PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Pyrogallol”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 199 records · Page 11Linked to original sources

Partial purification of polyphenol oxidase from Chinese cabbage Brassica rapa L.

Polyphenol oxidase (PPO) was purified and characterized from Chinese cabbage by ammonium sulfate precipitation and DEAE-Toyopearl 650M column chromatography. Substrate staining of the crude protein extract showed the presence of three isozymic forms of this enzyme. The molecular weight of the purified enzyme was estimated to be approximately 65 kDa by gel filtration on Toyopearl HW-55F. On SDS-PAGE analysis, this enzyme was composed of a subunit molecular weight of 65 kDa. The optimum pH was 5.0, and this enzyme was stable at pH 6.0 but was unstable below pH 4.0 or above pH 7.0. The optimum temperature was 40 degrees C. Heat inactivation studies showed temperatures >40 degrees C resulted in loss of enzyme activity. PPO showed activity to catechol, pyrogallol, and dopamine (K(m) and V(max) values were 682.5 mM and 67.6 OD/min for catechol, 15.4 mM and 14.1 OD/min for pyrogallol, and 62.0 mM and 14.9 OD/min for dopamine, respectively). The most effective inhibitor was 2-mercaptoethanol, followed in decreasing order by ascorbic acid, glutathione, and L-cysteine. The enzyme activity of the preparation was maintained for 2 days at 4 degrees C but showed a sudden decreased after 3 days.

Brassica↗

Latent polyphenol oxidases from sago log (Metroxylon sagu): partial purification, activation, and some properties.

Latent polyphenol oxidase (LPPO), an enzyme responsible for the browning reaction of sago starches during processing and storage, was investigated. The enzyme was effectively extracted and partially purified from the pith using combinations of nonionic detergents. With Triton X-114 and a temperature-induced phase partitioning method, the enzyme showed a recovery of 70% and purification of 4. 1-fold. Native PAGE analysis of the partially purified LPPO revealed three activity bands when stained with catechol and two bands with pyrogallol. The molecular masses of the enzymes were estimated by SDS-PAGE to be 37, 45, and 53 kDa. The enzyme showed optimum pH values of 4.5 with 4-methylcatechol as a substrate and 7.5 with pyrogallol. The LPPO was highly reactive toward diphenols and triphenols. The activity of the enzyme was greatly enhanced in the presence of trypsin, SDS, ethanol, and linoleic acid.

Catechol Oxidase↗

Urinary metabolites of gallic acid in rats and their radical-scavenging effects on 1,1-diphenyl-2-picrylhydrazyl radical.

As a part of our studies on the metabolism of natural compounds, gallic acid was orally administered to rats. The urinary metabolites were analyzed by high-performance liquid chromatography, and their structures were determined to be pyrogallol (M1), pyrogallol-1-O-beta-D-glucuronide (M2), 4-O-methylgallic acid-3-O-sulfate (M3), 2-O-methylpyrogallol-1-O-beta-D-glucuronide (M4), 2-O-methylpyrogallol (M5), 4-O-methylgallic acid (M6), and unchanged gallic acid on the basis of chemical and spectral data. The radical scavenging effects of gallic acid and its urinary metabolites were evaluated using 1,1-diphenyl-2-picrylhydrazyl radical.

Animals↗

Inhibition of mitochondrial NADH oxidase, succinoxidase, and ATPase by naturally occurring flavonoids.

A structure-activity investigation of the inhibition of beef heart mitochondrial NADH oxidase and succinoxidase and rat liver mitochondrial ATPase by flavonoids was conducted. NADH oxidase was the most sensitive to inhibition by flavonoids: 13 of the 18 flavonoids tested inhibited NADH oxidase, whereas only 4 and 5 flavonoids inhibited succinoxidase and ATPase, respectively. The flavonoids possessing a catechol or pyrogallol moiety, and a 2,3-double bond and a 3-hydroxyl group were the most inhibitory towards the respiratory chain enzymes. The catechol or pyrogallol moiety did not exert preferential activity towards the oligomycin-sensitive ATPase because morin, which contains a meta-dihydroxy configuration, was the most potent ATPase inhibitor.

Adenosine Triphosphatases↗

Oxygen free radicals enhance the nitric oxide-induced covalent NAD(+)-linkage to neuronal glyceraldehyde-3-phosphate dehydrogenase.

Nitric oxide (NO) induces a covalent modification of glyceraldehyde-3-phosphate dehydrogenase (GAPDH) from various tissues. This phenomenon, which has previously been interpreted as an auto-ADP-ribosylation, is in fact a covalent binding of NAD+ to the enzyme. In the present study, we show that 3-morpholino-sydnonimine (SIN-1) is much more efficient than sodium nitroprusside (SNP) in stimulating the covalent labelling of GAPDH from cultured striatal neurones in the presence of [adenylate-32P]NAD+ (877 +/- 110 and 266 +/- 33% increase in NAD(+)-labelling induced by maximally effective concentrations of SIN-1 and SNP respectively). The difference in the efficacy of both NO-generating compounds could be due to the additional release of superoxide by SIN-1, since superoxide dismutase and the nitrone 5,5'-dimethyl pyrroline-1-oxide markedly inhibited the SIN-1-induced covalent binding of NAD+ to GAPDH. Catalase and selective scavengers of hydroxyl radicals, mannitol and dimethyl sulphoxide, did not alter the SIN-1-induced covalent modification of GAPDH, ruling out the involvement of hydroxyl radicals in this phenomenon. Supporting further a role of oxygen free radicals in the NAD+ linkage to GAPDH, pyrogallol, a superoxide generator, which alone was ineffective, potentiated the SNP-evoked response. The NAD+ linkage to neuronal GAPDH measured in the presence of NO and superoxide probably involves sulphydryl groups, since the radiolabelling of the protein was reversed by exposure to HgCl2 and prevented by pretreatment with the alkylating agent N-ethylmaleimide. Moreover, the NO-induced inhibition of GAPDH activity was enhanced by pyrogallol, which was ineffective alone. In conclusion, the present study indicates that superoxide anions potentiate NO-induced covalent NAD(+)-linkage to GAPDH and enzyme inactivation.

Animals↗

Endothelium-derived relaxing factor produced and released from artery and vein is nitric oxide.

The objective of this study was to determine whether nitric oxide (NO) is responsible for the vascular smooth muscle relaxation elicited by endothelium-derived relaxing factor (EDRF). EDRF is an unstable humoral substance released from artery and vein that mediates the action of endothelium-dependent vasodilators. NO is an unstable endothelium-independent vasodilator that is released from vasodilator drugs such as nitroprusside and glyceryl trinitrate. We have repeatedly observed that the actions of NO on vascular smooth muscle closely resemble those of EDRF. In the present study the vascular effects of EDRF released from perfused bovine intrapulmonary artery and vein were compared with the effects of NO delivered by superfusion over endothelium-denuded arterial and venous strips arranged in a cascade. EDRF was indistinguishable from NO in that both were labile (t1/2 = 3-5 sec), inactivated by pyrogallol or superoxide anion, stabilized by superoxide dismutase, and inhibited by oxyhemoglobin or potassium. Both EDRF and NO produced comparable increases in cyclic GMP accumulation in artery and vein, and this cyclic GMP accumulation was inhibited by pyrogallol, oxyhemoglobin, potassium, and methylene blue. EDRF was identified chemically as NO, or a labile nitroso species, by two procedures. First, like NO, EDRF released from freshly isolated aortic endothelial cells reacted with hemoglobin to yield nitrosylhemoglobin. Second, EDRF and NO each similarly promoted the diazotization of sulfanilic acid and yielded the same reaction product after coupling with N-(1-naphthyl)-ethylenediamine. Thus, EDRF released from artery and vein possesses identical biological and chemical properties as NO.

Animals↗

Purification of lactoperoxidase from bovine milk and investigation of the kinetic properties.

Lactoperoxidase (LPO) was purified from bovine milk using Amberlite CG 50 H+ resin, CM Sephadex C-50 ion-exchange chromatography, and Sephadex G-100 gel filtration chromatography. During the purification steps, the activity of enzyme was measured using 2,2'-azino-bis (3-ethylbenzthiazoline-6 sulfonic acid) diamonium salt (ABTS) as a chromogenic substrate at pH 6. Optimum pH and optimum temperature values for LPO were determined for ABTS, p-phenylendiamine, catechol, epinephrine, and pyrogallol as substrates, and then Km and Vmax values for the same substrate were obtained by means of Lineweaver-Burk graphics. The purification degree of the enzyme was controlled by SDS-PAGE and Rz (A412/A280) values. Km values, at optimum pH and 20 degrees C, were 0.197 mM, 0.063 mM, 0.64 mM, 25.2 mM, and 63.95 mM for p-phenylendiamine, ABTS, epinephrine, pyrogallol, and catechol, respectively. Vmax values, at optimum pH and 20 degrees C, were 3.5x10(-5) EU/mL, 4.0x10(-5) EU/mL, 5.8x10(-4) EU/mL, 8.4x10(-4) EU/mL, and 1.01x10(-3) EU/mL for the same substrates, respectively. p-Phenylendiamine was first found as a new substrate for LPO.

Amino Acids↗

Mechanisms of lipid peroxidation dependent upon cytochrome P-450 LM2.

A mechanism of lipid peroxidation dependent on the oxidase activity of cytochrome P-450 LM2 in reconstituted membrane vesicles has been investigated. The rate of lipid peroxidation, determined as the formation of thiobarbituric-acid-reactive substances, was inhibited by CO. It increased concomitantly to the production of O-2 and H2O2, when cytochrome P-450 LM2 was incorporated into vesicles containing NADPH-cytochrome-P-450 reductase, until a 1:1 molar ratio between the enzymes was reached. Also the formation of lipid hydroperoxides was dependent on the presence of cytochrome P-450 LM2 in the membranes. This lipid peroxidation was not inhibited by hydroxyl radical scavengers and not specifically inhibited by scavengers of singlet oxygen. By contrast, superoxide dismutase was a very potent scavenger of the lipid peroxidation. A half-maximal effect at 3 ng/ml enzyme was registered, whereas a 100-fold higher concentration was necessary in order to inhibit O-2 formation as detected by succinylated cytochrome c or pyrogallol. The reason for this difference might be inherent in different types of kinetics in the interaction of O-2 with different scavengers or might possibly indicate that SOD scavenges another type of reactive oxygen, different from O-2, generated by cytochrome P-450 LM2. Iron chelators inhibited the P-450-dependent lipid peroxidation, whereas iron chelate interacted with NADPH-cytochrome-P-450 reductase in the membranes giving rise to reductase-dependent lipid peroxidation. Neither superoxide dismutase nor EDTA at high concentrations, inhibited CCl4-initiated lipid peroxidation, indicating the point of action of these compounds at the initiation step in the cytochrome-P-450-LM2-dependent lipid peroxidation. Superoxide generated by pyrogallol, in three times the amount produced by P-450 LM2, could not bring about lipid peroxidation. It is suggested that the cytochrome-P-450-dependent lipid peroxidation mechanism might be of importance for intracellular oxidative damage under certain conditions.

Carotenoids↗

Microelectrode recording of the effects of agonists and antagonists on alpha-adrenoceptors on rat somatic nerve terminals.

The effects of apomorphine, catechol, clonidine, isoprenaline, (-)-and (+/-)-noradrenaline, phenylephrine, pyrogallol and xylazine were investigated on the frequency and amplitude of miniature endplate potentials (m.e.p.ps) and, with the exception of apomorphine, catechol and pyrogallol, on the amplitude of endplate potentials (e.p.ps) in the rat phrenic nerve diaphragm preparation. Clonidine, (-)-noradrenaline, phenylephrine and xylazine (each at 1.5 X 10(-5)M) increased m.e.p.p. frequency but not amplitude. The other drugs were ineffective, except isoprenaline (1.5 X 10(-5)M) which enhanced m.e.p.p. amplitude but not frequency. The increase in m.e.p.p. frequency was inhibited by phentolamine, prazosin and yohimbine (each 1.5 X 10(-9)M). Prazosin and yohimbine alone each reduced m.e.p.p. frequency but failed to abolish m.e.p.ps even at high concentrations (10(-3)M). Clonidine, (-)-noradrenaline, phenylephrine and xylazine (each 3 X 10(-6)M) enhanced e.p.p. amplitude; this enhancement was blocked by prazosin and by yohimbine (each 3 X 10(-6)M). In preparations fatigued by prolonged continuous nerve stimulation (5 Hz, 0.05 ms for 30 min), (-)-noradrenaline (3.3 X 10(-4)M) restored m.e.p.p. frequency. The results indicate that adrenoceptors on somatic nerve terminals interact with both alpha 1- and alpha 2-agonists and antagonists and show different characteristics from those at autonomic neuroeffector junctions. The alpha-adrenoceptors on somatic nerve terminals may have an ancilliary physiological role in influencing but not controlling transmitter release.

Adrenergic alpha-Antagonists↗

Comparison of the pharmacological profile of S-nitrosothiols, nitric oxide and the nitrergic neurotransmitter in the canine ileocolonic junction.

1. In organ bath experiments, hydroquinone (30-100 microM) and hydroxocobalamin (30-100 microM) concentration-dependently inhibited the relaxations induced by NO (0.3-30 microM) but not those by nitroglycerin (GTN, 1 microM) in the canine ileocolonic junction (ICJ). Hydroxocobalamin reduced the relaxation to low frequency (2 Hz) stimulation of the non-adrenergic, non-cholinergic (NANC) nerves, whereas hydroquinone only reduced the NANC nerve-mediated relaxations to electrical stimulation at 16 Hz, 0.5 ms. 2. Relaxations to S-nitroso-L-cysteine (CysNO, 1-30 microM), or S-nitroso-N-acetyl-D,L-penicillamine (SNAP, 1-30 microM) were not inhibited by hydroquinone (30-100 microM), hydroxocobalamin (30-100 microM), pyrogallol (30-100 microM) or L-cysteine (1-3 microM). Hydroquinone (100 microM) only reduced the relaxation to 10 microM CysNO. Hydroxocobalamin, but not hydroquinone, pyrogallol or L-cysteine, potentiated the relaxations to the lowest concentration (1 microM) of S-nitrosoglutathione (GSNO, 1-30 microM). 3. In the superfusion bioassay, hydroquinone (100 microM) and hydroxocobalamin (1 microM) concentration-dependently inhibited the biological activity of authentic NO (1-4 pmol) to the same extent as that of the transferable nitrergic factor, released from the canine ICJ in response to NANC nerve stimulation (8-16 Hz, 2 ms). Responses to GTN (10 pmol) or adenosine 5'-triphosphate (10 nmol) were not affected. 4. In conclusion, the nitrosothiols CysNO, SNAP and GSNO relax the canine ileocolonic junction, but these relaxations, pharmacologically, behave differently from the NANC nerve-mediated relaxations. From the bioassay experiments, we conclude that the nitrergic factor, released in response to NANCnerve stimulation of the canine ICJ, behaves pharmacologically like NO but not like a nitrosothiol.Therefore, we suggest NO, and not CysNO, SNAP or GSNO as the inhibitory NANC neurotransmitter in the canine ICJ.

Animals↗

Role of the L-arginine/nitric oxide pathway in relaxation of isolated human penile cavernous tissue and circumflex veins.

In human penile corpus cavernosum strips, pre-contracted by noradrenaline, electrical stimulation of nerves evoked non-adrenergic, non-cholinergic (NANC) relaxant responses which could be inhibited by tetrodotoxin 10(-6) M, NG-nitro-L-arginine (L-NNA) 10(-7)-10(-4) M, and oxyhaemoglobin 10(-5) M, but not by methylene blue (MB) 10(-5) M. Acetylcholine-induced relaxations were also inhibited by L-NNA 10(-4) M and oxyhaemoglobin 10(-5) M, but were unaffected by pyrogallol 10(-4) M, MB 10(-5) M, and tetrodotoxin 10(-6) M. MB 5 x 10(-4)-10(-4) M significantly reduced the responses to both electrical stimulation and to acetylcholine. Nitric oxide (NO) 10(-7)-10(-4) M and sodium nitroprusside 10(-9)-10(-4) M caused concentration-dependent relaxations. The NO-induced relaxations were inhibited by oxyhaemoglobin 10(-5) M, and the concentration-response curve for sodium nitroprusside was shifted to the right by MB 10(-5) M. The response to sodium nitroprusside was unaffected by L-NNA 10(-4) M, oxyhaemoglobin 10(-5) M, and pyrogallol 10(-4) M. In circumflex veins, pre-contracted by noradrenaline, no NANC-mediated relaxation was found in response to electrical stimulation; acetylcholine caused endothelium-dependent relaxations, which were insensitive to L-NNA 10(-4) M and oxyhaemoglobin 10(-5) M. NO and sodium nitroprusside caused concentration-dependent relaxations; the concentration-response curves for NO and sodium nitroprusside were shifted to the right by oxyhaemoglobin 10(-5) M. Removal of the endothelium left the NO- and sodium nitroprusside-induced relaxations unchanged.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

On the preferred rotameric conformation for dopamine agonist action: an illusory quest.

Putative dopamine agonists from the 2-aminotetrahydronaphthalene and trans-octahydrobenzo (f) and (g) quinoline series were shown to inhibit the spontaneous locomotor activity of mice. Marked potency differences were observed between the alpha-and beta-rotameric conformations, compounds having the alpha-rotameric conformation having the greater potency. Thus, 2-di-n-propylmino-5,6-dihydroxytetrahydronaphthalene was 339 times more potent than the 6, 7-dihydroxy isomer, and 2-n-propylamino-5,6-dihydroxy-compound was respectively 79 times and 179 times more than 6,7-hydroxy-and 7,8-dihydroxycompounds. trans-7,8-dihydroxy-1-n-propyl-1,2,3,4,a,9,10,10b-octahydrobenzo(f)quinoline was 11 times more potent than the beta-rotamer, the 6,7-dihydroxy compound, and within the trans-octahydrobenzo(g)quinoline series the alpha-rotameric N-propyl derivative was 467 times more potent than the beta-rotamer, and the alpha-rotameric greater than N-H analogue was 46 fold more potent than the beta-rotamer. Thus, the alpha-rotamer appears the more potent in causing the present functional dopaminergic change. The dopaminergic nature of the response was indicated by its sensitivity to spiroperidol but not to yohimbine or prazosin. The possibility that a difference in behavioural potency between the alpha- and beta-rotamers may reflect a differential metabolism by catechol-O-methyl transferase was assessed by administration of different agonists after pyrogallol pretreatment. This potentiated the activity of 2-di-n-propylamino-6,7-dihydroxytetrahydro-naphthalene but not that of the 5,6-dihydroxy analogue. However, changes in the effects of N-propyl derivatives of trans-octahydrobenzo (f) and (g)quinoline were not marked and, in all experiments, pyrogallol treatment failed by orders of magnitude to shift the dose-response curves of the beta-rotamers to indicate a comparable potency to the rotameric forms.

Animals↗

The metabolism of (3H)noradrenaline released by electrical stimulation from the isolated nictitating membrane of the cat and from the vas deferens of the rat.

1. The noradrenaline (NA) stores of the isolated medial muscle of the cat's nictitating membrane were labelled with [(3)H]NA and the tissue was set up in an isolated organ bath for field stimulation. The tritiated NA and its metabolites released spontaneously and by field stimulation were determined by scintillation counting following chromatographic separation.2. NA represented 11.8 +/- 1.0% of the total radioactivity of the spontaneously released tritiated compounds. The rest was accounted for by NA metabolites: (a) normetanephrine (NMN), 35%; (b) 4-hydroxy-3-methoxymandelic acid (VMA), 20%; (c) 3,4-dihydroxyphenylglycol (DOPEG), 10%; (d) 3,4-dihydroxymandelic acid (DOMA), 10%; (e) 4-hydroxy-3-methoxyphenylglycol (MOPEG), 14%.3. Field stimulation at 25 shocks/sec with supramaximal stimuli of 1 msec duration increased the outflow of NA six to eightfold and that of NMN, DOPEG and VMA two to threefold. The increase in outflow of DOMA and MOPEG was small. NA represented 35.8 +/- 4.1% of the total increase in radioactivity.4. After pargyline pretreatment field stimulation increased the outflow of NA and NMN. Stimulation in the presence of pyrogallol raised the release of NA, DOMA and DOPEG. Neither pargyline nor pyrogallol affected the total release induced by stimulation.5. Cocaine 0.3 mug/ml. increased the release due to stimulation at 4 shocks/sec but not at 25 shocks/sec. Cocaine did not affect the metabolism of the released transmitter.6. Phenoxybenzamine (10 mug/ml.) increased release by stimulation at 4 and 25 shocks/sec. Metabolism of the released transmitter was prevented in the presence of phenoxybenzamine.7. Phentolamine (3 mug/ml.), like phenoxybenzamine, blocked responses to field stimulation, but failed to modify release and subsequent metabolism of NA liberated by field stimulation.8. The main NA metabolites in the rat vas deferens were DOPEG, DOMA and MOPEG. Stimulation at 4 shocks/sec resulted in an increased outflow of NA and of DOPEG. Fifty per cent of the total increase of radioactive compounds was accounted for by NA metabolites.9. These experiments show that for the calculation of the actual output of transmitter it is important to include the metabolites and not to rely on the determination of [(3)H]NA alone.

Animals↗

Molecular mechanisms controlling the rate and specificity of catechol O-methylation by human soluble catechol O-methyltransferase.

Molecular mechanisms determining the turn-over rate and specificity of catechol O-methylation were studied by combining enzyme kinetic measurements, computational modeling of substrate properties and fitting ligands in a 3D model of the active site of the enzyme. Enzyme kinetic measurements were carried out for 46 compounds, including most clinically used catechol drugs, by using recombinant human soluble catechol O-methyltransferase (COMT). The most important mechanism decreasing the turnover rate and increasing affinity was the electron withdrawing effect of substituents. Several other mechanisms by which substituents affected reactivity and affinity were identified. Highest turnover rates were determined for unsubstituted catechol and pyrogallol. Pyrogallol derivatives generally seemed to be more specific substrates than catechols. Catecholestrogens were the most specific endogenous substrates, whereas catecholamines were rather poor substrates. Among the catechol drugs used in the L-DOPA treatment of Parkinson's disease, the COMT inhibitors entacapone and tolcapone were not methylated, whereas the DOPA decarboxylase inhibitor benserazide was 15 times more specific substrate than L-DOPA, the target of COMT inhibition. The structure-activity relationships found allow the prediction of reactivity, affinity, and specificity with useful accuracy for catechols with a wide range of structures and properties. The knowledge can be used in the evaluation of metabolic interactions of endogenous catechols, drugs and dietary catechols, and in the designing of drugs with the catechol pharmacophore.

Binding Sites↗

Catalase-peroxidase from the cyanobacterium Synechocystis PCC 6803: cloning, overexpression in Escherichia coli, and kinetic characterization.

The Synechocystis PCC 6803 katG gene encodes a dual-functional catalase-peroxidase (EC 1.11.1.7). We have established a system for the high level expression of a fully active recombinant form of this enzyme. Its entire coding DNA was extended using a synthetic oligonucleotide encoding a hexa-histidine tag at the C-terminus and expressed in Escherichia coli [BL21-(DE3)pLysS] using the pET-3a vector. Hemin was added to the culture medium to ensure its proper association with KatG upon induction. The expressed protein was purified to homogeneity by two chromatography steps including a metal chelate affinity and hydrophobic interaction chromatography. The homodimeric acidic protein (pl = 5.4) had a molecular mass of 170 kDa and a Reinheitszahl (A406/A280) of 0.64. The recombinant protein contained high catalase activity (apparent Km = 4.9 +/- 0.25 mM and apparent kcat = 3500 s(-1)) and an appreciable peroxidase activity with o-dianisidine, guaiacol and pyrogallol, but not with NAD(P)H, ferrocytochrome c, ascorbate or glutathione as electron donors. By using both conventional and sequential stopped-flow spectroscopy, formation of compound I with peroxoacetic acid was calculated to be (8.74 +/- 0.26) x 10(3) M(-1) s(-1), whereas compound I reduction by o-dianisidine, pyrogallol and ascorbate was determined to be (2.71 +/- 0.03) x 10(6) M(-1) S(-1), (8.62 +/- 0.21) x 10(4) M(-1) S(-1), and (5.43 +/- 0.19) x 10(3) M(-1) S(-1), respectively. Cyanide binding studies on native and recombinant enzyme indicated that both have the same heme environment. An apparent second-order rate constant for cyanide binding of (4.8 +/- 0.1) x 10(5) M(-1) S(-1) was obtained.

Amino Acid Sequence↗

Protective effects of phenolic compounds on CCl4-induced toxicity in isolated rat hepatocytes.

The protective effects of a series of phenolic compounds, phenolic acids and flavonoids on the cytotoxicity of CCl4 in rat hepatocytes were studied. A number of flavones, 7,8-dihydroxy-flavone, luteolin and hypolaetin-8-glucoside, flavonols, morin, quercetin, robinetin and gossypin, phenolic acids, gallic, caffeic and chlorogenic acids, as well as the flavane (+)-catechin significantly inhibited alanine amine transferase (ALT) release. Catechol groups are determinant for the protective activity of flavonoids and cinnamic acid derivatives, as well as the resorcinol or pyrogallol moieties in the B ring of flavonoids. In benzoic acid derivatives a pyrogallol group is required. This feature is associated with the inhibition of ALT spontaneous release.

Animals↗

Reactivation mechanisms of thiamine with thermostable factors.

It was observed, in vitro, that the water extract of the fermented-tea customarily chewed by Thai people has a similar thermostable thiamine-inactivating factor to that found in the water extract of fern. It was also observed that the percentage of thiamine disulfide formed from thiamine with some flavones, catechol, pyrogallol, caffeic acid, dihydroxyphenylalanine, and hemin is greater at pH 7.5 than at pH 7.0. With some flavonoids, such as quercetin, rutin, and 6,7,4'-trihydroxyisoflavone, and pyrogallol, hemin, catechol and caffeic acid at pH 7.5, around 30-100% of thiamine is changed into thiamine disulfide. Water extract of shiitake, okra, coffee, black tea and fukinoto have only weak activities of thermostable thiamine-inactivating factors as a large percentage of thiamine disulfide is formed from thiamine even at pH 7.0. 2-Methyl-4-amino-5-aminomethylpyrimidine was isolated from the reaction mixture of 1 g thiamine with 20 mg catechol (1:0.5 mole) at pH 7.0, 45 degrees C, and identified with the synthesized pyrimidine.

Antimetabolites↗

[Antibacterial and anti-hemolysin activities of tea catechins and their structural relatives].

Among catechins tested, (-)epigallocatechin (EGC), (-)epicatechin gallate (ECg), (-) epigallocatechin gallate (EGCg) inhibited the growth of Staphylococcus aureus, Vibrio cholerae O1 classical Inaba 569B and El Tor Inaba V86. S. aureus was more sensitive than V. cholerae O1 to these compounds. EGCg showed also a bactericidal activity against V. cholerae O1 569B. Pyrogallol showed a stronger antibacterial activity against S. aureus and V. cholerae O1 than tannic and gallic acid. Rutin or caffein had no effect on them. ECg and EGCg showed the most potent anti-hemolysin activity against S. aureus alpha-toxin, Vibrio parahaemolyticus thermostable direct hemolysin (Vp-TDH) and cholera hemolysin. Among catechin relatives, only tannic acid had a potent anti-hemolysin activity against alpha-toxin. These results suggest that the catechol and pyrogallol groups are responsible for the antibacterial and bactericidal activities, while the conformation of catechins might play an important role in the anti-hemolysin activity.

Antitoxins↗