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N Zurgil

Publications and source records attributed to N Zurgil.

15 recordsLinked to original sources

Antimitochondrial (pyruvate dehydrogenase) autoantibodies in autoimmune rheumatic diseases.

Anti-pyruvate dehydrogenase (PDH) antibodies were determined in 1451 sera of patients with primary biliary cirrhosis (PBC) and several autoimmune rheumatic conditions by ELISA and immunoblotting. They were detected in sera of 93% of the patients with PBC (179 of 192 patients) in 60 of 277 (22%) patients with Sjogren's syndrome (SjS), 34 of 437 (8%) patients with scleroderma, 33 of 191 patients with SLE (17%), and 5 of 55 (10%) patients with rheumatoid arthritis (RA) but in none of the patients with polymyositis or the antiphospholipid syndrome. The ELISA studies were confirmed by immunoblots showing binding of autoimmune rheumatic sera to the same epitope (74 kd) of mitochondria that the PBC sera reacted with. The identical binding characteristics were also confirmed by protein competition assays with purified PDH. In 4 of 53 patients with SjS who were positive for anti-PDH, high titers as in PBC were detected. The anti-PDH antibodies in Sjogren's patients were associated with deranged liver function tests and extraglandular features but did not correlate with any other non-organ-specific antibody. Follow-up studies confirmed the association of the emergence of anti-PDH antibodies with defects in liver function tests. The antibodies were more prevalent in SLE and RA when they were associated with Sjogren's syndrome (30 and 18.8%, respectively). Among patients with different forms of scleroderma, anti-PDH antibodies were noted in subjects with systemic sclerosis, morphea, and Raynaud's phenomenon.(ABSTRACT TRUNCATED AT 250 WORDS)

Antibodies, Antinuclear

Anti-pyruvate dehydrogenase autoantibodies in primary biliary cirrhosis.

Antimitochondrial antibodies (AMA) may be detected in 95% of patients with primary biliary cirrhosis (PBC). The target autoantigens for the AMA were recently identified as four closely related metabolic enzymes located in the mitochondria. We have purified the pyruvate dehydrogenase (PDH) enzyme from bovine heart, showing that all PBC sera reacted with a 74-kd band. PDH was utilized to establish an ELISA assay for detecting the relevant antibodies. One hundred twelve of 120 sera from patients with PBC (95%) reacted with the PDH but none of the 201 control sera, including normal subjects and a panel of sera from other patients with liver diseases, showed similar reactivity. In 77% of the PBC sera the anti-PDH antibody isotype was identified as a combination of IgG and IgM, while in 18% only IgM was detected. In 5% of the sera the isotype was confined to IgG. PBC sera specifically inhibited the PDH enzyme activity. The enzyme inhibition correlated with the anti-PDH antibody titers. Thus, PDH seems to be one of the major target epitopes for AMA observed in sera of patients with PBC.

Animals

The relationship between in vitro fertilization and naturally occurring antibodies: evidence for increased production of antiphospholipid autoantibodies.

OBJECTIVE: Assessment of possible effects of ovarian stimulation during in vitro fertilization (IVF) treatment cycles on circulating levels of antiphospholipid and antinuclear autoantibodies. DESIGN: The study was performed prospectively. Sera were obtained at three time points along IVF treatment cycle. Levels of autoantibodies directed against nuclear components, mitochondrial antigens, and phospholipids were determined using enzyme-linked immunosorbent assay. PATIENTS: Thirty-five patients, who underwent at least one previous IVF attempt, and 36 age- and sex-matched controls were analyzed. All participants were randomly selected. RESULTS: The mean levels of antiphospholipid (but not antinuclear) autoantibodies in sera from IVF-treated patients were found to be significantly higher than the corresponding values of the control group (for immunoglobulin [Ig]M isotype: anticardiolipin, antiphosphatidyl L-serine; for IgG isotype: anticardiolipin, antiphosphatidyl L-serine, and antiphosphatidylcholine; P less than 0.0001, assessed by Mann-Whitney test). The autoantibody levels remained more or less constant at different time points along the treatment cycle. No correlation with age and number of previous IVF cycles was demonstrated. CONCLUSIONS: Serum levels of antiphospholipid (but not antinuclear) autoantibodies increase after IVF treatment. Based on these preliminary data, it is not yet possible to estimate if the observed changes in autoantibody levels might have any future clinical influence on infertile patients undergoing IVF treatment.

Adult

Detection of antimitochondrial antibodies: characterization by enzyme immunoassay and immunoblotting.

Mitochondrial antigens were purified from rat liver and characterized by immunoblotting. Sera from 19 well defined patients with primary biliary cirrhosis (PBC) reacted with two mitochondrial polypeptides of 68 Kd and 45 Kd. Antibodies to these antigens were not detected in any of the sera of patients with cirrhosis of the liver, chronic active hepatitis or other autoimmune diseases. The two polypeptides were derived from the soluble fraction of the mitochondrial matrix. An enzyme-linked immunosorbent assay (ELISA) employing these rat liver mitochondrial antigens is described. Positive results were obtained with all except one PBC sera (95%), five out of 47 patients with cirrhosis (11%), one out of 20 patients with chronic active hepatitis (5%), and two out of 19 patients with various autoimmune disorders (11%). The titers detected in PBC were markedly higher than those recorded in patients with other liver and autoimmune diseases. Strong correlation was found between immunoblotting and the ELISA in determining antimitochondrial antibodies. The ELISA presented is easily performed and seems to be a useful diagnostic tool for antimitochondrial antibodies in patients with PBC.

Adolescent

Concerted enhancement of calcium influx, neurotransmitter release and protein phosphorylation by a phorbol ester in cultured brain neurons.

We have recently shown that the phorbol ester 12-O-tetradecanoyl-phorbol-13-acetate enhances the depolarization induced, calcium dependent release of [3H]dopamine from cultured brain neurons in the rat. In the present study the effects of 12-O-tetradecanoyl-phorbol-13-acetate on the kinetic parameters of depolarization induced calcium influx and on Ca2+ dependent neurotransmitter release and protein phosphorylation were investigated. Depolarization induced neurotransmitter release from the neurons occurs in two phases: an initial, fast release and a subsequent slow release. At low extracellular Ca2+, 12-O-tetradecanoyl-phorbol-13-acetate enhanced the quantity of fast release and in addition, increased the rate constant of the slow release. These effects mimicked the effects of increasing the extracellular Ca2+. Various phorbol derivatives known to activate the Ca2+ activated phospholipid dependent protein kinase (protein kinase C) were also able to enhance the stimulated release of [3H]dopamine from the neurons. 12-O-tetradecanoyl-phorbol-13-acetate induced the incorporation of 32Pi into a protein with an apparent molecular weight of 45,000 daltons regardless of depolarization or of the presence of Ca2+. In addition, 12-O-tetradecanoyl-phorbol-13-acetate induced in unstimulated neurons, Ca2+ dependent increase in the amount of 32Pi incorporated into a 43,000 dalton protein and decrease in the amount incorporated into a 55,000 dalton protein. These changes mimicked the Ca2+ dependent changes in protein phosphorylation which occur upon stimulation of the neurons. Kinetic studies of depolarization induced Ca2+ uptake by the neurons indicated that 12-O-tetradecanoyl-phorbol-13-acetate enhanced the maximal influx of Ca2+ through the voltage sensitive Ca2+ channels by 40%. The results indicate that 12-O-tetradecanoyl-phorbol-13-acetate acts primarily on the regulation of stimulated Ca2+ entry into the cells. Consequently neurotransmitter release at submaximal extracellular [Ca2+] is enhanced.

Animals

Calcium permeability changes and neurotransmitter release in cultured rat brain neurons. I. Effects of stimulation on calcium fluxes.

The permeability of neuronal membranes to Ca2+ is of great importance for neurotransmitter release. The temporal characteristics of Ca2+ fluxes in intact brain neurons have not been completely defined. In the present study 45Ca2+ was used to examine the kinetics of Ca2+ influx and efflux from unstimulated and depolarized rat brain neurons in culture. Under steady-state conditions three cellular exchangeable Ca2+ pools were identified in unstimulated cells: 1) a rapidly exchanging pool (t1/2 = 7 s) which represented about 10% of the total cellular Ca2+ and was unaffected by the presence of Co2+, verapamil, or tetrodotoxin; 2) a slowly exchanging pool (t1/2 = 360 s) which represented 42% of the total cellular Ca2+ and was inhibited by Co2+, but not by verapamil or tetrodotoxin; 3) a very slowly exchanging pool (t1/2 = 96 min) which represented 48% of the total cell Ca2+ was observed only in the prolonged efflux experiments. The rate of exchange of 45Ca2+ in the unstimulated cells was dependent on the extracellular Ca2+ concentration (half-saturation at 70 microM). Depolarization of the neurons with elevated K+ causes a rapid and sustained 45Ca2+ uptake. The cellular Ca2+ content increased from 56 nmol/mg protein in unstimulated cells to 81 nmol/mg protein during 5 min of depolarization. The kinetics of the net 45Ca2+ uptake by the stimulated neurons was consistent with movement of the ion with a first order rate constant of 0.0096 s-1 (t1/2 = 72 s) into a single additional compartment. The other cellular Ca2+ pools were apparently unaffected by stimulation. The stimulated 45Ca2+ uptake was inhibited by Co2+ and by the Ca2+ channel blocker verapamil but not by the Na+ channel blocker tetrodotoxin. Ca2+ uptake into this compartment was dependent on the extracellular Ca2+ concentration (half-saturation at 0.80 mM Ca2+). Predepolarization of the cells with high K+ for 10-60 s prior to the addition of the radioactive calcium did not alter the rate of 45Ca2+ incorporation into the stimulated cells. It is concluded that the rapidly exchanging, the slowly exchanging, and the depolarization-induced Ca2+ pools observed in intact brain neurons are physically as well as kinetically distinct from each other. In addition, the depolarization-induced component observed in stimulated cells represents movement of the Ca2+ ions through a single class of voltage-sensitive Ca2+ channels. These Ca2+ channels are inhibited by Co2+ ions and by verapamil and are not inactivated during depolarization of the brain neurons.

Animals

Calcium permeability changes and neurotransmitter release in cultured brain neurons. II. Temporal analysis of neurotransmitter release.

The coupling between depolarization-induced calcium entry and neurotransmitter release was studied in rat brain neurons in culture. The endogenous dopamine content of the cells was determined by high performance liquid chromatography utilizing electrochemical detection. The amount of dopamine in unstimulated cells was found to be about 16 ng/mg of protein. Depolarization of the neurons by elevated K+ caused a Ca2+-dependent release of dopamine from the cells. Following 1 min of depolarization, the cellular dopamine content and the amount of [3H]dopamine in cells preloaded with the radioactive transmitter were reduced by 35%. The release of [3H]dopamine by the neurons was measured at 1.5-6-s intervals by a novel rapid dipping technique. Depolarization in the presence of Ca2+ (1.8 mM) enhanced the rate of neurotransmitter release by 90-fold (0.072 +/- 0.003 s-1) over the basal release in the presence of Ca2+. The evoked release consisted of a major rapidly terminating phase (t1/2 = 9.6 s) which comprised about 40% of the neurotransmitter content of the cells and a subsequent slower efflux (t1/2 = 575 s) which was observed during following prolonged depolarization. Predepolarization of the cells in the absence of extracellular Ca2+ did not affect the kinetics of the evoked release. The fast evoked release could be re-elicited in the cells after 20 min "rest" in reference low K+ buffer. The effects of varying the extracellular Ca2+ concentrations on the kinetic parameters of the evoked release were measured. The amount of neurotransmitter released during the fast kinetic phase was very sensitive to the external Ca2+ (from 0% in the absence of Ca2+ to 40% of the neurotransmitter content at Ca2+ 0.3 mM). The rate constant of the fast release did not depend on the extracellular Ca2+, whereas the rate constant of the slow release increased from 0.0004 +/- 0.0001 s-1 at 0.4 mM Ca2+ to 0.0012 +/- 0.0002 s-1 at 0.8 mM Ca2+. The fast evoked release was inhibited by verapamil in a concentration-dependent manner. By contrast, verapamil enhanced the basal and the slow release independent of the presence of Ca2+. Both fast and slow phases of the evoked release were blocked by Co2+. Addition of Co2+ within the first 6 s after the onset of depolarization inhibited the fast release but failed to do so when added later on.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Phorbol ester and calcium act synergistically to enhance neurotransmitter release by brain neurons in culture.

Preincubation of intact fetal brain neurons in culture with the phorbol ester TPA (12-O-tetradecanoyl phorbol-13-acetate) in the presence of calcium, resulted in the enhancement of the depolarization-induced, Ca2+-dependent neurotransmitter release by the cells. This effect was due to a marked decrease in the concentration of extracellular Ca2+ required to provoke the release. The concentration of Ca2+ needed to produce half-maximal release shifted from approx 0.1 mM in the absence of TPA to 0.018 mM in its presence. This activity of TPA was concentration-dependent (half-maximal effect at 4 nM TPA) and was also dependent on the presence of calcium during the preincubation period. The TPA-induced enhancement of the stimulated release was also observed when Ca2+ entry into the depolarized cells was partially inhibited by Co2+. The results suggest that TPA acts synergistically with Ca2+ to activate neuronal component(s) involved in Ca2+-dependent neurosecretion.

Animals

Studies on synaptic vesicles in mammalian brain characterization of highly purified synaptic vesicles from bovine cerebral cortex.

Synaptic vesicles have been isolated from bovine cerebral cortex by sequential differential and density gradient centrifugations followed by chromatography on a Sepharose 6B column. We have studied the morphology, enzymatic markers, neurotransmitter and ATP contents and protein composition of the vesicles. The specific contents of acetylcholine, gamma-aminobutyric acid, aspartate, glutamate and catecholamines were 4--8-fold higher in the vesicle fraction compared to the crude synaptosomal pellet. Electron micrographs of the vesicle preparation showed enrichment of vesicular material with an average diameter of 50 nm. The purity of the preparation was assessed by the very low activities of enzymatic markers of cellular membranes and cytosol components. Some Ca--Mg-activated ATPase activity was detected in the vesicle preparations, but its content relative to the neurotransmitters fell on chromatography, suggesting that this activity may be partially contributed by non-synaptic vesicle components, such as small microsomes. The isolated synaptic vesicles were solubilized with 1% sodium dodecyl sulfate and subjected to polyacrylamide gel electrophoresis. The major Coomassie blue stained bands observed with apparent molecular weights of 160,000 and 55,000 were enriched in parallel to the increase in purity of the preparation.

Acetylcholinesterase

Concurrent inactivation of calcium dependent phosphorylation and neurotransmitter release in cultured rat brain neurons.

Depolarization of cultured rat brain neurons preloaded with 3H-dopamine provokes a transient (t 1/2 = 9.6 sec), Ca(2+)-dependent release of the labeled neurotransmitter from cells. In parallel, the amount of 32Pi incorporated into a protein of apparent molecular weight of 43,000 increased whereas the phosphorylation of a protein with an apparent molecular weight of 55,000 daltons decreased. The time course of the change in phosphorylation pattern was examined. The depolarization-induced phosphorylation of the 45,000 protein and dephosphorylation of the 55,000 dalton protein consisted of an initial, rapidly terminating phase (t 1/2 = 5 sec), and of a slow, Ca(2+)-independent phosphorylation of both proteins which persisted during maintained depolarization. The depolarization-evoked changes in the neuronal protein phosphorylation were dependent on the extracellular Ca2+ concentration (half saturation at 0.4-0.5 mM Ca2+). These data indicate that the entry of Ca2+ into the depolarized cells induces rapid phosphorylation-dephosphorylation activities. These processes terminate within 10 sec, concurrently with the depression of neurotransmitter release.

Animals