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H Plattner

Publications and source records attributed to H Plattner.

At least 109 records · Page 6Linked to original sources

Membrane-integrated proteins at preformed exocytosis sites.

Parameters tetraurelia cells were used for analyzing the crucial but also controversial question regarding the organization of those sites of the cell membrane that undergo fusion during exocytosis. Paramecia are unique in that they display a "rosette" of from eight to ten MIPs (Membrane-intercalated particles, as seen on freeze-fracture replicas) at each of their numerous preformed exocytosis sites. We analyzed these structures by exposing slightly fixed cells to various enzymes and by subsequent freeze fracturing. We show that "rosette" MIPs are selectively sensitive to proteolytic enzymes. Since "rosettes" are known to be necessary for membrane fusion, this cytochemical result would be in line with the assumption that membrane-integrated proteins may play an active role in regulating exocytotic membrane fusion.

Animals↗

Membrane events in adrenal chromaffin cells during exocytosis: a freeze-etching analysis after rapid cryofixation.

Catecholamine-storing chromaffin cells, isolated from bovine adrenal medullae by collagenase digestion, were stimulated with carbachol at 37 degrees C; aliquots for controls were kept at 37 degrees C: Starting from this temperature, cells were ultrarapidly frozen with the use of a sandwich-propane-jet procedure and freeze-fractured. The replicas were analysed quantitatively for exocytotic activity: After stimulation the cell membrane displayed a significant increase of exo-endocytotic openings varying in size from 20 to 300 nm. The number of openings increased in parallel to the catecholamine output. At no stage could a clearing of membrane-intercalated particles (MIPs) be observed. Openings of all size classes were etchable. Results from the PF-face were comparable with those of the EF-face. We conclude that (i) exocytosis in isolated chromaffin cells starts as a focal event; the smallest possible stages are about 10 nm in size, (ii) fusion proceeds without previous rearrangement of MIPs, and (iii) the opening starts without formation of a diaphragm.

Adrenal Medulla↗

Possible involvement of a calmodulin regulated Ca2+ -ATPase in exocytosis performance in Paramecium tetraurelia cells.

Surface membrane fractions from Paramecium tetraurelia cells contain a calmodulin-stimulated Ca2+-ATPase responding to low levels of free Ca2+ and with features characteristic of a membrane-bound ATPase. Among the different strains analyzed this enzyme was practically absent selectively from the 'non-discharge' mutant nd9-28 degrees C (from J. Beisson): if cultured at a permissive temperature (18 degrees C), this strain showed identical values of calmodulin-stimulated Ca2+-ATPase activity as wild-type cells (7S) or strains with mutations which do not affect exocytosis performance. We conclude that this calmodulin-stimulated Ca2+-activated ATPase might be a prerequisite for membrane fusion in the course of exocytosis performance.

Animals↗

Cytoskeleton-secretory vesicle interactions during the docking of secretory vesicles at the cell membrane in Paramecium tetraurelia cells.

Stationary-phase cells of Paramecium tetraurelia have most of their many secretory vesicles ("trichocysts") attached to the cell surface. Log-phase cells contain numerous unoccupied potential docking sites for trichocysts and many free trichocysts in the cytoplasm. To study the possible involvement of cytoskeletal elements, notably of microtubules, in the process of positioning of trichocysts at the cell surface, we took advantage of these stages. Cells were stained with tannic acid and subsequently analyzed by electron microscopy. Semithin sections allowed the determination of structural connections over a range of up to 10 micrometer. Microtubules emanating from ciliary basal bodies are seen in contact with free trichocysts, which appear to be transported, with their tip first, to the cell surface. (This can account for the saltatory movement reported by others). It is noteworthy that the "rails" represented by the microtubules do not directly determine the final attachment site of a trichocyst. Unoccupied attachment sites are characterized by a "plug" of electron-dense material just below the plasma membrane; the "plug" seems to act as a recognition or anchoring site; this material is squeezed out all around the trichocyst attachment zone, once a trichocyst is inserted (Westphal and Plattner, in press. [53]). Slightly below this "plug" we observed fasciae of microfilaments (identified by immunocytochemistry using peroxidase labeled F(ab) fragments against P. tetraurelia actin). Their arrangement is not altered when a trichocyst is docked. These fasciae seem to form a loophole for the insertion of a trichocyst. Trichocyst remain attached to the microtubules originating from the ciliary basal bodies--at least for some time--even after they are firmly installed in the preformed attachment sites. Evidently, the regular arrangement of exocytotic organelles is controlled on three levels: one operating over a long distance from the exocytosis site proper (microtubules), one over a short distance (microfilament bundles), and one directly on the exocytosis site ("plug").

Animals↗

Adrenal chromaffin granules: evidence for an ultrastructural equivalent of the proton-pumping ATPase.

Adrenal chromaffin granules are known to possess an F1-ATPase which according to biochemical criteria is very similar to the mitochondrial one. To find a morphological equivalent for this enzyme chromaffin granules from bovine adrenal medullar were subjected to negative staining and freeze-etching. With both methods globular particles of 8 to 9 min diameter could be demonstrated on the surface of these organelles. A single granule possessed on average 22 particles. In negative staining the particles appeared separated from the membrane by a stalk of 8 nm. This typical morphological appearance was independent from a great variety of experimental procedures. After freeze-etching the particles were closely apposed to the membrane without any evidence for an interposed stalk. Pretreatment of chromaffin granules with pronase or trypsin led to a time dependent disappearance of the surface particles. In negative staining the stalked of chromaffin granules were found to be very similar in structure and size to those of mitochondria which have already been identified as F1-complexes. Based on this observation and other lines of evidence we suggest that the stalk particles found on the surface of chromaffin granules represent the F1-complex of the proton-pumping ATPase of these organelles.

Adenosine Triphosphatases↗

Secretory protein decondensation as a distinct, Ca2+-mediated event during the final steps of exocytosis in Paramecium cells.

The contents of secretory vesicles ("trichocysts") were isolated in the condensed state from Paramecium cells. It is well known that the majority portion of trichocysts perform a rapid decondensation process during exocytosis, which is visible in the light microscope. We have analyzed this condensed leads to decondensed transition in vitro and determined some relevant parameters. In the condensed state, free phosphate (and possibly magnesium) ions screen local surplus charges. This is supported by x-ray spectra recorded from individual trichocysts (prepared by physical methods) in a scanning transmission electron microscope. Calcium, as well as other ions that eliminate phosphate by precipitation, produces decondensation in vitro. Under in vivo conditions, Ca2+ enters the vesicle lumen from the outside medium, once an exocytic opening has been formed. Consequently, within the intact cell, membrane fusion and protein decondensation take place with optimal timing. Ca2+ might then trigger decondensation in the same way by precipitating phosphate ions (as it does in vitro) and, indeed, such precipitates (again yielding Ca and P signals in x-ray spectra) can be recognized in situ under trigger conditions. As decondensation is a unidirectional, rapid process in Paramecium cells, it would contribute to drive the discharge of the secretory contents to the outside. Further implications on the energetics of exocytosis are discussed.

Animals↗

Cryofixation of monolayer cell cultures for freeze-fracturing without chemical pre-treatments.

A cryofixation method is presented which gives excellent ultrastructural preservation of monolayer cell cultures without any chemical pretreatments. Rat hepatocytes in primary culture were used in this study. The equipment needed is inexpensive and easy to manufacture. Cells are grown on a usual tissue culture support material (Thermanox plastic sheets). For cryofixation, samples are prepared essentially by a combined sandwich-cryogen-jet technique, 3 mm large discs are punched out and sandwiched with Cu- or Au-object holders of little mass; a 15 micrometer spacer is put in between. The viability of the cells is not impaired by the manipulations before freezing. The sandwich sample is quickly frozen by shooting a propane jet from a simple pressure chamber on to the metal object holder. The relevant parameters were optimized by parallel freeze-fracture analyses of 5% glycerol as a model system and by thermocouple measurements. Sandwich samples are then mounted in an appropriate double replication specimen table for further analysis by freeze-fracturing. It is possible to obtain a certain selectivity of the fracture plane with regard to apical, lateral or basal aspects of the cell layer. Alternatively, disc samples can be processed by chemical fixation methods (including freeze substitution to determine the freeze-fracture plane), since the support material Thermanox is insensitive to organic solvents and easy to cut. In each case the cells remain attached to their substratum throughout the whole procedure. Thus, the ultrastructural data can be directly correlated with parallel functional analyses obtained from the same cell cultures.

Animals↗

Quantitative data on peroxidatic markers for electron microscopy. With a note on actin identification in Paramecium cells.

Several important points of heme-peptide cytochemistry were quantitatively analyzed, with particular regard to their use in electron microscopic immunocytochemistry. A simple procedure is presented for the preparation of heme-octapeptide (H-8-P) microperoxidase. H-8-P, hemenonapeptide (H-9-P), and various horseradish peroxidase (HRP) isoenzymes were used for coupling with immunoglobulin (Ig)G or the papain-cleavage fragments from IgG (Fab) molecules. Ultracentrifugation and spectrophotometric analyses revealed the following characteristics of the conjugates: a) They are of a uniform size class; b) their diameters were calculated, and ranged from 5.6 (Fab-H-8-P; H-9-P) to 10.5 (IgG-HRP); c) the persistence of antigen binding capacity was ascertained; d) the deactivation of the marker peroxidase activity due to coupling was as low as 20-30%; e) optimal conditions for use of the electron microscopic (EM) with 3,3'-diaminobenzidine media were elaborated (with a pH optima somewhat different from some standard methods in current use); and f) on the basis of the quantitative data presented, an optimal compromise (either in favor of higher peroxidase activity with HRP conjugates or of smaller size with microperoxidase-Fab conjugates) can be achieved. Finally, the identification of isolated purified actin and of actin in cortical microfilament bundles and ciliary basal bodies of Paramecium cells served as a test object for the usefulness of conjugation products and optimized assay conditions for EM immunocytochemistry.

Actins↗

Isolation of surface membranes from normal and exocytotic mutant strains of Paramecium tetraurelia. Ultrastructural and biochemical characterization.

A density gradient centrifugation method for the isolation of the surface membrane complex from Paramecium tetraurelia cells is presented. The resulting "pellicles" consist predominantly of the somatic cell membrane and the underlying alveolar membranes. Marker enzyme activities for other cell components are low and SDS-polyacrylamid-gel electrophoreses indicate the presence of only minor amounts of ciliary and secretory proteins. Pellicles were prepared from different strains: (a) Exocytosis-capable strains with the normal set of exocytotic organelles ("trichocysts") docked to the cell membrane (strains 7S, K 401, and 9-18 degrees C), (b) exocytosis-uncapable strains (although with normal trichocyst attachment: nd 9-27 degrees C, nd 6, nd 7) and (c) strain from tam 38 with empty docking sites and rare, defective, free trichocysts. A Ca2+-stimulated ATPase was present in the pellicles from all strains with Km (CA2+) values between 0.19 to 0.88 mM Ca2+ and Vmax between 286 to 787 nMoles Pi/mg protein/min. Km and Vmax was identical for all strains of group (a). Vmax was significantly lower for all strains of group (b) and still lower for group (c). Similar group differences were found for Km (except for strain nd 6). Freeze-fracture analysis shows that the disruption of the membrane-to-membrane attachments during fractionation is paralleled by the disarrangment of the regular arrays ("rings", "rosettes") of membrane-integrated particles.

Animals↗

Localization of actin in the cortex of Paramecium tetraurelia cells by immuno- and affinity-fluorescence microscopy.

The cortex of the ciliate Paramecium tetraurelia has been examined both with whole cells and with isolated surface complexes (pellicles) for the presence and distribution of actin, using direct fluorescence labeling with antibodies monospecific for Paramecium actin, with DNase I or with heavy meromyosin, all tagged with FITC as a fluorochrome. The results obtained with the three different methods were similar. Actin is concentrated in the cilia and--clearly visible only after deciliation--in the basal bodies. The docking site of secretory vesicles (trichocysts) onto the cell membrane does not display any selective actin content. This does not preclude the interaction with actin at other sites of the trichocysts, since diffuse fluorescence labeling in deeper layers of the cell did not allow us yet to analyze the distribution of actin throughout the cell body. However, our data would preclude any direct involvement of actin at the site of exocytotic membrane fusion proper.

Actins↗

Genetic dissection of the final exocytosis steps in Paramecium tetraurelia cells: cytochemical determination of Ca2+-ATPase activity over performed exocytosis sites.

In different Paramecium tetraurelia strains the occurrence of a Ca2+-ATPase (or p-nitro-phenylphosphatase) activity at the preformed attachment and exocytosis sites of the secretory vesicles (trichocysts) was analysed by electron-microscopic cytochemistry and X-ray microanalysis. In conjunction with freeze-fracture studies it was found that only those strains, which contain rosette particles, display this Ca2+-ATPase activity (7S, K 40I, nd 9 (18 degrees C), while other strains (nd 6, nd 9 (27 degrees C), tam 38) are devoid of both these characteristics. The presence (absence) of rosette particles and of Ca2+-ATPase activity at the preformed exocytosis sites is correlated with the capability (incapability) of performing exocytosis in these strains. We discuss several possible interpretations of this structure-function correlation.

Animals↗

Genetic dissection of the final exocytosis steps in Paramecium tetraurelia cells: trigger analyses.

A variety of trigger procedures were applied to analyse the exocytotic capability of different Paramecium tetraurelia strains. 7,S K 40I, kin 24I, and 9 (18 degrees C) are capable of exocytosis (permissive strains), in contrast to nd 6, nd 7, nd 9 (27 degrees C), tam 38 and ftb A, although all procedures used enhance [Ca2+]i in the cytoplasm of all strains tested and although strains nd 6, nd 7 and nd 9 (27 degrees C) contain a full set of morphologically normal trichocysts attended to the cell membrane. The results show that only those strains are permissive which were shown previously to contain a rosette of membrane-integrated particles and a Ca2+-ATPase activity in the cell membrane over the trichocyst attachment (exocytosis) sites. The results from trigger experiments with permissive and non-permissive strains would be compatible with a dual function of rosette particles as Ca2+ pumps and Ca2+ channels. Nevertheless, the latter aspect remains uncertain since we show that experiments along these lines published by others (introducing a Ca2+ ionophore from the outside) involve a solvent-induced artifact (pseudoexocytosis: matrix stretching in the absence of membrane fusion). In all strains, except for tam 38 and ftb A (which have abnormal trichocysts incapable of being attached to the cell membrane), the isolated trichocyst matrix can be transferred from the contracted to the expanded state in vitro with certain trigger procedures. Our data clearly show that an increase of [Ca2+]i in the cytoplasm is not sufficient for exocytosis to occur and that non-permissiveness is somehow due to an inability to perform membrane fusion. It remains open whether the lack of rosettes and Ca2+-ATPase activity at trichocyst attachment sites are primary cause of non-permissiveness.

Animals↗

Particle segregation in chromaffin granule membranes by forced physical contact.

Bovine chromaffin granules were exposed to different isotonic non-ionic and ionic solutions (sucrose; Ca2+- and Mg2+-free phosphate-buffered saline; Tris-HCl + NaCl; Ca2+- and Mg2+-free phosphate-buffered saline + sucrose; Tris-HCl + sucrose) at pH 7 and then frozen either in suspension or as firm pellets. Freezing was performed without prefixation or antifreeze treatments either by 'standard' techniques (approx. 1 mm3 suspended or pelleted material on gold specimen supports dipped into liquid Freon) or with increased cooling rates by spraying suspensions into liquid propane ('spray-freezing'). Regardless of the freezing method, membrane-intercalated particles were always randomly distributed when chromaffin granules were frozen in suspension. In contrast, forced physical contact between granules produced by centrifugation (12000 X g, 25 min) provoked dispersal of membrane-intercalated particles, but only in the presence of ions. Sucrose or EDTA in an ionic environment had no inhibitory effect. The following conclusions are derived: (1) Even below the reported phase transition region particle clustering is possible. (2) Chromaffin granule membranes are not liable to thermotropic segregation of membrane-intercalated particles. (3) Although the low freezing rates of 'standard' freezing techniques produce large-scale segregation artefacts (by which suspended chromaffin granules are pushed together within the segregated solute) this does not result in intramembraneous particle segregation. (4) Forced physical contact produces a Ca2+-independent particle segregation, but only when repulsive electrostatic forces of membrane components are partially screened in an ionic environment. (5) This does not invalidate results obtained by others, showing Ca2+-mediated chromaffin granules agglomeration and segregation of membrane-intercalated particles, but it might indicate the occurrence of another, not directly Ca2+-dependent particle segregation mechanism in a prefusional stage of close membrane-to-membrane contact during exocytosis.

Animals↗

Adenosinetriphosphate, calcium and temperature requirements for the final steps of exocytosis in Paramecium cells.

In Paramecium cells a synchronized discharge of trichocysts (which involves only the final exocytosis steps of membrane fusion, content discharge and membrane resealing) was achieved with ATPase-blockers, Ca2+-ionophores, lipid solvents (including lysolecithin), polyethyleneglycol, anaesthetics (Dibucain) and cationic detergents (cetyltrimethylammonium bromide (CTMAB) and cetylpyridinium chloride (CPC). Only Dibucain--and to some extent cationic detergents--can trigger exocytosis independently of extracellular Ca2+, possibly by mobilizing intracellular Ca2+. The internal free [Ca2+] necessary for exocytosis can be estimated to be greater than 10(-6) to 10(-4) M. Membrane-free trichocyst contents were isolated by density gradient centrifugation; they are converted from the contracted to the expanded state by Dibucain, CTMAB and CPC, and also by exogenous ATPase (Apyrase). Thus, it is possible to de-couple the discharge (stretching) process from membrane-related phenomena. Since only the latter are inhibited by low temperature (0 degrees C), membrane lipids probably have to be in a fluid state for exocytosis to occur. At least 2 steps appear to be involved: when membrane fusion is initiated, an independent matrix-bound system is activated for the synchronized stretching process. The energy requirement for one discharge event is estimated to be about 14 X 10(6) ATP molecules.

Adenosine Triphosphate↗