C. jejuni NapA by cyanide, thiocyanate, and azide has also been investigated. The inhibition studies indicate that cyanide inhibits NapA in a non-competitive manner, while thiocyanate and azide inhibit NapA in an uncompetitive manner. Neither inhibition mechanism involves direct binding of the inhibitor to the Mo-center. These results have been discussed in the context of the loss of catalytic activity of NapA K79A variant and a possible anion binding site in NapA has been proposed.


Subject(s)
Campylobacter jejuni , Lysine , Nitrate Reductase , Lysine/metabolism , Lysine/chemistry , Campylobacter jejuni/enzymology , Campylobacter jejuni/genetics , Nitrate Reductase/metabolism , Nitrate Reductase/chemistry , Nitrate Reductase/genetics , Periplasm/metabolism , Periplasm/enzymology , Biocatalysis
2.
J Biol Chem ; 299(1): 102745, 2023 01.
Article in English | MEDLINE | ID: mdl-36436558

ABSTRACT

Nudix hydrolase 7 (NUDT7) is an enzyme that hydrolyzes CoA species, is highly expressed in the liver, and resides in the peroxisomes. Peroxisomes are organelles where the preferential oxidation of dicarboxylic fatty acids occurs and where the hepatic synthesis of the primary bile acids cholic acid and chenodeoxycholic acid is completed. We previously showed that liver-specific overexpression of NUDT7 affects peroxisomal lipid metabolism but does not prevent the increase in total liver CoA levels that occurs during fasting. We generated Nudt7-/- mice to further characterize the role that peroxisomal (acyl-)CoA degradation plays in the modulation of the size and composition of the acyl-CoA pool and in the regulation of hepatic lipid metabolism. Here, we show that deletion of Nudt7 alters the composition of the hepatic acyl-CoA pool in mice fed a low-fat diet, but only in males fed a Western diet does the lack of NUDT7 activity increase total liver CoA levels. This effect is driven by the male-specific accumulation of medium-chain dicarboxylic acyl-CoAs, which are produced from the ß-oxidation of dicarboxylic fatty acids. We also show that, under conditions of elevated synthesis of chenodeoxycholic acid derivatives, Nudt7 deletion promotes the production of tauromuricholic acid, decreasing the hydrophobicity index of the intestinal bile acid pool and increasing fecal cholesterol excretion in male mice. These findings reveal that NUDT7-mediated hydrolysis of acyl-CoA pathway intermediates in liver peroxisomes contributes to the regulation of dicarboxylic fatty acid metabolism and the composition of the bile acid pool.


Subject(s)
Bile Acids and Salts , Diet, Western , Animals , Male , Mice , Acyl Coenzyme A/metabolism , Bile Acids and Salts/metabolism , Chenodeoxycholic Acid , Fatty Acids/metabolism , Liver/metabolism , Oxidation-Reduction , Nudix Hydrolases
3.
J Biol Inorg Chem ; 26(1): 13-28, 2021 02.
Article in English | MEDLINE | ID: mdl-33131003

ABSTRACT

The molybdopterin enzyme family catalyzes a variety of substrates and plays a critical role in the cycling of carbon, nitrogen, arsenic, and selenium. The dimethyl sulfoxide reductase (DMSOR) subfamily is the most diverse family of molybdopterin enzymes and the members of this family catalyze a myriad of reactions that are important in microbial life processes. Enzymes in the DMSOR family can transform multiple substrates; however, quantitative information about the substrate preference is sparse, and, more importantly, the reasons for the substrate selectivity are not clear. Molybdenum coordination has long been proposed to impact the catalytic activity of the enzyme. Specifically, the molybdenum-coordinating residue may tune substrate preference. As such, molybdopterin enzyme periplasmic nitrate reductase (Nap) is utilized as a vehicle to understand the substrate preference and delineate the kinetic underpinning of the differences imposed by exchanging the molybdenum ligands. To this end, NapA from Campylobacter jejuni has been heterologously overexpressed, and a series of variants, where the molybdenum coordinating cysteine has been replaced with another amino acid, has been produced. The kinetic properties of these variants are discussed and compared with those of the native enzyme, providing quantitative information to understand the function of the molybdenum-coordinating residue.


Subject(s)
Dimethyl Sulfoxide/chemistry , Methylamines/chemistry , Nitrate Reductase/chemistry , Nitrates/chemistry , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Campylobacter jejuni/enzymology , Hydrogen-Ion Concentration , Kinetics , Ligands , Molybdenum/chemistry , Mutagenesis, Site-Directed , Mutation , Nitrate Reductase/genetics , Oxidation-Reduction , Periplasm/enzymology , Substrate Specificity
4.
J Biol Inorg Chem ; 25(4): 547-569, 2020 06.
Article in English | MEDLINE | ID: mdl-32279136

ABSTRACT

Mononuclear molybdenum enzymes catalyze a variety of reactions that are essential in the cycling of nitrogen, carbon, arsenic, and sulfur. For decades, the structure and function of these crucial enzymes have been investigated to develop a fundamental knowledge for this vast family of enzymes and the chemistries they carry out. Therefore, obtaining abundant quantities of active enzyme is necessary for exploring this family's biochemical capability. This mini-review summarizes the methods for overexpressing mononuclear molybdenum enzymes in the context of the challenges encountered in the process. Effective methods for molybdenum cofactor synthesis and incorporation, optimization of expression conditions, improving isolation of active vs. inactive enzyme, incorporation of additional prosthetic groups, and inclusion of redox enzyme maturation protein chaperones are discussed in relation to the current molybdenum enzyme literature. This article summarizes the heterologous and homologous expression studies providing underlying patterns and potential future directions.


Subject(s)
Iron-Sulfur Proteins/metabolism , Metalloproteins/metabolism , Molybdenum/metabolism , Oxidoreductases/metabolism , Sulfite Oxidase/metabolism , Xanthine Oxidase/metabolism , Cloning, Molecular , Iron-Sulfur Proteins/chemistry , Iron-Sulfur Proteins/genetics , Metalloproteins/chemistry , Metalloproteins/genetics , Molecular Structure , Molybdenum/chemistry , Oxidoreductases/chemistry , Oxidoreductases/genetics , Sulfite Oxidase/chemistry , Sulfite Oxidase/genetics , Xanthine Oxidase/chemistry , Xanthine Oxidase/genetics
5.
FEMS Microbiol Lett ; 365(16)2018 08 01.
Article in English | MEDLINE | ID: mdl-29931366

ABSTRACT

Campylobacter jejuni, a human gastrointestinal pathogen, uses nitrate for growth under microaerophilic conditions using periplasmic nitrate reductase (Nap). The catalytic subunit, NapA, contains two prosthetic groups, an iron sulfur cluster and a molybdenum cofactor. Here we describe the cloning, expression, purification, and Michaelis-Menten kinetics (kcat of 5.91 ± 0.18 s-1 and a KM (nitrate) of 3.40 ± 0.44 µM) in solution using methyl viologen as an electron donor. The data suggest that the high affinity of NapA for nitrate could support growth of C. jejuni on nitrate in the gastrointestinal tract. Site-directed mutagenesis was used and the codon for the molybdenum coordinating cysteine residue has been exchanged for serine. The resulting variant NapA is 4-fold less active than the native enzyme confirming the importance of this residue. The properties of the C. jejuni enzyme reported here represent the first isolation and characterization of an epsilonproteobacterial NapA. Therefore, the fundamental knowledge of Nap has been expanded.


Subject(s)
Amino Acid Sequence , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Campylobacter jejuni/enzymology , Cloning, Molecular , Nitrate Reductase/chemistry , Nitrate Reductase/genetics , Periplasm/enzymology , Bacterial Proteins/metabolism , Campylobacter jejuni/chemistry , Campylobacter jejuni/genetics , Campylobacter jejuni/growth & development , Enzyme Stability , Kinetics , Models, Molecular , Nitrate Reductase/metabolism , Nitrates/chemistry , Nitrates/metabolism , Periplasm/chemistry , Periplasm/genetics
SELECTION OF CITATIONS
SEARCH DETAIL
...