Search PubMed⌕ Search

Biomedical subjects

K Weber

Publications and source records attributed to K Weber.

At least 649 records · Page 36Linked to original sources

Cell-to-substratum contacts in living cells: a direct correlation between interference-reflexion and indirect-immunofluorescence microscopy using antibodies against actin and alpha-actinin.

Rat mammary cells growing on glass coverslips were photographed first using interference-reflexion microscopy and then after processing for indirect-immunofluorescence microscopy with antibodies to actin or to alpha-actinin. A comparison of the images of the same cell given by the 2 microscopical procedures indicates that the focal contacts between the cell and the substratum correspond to distal ends of microfilament bundles, and the these bundles are only in limited areas close to the substratum. The focal contracts are rich in alpha-actinin which has been proposed as a membrane-anchorage protein for microfilament bundles. Use of stereo immunofluorescence microscopy allows a direct comparison between the interference-reflexion image, and the underside of the cell after staining with antibodies to actin or alpha-actinin.

Actinin↗

[Metalloceramics].

Explore the source record for details and available documents.

Dental Alloys↗

Ultrastructural, biochemical, and immunologic characterization of Mallory bodies in livers of griseofulvin-treated mice. Fimbriated rods of filaments containing prekeratin-like polypeptides.

Mallory bodies (MBs) induced in hepatocytes by long term feeding of mice with griseofulvin were isolated, purified, and examined by electron microscopy in ultrathin sections and negatively stained preparations. The major structural component of the MBs was randomly oriented, unbranched rods of filaments; these were usually 175 to 250 nm. long and 14 to 20 nm. thick and covered by a dense fimbriate coat of laterally projecting 1.5- to 3-nm. thick threads. Such lateral threads could extend for more than 20 nm. and seemed to be involved in the interconnection of adjacent filaments and their association and aggregation into MBs. Using sodium dodecyl sulfate-polyacrylamide gel electrophoresis, the purified filament material showed six major polypeptide bands with apparent molecular weights ranging from 48,000 to 66,000. When the portion of the MB filament material that was soluble in solutions containing 8 M urea was allowed to reaggregate upon removal of the urea, an enrichment of one of the polypeptide components (approximate molecular weight, 64,000) was observed. When frozen sections of liver tissue MBs were subjected to indirect immunofluorescence microscopy, they were specifically revealed by guinea pig antibodies directed against purified bovine prekeratin. No significant accumulation of MBs was observed with a series of other antisera, including those containing antibodies against tubulin, actin, and vimentin, the major protein of the intermediate sized filaments predominant in mesenchymal cells. The observations suggest that MBs in livers of griseofulvin-treated mice, and probably also of human alcoholic hepatitis, contain large amounts of prekeratin-like polypeptides which are assembled into a special form of fimbriated rods of 14- to 20-nm. filaments. These filaments are morphologically different from other forms of intermediate sized and thick filaments, including the prekeratin-containing 6- to 11-nm. tonofilament-like filaments present in various epithelial cells.

Animals↗

[Graduate education].

Explore the source record for details and available documents.

Education, Nursing, Continuing↗

Microfilament-associated proteins in tissue culture cells viewed by stereo immunofluorescence microscopy.

Stereo immunofluorescence microscopy avoids the problem of juxtaposition of structures often encountered in normal fluorescence microscopy. The procedure has been used in conjunction with antibodies against microfilament associated proteins to reveal the arrangement of microfilaments in a rat mammary cell line both in the fully spread state and in cells during the process of spreading on the substratum. use of antibodies to myosin, tropomyosin, alpha-actinin and filamin emphasizes that at early times during the spreading process these proteins are abundantly present underneath the upper plasma membrane, suggesting that the cortical layer present underneath this membrane may be contractile. In addition the results emphasize that even in well spread cells microfilament bundles are expressed both above and below the nucleus, in agreement with the assumption that microfilaments may form a supporting layer underneath the plasma membrane.

Actinin↗

Identification of multiple microtubule initiating sites in mouse neuroblastoma cells.

Mouse neuroblastoma N-18 cells can be induced by serum deprivation to sprout multiple neurite-like processes which contain many microtubules. Mitotic drugs such as colcemid and colchicine depolymerize these microtubules and the cells lose their processes. Reappearance of microtubules after removal of the drugs was followed by immunofluorescence microscopy using tubulin specific antibodies. At early recovery times multiple star-like structures which contained tubulin were detected in the perinuclear are and in the cytoplasm of individual cells. The mean number seen per cell as approximately 5. Their formation preceeded the organization of the complex microtubular networks typical of N-18 cells. The probable action of these structures as microtubular organization centers (MTOCs) is discussed. Multiple structures were detected during recovery from the influence of mitotic drugs both in previously induced and non-induced N-18 cells, suggesting that N-18 cells harbour the potential of formation of multiple organization centers even without previous induction. We discuss the possibility that differentiation of neuroblastoma N-18 cells may require microtubular organization centers.

Animals↗

Differences in surface morphology of microtubules reconstituted from pure brain tubulin using two different microtubule-associated proteins: the high molecular weight MAP 2 proteins and tau proteins.

Microtubules were reconstituted from homogeneous brain tubulin and homogeneous preparations of two different microtubule associated proteins, the high molecular weight MAP 2 proteins or the tau proteins. The resulting microtubules were characterized by three electron microscopical procedures: Thin sectional analysis of embeded material, negative staining analysis using a STEM microscope and high resolution metal-shadowing analysis. By all three procedures MAP 2 microtubules have a much rougher surface morphology than tau microtubules, in agreement with the much higher molecular weight of the MAP 2 proteins. Tau microtubules, however, do not show the very smooth surface of microtubules assembled from pure tubulin in the absence of any microtubule associated proteins. In the case of MAP 2 microtubules thin sectional analysis as well as metal shadowing reveals that the globular protrusions seen in negative staining analysis appear as linear side arms which may extend by as much as 30 nm on both sides from the microtubular wall proper, giving rise to an overall structure with a diameter close to 100 nm. The possible implication of such structures for in vivo situations is briefly discussed as is the possibility that the "halo-effect" around microtubules seen in vivo may be due to a structural organization similar to that of MAP 2 tubules in vitro.

Animals↗

Fractionation of brain microtubule-associated proteins. Isolation of two different proteins which stimulate tubulin polymerization in vitro.

Two different tubulin-assembly-promoting proteins were isolated from porcine brain microtubule protein. Following a heat step performed on microtubule protein, the thermal-stable proteins were fractionated by chromatography on phosphocellulose and Sepharose 4B. Two highly purified associated proteins were obtained. One resembles the previously described MAP2 protein (polypeptide molecular weight approximately 300,000), the other a mixture of four or five polypeptides previously described as tau protein (molecular weights between 55,000 and 70,000). Both proteins stimulate the polymerization of pure brain tubulin into microtubules with comparable activity. The resulting microtubules were characterized by electron microscopical analysis. Microtubules polymerized in the presence of MAP2 protein show typical side projections, which are conspicuously absent in microtubules assembled in the presence of tau protein. The latter microtubules show smooth surfaces. Some biochemical similarities and differences between the two different microtubule-associated proteins are discussed.

Animals↗

Changes in intracellular organization of tubulin and actin in N-18 neuroblastoma cells during the process of axon extension induced by serum deprivation.

Specific antibodies against actin and tubulin have been used to follow the distribution and organization of actin and tubulin containing structures in N-18 neuroblastoma cells induced to sprout axons. Immunofluorescence microscopy shows that during the time of axonal sprouting microtubules converge into growing processes forming dense bundles in which individual microtubules cannot be resolved. In the growth cone where individual fluorescent fibers can again be distinguished microtubules seem to be excluded from the very margin. Actin is predominantly located at the cell periphery both in cell bodies and in cell processes. It appears to be present in areas of high surface motility and is especially abundant at the tip of the growth cone.

Actins↗

Actin amino-acid sequences. Comparison of actins from calf thymus, bovine brain, and SV40-transformed mouse 3T3 cells with rabbit skeletal muscle actin.

Actin was purified from calf thymus, bovine brain and SV40-transformed mouse 3T3 cells grown in tissue culture. Isoelectric focusing analysis showed the presence of the two actin polypeptides beta and gamma typical for non-muscle actins in all three actins. Tryptic and thermolytic peptides accounting for the complete amino-acid sequence of the cytoplasmic actins were separated and isolated by preparative fingerprint techniques. All peptides were characterized by amino-acid analysis and compared with the corresponding peptides from rabbit skeletal muscle actin. Peptides which differed in amino-acid composition from the corresponding skeletal muscle actin peptides were subjected to sequence analysis in order to localize the amino-acid replacement. The results obtained show that all three mammalian cytoplasmic actins studied contain the same amino-acid exchanges indicating that mammalian cytoplasmic actins are very similar if not identical in amino-acid sequence. The presence of two different isoelectric species beta and gamma in cytoplasmic actins from higher vertebrates is acccounted for by the isolation of two very similar but not identical amino-terminal peptides in all three actin preparations. The nature of the amino-acid replacements in these two peptides not only accounts for the different isoelectric forms but also shows that beta and gamma cytoplasmic actins are the products of two different structural genes expressed in the same cell. The total number of amino-acid replacements so far detected in the comparison of these cytoplasmic actins and skeletal muscle actin is 25 for the beta chain and 24 for the gamma chain. With the exception of the amino-terminal three or four residues, which are responsible for the isoelectric differences, the replacements do not involve charged amino acids. The exchanges are not randomly distributed. No replacements were detected in regions 18--75 and 299--356 while the regions between residues 2--17 and 259--298 show a high number of replacements. In addition documentation for a few minor revisions of the amino acid sequence of rabbit skeletal muscle actin is provided.

Actins↗