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Filamentous actin in Paramecium cells: mapping by phalloidin affinity labeling in vivo and in vitro.

In living Paramecium cells, microinjected rhodaminyl (R)-phalloidin rapidly labels a thin cortical layer. This can be more clearly resolved with microinjected and fixed cells (allowing for better resolution) as well as with isolated pellicles (surface membrane complexes with trichocysts, microfilaments, and mitochondria attached). Labeling of a longitudinal and perpendicular pattern, reflecting the relief of the cell surface, and labeling of ciliary basal bodies then becomes clearly visible. Other structures labeled by R-phalloidin are the surfaces of food vacuoles of different sizes and, although inconsistently, the borders of the buccal cavity. Small acidic compartments (as identified by acridine orange fluorescence vital staining), probably representing acidosomes and small lysosomes, were not labeled. F-actin on food vacuole surfaces may somehow be involved in intracellular transport or fusion processes. No labeling was observed in association with the osmoregulatory system (contractile vacuoles and their ampullae and radial canals). The specificity of in vivo labeling obtained was supported by the abolition of R-phalloidin labeling when isolated pellicles were pretreated with unlabeled phalloidin or with DNAse I. It was also possible to discriminate among different layers of R-phalloidin binding in the cortex by detaching different layers of the surface complex from each other. Since localization of F-actin in ciliates has raised a considerable amount of dispute in the past, we also repeated all these experiments with RITC-labeled HMM, but we obtained essentially the same labeling pattern as with R-phalloidin. Ciliary basal bodies therefore clearly contain some F-actin. Our data shed some light on aspects of surface structuring and motility in these cells.

Actin Cytoskeleton↗

Filamentous actin in paramecium cells: functional and structural changes correlated with phalloidin affinity labeling in vivo.

Rhodaminylated (R)-phalloidin microinjected into Paramecium tetraurelia cells at a final concentration of greater than or equal to 20 micrograms/ml produces considerable functional and structural changes. F-actin bundles (with 20 micrograms/ml phalloidin within 15 min) are formed, which subsequently (greater than 30 min) are sequestered into autophagic vacuoles; simultaneously, the originally intense fluorescence of a narrow cortical layer becomes more and more diminished. When such microinjected cells are processed for electron microscopy, they display concomitant ultrastructural alterations, namely, the formation of transcellular bundles of 5-7 nm-thick filaments, which subsequently appear in autophagosomes, as well as a considerable reduction of filamentous materials in the cortex. This, in turn, entails a considerable restructuring of the cortex, enabling free access of various structural components to the cortex. Higher doses of R-phalloidin abolish cytoplasmic streaming (e.g., 50 micrograms/ml after 20-30 min); although the cells may survive, new secretory organelles (trichocysts) are no longer docked to the cell membrane. In contrast, exocytosis of docked trichocysts (as well as subsequent membrane resealing and retrieval) is not impaired under any conditions. Cortical F-actin may account for the cytoplasmic streaming that may normally guarantee the delivery of new trichocysts to free docking sites at the cell membrane. When docking is inhibited by high R-phalloidin doses, excess free trichocysts are sequestered into autophagosomes (crinophagy). One of the most sensitive cell functions is food vacuole formation (assayed by prelabeling with India ink), which correlates with the presence of R-phalloidin labeling in the cytostomal region and around food vacuoles. The main conclusions from this work are that filamentous actin may be involved in structuring of the cortex and in cytoplasmic streaming, and may therefore influence the formation, and possibly the transcellular transport (cyclosis), of food vacuoles, as well as the docking of trichocysts, whereas it does not play a role in exocytosis per se or in the steps immediately following.

Actin Cytoskeleton↗

Multiple forms of affinity-labeled estrogen receptors in rat distinct pituitary cells.

The presence of multiple monomeric forms has been described for estrogen receptor (ER) in different target tissues. Using [3H]tamoxifen aziridine ([3H]TA) to covalently label ER and sodium dodecyl sulfate-polyacrylamide gel electrophoresis to analyze labeled products, ER forms were investigated in pituitary cytosol and purified nuclei from male rats. ER forms were also compared in cellular extracts from gonadotrope-enriched populations (GP), prepared using the fast method of centrifugal elutriation, and from lactotrope-somatotrope fractions (LSP), obtained by sequential use of both elutriation and Percoll gradient sedimentation. A major labeled protein of 60,000-65,000 mol wt (M(r)) and a minor species of 50,000-55,000 M(r) were found in the pituitary cytosol and nuclear extracts covalently labeled with [3H]TA. The same results were obtained after ER covalent labeling from cellular extracts or intact dispersed cells. In gonadotrope-enriched cell population (greater than or equal to 50% LH-immunoreactive cells), the 65,000 M(r) species is the single unique ER form; in the LSP (80% PRL- and GH-immunoreactive cells), the major TA-labeled species is the 50,000 M(r) form, while the 65,000 M(r) ER is hardly detectable. Thus, the prevalence of 65,000 M(r) protein in the initial cell population can be explained by the higher number of binding sites per gonadotrope than per lactotrope cell. In conclusion, ER heterogeneity is demonstrated in pituitary cell populations. The source of this heterogeneity could be due to 1) different ER mRNAs according to cell type, or 2) a specific posttranslational processing, such as proteolytic activity within lactotrope cells.

Animals↗