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The biosynthesis of lipoic acid. Cloning of lip, a lipoate biosynthetic locus of Escherichia coli.

The lip gene of Escherichia coli has been cloned and sequenced. Subcloning of a 3-kilobase EcoRI/EcoRV restriction fragment from Clark-Carbon plasmid pLC15-5 into pUC18 gives a plasmid that complements two lipoate auxotrophs, W1485-lip2 and JRG33-lip9, and which expresses a protein of approximately 36,000 Da. Sequencing suggests that lip codes for a protein of 281 amino acids (31,350 Da), showing sequence similarity to biotin synthase. It is thus likely that lip encodes a sulfur insertion enzyme analogous to biotin synthase and that the sulfur insertion chemistries of the two systems are related. Unidirectional nested deletion experiments show that both lipoate auxotrophs are complemented by the same 500-base pair region at the 3' terminus of the lip gene, indicating that the mutations affecting lipoate biosynthesis are located in this region of the protein. A small open reading frame located immediately downstream of the lip gene codes for a small protein of unknown function.

Amino Acid Sequence↗

Partial protection by lipoic acid against carboplantin-induced ototoxicity in rats.

OBJECTIVE: To investigate the alterations in auditory brainstem evoked responses (ABRs) and the changes of carboplatin-induced ototoxicity in the cochlear oxidant/antioxidant systems and otoprotection by an antioxidant lipoate. METHODS: Male wistar rats were divided into four groups and treated as follows: 1) vehicle (saline) control, 2) carboplatin (256 mg/kg, i.p.), 3) lipoate (100 mg/kg, i.p.), 4) lipoate + carboplatin. Post-treatment ABRs were performed after four days and rats were sacrificed with their cochleae harvested and analyzed. RESULTS: Carboplatin significantly elevated ABR threshold above the pretreatment thresholds. Lipoate+carboplatin treated rats showed decreased elevation of hearing threshold. Carboplatin significantly depleted cochlear reduced to oxizized glutathione (GSH/GSSG) ratio, whereas lipoate+carboplatin treatment increased GSH/GSSG ratio. Carboplatin significantly decreased cochlear copper zinc-superoxide dismutase (CuZn-SOD), catalase (CAT), glutathione peroxidase (GSH-Px), glutathione reductase (GR) and glutathione-S-transferase (GST) activities and enzyme protein expressions and a significant increase in Mn-SOD activity, protein expression and malondialdehyde (MDA) level. Cochlear antioxidant enzyme activities, enzyme protein expressions and MDA level were partially restored in lipoate+carboplatin treated rats, compared to carboplatin alone. CONCLUSION: Carboplatin-induced ototoxicity is related to impairment of cochlear antioxidant system and otoprotection conferred by lipoate is associated with partial sparing of the cochlear antioxidant defense system.

Animals↗

Bacterial catabolism of lipoic acid. Isolation and identification of a methyl ketone.

A soil bacterium, Pseudomonas putida LP, can be grown on lipoate as sole source of carbon, sulfur, and energy. In addition to the previously identified catabolites (bisnorlipoate, tetranorlipoate, beta-hydroxybisnorlipoate, lipoate thiolsulfinate, and two bisnorlipoate thiolsulfinates) isolated from cultures of the organism grown on [1,6-14C[lipoate, a methyl ketone (1,2-dithiolane-3-butyl-3'-one) has now been isolated and identified. This catabolite was isolated by solvent extraction and hydrophobic gel filtration and characterized by chromatographic mobilities and spray reactions and by UV, IR, PMR, and mass spectrometries. The methyl ketone presumably arises by decarboxylation of the beta-keto acid formed during the beta-oxidation of lipoate to bisnorlipoate by the microorganism.

Chemical Phenomena↗

[Effect of pyruvate dehydrogenase coenzymes and mitochondrial proteins on the accumulation of [35S]lipoic acid].

Coenzymes introduced in the ratio, peculiar for pyruvate dehydrogenase complex into the medium containing fresh-isolated mitochondria and oxidation substrate--pyruvate increase accumulation of [35S] lipoate by these organelles. This process is highly stimulated by introducing either the only CoA or a coenzyme mixture (CoA, thiamine pyrophosphate, FAD, NAD). Addition of phosphate-extracted components of mitochondria and their protein fraction with coenzymes in the ratio indicated above provides maximum accumulation of [35S] lipoate by liver mitochondria. An equimolar mixture of coenzymes as well as protein components evoke no reliable variations in [35S] lipoate accumulation by albino rat liver mitochondria, while addition of the only thiamine pyrophosphate decreases this accumulation. Reconstruction of multienzyme complexes of coenzymes and apoenzymes on mitochondrion membranes accounts for the results obtained.

Animals↗