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Cloning and characterization of Helicobacter pylori succinyl CoA:acetoacetate CoA-transferase, a novel prokaryotic member of the CoA-transferase family.

Sequencing of a fragment of Helicobacter pylori genome led to the identification of two open reading frames showing striking homology with Coenzyme A (CoA) transferases, enzymes catalyzing the reversible transfer of CoA from one carboxylic acid to another. The genes were present in all H. pylori strains tested by polymerase chain reaction or slot blotting but not in Campylobacter jejuni. Genes for the putative A and B subunits of H. pylori CoA-transferase were introduced into the bacterial expression vector pKK223-3 and expressed in Escherichia coli JM105 cells. Amino acid sequence comparisons, combined with measurements of enzyme activities using different CoA donors and acceptors, identified the H. pylori CoA-transferase as a succinyl CoA:acetoacetate CoA-transferase. This activity was consistently observed in different H. pylori strains. Antibodies raised against either recombinant A or B subunits recognized two distinct subunits of Mr approximately 26,000 and 24, 000 that are both necessary for H. pylori CoA-transferase function. The lack of alpha-ketoglutarate dehydrogenase and of succinyl CoA synthetase activities indicates that the generation of succinyl CoA is not mediated by the tricarboxylic acid cycle in H. pylori. We postulate the existence of an alternative pathway where the CoA-transferase is essential for energy metabolism.

Acyl Coenzyme A↗

Asymmetric reduction of ethyl acetoacetate to ethyl (R)-3-hydroxybutyrate coupled with nitrate reduction by Paracoccus denitrificans.

We found that the asymmetric reduction of ethyl acetoacetate (EAA) to ethyl (R)-3-hydroxybutyrate (EHB) by Paracoccus denitrificans could be induced by nitrate addition under anaerobic conditions. However, the addition of electron donors such as glucose, ethanol, and methanol together with nitrate did not stimulate EHB production from EAA. When the reaction was carried out under optimum conditions (cell concentration, 10 g-d.w.l(-1); EAA, 150 mM; NO3-, 100 mM), after 8 h of reaction 49 mM of EHB with an optical purity of 98.9% e.e. was produced. Furthermore, a fed-batch reaction was carried out with an intermittent addition of nitrate and EAA to reduce substrate inhibition. The linear reduction of EAA to EHB proceeded for 40 h after initiation of the reaction, and finally 124 mM of EHB with an optical purity of 88.7% e.e. was produced after 104 h.

Journal Article↗

[Dimers from o-nitrobenzylidene acetoacetic esters].

The o-nitrobenzylidene acetoacetic esters 1 dimerize in the presence of BuLi or LDA to give the cyclohexenes 2 in poor yield. Two diastereomer of 2b were isolated, whose configuration is deduced by nmr-spectroscopic methods.

Benzylidene Compounds↗

Subcellular localization of acetoacetate coenzyme A transferase in rat hepatomas.

Succinyl coenzyme A:acetoacetate coenzyme transferase (EC 2.8.3.5), an initiator of ketone body usage and absent in normal liver, has been shown to be located in mitochondria from Morris hepatoma 7288ctc using differential and density gradient centrifugation. Furthermore, tumor mitochondrial subfractionation revealed that this transferase is associated with the matrix-soluble proteins. Comparison of the amounts of total transferase activity in several other hepatomas with the amounts found in the corresponding isolated mitochondria suggests that the results with the 7288ctc tumor pertain generally. The mitochondrial localization of coenzyme A transferase indicates the probable use of ketone bodies as energy sources for the hepatomas.

Acetyl Coenzyme A↗