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Multifunctionality of lipoamide dehydrogenase promotion of electron transferase reaction.

Various approaches to promote the one-electron transfer reaction of lipoamide dehydrogenase have been investigated. An addition of riboflavin facilitates the electron transfer between NADH and Fe(CN) 3-/6. Aminocarboxymethylation and cadmium derivatization of the catalytic disulfide moderately activate the electron transfer reaction. An enhancement in the electron transferase activity of the Co(II)-enzyme complex is associated with decreased Michaelis and inhibition constants. Phosphopyridoxamidation identifies the suppressive effect on the electron transferase activity of carboxyl groups proximal to the catalytic histidine residue of lipoamide dehydrogenase. Amidation of these carboxyl groups with diamine greatly promote the one-electron transfer reaction. The increased electron transferase activity of the amidated enzyme is related to the charge nature of the amidated nucleophile and associated with the increased catalytic efficiency which undergoes a shift in the pH profile. The introduction of cationic aminoethyl groups presumably encourages the formation of an anionic flavosemiquinone which promotes the one-electron transfer reaction.

Animals↗

Production of a covalent flavin linkage in lipoamide dehydrogenase. Reaction with 8-Cl-FAD.

A method is described for preparation of apolipoamide dehydrogenase which gives quantitative removal of FAD. Active holoenzyme can be reconstituted by incubation with FAD. Reconstitution of apoenzyme with 8-Cl-FAD results in the fixation of most of the flavin to the protein in a covalently bound form. The portion noncovalently bound was shown to be unmodified 8-Cl-FAD. The covalently bound flavin has an absorption spectrum quite different from that of 8-Cl-FAD. It has a single band in the visible with a maximum at 459 nm (extinction coefficient of 22 mM-1 cm-1) and a shoulder at 480 nm. Model reactions between 8-Cl-Flavin (riboflavin or FAD) and organic thiols (thiophenol, beta-mercaptoethanol, or N-acetylcysteine) give products with spectra which are similar to that of FAD covalently bound to lipoamide dehydrogenase. The products of the model reactions have a single visible band with a maximum at 480 nm (extinction coefficient of 23.6 mM-1 cm-1 to 28.4 mM-1 cm-1) and a shoulder at 460 nm. The products of the model reaction and the covalently bound FAD of lipoamide dehydrogenase appear to be the result of a nucleophilic attack on the carbon at position 8 of the flavin ring by a thiolate anion, displacing the chloride. Thus, the product of the model reaction is 8-(RS)-flavin, and the product of the reaction between 8-Cl-FAD and protein probably has a cysteinyl residue covalently attacked at position 8 of FAD. Reconstitution of apoliopoamide dehydrogenase with 8-Cl-FAD gives two enzyme products which are fractionated by ammonium sulfate. Enzyme fractionating between 20% and 45% ammonium sulfate is monomeric and contains covanently bound FAD. Enzyme fractionating between 55% and 75% ammonium sulfate is dimeric and contains both covalently bound FAD and noncovalently bound 8-Cl-FAD. Both protein fractions contain one FAD per protein subunit and both are active with physiological substrates with Km values for NAD and dihydrolipoamide similar to those of native lipoamide dehydrogenase. The maximum turnover rates differ dramatically. Enzyme fractionating between 55% and 75% ammonium sulfate has a Vmax which is 61 times slower than native enzyme. Enzyme fractionating between 20% and 45% ammonium sulfate has a Vmax which is 7400 times slower than native enzyme. These slower rates are partially explainable by the oxidation-reduction potentials of the modified enzymes. Both covalently bound FAD and noncovalently bound FAD appear to reside in the native flavin binding site of the enzyme. However, once dimerization of the protien has taken place, the noncovalently bound 8-Cl-FAD cannot be induced to form a covalent bond with the protein except under protein denaturing conditions. The implications of these findings are discussed.

Apoenzymes↗

Studies on pyruvate carboxylase, pyruvate decarboxylase and lipoamide dehydrogenase in subacute necrotizing encephalomyelopathy.

In two autopsy-proven cases of subacute necrotizing encephalomyelopathy (SNE, Leigh's Disease) the activities of pyruvate carboxylase, pyruvate decarboxylase and lipoamide dehydrogenase were investigated in cultured fibroblasts. Normal activities of pyruvate carboxylase and lipoamide dehydrogenase were found in both cases. The activity of pyruvate decarboxylase was low in one of the cases (p less than 0.05), while the activity in the other was within normal limits. The concentrations of alanine, lactate and pyruvate were normal or only slightly increased. The relationship between SNE and a defect in pyruvate metabolism is under discussion, and it is concluded that the general assumption that pyruvate carboxylase deficiency is the cause of SNE is not in agreement with our results or the present literature. However, pyruvate decarboxylase deficiency may in some cases contribute to the development of SNE.

Alanine↗

Crystal structure of eucaryotic E3, lipoamide dehydrogenase from yeast.

The crystal structure of eucaryotic lipoamide dehydrogenase from yeast has been determined by an X-ray analysis at 2.7 (partially at 2.4) A resolution. The enzyme has two identical subunits related by a pseudo twofold symmetry. The tertiary structure is similar to those of other procaryotic enzymes. The active site, consisting of FAD, Cys44, and Cys49 from one subunit and His457' from the other subunit, is highly conserved. This enzyme is directly bound to the core protein E2 of the 2-oxoglutarate dehydrogenase complex, whereas it is bound to the pyruvate dehydrogenase complex through a protein X. The calculated electrostatic potential suggests two characteristic regions for binding with these two proteins.

Amino Acid Sequence↗

Spectral evidence for a flavin adduct in a monoalkylated derivative of pig heart lipoamide dehydrogenase.

A derivative of the flavoprotein pig heart lipoamide dehydrogenase has been described recently (Thorpe, C., and Williams, C.H. (1976) J. Biol. Chem. 251, 3553-3557), in which 1 of the 2 cysteine residues generated on reduction of the intrachain active center disulfide bridge is selectively alkylated with iodoacetamide. This monolabeled enzyme exhibits a spectrum of oxidized bound flavin. The addition of 1 mM NAD+ to this derivative at pH 8.3 causes a decrease in absorbance of approximately 50% at 448 nm, with a concomitant increase at 380 nm. These spectral changes are complete within 3 ms and are reversible. NAD+ titrations generate isosbestic points at 408, 374, and 327 nm; allowing values for the apparent dissociation constant for NAD+ and the extent of bleaching at infinite ligand to be obtained from double reciprocal plots. Between pH 6.1 and 8.8, the apparent KD decreases from 320 to 35 muM, whereas the extrapolated delta epsilon 448 values remain approximately constant at 1/2 epsilon 448. Direct measurement of NAD+ binding by gel filtration at pH 8.8 indicates that the spectral changes are associated with a stoichiometry of 1.2 mol of NAD+ bound/2 mol of FAD. The modified protein is a dimer containing 1 FAD and 1 alkylated cysteine residue/subunit; the native enzyme is also dimeric. The visible spectrum of the species absorbing at 380 nm, approximated by correction for the residual oxidized FAD, shows a single maximum at 384 nm, epsilon 384 = 8.7 mM-1cm-1. Comparison of this spectrum with that of model compounds of known structure suggests that it may represent a reversible covalent flavin adduct induced on binding NAD+.

Animals↗

Fluorescence studies on lipoamide dehydrogenases of pig heart. I. Conformational dynamics of enzyme.

The dynamic structures of two major forms (LD(I) and LD(II) of pig heart lipoamide dehydrogenase, resolved by TEAE-cellulose column chromatography, were studied by fluorescence depolarization. FAD and ANM were used as an intrinsic and an extrinsic fluorescent probe, respectively. In the experiments with bound FAD of lipoamide dehydrogenase, no thermal dependence of the fluorescence depolarization of either enzyme was observed and the values of polarization were close to the theoretical maximum value of 0.5. Both enzymes contained two reactive thiol groups which differed in their reactivities toward ANM. When the enzymes were labeled with one mol of ANM per mol of enzyme, the rotational relaxation times of LD(I) and LD(II) were found to be 18 ns and 196 ns, respectively. These findings indicate that the sement of LD(I) labeled with ANM fluctuates in the order of nanoseconds, whereas this segment of LD(II) is fixed rigidly. On the other hand, when the enzymes were labeled with two mol of ANM per mol of enzyme, both enzymes showed the composite result of fluorescence depolarization due to the motilities of the segment of enzyme and the whole enzyme molecule. These findings indicate that both LD(I) and LD(II) have the non-equivalent motilities of segments containing one reactive thiol group between the two monomers. In other words, the segment containing the ANM binding site of the one monomer is flexible and this segment of the other monomer is fixed rigidly in both enzymes.

Animals↗

Inactivation of lipoamide dehydrogenase by cobalt(II) and iron(II) Fenton systems: effect of metal chelators, thiol compounds and adenine nucleotides.

Fe(II)- and Co(II)-Fenton systems (FS) inactivated the lipoamide reductase activity but not the diaphorase activity of pig-heart lipoamide dehydrogenase (LADH). The Co(II) system was the more effective as LADH inhibitor. Phosphate ions enhanced the Fe(II)-FS activity. EDTA, DETAPAC, DL-histidine, DL-cysteine, glutathione, DL-dithiothreitol, DL-lipoamide, DL-thioctic acid, bathophenthroline, trypanothione and ATP, but not ADP or AMP, prevented LADH inactivation. Reduced disulfide compounds were more effective protectors than the parent compounds. Mg ions counteracted ATP protective action. Glutathione and DL-dithiothreitol partially restored the lipoamide dehydrogenase activity of the Fe(II)-FS-inhibited LADH. DL-histidine exerted a similar action on the Co(II)-FS-inhibited enzyme. Ethanol, mannitol and benzoate did not prevent LADH inactivation by the assayed Fenton systems and, accordingly, it is postulated that site-specific generated HO. radicals were responsible for LADH inactivation. With the Co(II)-FS, oxygen reactive species other than HO., might contribute to LADH inactivation.

Adenine Nucleotides↗

Comparison of immunohistochemical staining of a mitochondrial protein, lipoamide dehydrogenase, with Fab'-peroxidase conjugates prepared by maleimide or periodate.

IgG-maleimide peroxidase, Fab'-maleimide peroxidase, polymer and monomer types of Fab'-periodate peroxidase were prepared from an antibody against rat lipoamide dehydrogenase, a component of the pyruvate dehydrogenase complex which is located in mitochondria. They were examined for immunohistochemical staining of the rat kidney. Fab'-maleimide peroxidase was the best for staining mitochondrial protein. IgG-maleimide peroxidase and the monomer type of Fab'-periodate peroxidase had the same intensity of staining. The polymer type of Fab'-periodate peroxidase could not stain the lipoamide dehydrogenase.

Animals↗

Gene for lipoamide dehydrogenase maps to human chromosome 7.

The gene for lipoamide dehydrogenase (LD) has been assigned to human chromosome 7 based on filter hybridization analysis of genomic DNA from rodent-human somatic cell hybrids using a cDNA probe for human LD. No indication of multiple copies of the gene was found, in accordance with previous evidence that LD in the pyruvate, alpha-ketoglutarate, and branched chain alpha-ketoacid dehydrogenase complexes is genetically as well as biochemically identical.

Chromosome Mapping↗

Proton nuclear magnetic resonance investigation of the mechanism of flavin C-4a adduct formation induced by oxidized nicotinamide adenine dinucleotide binding to monoalkylated pig heart lipoamide dehydrogenase.

The active center thiol of monoalkylated pig heart lipoamide dehydrogenase, EHR, is induced to form an adduct to the enzyme-bound flavin adenine dinucleotide (FAD) at the C-4a position upon binding oxidized nicotinamide adenine dinucleotide (NAD+) [Thorpe, C., & Williams, C. H., Jr. (1976) J. Biol. Chem. 251, 7726-7728]. In light of hypotheses on covalent electron transfer between pyridine nucleotide and flavin, the induction of the thiol-flavin C-4a adduct by NAD+ is reasonably envisioned as involving a covalent bond between the modified flavin and the NAD+. The double-resonance proton nuclear magnetic resonance technique of cross saturation was used to probe the existence of covalent bond formation between the modified flavin of EHR and its inducer molecule, NAD+. Cross-saturation of the free NAD+ signals was not observed even though the spin-lattice relaxation time of NAD+ and the rate of exchange between free NAD+ and NAD+ bound to EHR were well within the limits required for cross-saturation. We conclude that a noncovalent interaction between NAD+ and FAD induces the formation of the thiol-flavin C-4a covalent adduct in EHR. A model by which NAD+ binding induces nucleophilic attack by the nascent thiolate of EHR is discussed.

Animals↗

Modulation of the oxidation-reduction potential of the flavin in lipoamide dehydrogenase from Escherichia coli by alteration of a nearby charged residue, K53R.

The epsilon-amino group of a lysine residue occupies a position within bonding distance of the flavin N5 and the bound NADPH pyridinium C4' in glutathione reductase, and it has been suggested that this positive charge influences the redox potential of the FAD [Pai & Schulz (1983) J. Biol. Chem. 258, 1752]. A conserved lysine residue occupies a similar position in lipoamide dehydrogenase. This residue has been replaced by an arginine in lipoamide dehydrogenase from Escherichia coli to give K53R. The spectral and redox properties of the FAD in K53R as well as the interaction of the flavin with bound NAD+ are profoundly affected by the change. K53R does not catalyze either the dihydrolipoamide-NAD+ or the NADH-lipoamide reactions except at very low concentrations of the reducing substrate. The absorbance spectrum of K53R in the visible and near-ultraviolet is little changed from that of wild-type enzyme, but in contrast, the spectrum of K53R is sensitive to pH with an apparent pKa = 7.0. Unlike the wild-type enzyme, the binding of beta-NAD+ to K53R alters the spectrum and indicates an apparent Kd = 7.0 microM at pH 7.6. The flavin fluorescence is partially quenched, and the visible and near-ultraviolet circular dichroism spectrum is changed by beta-NAD+. K53R is extensively reduced (mostly EH4) by 2 equiv of dihydrolipoamide/FAD while the wild-type enzyme is only partially reduced (mostly EH2). The rate of this reduction is lowered by approximately 3-fold relative to the wild-type enzyme.(ABSTRACT TRUNCATED AT 250 WORDS)

Circular Dichroism↗

Regeneration of the antioxidant ubiquinol by lipoamide dehydrogenase, thioredoxin reductase and glutathione reductase.

Ubiquinol is a powerful antioxidant, which is oxidized in action and needs to be replaced or regenerated to be capable of a sustained effort. This article summarises current knowledge of extramitochondrial reduction of ubiquinone by three flavoenzymes, i.e. lipoamide dehydrogenase, glutathione reductase and thioredoxin reductase, belonging to the same pyridine nucleotide-disulfide oxidoreductase family. These three enzymes are the most efficient extramitochondrial ubiquinone reductases so far described. The reduction of ubiquinone by lipoamide dehydrogenase and glutathione reductase is potently stimulated by zinc and the highest rate of reduction is achieved at acidic pH and the rates are equal with either NADPH or NADH as co-factors. The most efficient ubiquinone reductases are mammalian cytosolic thioredoxin reductases, which are selenoenzymes with a number of biological functions. Reduction of ubiquinone by thioredoxin reductase is in contrast to the other two enzymes investigated, inhibited by zinc and shows a sharp physiological pH optimum at pH 7.5. Furthermore, the reaction is selenium dependent as revealed from experiments using truncated and mutant forms of the enzyme and also in a cellular context by selenium treatment of transfected thioredoxin reductase overexpressing stable cell lines. The reduction of ubiquinone by the three enzymes offers a multifunctional system for extramitochondrial regeneration of an important antioxidant.

Animals↗

Correlation between serum lipoamide dehydrogenase activity and phosphatidylcholine therapy in Friedreich's ataxia.

Serum lipoamide dehydrogenase activity and kinetics were studied in nine patients with Friedreich's ataxia before and three months after therapy with oral lecithin. Results disclosed a significant reduction in LAD inhibition by NADH in all patients after therapy. Three patients normalized their increased Km for lipoamide and one patient showed the opposite results after therapy. Two patients ceased lecithin after one month. All seven patients who remained in the trial group and one additional patient, showed subjective and objective signs of improvement in physical resistance. This study has offered some biochemical basis for the apparent clinical improvement in patients with Friedreich's ataxia who undergo lecithin therapy.

Adolescent↗

Glutathione reductase and lipoamide dehydrogenase have opposite stereospecificities for alpha-lipoic acid enantiomers.

The reduction of exogenous alpha-lipoic acid to dihydrolipoate by mammalian cells and tissues confers additional antioxidant protection to the cell. Both (R+) and (S-) isomers of alpha-lipoic acid were analyzed as substrates with glutathione reductase from several sources and with mammalian lipoamide dehydrogenase. Mammalian glutathione reductase catalyzed faster reduction of (S)-lipoic acid (1.4-2.4-fold greater activity) than of (R)-lipoic acid, whereas lipoamide dehydrogenase had a very marked preference for (R)-lipoic acid (18-fold greater activity) over (S)-lipoic acid. Mammalian glutathione reductase showed better affinity for (S)-lipoic acid substrate; Km values were 3.5 mM for (S)-lipoic acid and and 7 mM for (R)-lipoic acid. Glutathione reductase from yeast reduced lipoic acid less efficiently than the mammalian enymes, had a Km for both stereoisomers of about 10 mM, and showed little stereospecificity. Although (S)-lipoic acid is not formed in nature, these findings indicate that exogenous (S)-lipoic acid may have a useful role as an antioxidant for mammalian systems.

Animals↗

Salts- induced oxidase activity of lipoamide dehydrogenase from pig heart.

A weak NADH oxidase activity of lipoamide dehydrogenase at neutral pH is increased as much as 15-fold by the addition of KI or (NH4)2SO4. The addition of NAD+ shifts the optimum pH for the KI-induced oxidase activity from 6.3 to 5.5 without changing the maximum activity. The optimum pH is similarly shifted to 5.6 when sulfhyldryl groups of the enzyme are oxidized in the presence of small amount of cupric ion. The NADH: lipoamide and NADH: p-benzoquinone reductase activities are strongly inhibited by KI but both are increased by the presence of (NH4)2SO4. The known intermediate having a charge-transfer band at 530 nm can be seen upon an addition of NADH to the enzyme in the presence of (NH4)2SO4 but not in the presence of KI. The enzyme flavin is reductase by a stoichiometric amount of NADH when KI is present.

Animals↗

Changes of lipoamide dehydrogenase and mitochondrial structure in selenium-deficient chicks.

A selenium deficiency in chicks produces degeneration and fibrosis of the pancreas. An investigation was undertaken to determine whether or not the activity of lipoic acid is impaired in the pancreas of selenium-deficient chicks. Enzymatic analyses of selenium-deficient chick tissues showed a reduction in lipoamide dehydrogenase both in pancreas and liver at a very early stage of growth. Using both direct measurements and sucrose-gradient cellular fractionation, it was found that the lipoamide dehydrogenase activity of the supernatant increased, and that of the mitochondria decreased in selenium-deficient as compared to normal chick livers. These results indicate an increased fragility of the mitochondrial membranes in selenium-deficient chicks.

Animals↗

Molecular basis of lipoamide dehydrogenase deficiency in Ashkenazi Jews.

We studied 13 patients with lipoamide dehydrogenase (LAD) deficiency, originating from seven Ashkenazi Jewish families. Their disease was characterized by recurrent attacks of vomiting, abdominal pain, and encephalopathy accompanied by elevated liver transaminases, prolonged prothrombin time, and occasionally associated with lactic and ketoacidemia or with myoglobinuria. Two patients who presented neonatally suffered from residual neurological damage with attention deficit hyperactive disorder, mild ataxia, motor incoordination, muscle hypotonia, and weakness. Nine patients who presented in early childhood or later suffered from exertional fatigue between decompensation episodes but were otherwise asymptomatic. Two patients died because of intractable metabolic acidosis and multi-organ failure. In all patients LAD activity was reduced to 8 to 21% of the control in muscle or lymphocytes. In four patients LAD protein in muscle was reduced to 20 to 60% of the control. Direct sequencing of the cDNA of the LAD gene showed that 12 of the 14 mutated alleles carried the G229C mutation and two carried an insertion mutation 105insA (Y35X). The patients who presented neonatally and had more severe sequelae were compound heterozygotes for the two mutations; patients who presented in early childhood or later were homozygous for the G229C mutation. Using an allele-specific oligonucleotide hybridization technique, nine heterozygotes for the G229C mutation were identified among 845 anonymous individuals of Ashkenazi Jewish origin disclosing a carrier rate of 1:94. Because of the significant morbidity associated with the disease, screening for the G229C mutation among Ashkenazi Jewish couples should be considered.

Adult↗

Galactose- and maltose-stimulated lipoamide dehydrogenase activities related to the binding-protein-dependent transport of galactose and maltose in toluenized cells of Escherichia coli.

The binding protein-dependent transport of galactose and maltose occurs at a reduced but significant rate in Escherichia coli cells which have undergone a mild toluenization. Dihydrolipoate and 3-acetyl-NAD produce a severalfold stimulation of these transports in the toluenized cells. In parallel to the stimulation of galactose and maltose transport by dihydrolipoate and 3-acetyl-NAD, there is a stimulation by galactose and maltose of lipoamide dehydrogenase activities which seem to be related to the binding-protein-dependent transport of these sugars. The lipoamide dehydrogenase component of the pyruvate and 2-oxoglutarate dehydrogenase complexes (the lpd gene product) is not involved in this stimulation. These results are discussed in relation to our recent studies showing a possible involvement of lipoic acid and of the 2-oxoacid dehydrogenases in the binding-protein-dependent transports.

ATP-Binding Cassette Transporters↗