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Dual mechanisms for shedding of the cellular prion protein.

The cellular prion protein (PrP(C)) is essential for the pathogenesis and transmission of prion diseases. Whereas the majority of PrP(C) is bound to the cell membrane via a glycosylphosphatidylinositol (GPI) anchor, a secreted form of the protein has been identified. Here we show that PrP(C) can be shed into the medium of human neuroblastoma SH-SY5Y cells by both protease- and phospholipase-mediated mechanisms. The constitutive shedding of PrP(C) was inhibited by a range of hydroxamate-based zinc metalloprotease inhibitors in a manner identical to the alpha-secretase-mediated shedding of the amyloid precursor protein, indicating a proteolytic shedding mechanism. Like amyloid precursor protein, this zinc metalloprotease-mediated shedding of PrP(C) could be stimulated by phorbol myristate acetate and by copper ions. The lipid raft-disrupting agents filipin and methyl-beta-cyclodextrin promoted the shedding of PrP(C) via a distinct mechanism that was not inhibited by hydroxamate-based inhibitors. Filipin-mediated shedding of PrP(C) is likely to occur via phospholipase cleavage of the GPI anchor, since a transmembrane polypeptide-anchored PrP construct was not shed in response to filipin treatment. Collectively, our data indicate that shedding of PrP(C) can occur via both secretase-like proteolytic cleavage of the protein and phospholipase cleavage of the GPI anchor moiety.

Cell Line, Tumor↗

Raft-mediated Src homology 2 domain-containing proteintyrosine phosphatase 2 (SHP-2) regulation in microglia.

Janus kinase-signal transducer and activator of transcription (JAK-STAT) signals play important roles in cell proliferation, apoptosis, and inflammation, and they recently have been considered as therapeutic targets for suppressing oncogenesis and inflammatory process. Phosphatases including Src homology 2 domain-containing protein-tyrosine phosphatases (SHPs), are well known as negative regulators of the JAK-STAT pathway, but their precise mechanisms are largely unknown. Based on our previous finding that in cultured rat brain microglia, gangliosides induce rapid and transient activation of the JAK-STAT pathway, we hypothesized that raft-mediated SHP-2 activation is involved in transient activation of JAK-STAT signaling by gangliosides. We first used Western blot analysis to confirm that gangliosides rapidly induce the phosphorylation of SHP-2. This was inhibited by pretreatment with the lipid raft disrupter filipin and was restored following filipin removal. Immunostaining using antibodies directed against p-SHP-2 and flotillin-1 revealed ganglioside-induced clustering and polarization of p-SHP-2 in membrane rafts. Raft-associated regulation of SHP-2 was further demonstrated in fractionation experiments using detergent and detergent-free sucrose gradient ultracentrifugation. Rapid SHP-2 recruitment to detergent-insoluble raft fractions by gangliosides was inhibited by filipin, further indicating the involvement of rafts. We also confirmed by immunoprecipitation that SHP-2 rapidly binds in a raft-dependent manner to JAK2 in response to gangliosides. Our study therefore showed that transient activation of the JAK-STAT pathway by gangliosides is accomplished by SHP-2 in a raft-dependent manner in brain microglia.

Animals↗

Antifungal action of amphotericin B in combination with other polyene or imidazole antibiotics.

We compared the in vitro antifungal action of amphotericin B (AmB) used alone or in combination with a second polyene antibiotic or with miconazole or ketoconazole. When AmB was used in combination with either filipin or Etruscomycin (Farmitalia, Milan, Italy), antagonism or potentiation of the antifungal effect against Candida albicans resulted. Addition of AmB to Etruscomycin- or filipin-treated cultures resulted in antagonism. In contrast, potentiation occurred when Etruscomycin or filipin was added to cultures treated with AmB. The outcome of incubating C. albicans with combinations of AmB and either miconazole or ketoconazole depended on the duration of exposure of the cells to the drugs. Short-term incubations resulted in antagonism, whereas potentiation of antifungal effects occurred after prolonged exposure of cells to the antibiotics. In addition, supplementation of cultures with serum protein-potentiated AmB induced k+ leakage at low protein concentrations and inhibited K+ leakage at high protein concentrations.

Amphotericin B↗

Experimental hypercholesterolaemia in rabbits. Effect on lipid domains in homologous spermatozoa.

The distribution of membrane filipin sterol complexes (FSC) in the plasma membrane of the acrosomal region (PMAR) of rabbit sperm from epididymis and testis, in normal and hypercholesterolaemic rabbits, was examined at ultrastructural level. Membrane FSG were quantitatively analysed on freeze fracture replicas of filipin-treated cells. Cauda epididymal sperm shows a significant increase in filipin sterol complexes concentration in PMAR of hypercholesterolaemic animals compared to normal rabbits. Hypercholesterolaemic animals had 0.53 +/- 0.08 FSC micron-2 in the marginal segment of PMAR and 0.26 +/- 0.03 FSC micron-2 for normal animals. In the principal piece we found 0.70 +/- 0.07 FSC micron-2 for hypercholesterolaemic and 0.43 +/- 0.03 FSC micron-2 for control animals. We also counted 0.58 +/- 0.04 FSC micron-2 in the equatorial segment of PMAR for hypercholesterolaemic and 0.38 +/- 0.03 FSC micron-2 for normal animals respectively. The FSC concentration of testicular sperm, like sperm from corpus and caput of epididymis in hypercholesterolaemic animals, did not differ from the controls. Cholesterol, phospholipids and cholesterol:phospholipid ratio in caudal epididymal sperm from treated males did not differ from controls. Only the sphingomyelin concentration decreases in cauda epididymal sperm from hypercholesterolaemic males compared to controls. The results presented in this paper suggest that the lipidic domains in PMAR of hypercholesterolaemic rabbits changes when the gametes go through the epididymis.

Acrosome↗

Classification of polyene antibiotics according to their synergistic effect in combination with bleomycin A2 or fusidic acid.

Five polyene antibiotics were compared for their effects on colony formation of either Chinese hamster V79 or Saccharomyces cerevisiae cells. A 10 to 40 times higher concentration of amphotericin B (heptaene) or nystatin (degenerated heptaene) was necessary to inhibit colony formation of hamster cells than that needed to inhibit colony formation of yeast cells. In contrast, colony formation of both hamster and yeast cells was inhibited to the same extent by similar concentrations of filipin (pentaene), pentamycin (pentaene), or pimaricin (tetraene). The five polyene antibiotics were also compared for their effects on colony formation of either V79 or S. cerevisiae cells when combined with a nonpolyene antibiotic, fusidic acid or bleomycin A2. Amphotericin B or nystatin could augment the cytocidal effect of fusidic acid but not that of bleomycin A2, whereas pentamycin or pimaricin could augment the cytocidal effect of both fusidic acid and bleomycin A2 against hamster and yeast cells. Filipin was found to enhance the action of fusidic acid and bleomycin upon growth of mammalian cells, whereas the pentaene polyene significantly potentiated the action of fusidic acid, but not that of bleomycin A2, against S. cerevisiae. It was therefore suggested that these polyene antibiotics be classified into two groups: group 1 (pimaricin, pentamycin, and filipin) and group 2 (amphotericin B and nystatin).

Amphotericin B↗

Mutations resulting in resistance to polyene antibiotics decrease voltage-sensitive calcium channel activity in Paramecium.

In this report, the isolation of Paramecium tetraurelia mutants resistant to the polyene antibiotics amphotericin B and filipin are described. These antibiotics are known to specifically interact with membrane sterols to produce a cytotoxic effect. Four mutants resistant to amphotericin B and two mutants resistant to filipin have been isolated. In each case, an individual mutant shows resistance to both amphotericin B and filipin. Genetic analysis indicates that all 6 mutations map to the same complementation group and are not allelic to any of the 3 pawn mutations or to either of the two "barium shy" mutations. The behavioral analysis suggests that these mutations cause an alteration of normal ion channel function. Direct electrophysiological analysis of one mutant indicates mutations to polyene antibiotic resistance cause a specific decrease in voltage-sensitive Ca2+ channel activity.

Amphotericin B↗

The mechanism of the hemolytic activity of polyene antibiotics.

The kinetics of the filipin-, amphotericin B- and nystatin-induced hemolysis of human erythrocytes were investigated. Filipin-induced hemolysis is of the damage type. It is an all-or-none process, partly inhibited by Ca2+ or Ba2+ but not by Mg2+, Na+ or SO42-. The hemolytic activity of filipin is explained by the formation of large aggregates within the erythrocyte membrane in the form of large perforations, permeable to substances of low molecular weight as well as to macromolecules, including hemoglobin. In isotonic KCl solution, both amphotericin B and nystatin, at low concentrations, form smaller aggregates within the membranes. As a result, the permeability of the membranes to KCl increases and hemolysis occurs. However, the kinetics of the hemolysis induced by the two polyenes is complex. The process shows some features of the permeability type and some of the damage type. It is suggested that amphotericin B and nystatin may simultaneously form a number of transport systems, differing in their molecular organisation and hemolytic activity. Their participation in erythrocyte membrane permeability can be modified by small changes in membrane organisation and the chemical composition of the incubation medium. In isotonic solutions of divalent cation chlorides, and at higher antibiotic concentration, additional aggregates, allowing divalent cations to permeate, appear. These structures do not permit SO4(2-) to permeate.

Amphotericin B↗

Involvement of membrane signaling in the bystander effect in irradiated cells.

We have shown previously that when confluent cultures of mammalian cells are exposed to very low fluences of alpha particles, fluences whereby only 1-3% of the cell nuclei are traversed by a particle, genetic effects, including specific gene mutations and sister chromatid exchanges, are induced in neighboring, nonirradiated ("bystander") cells (H. Nagasawa and J. B. Little, Cancer Res., 52: 6394-6396, 1992; H. Nagasawa and J. B. Little, Radiat. Res., 152: 552-557, 1999). The present experiments were designed to determine whether signaling pathways arising in the cell membrane may mediate this effect. Cells were irradiated in the presence of Filipin, an agent that disrupts lipid rafts, effectively inhibiting membrane signaling, and the induction of sister chromatid exchange and HPRT mutations by very low fluences of alpha particles (mean doses 0.17-0.5 cGy) was measured. Filipin completely suppressed the induction of both genetic effects in bystander cells. After exposure to 10 cGy, when most mutations occurred in directly irradiated cells, no suppressive effect of Filipin was observed. These results suggest that membrane signaling may play an important role in the bystander effect of radiation. On the other hand, the effects in directly irradiated cells do not appear to be mediated via the cell membrane.

Alpha Particles↗

Extracellular matrix activity and caveolae events contribute to cell surface receptor activation that leads to MAP kinase activation in response to UV irradiation in cultured human keratinocytes.

Activation of cell surface components has been implicated in the activation of downstream signaling cascade in response to UV irradiation, and yet the identity and the interaction of those components have been scantly documented. Accumulating evidence indicates that caveolae encapsulating caveolins is the location for those interactions. We found in cultured human keratinocytes that UV irradiation induced both caveolin-1 and EGFR phosphorylation. Filipin, a caveolae disruptive agent, inhibited UV-induced caveolin-1 activation. Na+-K+-ATPase catalyzes active transport of Na+ and K+ across plasma membrane of mammalian cells, inactivation of which has recently been shown to be involved in the activation of signal transduction pathways including MAP kinase cascade. We found in this study that UV inactivated Na+-K+-ATPase in time-dependent manner, Na+-K+-ATPase activity started to decrease 5 min post UV irradiation and reduced to 60% of its original activity within 1 h. Pretreatment with Flipin and MMP inhibitor recovered Na+-K+-ATPase activity lost by UV irradiation. ECIS analysis indicated that both EGF treatment and UV irradiation increased membrane electric activity which was inhibited by MMP inhibitor and Filipin. Further study showed that pretreatment of human keratinocytes with MMP inhibitor or Filipin inhibited UV-induced phosphorylation of p38 and JNK, which was however not observed in LnCap cells, a prostate cancer cell line lacking caveolin-1. UV irradiation also induced ectodomain shedding of HB-EGF in a time-dependent manner in keratinocytes. Collectively, we conclude that UV-induced MAP kinase activation is mediated by cell surface receptor activation due to the matrix activity and membrane caveolae function and inactivation of Na+-K+-ATPase.

Caveolae↗

[The role of caveolae in shear stress-induced endothelial nitric-oxide synthase activation].

This article deals with the influence of shear stress on endothelial NO synthesis, and the role of caveolae in shear stress-induced eNOS activation. Human umbilical vascular endothelial cells (HUVEC) were cultured and exposed to different levels of laminal shear stress and Filipin, the perfused cultures were collected, and NO(2-)/NO(3-) was detected using nitrate reduction method. The structure of caveolae was observed through transmission electron microscopy (TEM). The level of NO(2-)-/NO(3-) was found to increase with the elevation of shear stress level (P < 0.01). It was the highest at 1.5 N/m2. After treatment with Filipin, the level of NO produced by HUVEC decreased significantly (P < 0.01), but after recovery and shear without Filipin, the level of NO synthesis bounded back (P < 0.01). It was then concluded that shear stress can induce endothelial NO synthesis and caveolae plays a key role in shear stress-induced eNOS activation.

Caveolae↗

Absorption and fluorescence spectra of polyene antibiotics in the presence of cholesterol.

The alterations in the absorption and fluorescence spectra observed for the polyene antibiotics filipin and nystatin in the presence of cholesterol are due to an exciton interaction (polyene aggregates) and cannot be attributed to a specific sterol-antibiotic complex. Filipin and nystatin molecules partition into the sterol aggregates, these structures being very efficient to induce exciton interaction; the observed splitting profile indicates that the chromophores are in a stacked arrangement (parallel transition dipoles). For filipin incorporated in lipid bilayers, the sterol is able to induce the same type of aggregate, at variance with nystatin.

1,2-Dipalmitoylphosphatidylcholine↗

Type C Niemann-Pick disease. Lysosomal accumulation and defective intracellular mobilization of low density lipoprotein cholesterol.

The intracellular accumulation of unesterified cholesterol was examined during 24 h of low density lipoprotein (LDL) uptake in normal and Niemann-Pick C fibroblasts by fluorescence microscopy with filipin staining and immunocytochemistry. Perinuclear fluorescence derived from filipin-sterol complexes was observed in both normal and mutant cells by 2 h. This perinuclear cholesterol staining reached its peak in normal cells at 6 h. Subsequent development of fluorescence during the remaining 18 h of LDL incubation was primarily limited to the plasma membrane region of normal cells. In contrast, mutant cells developed a much more intense perinuclear fluorescence throughout the entire 24 h of LDL uptake with little enhancement of cholesterol fluorescence staining in the plasma membranes. Direct mass measurements confirmed that internalized LDL cholesterol more readily replenishes the plasma membrane cholesterol of normal than of mutant fibroblasts. Perinuclear filipin-cholesterol fluorescence of both normal and mutant cells was colocalized with lysosomes by indirect immunocytochemical staining of lysosomal membrane protein. Abnormal sequestration of LDL cholesterol in mutant cells within a metabolically latent pool is supported by the finding that in vitro esterification of cellular cholesterol could be stimulated in mutant but not in normal cell homogenates by extensive disruption of the intracellular membranous structures of cells previously cultured with LDL. Deficient translocation of exogenously derived cholesterol from lysosomes to other intracellular membrane sites may be responsible for the delayed homeostatic responses associated with LDL uptake by mutant Niemann-Pick Type C fibroblasts.

Cell Membrane↗

Structural features of and cholesterol distribution in M-cell membranes in guinea pig, rat, and mouse Peyer's patches.

Evidence suggests that M cells, which are antigen-sampling epithelial cells that overlie the domes of Peyer's patches, have an apical plasma membrane that differs from that of absorptive cells. We examined the structural features of rat, mouse, and guinea pig M-cell apical membranes and compared them with those of dome and villus absorptive cell apical membranes using electron microscopy of thin sections and freeze-fracture replicas. We also determined the distribution of morphologically detectable cholesterol in M-cell plasma and intracellular membranes in dome epithelium exposed to the polyene antibiotic, filipin. The areal density of P-face intramembrane particles was significantly less on M-cell microvilli than on microvilli of dome absorptive cells and villus absorptive cells. Areal densities of E-face intramembrane particles were similar on M-cell and absorptive-cell microvilli. M-cell apical plasma membranes were rich in cholesterol, displaying numerous filipin-induced membrane lesions in thin sections and freeze-fracture replicas. In contrast, apical membrane endocytic pits and coated vesicles in M cells failed to show filipin-induced membrane lesions. These findings suggest that, compared with the apical membranes of absorptive cells, those of M cells have a low protein to lipid ratio and an abundance of morphologically detectable cholesterol except in domains involved in endocytosis. Additionally, a subpopulation of dome epithelial cells displayed distinctive tight junctions with high strand counts and unusual depth. Although the cell type associated with these modified tight junctions could not be identified with certainty, their interspecies frequency paralleled the interspecies frequency of M cells in dome epithelium. These expanded tight junctions may result from physical tension caused by epithelial shape changes induced by intraepithelial lymphoid trafficking or, alternatively, may help buttress M cells that have attenuated cytoplasmic processes due to the presence of central hollows.

Animals↗

Effects of polyene cholesterol-binding antibiotics on the binding and removal of cholesterol from bovine adrenocortical cytochrome P-450SCC: difference in properties of the membrane-bound and membrane-free cytochrome.

The polyene cholesterol-binding antibiotics filipin and amphotericin B inhibited the binding of cholesterol to steroid-free, soluble adrenocortical cytochrome P-450SCC. In mitochondria-bound cytochrome P-450SCC, cholesterol was not extracted by filipin, whereas filipin was able to react with cholesterol bound to purified soluble cytochrome P-450SCC. Based on these results we conclude that the cholesterol-binding site of membrane-bound cytochrome P-450SCC is masked by membrane structures.

Adrenal Cortex↗

Cholesterol distribution between the two halves of the lipid bilayer of human erythrocyte ghost membranes.

The binding of filipin with cholesterol in sealed and unsealed ghosts prepared from human erythrocytes and in right-side-out and inside-out vesicles prepared from ghosts follows second order kinetics (first order in each reactant). The second order rate constant of interaction of filipin with cholesterol, determined by stopped flow measurements of the initial rate, is slower in sealed ghosts than in unsealed ghosts by a factor of 2.0, whereas identical rate constants were obtained with right-side-out and inside-out vesicles. These results suggest that the cholesterol accessible to rapid reaction with filipin is distributed symmetrically between the inner and outer halves of the lipid bilayer of erythrocyte ghost membranes.

Cholesterol↗

Sterol-deficient domains correlate with intramembrane particle arrays in the plasma membrane of Chlamydomonas reinhardii.

The planar distribution of 3-beta-hydroxysterols in the plasmalemma of the green flagellate Chlamydomonas reinhardii has been studied with the freeze-fracture technique using the polyene antibiotic filipin and the saponin tomatin as cytochemical markers. Filipin-sterol complexes were predominantly observed as 25 to 30 nm protuberances on the E-face of the plasmalemma with corresponding invaginations on the P-face. Generally filipin-sterol and tomatin-sterol complexes were randomly distributed, but were virtually absent from sites of intramembrane particle arrays (IMP-arrays, i.e. the flagellar necklace, the flagellar bracelet including strut arrays, the eyespot membrane). The results suggest that IMP-arrays of Chlamydomonas are deficient in 3-beta-hydroxysterols and may therefore be regarded as special lipid arrays. IMP-arrays might require an altered lipid environment for proper function. Some functional aspects of IMP-arrays in Chlamydomonas are discussed.

Cell Membrane↗

Transport mechanism for succinate and phosphate localized in the plasma membrane of bovine spermatozoa.

Bovine spermatozoa accumulated a small amount of 32Pi during aerobic incubation in vitro. At least 50% of the acquired isotope rapidly entered cellular nucleotides. Both adenosine and guanosine di- and triphosphates were labeled, but contrary to expectations, the specific activity of ADP exceeded that of ATP. The uptake of phosphate and its incorporation into nucleotides were suppressed by respiratory inhibitors and were abolished by treatment with sulfhydryl-directed reagents at 10 to 20 nmol/mg of sperm protein. With fructose as an energy source for motility, glycolysis did not support phosphate uptake. Nucleotide labeling was increased 60 to 80-fold when the cells were treated with the polyene antibiotic filipin, and filipin was able to reverse the inhibition of phosphate (and succinate) entry produced by N-ethylmaleimide or mersalyl. Since filipin interacts specifically with the cholesterol-containing plasma membrane of bovine spermatozoa and increases its permeability, it is probable that the plasma membrane normally limits phosphate and succinate transport into these cells. This contention is further supported by the observation that high concentrations of extracellular Pi, the penetration of which was extremely limited under these conditions, protected against inactivation by N-ethylmaleimide. Phosphate uptake was increased 10 to 20-fold, but nucleotide labeling was inhibited, when calcium was present in the incubation medium. Ruthenium red, presumably acting extracellularly, prevented these effects of calcium. Thus, the entry of phosphate and succinate into spermatozoa is controlled by plasma membrane components that resemble the phosphate and succinate exchangers and calcium carrier found in mitochondria isolated from other sources.

Animals↗

Cytochemical studies of lipid metabolism: immunogold probes for lipoprotein lipase and cholesterol.

In this article, cytochemical methods are presented for the study of lipid metabolism both in normal cells and in mutant cells with genetic disorders characterized by abnormal lipid metabolism. The benefit of using an immunocytochemical approach to the study of lipase in tissues is discussed, and a review is presented of the results on immunolocalization of lipoprotein lipase in cardiac tissue of normal mice. Immunocytochemical techniques are applied to the study of lysosomal proliferation in hepatocytes from liver of mutant mice with a genetic defect responsible for the lack of hepatic lipase and lipoprotein lipase activity in these animals. Localization of lipids in tissues with structural techniques has been an area of great interest to our laboratory for many years. Attention is called to the development of a technique for the visualization of fatty acids as a function of their ionization state and the production of fatty-acid myelin figures in membranes. Results on the use of filipin to detect unesterified cholesterol in membranes are reviewed. Filipin produces fluorescent filipin-cholesterol complexes but also perturbs cell membranes. Application of this cytochemical probe, in combination with immunocytochemistry of lysosomes, produced useful information on defects in low-density lipoprotein-derived cholesterol translocation in mutant human fibroblasts. Initial results on the application of immunological techniques to the study of cholesterol in lipid model systems indicate a novel approach, which may be applicable to specialized cell systems. Recent advances in cryoultramicrotomy and development of immunoprobes present valuable opportunities for the structural assessment of lipids and lipases in cell organelles and cell membranes.

Animals↗