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J Hasek

Publications and source records attributed to J Hasek.

18 recordsLinked to original sources

Rpg1, the Saccharomyces cerevisiae homologue of the largest subunit of mammalian translation initiation factor 3, is required for translational activity.

Eukaryotic initiation factor 3 (eIF3) consists of at least eight subunits and plays a key role in the formation of the 43 S preinitiation complex by dissociating 40 and 60 S ribosomal subunits, stabilizing the ternary complex, and promoting mRNA binding to 40 S ribosomal subunits. The product of the Saccharomyces cerevisiae RPG1 gene has been described as encoding a protein required for passage through the G1 phase of the cell cycle and exhibiting significant sequence similarity to the largest subunit of human eIF3. Here we show that under nondenaturing conditions, Rpg1p copurifies with a known yeast eIF3 subunit, Prt1p. An anti-Rpg1p antibody co-immunoprecipitates Prt1p, and an antibody directed against the Myc tag of a tagged version of Prt1p co-immunoprecipitates Rpg1p, demonstrating that both proteins are present in the same complex. A cell-free translation system derived from the temperature-sensitive rpg1-1 mutant strain becomes inactivated by incubation at 37 degreesC, and its activity can be restored by the addition of the Rpg1-containing protein complex. Finally, the rpg1-1 temperature-sensitive mutant strain shows a dramatic reduction of the polysome/monosome ratio upon shift to the restrictive temperature. These data show that Rpg1p is an authentic eIF3 subunit and plays an important role in the initiation step of translation.

Cell Cycle Proteins

RPG1: an essential gene of saccharomyces cerevisiae encoding a 110-kDa protein required for passage through the G1 phase.

In Saccharomyces cerevisiae cells a number of genes are required for progression through, or else to pass beyond, the G1 phase. We characterized a novel gene, RPG1, which is also involved in this phase. RPG1 is an essential gene encoding a 110-kDa evolutionarily conserved protein. Elutriated or alpha-factor-synchronized cells of the rpg1-1 temperature-sensitive mutant were arrested in the first cell cycle when shifted to a non-permissive temperature. The cells remained unbudded and neither grew nor duplicated DNA. rpg1-1 cells synchronized in S phase completed mitosis and arrested as unseparated G1 cells after a shift to a non-permissive temperature. Similarly, the asynchronous rpg1-1 cells accumulated in G1 at the non-permissive temperature, but mother and daughter cells did not separate. A bulk of Calcofluor-stained material was localized in the region adjacent to the cell septum. Our data show that Rpg1p is required for passage through the G1 phase and may be involved in growth control. Data published recently indicate that Rpg1p exhibits significant sequence similarity to a subunit of the mammalian translation initiation factor 3.

Amino Acid Sequence

The arrangement of F-actin and microtubules during germination of Mucor rouxii sporangiospores.

The distribution of F-actin microfilaments and microtubules was analyzed in germinating sporangiospores of Mucor rouxii by labeling with rhodamine-tagged phalloidin and by immunofluorescence microscopy. The transition from isodiametrical to apical growth was accompanied by a switch from uniform distribution of F-actin patches to a polarized accumulation of F-actin material at the germ tube tips. Immunoblotting of cell-free extracts of M. rouxii with a monoclonal anti-porcine alpha-tubulin antibody (TU-01) disclosed two discrete bands of alpha-tubulin suggesting the existence of two alpha-tubulin genes in this fungus. Immunofluorescence microscopy of germinating cells stained with the same antibody revealed an elaborate network of cytoplasmic microtubules that persisted during the entire germination process and extended into the apex of the germ tube. Although their precise roles remain undetermined, the observed arrangement of cytoskeletal elements during germination is consistent with their presumed involvement in cell wall morphogenesis: the long axial microtubules serving as long-distance conveyors of wall-building vesicles to the apical region while the concentrated F-actin patches mark the participation of microfilaments in the zone of intense vesicle exocytosis at the hyphal apex.

Actins

Immunolocalization of cyclophilin in normal and cyclosporin A-treated human lymphocytes.

A polyclonal rabbit antibody against a protein fraction (10-30 kDa) of human thymuses with a high CsA-binding activity of dominant protein cyclophilin (CPH) was prepared and characterized. In immunoblotting with the cell lysate from JURKAT T cell line, this antibody specifically reacted with 18-kDa protein corresponding to CPH. In indirect immunofluorescence the antibody visualized granular structures in JURKAT cells and human peripheral blood lymphocytes. In JURKAT cells cultivated with 1-2 micrograms of CsA per ml for 7 days a much weaker reaction of the antibody was found, compared with non-treated cells. In some CsA-treated cells the antibody visualized various 'star-like' or filamentous structures. A similar staining pattern has also been obtained in lymphocytes of the patients receiving CsA therapy. Complementary staining with rhodamine-tagged phalloidin revealed changes in F-actin distribution of CsA-treated JURKAT cells. In conclusion, the treatment with CsA induces dramatic changes of CPH cellular distribution, which may take part in the final therapeutic effect of the drug.

Actins

Localization of a 210-kDa microtubule-interacting protein in the yeast Saccharomyces cerevisiae.

Using the monoclonal antibody MA-01, which recognizes a 210-kDa protein in cell-free extracts, spindle and cytoplasmic microtubules were visualized in budding yeast, Saccharomyces cerevisiae. In additional, a spot-like staining was found beneath the plasma membrane, revealing in part correlation with F-actin distribution. This pattern was common for cells of all cell-cycle stages. The interaction of the protein recognized by MA-01 with microtubules was confirmed in the double labeling with a polyclonal antitubulin antibody and by the sensitivity of intranuclear structures stained by MA-01 to the microtubule disrupting drug nocodazole.

Actins

Tubulin and actin topology during zygote formation of Saccharomyces cerevisiae.

The topology of tubulin and actin during mating of Saccharomyces cerevisiae was analysed by fluorescence microscopy with the monoclonal anti-tubulin antibody Tu01 and rhodamine-labelled phalloidin. Preconjugatory cells displayed an asymmetric distribution of the microtubule and actin cytoskeleton and an overall polarization of the cells preceding cell fusion. Prior to karyogamy, the haploid spindle pole bodies were associated with abundant cytoplasmic microtubules. Budding zygotes revealed the same tubulin and actin patterns as vegetative cells. Treatment of the mating mixture with the microtubule inhibitor nocodazole (10 micrograms ml-1) did not prevent polarization and fusion of haploids, zygote formation and emergence of the first zygotic bud. In marked contrast, the migration of the nucleus in preconjugatory cells as well as nuclear migration and fusion within the zygotes was unequivocally blocked by the action of the drug. It is suggested that the problem of the morphogenesis of mating should be approached by considering interactions at the cell periphery.

Actins

Changes in the microtubular skeleton of human lymphocytes produced by immunosuppressive substances.

The technique of immunofluorescent visualization of the microtubular skeleton of human lymphocytes isolated from the peripheral blood of healthy donors and immobilized on Concanavalin A--precoated slides was used. These lymphocyte monolayers are suitable for extraction and employment of indirect immunofluorescence. Using a monoclonal antitubulin antibody, one can visualize the MT apparatus of control human lymphocytes as an organizing centre with attached beamlike structures. Lymphocytes treated with ATG or monoclonal OKT 3 antibody in vitro manifest changes in the shape of cells, inhibition of the blast-like cell formation, and an atypical MT system: disturbance or even disappearance of the beamlike structure, formation of bundles and "caps" resulting, in some cases, in shedding of a part of cytoplasm. Rabbit ATG binds to all the cells of the monolayer, and can be shown even after cell extraction. Control experiments with nonspecific rabbit or murine IgG did not induce any of the above changes. Reorganization of the MT apparatus of human lymphocytes affected by ATG or OKT 3 in vitro can be explained either by a direct association of antigenic determinant with MT, or by the persistence or/and internalization and further processing of immune complexes of antigenic membrane determinants with specific antibodies.

Animals

Immunofluorescence of the microtubular skeleton in growing and drug-treated yeast protoplasts.

The microtubular system in growing protoplasts of Saccharomyces uvarum was visualized by immunofluorescence using the monoclonal antitubulin antibody TU 01. We confirmed the coexistence of regular spindle configuration and extensive cytoplasmic networks in growing protoplasts and also observed a distinct distortion of cytoplasmic microtubules in association with wall removal. After a short period for recovery of protoplasts in nutrient medium a restitution of cytoplasmic microtubules and their resumed contact with the protoplast surface was observed. Treatment of growing protoplasts with nocodazole resulted in the disappearance of spindle and cytoplasmic microtubules in the relevant fraction of the protoplast population. In carbendazime (MBC)-arrested protoplasts spindle microtubules were absent but cytoplasmic microtubules associated with spindle pole bodies were clearly visible. Microtubule reassembly on spindle pole bodies occurred within 30 min after washing out nocodazole as well as carbendazime. The approach using protoplasts suggests a simple way in which the differential effect of antimicrotubule agents can be experimentally tested and the microtubule organizing activity of yeast protoplasts visualized at the population level.

Benzimidazoles

The cytoskeleton and control of the yeast cell cycle.

Recently the concept of eukaryotic cell cycle regulation has changed enormously because of the development of new concepts and techniques applied in studying the yeast cell cycle. Experimental facts and speculations are presented here, with emphasis on the role of the cytoskeleton in the control of division in yeast cells.

Cell Cycle

Septum pattern in ts mutants of Schizosaccharomyces pombe defective in genes cdc3, cdc4, cdc8 and cdc12.

Septum-defective mutants of Schizosaccharomyces pombe impaired in cdc genes 3, 4, 8 and 12 were compared by fluorescence microscopy, freeze-etching and ultrathin sectioning. This approach made it possible to recognize the internal organization of defective phenotypes under restrictive conditions. Of special interest in this study was the pattern of unusual septum malformations found to be regular features of the terminal phenotypes of the mutants. Their overall topology was visualized at the cellular level by primulin fluorescence. The subcellular location of septum defects was found to be identical in origin to the compartment where normal septum was assembled in the wild type. Delocalized septation involved both microfibrillar and matrix components, which participated in the final assembly of malformations. Unique contour views of delocalized septa were exposed by freeze-fracturing. Cytoplasmic microtubules and microfilaments were detected in ultrathin sections of the cytoplasm of mutant cells. The internal organization of malformation-accumulating phenotypes suggested a disruption of the directional mechanism that steers septum material to the periplasm at the cell equator.

Ascomycota