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M Gratzl

Publications and source records attributed to M Gratzl.

At least 109 records · Page 6Linked to original sources

Stimulation-dependent uptake of an extracellular marker to subcellular fractions of isolated neurohypophysial tissue.

Slices of ox neurohypophyses and groups of isolated rat neurointermediate lobes were incubated in a medium containing horseradish peroxidase (HRP) and stimulated by high K+ concentrations in the medium. After washing, the tissue was homogenized and subjected to subcellular fractionation in a Percoll/sucrose gradient. HRP was exclusively taken up by particles banding at a low density of the gradient. The HRP containing particles located to this region included vacuoles of a size comparable to secretory vesicles.

Animals↗

Ca2+ uptake to purified secretory vesicles from bovine neurohypophyses.

Purified secretory vesicles isolated from bovine neurohypophyses were found to take up Ca2+ when incubated at 30 degrees C in media containing 10(-7) to 10(-4) M free Ca2+. At 10(-4) free Ca2+ 19 nmol/mg protein were taken up within 30 min. The initial uptake at this Ca2+ concentration was about 2 nmol/mg protein per min. The uptake of Ca2+ to secretory vesicles was not affected by ATP, oligomycin, ruthenium red, trifluoperazine, Mg2+ or K+, but was inhibited by Na+ and Sr2+. From these characteristics it can be concluded that the uptake system does not utilize directly ATP (as the Ca2+-ATPases known to be present in the cell membrane and the endoplasmic reticulum) and is different from the mitochondrial Ca2+ uptake system driven by respiration and/or ATP hydrolysis. However, Ca2+-Na+ exchange may well operate: In experiments using different concentrations of Na+ we found half-maximal inhibition of Ca2+ uptake with 33.3 mM Na+. An analysis of the data in a Hill plot indicated that at least 2 Na+ would be exchanged for 1 Ca2+. Also, it was found that Ca2+ previously taken up could be released again by external Na+ but not by K+.

Animals↗

Calcium/sodium exchange in purified secretory vesicles from bovine neurohypophyses.

Purified secretory vesicles isolated from bovine neurohypophyses take up Na+ under the same circumstances where an efflux of Ca2+ takes place, suggesting a Na+/Ca2+ exchange. Potassium cannot substitute for Na+ in this process. Also, a Ca2+/Ca2+ exchange can occur. Inhibiting the latter process by Mg2+ allowed to estimate an apparent KM of 0.7 microM free Ca2+ and a maximal uptake of 1.5 nmol X mg protein-1 X min-1 Ca2+ in exchange for Na+. The vesicles did not contain plasma membrane marker (Na+/K+ ATPase) as shown by distribution analyses on the density gradients on which they were purified. Similarly, distribution studies also showed that no other ATPase activity could be detected in the purified vesicle fraction. It is concluded that a Na+/Ca2+ exchange is operating across the secretory vesicle membrane and that it is not directly dependent on ATP hydrolysis.

Adenosine Triphosphatases↗

Effects of monovalent and divalent cations on Ca2+ fluxes across chromaffin secretory membrane vesicles.

Bovine chromaffin secretory vesicle ghosts loaded with Na+ were found to take up Ca2+ when incubated in K+ media or in sucrose media containing micromolar concentrations of free Ca2+. Li+- or choline+-loaded ghosts did not take up Ca2+. The Ca2+ accumulated by Na+-loaded ghosts could be released by the Ca2+ ionophore A23187, but not by EGTA. Ca2+ uptake was inhibited by external Sr2+, Na+, Li+, or choline+. All the 45Ca2+ accumulated by Na+-dependent Ca2+ uptake could be released by external Na+, indicating that both Ca2+ influx and efflux occur in a Na+-dependent manner. Na+-dependent Ca2+ uptake and release were only slightly inhibited by Mg2+. In the presence of the Na+ ionophore Monensin the Ca2+ uptake by Na+-loaded ghosts was reduced. Ca2+ sequestered by the Na+-dependent mechanism could also be released by external Ca2+ or Sr2+ but not by Mg2+, indicating the presence of a Ca2+/Ca2+ exchange activity in secretory membrane vesicles. This Ca2+/Ca2+ exchange system is inhibited by Mg2+, but not by Sr2+. The Na+-dependent Ca2+ uptake system in the presence of Mg2+ is a saturable process with an apparent Km of 0.28 microM and a Vmax = 14.5 nmol X min-1 X mg protein-1. Ruthenium red inhibited neither the Na+/Ca2+ nor the Ca2+/Ca2+ exchange, even at high concentrations.

Animals↗

3',5'-cyclic adenosine monophosphate- and Ca2+-calmodulin-dependent endogenous protein phosphorylation activity in membranes of the bovine chromaffin secretory vesicles: identification of two phosphorylated components as tyrosine hydroxylase and protein kinase regulatory subunit type II.

Membranes of the secretory vesicles from bovine adrenal medulla were investigated for the presence of the endogenous protein phosphorylation activity. Seven phosphoprotein bands in the molecular weight range of 250,000 to 30,000 were observed by means of the sodium dodecyl sulphate electrophoresis and autoradiography. On the basis of the criteria of molecular weight, selective stimulation of the phosphorylation by cyclic AMP (as compared with cyclic GMP) and immunoprecipitation by specific antibodies, band 5 (molecular weight 60,300) was found to represent the phosphorylated form of the secretory vesicle-bound tyrosine hydroxylase. The electrophoretic mobility, the stimulatory and inhibitory effects of cyclic AMP in presence of Mg2+ and Zn,2+ respectively, and immunoreactivity toward antibodies showed band 6 to contain two forms of the regulatory subunits of the type II cyclic AMP-dependent protein kinase, distinguishable by their molecular weights (56,000 and 52,000, respectively). Phosphorylation of band 7 (molecular weight 29,800) was stimulated about 2 to 3 times by Ca2+ and calmodulin in the concentration range of both agents believed to occur in the secretory tissues under physiological conditions.

Adrenal Medulla↗

Uptake of Ca2+ by isolated secretory vesicles from adrenal medulla.

Intact secretory vesicles isolated from bovine adrenal medulla contain 94 nmol Na+ per mg of protein, and Ca2+ influx into the vesicles is inhibited by increasing concentrations of extravesicular Na+ (but not of K+, Li+ or choline+) or by addition of the Na+ ionophore monensin. Thus Ca2+ influx in determined by the Na+ gradient across the vesicular membrane. Half maximal inhibition of Ca2+ influx occurs with 34 nM Na+ extravesicularly. The fact that Ca2+ can also be released from the vesicles by inversion of the Na+ gradient provides direct evidence that an Na+-Ca2+ exchange may operate. According to an analysis of the inhibition of Ca2+ uptake by Na+ in a Hill plot 2 Na+ would be exchanged for 1 Ca2+. Ca2+ influx into the vesicles increases with temperature (energy of activation; 16 kcal/mol), can be observed already with 10(-7) M free Ca2+ and increases up to 10(-4) M Ca2+. Ca2+ influx is not affected by Mg2+ but Sr2+ is inhibitory. Since the process is only slightly influenced by the pH of the incubation medium and is insensitive to Mg2+-ATP or inhibitors of the proton translocating Mg2+-ATPase the electrochemical proton gradient across the vesicular membrane does not affect directly the Ca2+ influx into the secretory vesicles. Ca2+ uptake is insensitive to ruthenium red and oligomycin.

Adrenal Medulla↗

Latent acetylcholinesterase in secretory vesicles isolated from adrenal medulla.

A new procedure is described for the preparation of highly purified and stable secretory vesicles from adrenal medulla. Two forms of acetylcholinesterase, a membrane bound form as well as a soluble form, were found within these vesicles. The secretory vesicles, isolated by differential centrifugation, were further purified on a continuous isotonic Percoll gradient. In this way, secretory vesicles were separated from mitochondrial, microsomal and cell membrane contamination. The secretory vesicles recovered from the gradient contained an average of 2.26 mumol adrenaline/mg protein. On incubation for 30 min at 37 degrees C in media differing in ionic strength, pH, Mg2+ and Ca2+ concentration, the vesicles released less than 20% of total adrenaline. Acetylcholinesterase could hardly be detected in the secretory vesicle fraction when assayed in isotonic media. However, in hypotonic media (less than 400 mosmol/kg) or in Triton X-100 (0.2% final concentration) acetylcholinesterase activity was markedly higher. During hypotonic treatment or when secretory vesicles were specifically lyzed with 2 mM Mg2+ and 2 mM ATP, adrenaline as well as part of acetylcholinesterase was released from the vesicular content. On polyacrylamide gel electrophoresis this soluble enzyme exhibited the same electrophoretic mobility as the enzyme released into the perfusate from adrenal glands upon stimulation. In addition to the soluble enzyme a membrane bound form of acetylcholinesterase exists within secretory vesicles, which sediments with the secretory vesicle membranes and exhibits a different electrophoretic mobility compared to the soluble enzyme. It is concluded, that the soluble enzyme found within isolated secretory vesicles is secreted via exocytosis, whilst the membrane-bound form is transported to the cell membrane during this process, contributing to the biogenesis of the cell membrane.

Acetylcholinesterase↗

Isolation and characterization of secretory vesicles from bovine neurohypophyses.

A procedure is described for the isolation of secretory vesicles from bovine neurohypophyses by differential centrifugation followed by density gradient centrifugation on iso-osmolal gradients of percoll/sucrose. Only negligible contamination of the secretory vesicle fraction with markers for mitochondria, microsomes and plasma membranes could be detected. The amount of Ca2-ATPase in the isolated neurohypophysial secretory vesicles was of the same low order of magnitude as that of (Na, K)-ATPase. Thin-section electromicrographs confirmed the high purity of the isolated secretory vesicle fractions, In freeze-fracture electronmicrographs, vesicle fusion was demonstrated after incubation with Ca2. As shown in dodecyl sulfate-gel electrophoresis and subsequent autoradiography secretory vesicles exhibited an endogenous phosphorylation activity. The secretory vesicles contained an average of 23.1 microgram vasopressin/mg of protein. On incubation in media differing in ionic strength, pH and Ca2 concentration the vesicles were stable for at least 1 h.

Animals↗

The role of Ca2+ as a trigger for membrane fusion.

As revealed by freeze-fracturing, secretory vesicles isolated from pancreatic islet cells fuse when incubated with low concentration of Ca2+. The properties of this process are described and were found to be similar to those investigated with isolated secretory vesicles from different tissue origin. Secretory vesicle fusion is compared mainly with the ionic requirements of insulin secretion by the pancreatic B-cells and exocytosis by other secretory cells.

Calcium↗

Fusion of isolated myoblast plasma membranes. An approach to the mechanism.

Fusion of plasma membranes isolated from myoblasts grown in culture has been investigated. 1. Membrane fusion was specifically dependent of Ca2+ at physiological concentrations. However, at higher concentrations of cations, fusion could be triggered not only by Ca2+, but by Mg2+ and Sr2+ as well. 2. The amount of fusion was directly proportional to temperature. 3. Fusion was found to depend on the state of maturation of the myoblast membranes. 4. Experiments with chemically and enzymatically modified membranes and with membranes derived from myoblasts grown in the presence of inhibitors of protein biosynthesis suggest the participation of proteinaceous membrane components in the fusion mechanism.

Animals↗

Fusion of secretory vesicles isolated from rat liver.

Secretory vesicles isolated from rat liver were found to fuse after exposure to Ca2+. Vesicle fusion is characterized by the occurrence of twinned vesicles with a continuous cleavage plane between two vesicles in freeze-fracture electron microscopy. The number of fused vesicles increases with increasing Ca2+-concentrations and is half maximal around 10(-6)M. Other divalent cations (Ba2+, Sr2+, and Mg2+) were ineffective. Mg2+ inhibits Ca2+-induced fusion. Therefore, the fusion of secretory vesicles in vitro is Ca2+ specific and exhibits properties similar to the exocytotic process of various secretory cells. Various substances affecting secretion in vivo (microtubular inhibitors, local anesthetics, ionophores) were tested for their effect on membrane fusion in our system. The fusion of isolated secretory vesicles from liver was found to differ from that of pure phospholipid membranes in its temperature dependence, in its much lower requirement for Ca2+, and in its Ca2+-specificity. Chemical and enzymatic modifcations of the vesicle membrane indicate that glycoproteins may account for these differences.

Animals↗

Fusion of neurohypophyseal membranes in vitro.

Freeze cleaving electron microscopy has shown that fusion of isolated secretory vesicles from bovine neurohypophyses was induced by Ca2+ in micromolar concentrations. Mg2+ and Sr2+ were ineffective. Mg2+ inhibited Ca2+-induced fusion. In suspensions containing secretory vesicles as well as sheets of cell membrane, release of vasopressin parallel to intervesicular fusion and fusion of secretory vesicles with sheets of cell membrane was observed after exposure to Ca2+. Mg2+ and Sr2+ were ineffective in replacing Ca2+ as trigger for fusion or vasopressin release. Intervesicular fusion and exocytotic profiles were observed when isolated neurohypophyses or neurosecretosomes were exposed to cold.

Animals↗

Binding of nitroxide stearate spin labels to bovine serum albumin.

1. 12-Nitroxide stearate binds to bovine serum albumin at about four independent and equivalent binding sites with an association constant of about 10(6) M-1. The binding at these high affinity binding sites is significantly reduced by addition of unlabeled stearate. These data suggest that nitroxide stearates probe the high affinity binding sites for long-chain fatty acids. 2. Qualitative analyses of the ESR spectra of 5-, 12- and 16-nitroxide stearate bound to bovine serum albumin and measurements of the interaction of these compounds so bound with ferricyanide ion provide a rough description of the binding site as follows: the polar headgroup of the spin-labeled fatty acid is rigidly fixed, but fairly accessible to paramagnetic ions. The middle part of the hydrocarbon chain of bound stearate spin label also is rigidly fixed but differs in being shielded from the solvent, presumably by a hydrophobic cleft. The methyl terminus shows greater motion, appearing to move within a narrow cone, and also appears to be somewhat accessible to paramagnetic ions.

Binding Sites↗

[Contribution to the aetiology of "reversible hepatic dysfunction" (Stauffer's syndrome) associated with renal tumours].

Biochemical changes, especially isolated rise in alkaline phosphatase and increased thromboplastin time, which have been described as "reversible hepatic dysfunction" (Stauffer's syndrome) were found in a 47-year-old patient with hypernephroma and hepatomegaly without liver metastases at post-mortem examination. The alkaline phosphatase could not be distinguished from the placental isoenzyme (Regan's enzyme). Increased thromboplastin time was due to circulating fibrinogen degradation products.

Adenocarcinoma↗