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Biomedical subjects

M Costa

Publications and source records attributed to M Costa.

At least 577 records · Page 32Linked to original sources

Cyclic AMP-dependent regulation of ornithine decarboxylase activity in Chinese hamster ovary cells maintained with a salts/glucose medium.

Ornithine decarboxylase activity (ODC) increased about 7 fold 6--8 h following 10mM asparagine (ASN) addition to confluent cultures that had been previously serum deprived and then placed in a salts/glucose medium. Optimal concentrations of dibutyryl cAMP (dB cAMP) when incubated with the ASN caused up to a 50 fold increase in the activity of this enzyme after 7--8 h. The enhancement of ODC activity by ASN and dB cAMP was not sensitive to continuous (0--7 h) treatment with actinomycin D but similar treatment with cycloheximide depressed enzyme activity 40--60%. The synergistic stimulation of ODC activity by dB cAMP added with ASN was dose dependent and the dB cAMP stimulation of ODC activity displayed an absolute requirement for ASN when cells were maintained in the salts/glucose medium. The addition of dB cAMP always further enhanced ODC activity above the levels produced by addition of various levels of ASN (1 to 40mM) to the salts/glucose medium. Other agents which elevated cAMP levels such as 1-methyl-3-isobutylxanthine (IBMX) also enhanced ODC activity when administered with ASN. Additionally, treatment with sodium butyrate at concentrations ranging from 0.001mM to 5.0mM did not elevate ODC activity above the activity obtained with ASN alone. Addition of dB cAMP at various times after placing cells in salts/glucose medium with ASN further stimulated ODC activity only when added during the first 3-4 h. These results demonstrate the involvement of cAMP in the ASN mediated stimulation of ODC activity using cells maintained in a salts/glucose medium.

Animals↗

Cytoplasmic and nuclear protein kinases during the cell cycle.

Nuclear and cytoplasmic protein kinases were measured during the traverse of synchronous CHO cultures through G1 into S phase. Cells were synchronized by selective detachment of cells blocked in metaphase using colcemid. Nuclei were isolated and the protein kinases extracted from the nuclear preparation with 0.6 M NaCl. This procedure solubilized greater than 90% of the total protein kinase activity present in the nuclear preparation. DEAE chromatography of this extract showed 5 apparently different ionic forms of nuclear protein kinases. The nuclear protein kinases preferred casein and phosvitin to histone as substrates and were cyclic AMP-independent. Nuclear protein kinase activities increased greater than two-fold, when expressed as units of activity per cell nucleus, during G1 phase traverse, concomitant with a 70% increase in nuclear non-histone proteins (those soluble in 0.6 M NaCl). This resulted in only a 40% increase in the specific activities (units/microgram protein in 0.6 M NaCl extractable nuclear fraction) of these enzymes as cells progressed through G1 into S phase. This was in contrast to cytoplasmic cyclic AMP-dependent protein kinase activities which also increased two-fold during progression through G1 phase while total cellular protein increased less than 20%. Activation of, as well as synthesis of, cyclic AMP-dependent cytoplasmic protein kinases during G1 phase suggests a regulatory mechanism for precise temporal phosphorylation, whereas the constant specific activity in nuclear kinases during cell cycle is more compatible with the maintenance of bulk phosphorylation processes in the nucleus.

Cell Cycle↗

Involvement of complement in degeneration of sympathetic nerves after administration of antiserum to dopamine beta-hydroxylase.

The involvement of complement in the degeneration of noradrenergic nerves in the guinea-pig iris produced by administration of antibody to dopamine beta-hydroxylase (DBH) in vivo was investigated histochemically. When 500 microliter of antiserum to DBH was injected systemically, no evidence of degeneration was observed in the iris although the noradrenergic supply of the myenteric plexus of the ileum degenerated within 2 days. However, injection of 20 microliter of complement (C) into the anterior chamber of one eye within 2 days of the systemic administration of anti-DBH produced a degeneration of 50--90% of noradrenergic terminals in the iris, the nerves of the iris of the contralateral uninjected eye being unaffected. Electron microscopy confirmed the presence of degenerating nerve terminals in the iris. The extent of degeneration produced by addition of C decreased when C was injected at increasing intervals after the antiserum. Intraocular injection of 5 microliter of anti-DBH together with 20 microliter of C caused a substantial degeneration of noradrenergic nerves in the iris. In contrast, intraocular injection of the Fab'2 fragment of anti-DBH (which did not bind C, but still bound DBH in vitro and in vivo) failed to cause degeneration in the presence of 20 microliter of C. The degeneration of guinea-pig sympathetic nerves caused by antibodies to DBH thus appears to be due to a complement mediated lysis of sympathetic axon membranes. The relative susceptibilities of the noradrenergic fibres in different tissues probably depend on the local concentrations of anti-DBH and C.

Adrenergic Fibers↗

Selective reactivity of rhodanese sulfhydryl groups with 5,5'-dithio-bis(2-nitrobenzoic acid).

The reactivity of the sulfhydryl groups of sulfur-containing and sulfur-free rhodanese (thiosulfate : cyanide sulfurtransferase, EC 2.8.1.1) with 5,5'-dithio-bis(2-nitrobenzoic acid) (DTNB) has been investigated. Only 0.6 sulfhydryl group of the sulfur-containing enzyme reacts with DTNB. After removal of sulfur from persulfide groups a further 0.6 sulfhydryl group (i.e. a total of 1.2) becomes accessible to the reagent. The resulting enzyme-thionitrobenzoate complex shows an absorption spectrum with a shoulder at 325 nm due to bound thionitrobenzoate. Both thiosulfate and cyanide remove thionitrobenzoate from the enzyme restoring its catalytic properties. The modified enzyme is protected from alkylation by iodoacetate until thionitrobenzoate is removed. The existence of a further sulfhydryl group close to the catalytic one is suggested.

Animals↗

Water-stable fluorophores, produced by reaction with aldehyde solutions, for the histochemical localization of catechol- and indolethylamines.

The properties of a new fluorescence histochemical method for arylethylamines based on reaction with a mixture of 4% formaldehyde and 0.5% glutaraldehyde in aqueous solution are described. At room temperature the aldehyde mixture produced a well-localized fluorescence reaction in tissues, which, when examined microscopically in aqueous solution, was sufficiently intense for fine terminal noradrenergic axons to be seen. If the tissue was subsequently dried, the fluorescence intensity increased. At the same time as inducing the fluorophores, the aldehyde mixture fixed the tissue to a standard well suited for electron microscopy. It thus proved possible to locate amine containing cells in the fluorescence microscope and subsequently examine their ultrastructure. In aqueous models, the aldehyde mixture formed fluorescent products with adrenaline, noradrenaline, dopamine, dopa, 5-hydroxytryptamine and 5-hydroxytryptophan, but not with histamine or octopamine. The fluorescence induced in the aldehyde mixture remained stable if the tissue was subsequently transferred to saline or distilled water and when it was dehydrated in ethanol and cleared with xylene, benzene, chloroform or acetone.

Axons↗

Simultaneous fixation and production of catecholamine fluorescence in central nervous tissue by perfusion with aldehydes.

Perfusion with a mixture of formaldehyde (4%) and glutaraldehyde (0.5%) is shown both to fix central nervous tissue and to produce, with no further treatment, a fluorescence histochemical localization of catecholamines. After perfusion, serial sections can be readily taken through the whole brain with a Vibratome. Landmarks which are apparent at low power with white-light illumination can be seen when the sections are viewed in the fluorescence microscope. Catecholamine-containing nerve cell bodies, varicose axon terminals and non-varicose nerve fibres appear brightly fluorescent and well localized. The method has been applied to rats, guinea-pigs and rabbits and is ideally suited to the accurate mapping of central catecholamine neurons and their processes.

Animals↗

Differences in thermal sensitivities of the regulatory-catalytic and catalytic forms of cyclic AMP-dependent protein kinases from various tissues.

The cAMP-dependent protein kinase from various tissues was more thermally sensitive when activated by cAMP than the non-activated enzyme. For example, when the activity ratio (the activity of protein kinase assayed -cAMP/+cAMP) was 0.40, 80% and 76% of total hepatic cAMP dependent protein kinase activity was recoverable after incubations at 45 degrees C for 15 and 30 minutes, respectively. However, when the activity ratio was elevated to about 0.80 - 0.90 by increasing cAMP levels in vivo or adding exogenous cAMP to soluble liver extracts, the total protein kinase activity recoverable after incubations at 45 degrees C for 15 minutes was 34-44% and 19-22%, respectively. This observation was used to estimate the degree of activation of the enzyme in vivo and in vitro, since the loss of enzyme activity at 45 degrees C was directly related to the degree of activation of the enzyme in tissue extracts. The regulatory-catalytic form of cAMP-dependent protein kinase was thermally resistant at 45 degrees C unless activated by incubation with exogenous cAMP, histones or NaCl, while the catalytic form of the enzyme was highly thermally sensitive at this same temperature. These data describe a new property of the cAMP-dependent protein kinase and suggest an alternative method which measure the degree of activation of the enzyme.

Animals↗

[Aggregation of blood platelets: changes in Breddin's method (author's transl)].

The evaluation of the blood platelets aggregation, by means of Breddin's method, is rather long and, moreover, the subjective elements connected with the microscopist's experience, fall on it. The AA. have verified, through sixty cases, a great correlation between this method and change prepared by them, whied avoids the inconveniences before mentioned.

Adult↗

The presence of aromatic L-amino acid decarboxylase in certain intestinal nerve cells.

The presence of aromatic 1-amino acid decarboxylase (AADC) in nerve cell bodies of the intrinsic plexuses of the guinea-pig small intestine was demonstrated by incubating segments of intestine with 1-dopa in the presence of an inhibitor of monoamine oxidase, pargyline. After such incubation, some nerve cell bodies gave a fluorescence histochemical reaction indicative of the presence of a decarboxylated product of 1-dopa, probably dopamine. No fluorescence reaction occurred in the unincubated control or if the inhibitor of AADC, RO 4-4602, was included in the incubation mixture. The AADC-containing cell bodies apparently do not take up and store dopamine, because no fluorescence could be detected after incubation with dopamine and a monoamine oxidase inhibitor. The AADC-containing cells were found in about half of the ganglia of the submucous plexus of the guinea-pig small intestine, but were considerably less frequent in the myenteric plexus. They were also found in the other areas examined in this study, that is, in both enteric plexuses of the guinea-pig distal colon and of the small intestines of rabbits and rats.

Animals↗

Reaction of rhodanese with dithiothreitol.

The reaction between bovine rhodanese (thiosulfate:cyanide sulfurtransferase, EC 2.8.1.1) and reduced dithiothreitol has been studied. This reagent, in the absence of thiosulfate, reduces the amount of sulfur carried by rhodanese with formation of sulfide and oxidized dithiothreitol: E-S-SH + reduced dithiothreitol replaced by E-SH + HS- + oxidized dithiothreitol, (E = enzyme). An inactivation was observed at high dithiothreitol/enzyme ratios or at very low enzyme concentrations. The inactivation was not observed in the presence of thiosulfate and can be reversed by cyanide or thiosulfate. A thiosulfate reduction activity of rhodanese was also found using dithiothreitol as reductant.

Animals↗

Cell cycle-specific activity of type I and type II cyclic adenosine 3':5'-monophosphate-dependent protein kinases in Chinese hamster ovary cells.

Types I and II cyclic adenosine 3':5'-monophosphate (cAMP)-dependent protein kinases have been studied during the cell cycle of Chinese hamster ovary cells. Chinese hamster ovary cells were synchronized by selective detachment of mitotic cells from monolayer cultures. Protein kinases were separated by DEAE-cellulose chromatography and were similar to the types of cAMP-dependent protein kinases studied in skeletal muscle and in heart extracts. The total amount of protein kinases activity per cell was substantial, both in mitosis and at the G1/S boundary. During mitosis, the relatively high activity of protein kinase was due to a predominance of type I protein kinase. During early G1, the activity of type I protein kinase decreased and there was little detectable type II activity. A rapid increase in the activity of type II was evident at the G1/S boundary. The administration of puromycin (50 mug/ml) from 1 to 5 hours after selective detachment of mitotic cells abolished the activity of type II cAMP-dependent protein kinase seen at the G1/S border, but had no observable effect on the activity of type I protein kinase. The data presented demonstrate cell cycle-specific activity patterns of type I and type II protein kinase Type I protein kinase activity is high in mitosis and is constant throughout the cell cycle. Increased type II protein kinase activity seems to be related to the initiation of DNA synthesis in S phase. The data suggest a translational control of type II cAMP-dependent protein kinase activity.

Cell Division↗

G1 specific increases in cyclic AMP levels and protein kinase activity in Chinese hamster ovary cells.

Chinese hamster ovary cells were synchronized by selective detachment of cells in mitosis. The adenosine 3':5'-cyclic monophosphate (cyclic AMP) intracellular concentrations and cyclic AMP-dependent protein kinase activities were measured as these cells traversed G1 phase and entered S phase. Protein kinase activity, assayed in the presence or absence of saturating exogenous cyclic AMP in the reaction mixture, was lowest in early G1 phase (2 h after mitosis), increased 2-fold (plus exogenous cyclic AMP in reaction mixture) or 3.5-fold (minus cyclic AMP in reaction mixture) to maximum values in mid to late G1 phase (4-5 h after mitosis), and then decreased as cells entered S phase. Intracellular cyclic AMP concentrations were minimal 1 h after mitosis, increased 5-fold to maximum levels at 4-6 after mitosis, and decreased as cells entered S phase. Similar to the fluctuations in intracellular cyclic AMP, the cyclic AMP-dependent protein kinase activity ratio increased more than 40% in late G1 or early S phase. Puromycin (either 10 mug/ml or 50 mug/ml) administered 1 h after mitosis inhibited cyclic AMP-dependent protein kinase activity up to 50% by 5 h after mitosis, while similar treatment (10 mug/ml) had no effect on the increase in cyclic AMP formation. These data demonstrate that: (1) total protein kinase activity changed during G1 phase and this increase was dependent on new protein synthesis; (2) the increased intracellular concentrations of cyclic AMP were not dependent on new protein synthesis; and (3) the activation of cyclic AMP-dependent protein kinase was temporally coordinated with increased intracellular concentration of cycli AMP as Chinese hamster ovary cells traversed G1 phase and entered S phase. These results suggest that cyclic AMP acts during G1 phase to regulate the activation of cyclic AMP-dependent protein kinase.

Cell Line↗