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At least 19 recordsLinked to original sources

Serum-dependence of fluid-phase pinocytosis and specificity in adsorptive pinocytosis of simple proteins in rat peritoneal macrophages.

An increase in the concentration of serum resulted in a very marked increase in the rate of fluid-phase pinocytosis in rat peritoneal macrophages, as measured by the uptake of 125I-labelled polyvinylpyrrolidone. In contrast, the rate of uptake of colloidal [198Au]gold, an adsorptive substrate, decreased when the serum concentration was increased. This lessened uptake of colloidal gold must be due to competition by serum components. Studies on the specificity of pinocytosis of simple proteins, using 125I-labelled H4 and M4 forms of porcine lactate dehydrogenase, and formaldehyde-denatured and untreated bovine serum albumin as substrates, suggest that positive charge and hydrophobicity determine adsorptive pinocytosis of simple proteins in peritoneal macrophages. The rate of fluid-phase pinocytosis and the specificity of adsorptive pinocytosis in peritoneal macrophages are very similar to those reported for Kupffer cells.

Adsorption↗

Pinocytosis and locomotion of amoebae. XV. Visualization of Ca++-dynamics by chlorotetracycline (CTC) fluorescence during induced pinocytosis in living Amoeba proteus.

The dynamics of Ca++ during induced pinocytosis were studied in Amoeba proteus using chlorotetracycline (CTC). The fluorescence of the Ca++ - CTC-complex was monitored by an image intensification system, which has certain advantages over standard equipment: (1) Living cells are not subjected to the damaging influence of intensive microscopic illumination, (2) fluorescent probes are not bleached during observation, and (3) the rapid dynamics of the Ca++ -fluxes can be recorded using short exposure times. The results demonstrate the existence of Ca++ bound to intracellular and extracellular sites of the cell membrane complex in normal locomoting and pinocytotic Amoeba proteus. The application of cations inducing pinocytosis causes a rapid decrease in the external CTC-fluorescence probably due to a release of Ca++ from the mucous layer. The degree of fluorescence intensity is correlated with the capacity of pinocytotic channel formation, i.e., the fluorescence decreases as the number of channels increases. During the phase of vesiculation a distinct fluorescence mainly restricted to the basal region of the channels is observed. Intracellular Ca++ was detected in close vicinity to the plasma membrane after both microinjection and external application of CTC. The internal CTC-fluorescence is slightly decreased during the induction phase of pinocytosis. The observations are in good agreement with previous results on the localization of Ca++ -binding sites at the plasma membrane of Amoeba proteus and demonstrate the important role of Ca++ -fluxes for the process of pinocytosis.

Amoeba↗

Pinocytosis and locomotion of amoebae: XII. Dynamics and motive force generation during induced pinocytosis in A. proteus.

The mechanism of induced pinocytosis was investigated in Amoeba proteus by light and electron microscopy. The application of nine different inducing substances revealed that pinocytotic channel formation, elongation, vesiculation, shortening and disappearance are the result of the successive or simultaneous action of both traction and pressure forces, which are produced by the contractile activity of a plasma membrane-associated layer of filaments ranging from a few hundred nm to several micrometer in thickness. The initial phase of channel formation is caused by traction forces according to the membrane flow concept, whereas channel elongation and vesiculation mainly result from pressure forces in conjunction with the extrusion of small hyaline pseudopodia. Shortening and disappearance of the pinocytotic channels are brought about by local contractions of the cortical filament layer in the basal region of the hyaline pseudopodia. Experiments using latex beads as marker particles together with inducing substances show that a rapid membrane turnover duirng pinocytosis can be excluded, and that the plasma membrane slides as an entire structure over the underlying cytoplasm.

Amoeba↗

The role of microtubules in pinocytosis. Inhibition of fluid-phase pinocytosis in the rat visceral yolk sac by mitoclasic and related agents.

Colchicine, demecolcine and vinblastine all effectively inhibited the pinocytic capture of 125I-labelled poly(vinylpyrrolidone) by rat visceral yolk sacs cultured in vitro. Complete inhibition did not occur until 2-3h after addition of mitoclasic agent and this delay appeared to be related to the mechanism of drug-microtubule interaction rather than any difficulty of drug permeation into cells. Inhibition of pinocytosis by demecolcine was reversible, whereas inhibition by colchicine or vinblastine was not. In terms of dose-response demecolcine was slightly more effective than colchicine, but both were considerably more active than trimethylcolchicinic acid. Of the nine benzimidazoles tested for ability to inhibit pinocytosis, four severely retarded uptake and three were partially inhibitory.

Animals↗

[The theory of pinocytosis. Factors determining the dynamics of pinocytosis in capillary endothelium].

Peculiarities of the mechanism and conditions of pinocytosis vesicules formation in capillary endothelium are considered in relation to: 1) the size of a protein cluster which is formed from plasma proteins on the endotheliocyte plasma membrane surface, and initiates a caveole formation; 2) the value of intracapillary hydrostatic pressure providing energetics of the caveole transition in the vesicula and its comming off. The bound parameters of vesicules formation are calculated in comparison with the well-known experimental data. It is suggested that in other types of endocytosis the initial phase of the process (caveoles formation) is also connected with absorption of the protein molecules on the plasma membrane and their clusterisation. A possible explanation is given to the fact of vesicles quantitative increase in endothelium in hypertension.

Biological Transport↗

Sucrose uptake by pinocytosis in Amoeba proteus and the influence of external calcium.

The relationship between Ca++ and pinocytosis was investigated in Amoeba proteus. Pinocytosis was induced with 0.01% alcian blue, a large molecular weight dye which binds irreversibly to the cell surface. The time-course and intensity of pinocytosis was monitored by following the uptake of [3H]SUCROSE. When the cells are exposed to 0.01% alcian blue, there is an immediate uptake of sucrose. The cells take up integral of 10% of their initial volume during the time-course of pinocytosis. The duration of pinocytosis in the amoeba is integral of 50 min, with maximum sucrose uptake occurring 15 min after the induction of pinocytosis. The pinocytotic uptake of sucrose is reversibly blocked at 3 degrees C and a decrease in pH increases the uptake of sucrose by pinocytosis. The process of pinocytosis is also dependent upon the concentration of the inducer in the external medium. The association between Ca++ and pinocytosis in A. proteus was investigated initially by determining the effect of the external Ca++ concentration on sucrose uptake induced by alcian blue. In Ca++-free medium, no sucrose uptake is observed in the presence of 0.01% alcian blue. As the Ca++ concentration is increased, up to a maximum of 0.1 mM, pinocytotic sucrose uptake is also increased. Increases in the external Ca++ concentration above 0.1 mM brings about a decrease in sucrose uptake. Further investigations into the association between Ca++ and pinocytosis demonstrated that the inducer of pinocytosis displaces surface calcium in the amoeba. It is suggested that Ca++ is involved in two separate stages in the process of pinocytosis; an initial displacement of surface calcium by the inducer which may increase the permeability of the membrane to solutes and a subsequent Ca++ influx bringing about localized increases in cytoplasmic Ca++ ion activity.

Amoeba↗

Induction and inhibition of pinocytosis by aminoglycoside antibiotics.

We investigated whether differences in induction or stimulation of pinocytosis by six amino-glycosides reflected reported differences in their nephrotoxicity. Pinocytosis induced by antibiotics, Na+, K+ or Ca2+ was quantified by the number of pinocytotic channels in Amoeba proteus, a cell suitable for the study of the pinocytotic process. The aminoglycosides were potent inducers of pinocytosis. They were effective in the order of their cationic charge: neomycin greater than gentamicin greater than netilmicin = tobramycin greater than kanamycin greater than streptomycin. Factors which reduced the charge of the molecules, i.e. alkaline pH and combination with carbenicillin or heparin, diminished pinocytosis. Like La3+ the antibiotics inhibited Na+ -induced pinocytosis. The order of efficacy was netilmicin greater than gentamicin greater than neomycin. A similar rank order, which is the reverse of the order of nephrotoxicity, was observed for inhibition of Ca2+ -stimulated, Na+ -induced pinocytosis. Netilmicin was also the most potent inhibitor of the Ca2+-induced pinocytosis in cells treated with concanavalin A. Inhibition of Ca2+ -stimulated pinocytosis by netilmicin was reversed by Ca2+, the calcium ionophore A 23187, or 4-aminopyridine. We have shown that several nephrotoxic cations are strong inducers of pinocytosis in the amoeba, that aminoglycosides in Ringer solution induce pinocytosis in the approximate order of their nephrotoxicity and that factors which are known to diminish toxicity reduce pinocytosis. It, therefore, appears that the mechanism of aminoglycoside nephrotoxicity is related to their ability to induce pinocytosis in the amoeba. Low inducing potency and strong Ca2+ -antagonism, as for netilmicin, are qualities which may reduce the tendency of polycationic compounds to damage proximal tubular cells.

Aminoglycosides↗

Insulin and secretagogues differentially regulate fluid-phase pinocytosis in insulin-secreting beta-cells.

The physiological role of the beta-cell insulin receptor is unknown. To evaluate a candidate function, the insulin regulation of fluid-phase pinocytosis was investigated in a clonal insulinoma cell line (beta TC6-F7) and, for comparison, also in Chinese hamster ovary cells transfected with the human insulin receptor (CHO-T cells). In CHO-T cells, the net rate of fluid-phase pinocytosis was rapidly increased 3-4-fold over the basal rate by 100 nM insulin, with half-maximal stimulation at 2 nM insulin, as assayed by cellular uptake of horseradish peroxidase from the medium. Wortmannin, an inhibitor of phosphatidylinositol (PI)-3-kinase, blocked insulin-stimulated pinocytosis with an IC50 of 7.5 nM without affecting the basal rate of pinocytosis. In insulin-secreting beta TC6-F7 cells, the secretagogues glucose and carbachol (at maximally effective concentrations of 15 mM and 0.5 mM respectively) augmented fluid-phase pinocytosis 1.65-fold over the basal rate. Wortmannin also inhibited secretagogue-stimulated pinocytosis in these beta-cells with an IC50 of 7 nM but did not affect the basal rate of pinocytosis measured in the absence of secretagogues. Wortmannin did not influence either basal or secretagogue-induced insulin secretion. Although these beta TC6-F7 cells have cell-surface insulin receptors, adding exogenous insulin or insulin-like growth factor 1 did not affect their rate of fluid-phase pinocytosis, either in the absence or presence of secretagogues. From these observations, we conclude that: (1) in both insulin-secreting beta-cells and in conventional, insulin-responsive CHO-T cells, a common, wortmannin-sensitive reaction, which probably involves PI-3-kinase, regulates fluid-phase pinocytosis; (2) the insulin-receptor signal transduction pathway is dissociated from the regulation of fluid-phase pinocytosis in the insulin-secreting beta-cell line we studied; and (3) the enhancement of fluid-phase pinocytosis associated with secretagogue-induced insulin release in beta TC6-F7 cells is not attributable to autocrine activation of beta-cell surface insulin receptors.

Androstadienes↗

Fibroblast receptor for lysosomal enzymes mediates pinocytosis of multivalent phosphomannan fragment.

Mild acid hydrolysis of phosphomannan secreted by the yeast hansenula holstii (NRRL Y- 2448) produces two phosphomannyl fragments which differ strikingly in their potency as inhibitors of pinocytosis of human beta-glucuronidase by human fibroblasts. The larger molecular weight polyphosphomonoester fragment is 100,000-fold more potent an inhibitor of enzyme uptake than the smaller penta-mannosyl-monophosphate fragment. Binding to attached fibroblasts at 3 degrees C was much greater with the polyphosphomonoester fragment than with the pentamannosyl-monophosphate. The larger molecular weight fragment was also subject to adsorptive pinocytosis and was taken up by fibroblasts at a rate 30- fold greater than the rate of uptake of pentamannosyl-monophosphate. Evidence that the polyphosphomonoester fragment is taken up by the phosphomannosyl-recognition system that mediates uptake of lysosomal enzymes includes: (a) its pinocytosis is inhibited by the same compounds that competitively inhibit enzyme pinocytosis (mannose-6-phosphate and phosphomannan from saccharomyces cerevisiae mutant mnn-1); (b) alkaline phosphatase treatment greatly reduces its susceptibility to pinocytosis; (c) its pinocytosis is competitively inhibited by high-uptake human beta-glucuronidase; and (d) this inhibition by high-uptake enzyme is dramatically reduced by prior treatment of the enzyme with alkaline phosphatase or endoglycosidase-H. Endoglycosidase-H treatment human beta-glucuronidase dramatically reduced its susceptibility to pinocytosis by fibroblasts. The phosphomannosyl components of high- uptake enzyme released by endoglycosidase-H treatment were much less effective inhibitors of polyphosphomonoester pinocytosis than when present on the phosphomannyl-enzyme. These results suggest that high-uptake acid hydrolases may be polyvalent ligands analogous to the polyphosphomonoester mannan fragment whose pinocytosis depends on interaction of more than one phospho-mannosyl recognition marker with pinocytosis receptors on fibroblasts.

Alkaline Phosphatase↗

Pinocytosis in 2,5-di-tert-butylhydroquinone-stimulated hepatocytes and evaluation of its role in Ca2+ inflow.

In order to evaluate the contribution of pinocytosis to basal (no agonist) and lanthanide-insensitive store-activated Ca2+ inflow in freshly-isolated rat hepatocytes, the uptake of extracellular fluid by pinocytosis was measured at 20 degrees C and used to predict the amount of extracellular Ca2+ taken up by pinocytosis. This was compared with the measured rate of Ca2+ uptake in the basal state, and with the measured lanthanide-insensitive component of divalent cation uptake stimulated by 2,5-di-tert-butylhydroquinone (DBHQ), an inhibitor of the smooth endoplasmic reticulum (Ca2+ + Mg2+)ATP-ase. Fluid uptake by pinocytosis was measured using [14C]sucrose. In hepatocytes incubated at 20 degrees C, DBHQ increased the initial rate of sucrose uptake by about 35%. The data for sucrose uptake were used to calculate the volume of extracellular fluid taken up by pinocytosis which, in turn, was used to predict the amount of extracellular Ca2+ taken up through pinocytosis in the basal and DBHQ-stimulated states. Rates of divalent cation inflow in the basal state were determined at 20 degrees C by measuring the uptake of 45Ca2+. The degree of stimulation of Ca2+ inflow by DBHQ and the lanthanide-insensitive component of DBHQ-stimulated divalent cation inflow were determined by measuring the rate of Mn(2+)-induced quenching of intracellular quin-2 in the absence of an agonist, and in the presence of DBHQ or DBHQ plus Gd3+. It was calculated that the process of pinocytosis accounts for at least 15% of Ca2+ uptake in the basal (no agonist) state, and for about 10% of DBHQ-stimulated lanthanide-insensitive Ca2+ uptake. It is concluded that in isolated hepatocytes (i) the release of Ca2+ from intracellular stores stimulates pinocytosis and (ii) the process of pinocytosis can account for a substantial proportion of basal Ca2+ inflow and a small proportion of DBHQ-stimulated lanthanide-insensitive Ca2+ inflow.

Animals↗

Selective inhibition of calcium-stimulated cation-induced pinocytosis by starvation and inhibitors of protein synthesis in Amoeba proteus.

The capacity of Amoeba proteus to form pinocytotic channels after pretreatment with either puromycin, cycloheximide, emetine or a long period of starvation was studied. The effect on pinocytosis of the three inhibitors of protein synthesis was similar. They preferentially affected pinocytosis induced by Na+ with little effect on K+-induced pinocytosis. In Ca2+-deficient media, Na+-induced pinocytosis was inhibited, while the addition of Ca2+ restored channel formation. The degree of inhibition of Na+-induced pinocytosis was influenced by the concentration of Ca2+ in the inducing solution. Selective Ca2+-reversible inhibition of Na+-induced pinocytosis also occurred after starvation or treatment with a proteolytic enzyme, subtilisin. The membrane potential in starved or emetine-treated cells in culture medium was normal and their depolarising response to inducers was not diminished in solutions containing Na+. The resting input resistance of these cells was higher than in normal amoebae, but no significant difference in electrical parameters was observed after pinocytosis was induced. It is suggested that starvation, inhibition of protein synthesis, and enzyme digestion deplete the membrane of structures which are necessary for normal Ca2+ functions during induction of pinocytosis by Na+-like inducers.

Amoeba↗

Inhibition of induced pinocytosis in Amoeba proteus by membrane stabilizing drugs.

The effect of membrane stabilizing drugs on cation induced pinocytosis was studied in Amoeba proteus. Initially the presence of local anesthetic drugs during a pinocytosis cycle had a stimulating effect on channel formation, however, the capacity to develop pinocytotic channels was reversibly inhibited after a period of treatment with these drugs. Imipramine, vinblastine and the phenothiazines had effects similar to local anaesthetics. The local anesthetics inhibited pinocytosis in the following order: dibucaine greater than tetracaine greater than bupivacaine greater than lidocaine greater than procaine, and the phenothiazines: thioridazine greater than prochlorperazine greater chlorpromazine greater than prometazine. Pinocytosis, when induced by Na+ or tris, was more affected by the drugs and by calcium binding agents than pinocytosis induced by K+. After pretreatment with inhibitory concentration of dibucaine (3 x 10(-4) M) the depolarization of the membrane and the conductance increase during pinocytosis were normal, while the increase of oxygen uptake during the pincoytosis cycle was abolished. Addition of Ca++ before, during or after dibucaine treatment decreased the effect of the drug. Conversely, in dibucaine-treated cells, cation induced pinocytosis was less inhibited by Ca++ than pinocytosis in normal cells. Addition of EGTA to the inducing solutions potentiated the inhibitory effect of the drug. It is suggested that these drugs release Ca++ from the cell surface and at higher concentration or after prolonged incubation time interfere with a Ca++ mechanism which couples the membrane and contractile systems in the cytoplasm.

Amoeba↗

Fc gamma R-mediated phagocytosis stimulates localized pinocytosis in human neutrophils.

Engulfment of IgG-coated particles by neutrophils and macrophages is an essential component of the innate immune response. This process, known as phagocytosis, is triggered by clustering of FcgammaR at sites where leukocytes make contact with the opsonized particles. We found that phagocytosis is accompanied by a burst of fluid phase pinocytosis, which is largely restricted to the immediate vicinity of the phagosomal cup. FcgammaR-induced pinocytosis preceded and appeared to be independent of phagosomal sealing. Accordingly, fluid phase uptake was accentuated by actin depolymerization, which precludes phagocytosis. Stimulation of pinocytosis required phosphatidylinositol 3-kinase activity and was eliminated when changes in the cytosolic free Ca(2+) concentration were prevented. Because stimulation of FcgammaR also induces secretion, which is similarly calcium and phosphatidylinositol 3-kinase dependent, we studied the possible relationship between these events. Neutrophil fragments devoid of secretory granules (cytoplasts) were prepared by sedimentation through Ficoll gradients. Cytoplasts could perform FcgammaR-mediated phagocytosis, which was not accompanied by activation of pinocytosis. This observation suggests that granule exocytosis is required for stimulation of pinocytosis. Analysis of the cytosolic Ca(2+) dependence of secretion and pinocytosis suggests that primary (lysosomal) granule exocytosis is the main determinant of pinocytosis during FcgammaR stimulation. Importantly, primary granules are secreted in a polarized fashion near forming phagosomes. Focal pinocytosis during particle engulfment may contribute to Ag processing and presentation and/or to retrieval of components of the secretory machinery. Alternatively, it may represent an early event in the remodeling of the phagosomal membrane, leading to phagosomal maturation.

Calcium↗