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1.
Biochemistry ; 55(18): 2632-45, 2016 05 10.
Article in English | MEDLINE | ID: mdl-27082660

ABSTRACT

The enzymes in the catechol meta-fission pathway have been studied for more than 50 years in several species of bacteria capable of degrading a number of aromatic compounds. In a related pathway, naphthalene, a toxic polycyclic aromatic hydrocarbon, is fully degraded to intermediates of the tricarboxylic acid cycle by the soil bacteria Pseudomonas putida G7. In this organism, the 83 kb NAH7 plasmid carries several genes involved in this biotransformation process. One enzyme in this route, NahK, a 4-oxalocrotonate decarboxylase (4-OD), converts 2-oxo-3-hexenedioate to 2-hydroxy-2,4-pentadienoate using Mg(2+) as a cofactor. Efforts to study how 4-OD catalyzes this decarboxylation have been hampered because 4-OD is present in a complex with vinylpyruvate hydratase (VPH), which is the next enzyme in the same pathway. For the first time, a monomeric, stable, and active 4-OD has been expressed and purified in the absence of VPH. Crystal structures for NahK in the apo form and bonded with five substrate analogues were obtained using two distinct crystallization conditions. Analysis of the crystal structures implicates a lid domain in substrate binding and suggests roles for specific residues in a proposed reaction mechanism. In addition, we assign a possible function for the NahK N-terminal domain, which differs from most of the other members of the fumarylacetoacetate hydrolase superfamily. Although the structural basis for metal-dependent ß-keto acid decarboxylases has been reported, this is the first structural report for that of a vinylogous ß-keto acid decarboxylase and the first crystal structure of a 4-OD.


Subject(s)
Bacterial Proteins/chemistry , Carboxy-Lyases/chemistry , Keto Acids/chemistry , Magnesium/chemistry , Pseudomonas putida/chemistry , Apoenzymes/chemistry , Apoenzymes/genetics , Apoenzymes/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Crystallography, X-Ray , Decarboxylation , Keto Acids/metabolism , Magnesium/metabolism , Protein Domains , Pseudomonas putida/genetics , Pseudomonas putida/metabolism
2.
Br J Nutr ; 104(10): 1438-42, 2010 Nov.
Article in English | MEDLINE | ID: mdl-20594391

ABSTRACT

During exercise, ammonia levels are related to the appearance of both central and peripheral fatigue. Therefore, controlling the increase in ammonia levels is an important strategy in ameliorating the metabolic response to exercise and in improving athletic performance. Free amino acids can be used as substrates for ATP synthesis that produces ammonia as a side product. Keto analogues act in an opposite way, being used to synthesise amino acids whilst decreasing free ammonia in the blood. Adult male rats were divided into four groups based on receiving either keto analogues associated with amino acids (KAAA) or a placebo and resistance exercise or no exercise. There was an approximately 40% increase in ammonaemia due to KAAA supplementation in resting animals. Exercise increased ammonia levels twofold with respect to the control, with a smaller increase (about 20%) in ammonia levels due to exercise. Exercise itself causes a significant increase in blood urea levels (17%). However, KAAA reduced blood urea levels to 75% of the pre-exercise values. Blood urate levels increased 28% in the KAAA group, independent of exercise. Supplementation increased glucose levels by 10% compared with control animals. Exercise did not change glucose levels in either the control or supplemented groups. Exercise promoted a 57% increase in lactate levels in the control group. Supplementation promoted a twofold exercise-induced increase in blood lactate levels. The present results suggest that an acute supplementation of KAAA can decrease hyperammonaemia induced by exercise.


Subject(s)
Amino Acids/pharmacology , Keto Acids/chemistry , Keto Acids/pharmacology , Motor Activity/physiology , Physical Conditioning, Animal/physiology , Amino Acids/administration & dosage , Animal Feed , Animal Nutritional Physiological Phenomena , Animals , Diet , Dietary Supplements , Hyperammonemia , Keto Acids/administration & dosage , Lactic Acid/blood , Male , Rats , Rats, Wistar , Uric Acid/blood
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