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At least 19 recordsLinked to original sources

Purification of two distinct types of phosphoinositide-specific phospholipase C from rat liver. Enzymological and structural studies.

Two kinds of phosphoinositide-specific phospholipase C (PLC) were purified from rat liver by acid precipitation and several steps of column chromatography. About 50% of the activity could be precipitated when the pH of the liver homogenate was lowered to pH 4.7. The redissolved precipitate yielded two peaks, PLC I and PLC II, in an Affi-gel Blue column, and each was further purified to homogeneity by three sequential h.p.l.c. steps, which were different for the two enzymes. The purified PLC I and PLC II had estimated Mr values of 140,000 and 71,000 respectively on SDS/polyacrylamide-gel electrophoresis. Both enzymes hydrolysed phosphatidylinositol (PI), phosphatidylinositol 4-phosphate (PIP) and phosphatidylinositol 4,5-bisphosphate (PIP2) in a Ca2+- and pH-dependent manner. PLC I was most active at 10 microM- and 0.1 mM-Ca2+ for hydrolysis of PI and PIP2 respectively, whereas PLC II showed the highest activity at 5 mM- and 10 microM-Ca2+ for that of PI and PIP2 respectively. The optimal pH of the two enzymes also differed with substrates or Ca2+ concentration, in the range pH 5.0-6.0. Hydrolysis of phosphoinositides by these enzymes was completely inhibited by Hg2+ and was affected by other bivalent cations. From data obtained by peptide mapping and partial amino acid sequencing, it was clarified that PLC I and PLC II had distinct structures. Moreover, partial amino acid sequences of three proteolytic fragments of PLC I completely coincided with those of PLC-148 [Stahl, Ferenz, Kelleher, Kriz & Knopf (1988) Nature (London) 332, 269-272].

Amino Acid Sequence↗

Histopathological and enzymological liver alterations in rat liver in the napthol intoxication.

The study was performed on Wistar adult rats divided in 4 experimental and 2 control groups. In the 4 experimental groups, we used the oral naphtol administration in two doses: 15 mg/kg body-weight and 1.5 mg/kg body-weight. The rats were sacrificed 3 months, respectively 10 months later. Some liver parenchyma dystrophic lesions were noticed. In the subacute test group and using high drug doses the lesions were more severe, especially in the female rats. In the chronic test groups, the lesion area was decreased and in the female rats the liver showed normal histological patterns; in this test groups we also noticed a marked hepatocyte regenerative tendency. Histoenzymatically, a decrease of SDH and ATP-ase activity was recorded. The marked decrease of the hepatocyte glycogen content correspond to an increase of the G-6-P activity.

Acute Disease↗

Long-chain-acyl-CoA synthetase and very-long-chain-acyl-CoA synthetase activities in peroxisomes and microsomes from rat liver. An enzymological study.

We have investigated the palmitic acid (C16:0) and cerotic acid (C26:0) activating activities in rat-liver microsomes and peroxisomes. The activation of the two fatty acids showed similar dependencies on ATP and coenzyme A, reflected in about equal apparent Km values both in microsomes and peroxisomes. In microsomes and peroxisomes similar apparent Km values for palmitic acid were found (15 microM and 22.8 microM, respectively), whereas apparent Km values for cerotic acid were 8.4 microM and 1.0 microM in microsomes and peroxisomes, respectively. The activation of cerotic acid was found to be inhibited to a progressively greater extent by increasing concentrations of 1-pyrenedecanoic acid (P10) as compared to the activation of palmitic acid, both in microsomes and peroxisomes. The inhibition by P10 of palmitic acid activation and cerotic acid activation was non-competitive in both organelles. From the observation that P10 activation is not affected by palmitic acid and cerotic acid, we conclude that P10 is activated by a distinct enzyme. Furthermore, our results are in accordance with earlier suggestions that activation of cerotic acid is brought about by an enzyme distinct from the palmitoyl-CoA synthetase.

Animals↗

A high molecular weight protease in the cytosol of rat liver. I. Purification, enzymological properties, and tissue distribution.

Rat liver cytosol has low hydrolytic activity against [3H]methylcasein at neutrality, but activity increases greatly on addition of various compounds such as poly-L-lysine, N-ethylmaleimide, and sodium dodecyl sulfate, suggesting that it contains latent proteolytic activity. The latent enzyme was found to be stabilized in the presence of 20% glycerol and to be activated by addition of poly-L-lysine. The latent enzyme was purified from a crude extract of rat liver to apparent homogeneity in the presence of 20% glycerol by conventional chromatographic techniques. The purified enzyme showed endoproteolytic activity toward various proteins when it was activated by the compounds listed above. It preferentially degraded N-substituted tripeptide substrates with a basic amino acid at the carboxyl terminus, as well as peptides containing neutral hydrophobic amino acids. It did not require activation for these peptidase activities, in contrast to its activity toward large proteins. Interestingly, a proteinase and a trypsin-like and a chymotrypsin-like peptidase activity could not be separated by customary chromatographic methods but were distinguishable by their sensitivities to various inhibitors, activators, and covalent modifiers, suggesting that the enzyme has three distinct active sites within a single protein. The enzyme seems to be a seryl endopeptidase showing maximal activity at neutral and weakly alkaline pH values. Thus, the enzyme is a unique protease with latent multifunctional catalytic sites. The distribution of the protease in soluble extracts of various rat tissues and cells was examined quantitatively by an enzyme immunoassay. The enzyme level was highest in liver and also in spleen, stomach, lung, small intestine, and kidney, but was low in heart, diaphragm, skeletal muscle, brain, and skin. The concentrations of enzyme in some established cell lines including hepatoma and rat kidney cells were comparable to that in normal liver hepatocytes. The enzyme was found mainly in the cytosol fraction, although a small amount was associated with microsomal membranes, suggesting that it is an extralysosomal protease. Immunohistochemical staining of the liver and skeletal muscles showed that the protease is distributed diffusely in panlobular hepatocytes with slight centrilobar predominance and is present in Kupffer cells, vascular endothelial cells, and bile duct epithelial cells in the liver and also diffusely in the intermyofibrillar spaces and vascular endothelial cells in skeletal muscle. The quantitative data obtained in the present study indicate the presence of the protease in the cytosol fraction of all rat tissues.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

[Enzymatic activity assays in the hepatic cell by mass fragmentography associated with gas-liquid chromatography].

The most generalized methods in enzymology are based on the quantitative assay of compounds, substrate or coenzyme, by spectrophotometry without any separation. Such a method is ruled out if the colorimetric reaction is not specific of the compound. In liver enzymology, aside the classical metabolic pathways, such assays are difficult to apply, especially when several metabolic steps are investigated. It is therefore necessary to use separative methods to isolate the metabolized substrate(s). For instance, the reductive catabolism of corticosterone leads to fourteen isomers (two dihydrocompounds, four tetrahydrocompounds and eight hexahydrocompounds) in which their respective productions are sex and age-linked. A position isomer of corticosterone, the 18-hydroxy-11-deoxy-corticosterone, follows the same reductive route. In adrenals some reduced metabolites arise from these two steroid hormones and are age dependent. When such metabolites are amenable to volatilization for gas chromatography, the interfacing of the gas chromatograph to the mass spectrometer allows to identify each compound introduced in the spectrometer. Among the ions produced by fragmentation of a compound or of a family of compounds, several specific fragments can be selected to be monitored along the chromatographic run leading to mass peaks which are quantitatively proportional to the amount of compounds, as far as other foreign molecules do not contribute fo fragment productions. These methods called mass fragmentography or multiple ion detection, or selected ion monitoring, allow with the help of all the resources of gas chromatography such the derivatization of studied molecules with heavy isotope labeled reagents to use the same unlabeled derivatized molecules as carriers and internal standards at once. This method allows to quantitate at the level of the picomolecule or less. Examples will be given with the study of the metabolism hormone steroids and xenobiotic compounds by the liver and adrenals in the animal and by isolated liver and adrenal cell cultures.

Adrenal Cortex Hormones↗