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K Gull

Publications and source records attributed to K Gull.

At least 127 records · Page 7Linked to original sources

Purification and characterisation of tubulin from the parasitic nematode, Ascaridia galli.

We have developed a method for the purification of tubulin from a parasitic nematode using DEAE-Sephadex column chromatography and temperature-dependent assembly. The resulting microtubules were morphologically similar to those obtained from mammalian brain. The nematode tubulin showed similar properties to mammalian tubulin on one and two dimensional polyacrylamide gels, although certain electrophoretic conditions revealed a slight difference in the alpha-tubulins from mammals and nematodes. This was confirmed by limited proteolytic peptide mapping. The beta subunit of nematode tubulin appeared almost identical to that of mammals. Peptide maps of these tubulins were also compared with those of eukaryotic micro-organisms and these results interpreted in terms of the evolution of the tubulin polypeptides and the sensitivity of helminths to antimicrotubular agents.

Animals↗

Cell type-dependent expression of tubulins in Physarum.

Three alpha-tubulins and two beta-tubulins have been resolved by two-dimensional gel electrophoresis of whole cell lysates of Physarum myxamoebae or plasmodia. Criteria used to identify the tubulins included migration on two-dimensional gels with myxamoebal tubulins purified by self-assembly into microtubules in vitro, peptide mapping with Staphylococcus V8 protease and with chymotrypsin, immunoprecipitation with a monoclonal antibody specific for beta-tubulin, and, finally, hybrid selection of specific mRNA by cloned tubulin DNA sequences, followed by translation in vitro. Differential expression of the Physarum tubulins was observed. The alpha 1- and beta 1-tubulins were detected in both myxamoebae and plasmodia; alpha 2 and beta 2 were detected only in plasmodia, alpha 3 was detected only in the myxamoebal phase, and may be specific to the flagellate. Observation of more tubulin species in plasmodia than in myxamoebae was remarkable; the only microtubules detected in plasmodia are those of the mitotoic spindle, whereas myxamoebae display cytoplasmic, centriolar, flagellar, and mitotic-spindle microtubules. In vitro translation of myxamoebal and plasmodial RNAs indicated that there are distinct mRNAs, and therefore probably separate genes, for the alpha 1-, alpha 2-, beta 1-, and beta 2-tubulins. Thus, the different patterns of tubulin expression in myxamoebae and plasmodia reflect differential expression of tubulin genes.

Electrophoresis, Polyacrylamide Gel↗

Demonstration of different patterns of microtubule organization in Physarum polycephalum myxamoebae and plasmodia using immunofluorescence microscopy.

We have used anti-tubulin antibodies and immunofluorescence microscopy to determine the overall distribution of microtubules during interphase and mitosis in both the myxamoebae and plasmodia of the slime mold Physarum polycephalum. We have paralleled these observations with electron microscopy of the same stages. The myxamoebae possess a network of cytoplasmic microtubules whilst the coenocytic plasmodium does not possess any cytoplasmic microtubules--at either interphase or mitosis. In plasmodia microtubules are, however, elaborated by an intranuclear microtubule organizing centre (MTOC) during prophase of mitosis and these microtubules proceed to form part of the mitotic spindle. There is little difference in the overall distribution and arrangement of microtubules during division of either the myxamoebal or plasmodial nuclei. These findings are discussed in relation to the synthesis of tubulin during the plasmodial cell cycle and the rearrangements of the nuclear envelope during mitosis.

Fluorescent Antibody Technique↗

Protofilament number in microtubules in cells of two parasitic nematodes.

The parasitic nematodes, Ascaridia galli and Trichostrongylus colubriformis, were prepared for electron microscopy with fixatives containing tannic acid, which allowed their microtubule protofilament number to be examined. In contrast to many mammalian tissues, the nematodes did not contain microtubules with 13 protofilaments. Ascaridia galli contained microtubules with 11 protofilaments in all tissues examined, including nerve, intestinal, pharyngeal, and hypodermal cells. Trichostrongylus colubriformis contained nerve cells, known as microtubule cells, with bundles of larger microtubules (approximately 30 nm in diameter) with 14 protofilaments. The microtubules in these cells did not appear to be continuous for the entire length of the axon. Other cells examined in T. colubriformis, including nerve, intestinal and pharyngeal cells, contained two distinct types of microtubules, one with 11 protofilaments and an approximate diameter of 25 nm, and one with 12 protofilaments and an approximate diameter of 27 nm. All cell types examined contained both types of microtubules.

Animals↗

Structural and biochemical characterisation of the paraflagellar rod of Crithidia fasciculata.

The trypanosomatid Crithidia fasciculata possesses an intraflagellar structure known as the paraflagellar or paraxial rod which runs from a point 1 to 2 micrometer distal to the basal body to the flagellar tip. In longitudinal section the paraflagellar rod was composed of three "sets" of parallel filaments arranged in a lattice. In cross section it consisted of two electron dense "plaques", one near the flagellar membrane, the other near the axoneme, separated by 6 to 7 fibrous elements. The position of the paraflagellar rod in relation to the axonemal central pair remained static along the length of the flagellum and was the same in all flagella examined. The paraflagellar rod was anchored to the axoneme by a regular array of 5 to 7 nm diameter links. These rod/axoneme links were sensitive to trypsin digestion enabling the rod to be separated from the axoneme. SDS-polyacrylamide gel electrophoresis (SDS-PAGE) demonstrated that the paraflagellar rod consisted mainly of two proteins, PFR1 (76 000 Daltons) and PFR2 (68 000 Daltons). The isoelectric points of these two proteins were remarkably similar. A PFR-enriched fraction was obtained by prolonged dialysis of demembranated flagella against a low concentration buffer. The paraflagellar rod and the central pair of singlet microtubules went into solution, leaving only the outer doublets intact. The relevance of these results to the study of the role of the paraflagellar rod in flagellar motility were discussed.

Animals↗

Identification and drug binding capabilities of tubulin in the nematode Ascaridia galli.

Cell extracts of Ascaridia galli bind colchicine in a manner suggesting the presence of a tubulin-like protein. Column chromatography of these extracts on DEAE-Sephadex yielded only one peak with colchicine-binding activity. Single peaks of radioactivity in this same position were obtained on chromatography of extracts prelabelled with either [3H]colchicine or [3H]parbendazole. Sodium dodecyl sulphate polyacrylamide gel electrophoresis and two dimensional gel electrophoresis of the fractions making up the peaks indicated the presence of two proteins which co-migrate with mammalian brain alpha- and beta-tubulin markers. More detailed investigation showed that the A. galli tubulin has a slightly different alpha-subunit when compared with mammalian tubulin.

Animals↗

Microtubule nucleation by the isolated microtubule-organizing centre of Physarum polycephalum myxamoebae.

The nucleus--centrosome complex from Physarum polycephalum myxamoebae has been purified. The complex contained the centriole pair and pericentriolar material in association with the nucleus. Apart from some unusually stable microtubules, which appeared to be involved in maintaining the nucleus-centrosome association, endogenous microtubule arrays had been stripped from the complex during isolation. When the nucleus--centrosome complex was incubated with purified brain or myxamoebal tubulins the growth of 45-70 microtubules was initiated onto the pericentriolar material. The number and length of the nucleated microtubules was proportional to the tubulin concentration. Pretreatment of the nucleus--centrosome complex with DNase 1, RNase A, antitubulin antibody and anticentriolar antibody did not affect pericentriolar nucleation capacity, although pretreatment with DNase 1 did expose perinuclear nucleation sites that had a much lower minimal tubulin concentration for assembly than the pericentriolar site. After pretreatment with trypsin pericentriolar material and nucleation were destroyed, and microtubule elongation occurred directly onto the centriole microtubules.

Cell Nucleus↗

A correlation between in vivo and in vitro effects of the microtubule inhibitors colchicine, parbendazole and nocodazole on myxamoebae of Physarum polycephalum.

The effects of the microtubule inhibitors colchicine, parbendazole and nocodazole on the growth of myxamoebae of Physarum polycephalum were closely paralleled by the effects of these drugs on the assembly in vitro of purified amoebal microtubule protein. Colchicine at 100 microM did not inhibit amoebal growth and did not inhibit formation, or depolymerization, of amoebal microtubules. The benzimidazole carbamate derivatives nocodazole and parbendazole were very effective in both inhibiting growth and inhibiting the assembly in vitro of amoebal microtubule protein. Parbendazole was the most effective.

Benzimidazoles↗

Binding of parbendazole to tubulin and its influence on microtubules in tissue-culture cells as revealed by immunofluorescence microscopy.

We have shown that the benzimidazole carbamate, parbendazole, is a potent inhibitor of microtubule assembly in vitro and in vivo. Radiolabelled parbendazole was shown to bind to purified tubulin. Immunofluorescence studies using antitubulin antibody showed that parbendazole effectively depolymerizes cytoplasmic microtubules in animal cells leaving only one or two microtubules associated with one centriole. The usefulness of parbendazole and other benzimidazole carbamates as inhibitors of microtubule functions is discussed.

Animals↗

Identification and characterization of microtubule proteins from myxamoebae of Physarum polycephalum.

Cell extracts of myxamoebae of Physarum polycephalum have been prepared in such a way that they do not inhibit assembly of brain microtubule protein in vitro even at high extract-protein concentration. Co-polymers of these extracts and brain tubulin have been purified to constant stoichiometry and amoebal components identified by radiolabelling. Amoebal tubulin has been identified as having an alpha-subunit, mol.wt. 54 000, which co-migrates with brain alpha-tubulin and a beta-subunit, mol.wt. 50 000, which co-migrates with Tetrahymena ciliary beta-tubulin. Non-tubulin amoebal proteins that co-purify with tubulin during co-polymer formation have been shown to be essential for microtubule formation in the absence of glycerol and appear to be rather more effective than brain microtubule-associated proteins in stimulating assembly. The mitotic inhibitor griseofulvin (7-chloro-2',4,6-trimethoxy-6'-methylspiro[benzofuran-2(3H),1'-cyclohex-2'-ene] -3,4'-dione), which binds to brain microtubule-associated proteins and inhibits brain microtubule assembly in vitro, affected co-polymer microtubule protein in a similar way, but to a slightly greater extent.

Animals↗

The identification of a self-inhibitor from Syncephalastrum racemosum and its effect upon sporangiospore germination.

High concentrations of Syncephalastrum racemosum spores germinated less readily than low concentrations. Extensive washing of spores alleviated this inhibition of germination. Analysis of the spore washings revealed the main constituent to be nonanoic acid. Exogenously added nonanoic acid was found to mimic the self-inhibition, in that it delayed the time of germ tube emergence and increased the lag before spore swelling commenced.

Fatty Acids↗

The influence of the microtubule inhibitor, methyl benzimidazol-2-yl-carbamate (MBC) on nuclear division and the cell cycle in Saccharomyces cerevisiae.

Methyl benzimidazol-2-yl-carbamate (MBC), at a concentration of 100 microM, has a pronounced effect on the growth of Saccharomyces cerevisiae, resulting in the accumulation of cells as large doublets. We have determined a specific execution point for the effect of MBC on the yeast cell cycle, and have shown that this execution point is between the cycle events of spindle pole body duplication and spindle pole body separation. An ultrastructural examination of the MBC-treated cells revealed the absence of cytoplasmic and spindle microtubules. MBC treatment also produced an altered spindle pole body morphology, causing the disappearance of the outer component. Nuclear size was also markedly increased in the MBC-induced doublet cells, although the septa were completely absent from these doublet cells. It is proposed that MBC inhibits microtubule polymerization, rather than causing the depolymerization of stable microtubules.

Benzimidazoles↗