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Biomedical subjects

G Wiche

Publications and source records attributed to G Wiche.

At least 91 records · Page 5Linked to original sources

Specific in situ phosphorylation of plectin in detergent-resistant cytoskeletons from cultured Chinese hamster ovary cells.

Plectin (Mr = 300,000) was found to be an abundant polypeptide component of Chinese hamster ovary cells accounting for up to 1% of cellular protein. Seventy-five per cent of the plectin were present in cytoskeletons prepared by extraction of attached cells with 0.15% Triton X-100. As shown by immunofluorescence microscopy, plectin's spatial arrangement within these cytoskeletal preparations appeared well preserved, though slightly more filamentous compared to nonextracted cells. Upon in situ incubation of cytoskeletons with [gamma-32P] ATP followed by solubilization and immunoprecipitation, plectin was identified as one of the major phosphoacceptors. A basic phosphorylation of the protein was accomplished by a type I cAMP-independent protein kinase, while a cAMP-dependent protein kinase enhanced its phosphorylation up to 2-fold. Peptide mapping revealed that the two kinases phosphorylated different molecular sites. Peptide maps generated from cytoskeletal plectin phosphorylated in vitro using [gamma-32P]ATP and plectin phosphorylated in vivo using 32Pi were virtually identical demonstrating that the in situ phosphorylation of plectin in preparations of cytoskeletons was specific. Moreover, the specific radioactivity of cytoskeletal plectin was three times higher than that of detergent-extracted plectin, suggesting that phosphorylation is important for the protein's association with the cytoskeleton.

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Differential distribution of microtubule-associated proteins MAP-1 and MAP-2 in neurons of rat brain and association of MAP-1 with microtubules of neuroblastoma cells (clone N2A).

To study the individual location of the microtubule proteins MAP-1 and MAP-2 in neuronal tissues and cells, antisera to electrophoretically purified MAP-1 and MAP-2 components were raised in rabbits. When frozen sections through rat brain were examined by immunofluorescence microscopy the antibodies to MAP-1 strongly stained a variety of nerve cells including dendrites and myelinated axons in the cerebrum and cerebellum. Antibodies to MAP-2 showed similar staining patterns, except that myelinated axons were unstained. These results were confirmed by immunoelectron microscopy of frozen sections through cerebellum using the peroxidase technique. Thereby, the association of MAP-1 with microtubules was also clearly demonstrated. When cultured mouse neuroblastoma N2A cells were examined by immunofluorescence microscopy the antiserum to MAP-1 brightly stained filamentous structures resembling microtubules, whereas relatively weak and diffuse staining of the cytoplasm was observed with the antiserum to MAP-2. In agreement with the immunolocalization, MAP-1, but not MAP-2, was found as a prominent component of microtubules proteins polymerized in vitro by taxol from soluble N2A cell extracts. Together these results indicate that neuronal microtubules are preferentially associated with distinct high mol. wt. polypeptides. Therefore, they support the concept that different complements of associated proteins determine distinct functions of microtubules.

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Occurrence and immunolocalization of plectin in tissues.

Various tissues from rat were examined for the occurrence and cellular localization of plectin, a 300,000-dalton polypeptide component present in intermediate filament-enriched cytoskeletons prepared from cultured cells by treatment with nonionic detergent and high salt solution. The extraction of liver, heart, skeletal muscle, tongue, and urinary bladder with 1% Triton/0.6 M KCl yielded insoluble cell residues that contained polypeptides of Mr 300,000 in variable amounts. These high Mr polypeptide species and a few bands of slightly lower Mr (most likely proteolytic breakdown products) were shown to react with antibodies to rat glioma C6 cell plectin using immunoautoradiography and/or immunoprecipitation. By indirect immunofluorescence microscopy using frozen sections (4 micron) of stomach, kidney, small intestine, liver, uterus, urinary bladder, and heart, antigens reacting with antibodies to plectin were found in fibroblast, endothelial, smooth, skeletal, and cardiac muscle, nerve, and epithelial cells of various types. Depending on the cell type, staining was observed either throughout the cytoplasm, or primarily at the periphery of cells, or in both locations. In hepatocytes, besides granular staining at the cell periphery, conspicuous staining of junctions sealing bile canaliculi was seen. In cardiac muscle strong staining was seen at intercalated disks and, as in skeletal muscle, at Z-lines. In cross sections through smooth muscle, most strikingly of urinary bladder, antibodies to plectin specifically decorated regularly spaced, spot-like structures at the cell periphery. By immunoelectron microscopy using the peroxidase technique, antiplectin-reactive material was found along cell junctions of hepatocytes and was particularly enriched at desmosomal plaques and structures associated with their cytoplasmic surfaces. A specific immunoreaction with desmosomes was also evident in sections through tongue. In cardiac muscle, besides Z-lines, intercalated disks were reactive along almost their entire surface, suggesting that plectin was associated with the fascia adherens, desmosomes, and probably gap junctions. In smooth muscle cells, regularly spaced lateral densities probably representing myofilament attachment sites were immunoreactive with plectin antibodies. The results show that plectin is of widespread occurrence with regard to tissues and cell types. Furthermore, immunolocalization by light and electron microscopy at junctional sites of various cell types and at attachment sites of cytoplasmic filaments in epithelial and muscle cells suggests that plectin possibly plays a universal role in the formation of cell junctions and the anchorage of cytoplasmic filaments.

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Potent microtubule inhibitor protein from Dictyostelium discoideum.

A novel potent protein factor capable of inhibiting the in vitro polymerization of mammalian brain microtubule protein and of breaking down preformed microtubules has been partially purified from cell extracts of Dictyostelium discoideum. The factor has an apparent Mr of around 13000 and is trypsin resistant but heat and pepsin sensitive. When soluble microtubule protein was fractionated into tubulin and microtubule-associated proteins and each fraction was assayed independently for its susceptibility toward inhibition, it was clearly demonstrated that the tubulin but not the associated protein fraction was rendered nonpolymerizable. Soluble tubulin was inactivated at ratios of 1 mol of inhibitor to 100 mol of tubulin, estimated conservatively. Quantitative separation of tubulin and inhibitor after inactivation did not result in reactivation of tubulin's polymerizing capacity, suggesting a catalytic modification. The biochemical properties tested of the inactive tubulin argue against a mechanism involving simple proteolysis, N-site GTP hydrolysis or release, or general denaturation.

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High molecular weight polypeptides (270,000-340,000) from cultured cells are related to hog brain microtubule-associated proteins but copurify with intermediate filaments.

High molecular weight polypeptides (HMWPs) of 270,000 to 340,000 were found to be major components of intermediate filaments prepared by Triton X-100 extraction after spreading of rat glioma C6, HeLa, Chinese hamster ovary, and simian virus 40-transformed Chinese hamster lung cells. C6 HMWPs were shown to resemble high molecular weight microtubule-associated proteins from hog brain by four criteria: (i) comigration in electrophoresis on high-resolution sodium dodecyl sulfate/polyacrylamide gels, (ii) one-dimensional peptide mapping, (iii) phosphorylation in vitro with [gamma-32P]ATP, and (iv) ability to promote microtubule assembly in vitro. HMWPs were also found to be major components of one-time polymerized C6 microtubule preparations, which contained a sizable amount of intermediate filaments. The predominant part of HMWPs present in these microtubule preparations was found not to copurify with microtubules in cycles of temperature-dependent assembly/disassembly but to remain with the cold-insoluble intermediate filaments. These results provide an explanation for the low yields that have hampered attempts to purify microtubule-associated porteins, in particular HMWPs, from cultured cells in the past. Moreover, they suggest that HMWPs might have a dual role in the cell, serving not only as regulators of microtubule assembly but also as linker components between microtubules and intermediate filaments.

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Microtubule protein preparations from C6 glial cells and their spontaneous polymer formation.

C6 cell tubulin is indistinguishable from hog brain tubulin with respect to its molecular weight, amino acid composition, and colchicine-binding activity. Moreover, microtubule assembly systems from both sources form the same structures: rings, ribbons, tubules, and drug-induced polymers. There is, nevertheless, a difference between the cultured cell and brain systems which lies in the nature of their microtubule-associated accessory proteins. C6 microtubule preparations exhibit few rings at 0 degrees C, have low polymerization yield, and have a low content of accessory proteins. The addition of brain accessory proteins enhances the numbers of rings, and the yield of microtubules, to levels comparable with those of brain preparations. The polymerizing ability of C6 microtubule protein decays much faster than that of brain, but it can be restored by the addition of brain accessory protein. The results suggest that C6 accessory proteins are more labile than their brain counterparts.

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Expression of simian virus 40 gene A affects tubulin stability.

The stability of tubulins present in crude extracts of untransformed BALB/c-3T3 mouse fibroblasts, Chinese hamster lung cells, and various of their simian virus 40 transformants was assessed by measurement of their individual colchicine-binding decay rates. In all cases studied the decays followed the kinetics of first-order reactions, and rates were reduced at low temperatures and by vinblastine sulfate. Under all assay conditions, including different temperatures and protein concentrations, tubulins of normal cells decayed considerably faster than those of simian virus 40-transformed cells. Experiments performed with a number of Chinese hamster lung cell clones transformed with temperature-sensitive simian virus 40 gene A mutants showed a clear correlation between increased tubulin stability and the expression of gene A function. These results suggest that it is T-antigen, the viral gene A product, that affects tubulin.

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Competence of soluble cell extracts as microtubule assembly systems. Comparison of simian virus 40 transformed and nontransformed mouse 3T3 fibroblasts.

Soluble cell extracts from simian virus 40 transformed mouse 3T3 fibroblast cells (SV101) and nontransformed mouse BALB/c-3T3 cells were compared as microtubule assembly systems. Extracts from the transformant were found to be at least as competent for microtubule assembly under standard conditions as those from normal cells. This observation proves that the defects in cytoplasmic microtubule skeletons reported in the literature for various transformed cell lines are not due to the loss of integrity of the tubulin molecule itself, but rather to transformation-dependent changes in the regulatory mechanisms controlling in vivo microtubule assembly.

Cell Line↗

Reversible in vitro polymerization of tubulin from a cultured cell line (rat glial cell clone C6).

Tubulin from cultures of the rat glial cell clone C6 could be polymerized in vitro into intact microtubules. The polymerization was reversible and spontaneous, i.e., no addition of heterologous nucleation centers was necessary. Two cycles of polymerization/depolymerization yielded tubulin preparations of 95% purity as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Electron microscopy was used to show that the microtubules assembled in vitro by two cycles of polymerization/depolymerization were morphologically intact and temperature sensitive. In contrast, tubulin from neuroblastoma cells, clone Neuro-2A, could not be polymerized in a reversible fashion. The discovery of a cell line from which tubulin can be reversibly polymerized in vitro establishes a model system for studies of cell-cycle- and cell-type-dependent regulatory mechanisms controlling the assembly of microtubules.

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In vitro synthesis of mouse neuroblastoma tubulin.

Polyribosomes were isolated from a clonal line of mouse neuroblastoma grown in culture. In a heterologous in vitro system containing rat brain components, these polyribosomes were shown to direct the synthesis of neuroblastoma tubulin. Identification of the tubulin synthesized in vitro was achieved by coelectrophoresis with native neuroblastoma tubulin on sodium dodecyl sulfate polyacrylamide gels, immunoprecipitation, and demonstration of specific aggregation. Tubulin accounted for 2% of the total proteins synthesized. This in vitro protein synthesizing system offers a model for studying possible translational control mechanisms regulating the synthesis of proteins involved in nerve cell function.

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