3 resultados para Subtelomeric Deletion
em Universitätsbibliothek Kassel, Universität Kassel, Germany
Resumo:
Ähnlich wie in Säugerzellen ist das neutrale Postlysosom in Dictyostelium discoideum von einem Coat aus filamentösem Actin umgeben. In dieser Arbeit wurde der Frage nach der Funktion dieses Actin-Cytoskeletts am späten Endosom nachgegangen. Hierzu wurde zunächst eine Analyse der Domänen des Vacuolin B durchgeführt, das als bisher spätester bekannter Marker im Endocytoseweg in Dictyostelium discoideum das neutrale, postlysosomale Kompartiment dekoriert. In einer Yeast Two Hybrid-Analyse wurden die Bereiche des Vacuolin B identifiziert, die für eine Selbst-Interaktion des Proteins notwendig und ausreichend sind. Es handelt sich dabei um die coiled-coil-Domäne und einen daran anschließenden, 18 Aminosäuren langen, alpha-helicalen Abschnitt. Diesem helicalen Bereich scheint die Funktion einer modifizierenden, die coiled-coil-Ausbildung vermittelnden oder initiierenden Faltungseinheit zuzukommen. Sie weist jedoch nicht die typischen Merkmale einer trigger-Helix auf. Lokalisationsuntersuchungen mit GFP-Deletionskonstrukten zeigten, dass es einen Zusammenhang zwischen Interaktionsfähigkeit und Bindung des Vacuolin an die Oberfläche später Endosomen gibt: Eine korrekte Lokalisation und Membranassoziation waren nur dann zu beobachten, wenn in der Yeast Two Hybrid-Analyse eine Interaktion nachgewiesen werden konnte. Es wurden die für die Lokalisation und Assoziation mit der vacuolären Membran notwendigen Sequenzbereiche identifiziert; diese waren jedoch nicht hinreichend. Vermutlich sind hierfür auch Sequenzen des N-Terminus notwendig. Die erhobenen Daten legen weiterhin eine Bedeutung der hydrophoben Domäne des Vacuolin B für die korrekte Faltung des Proteins nahe. Im Anschluss an die Domänenanalyse wurde Vacuolin dazu benutzt, durch Herstellung von Hybridproteinen Actin-interagierende Proteine gezielt an das späte Endosom zu transportieren. Es wurde deren Einfluss auf den lokalen Actin Coat und den endocytotischen Transit untersucht. Zwei Actin-bindende Proteine mit depolymerisierender Wirkung konnten im Rahmen dieser Arbeit getestet werden, nämlich Severin und Cofilin. Die Schwächung des lokalen Actin Coats durch das Vorhandensein von Severin an der späten Vacuole war nicht eindeutig festzustellen. Severin am Postlysosom führte nicht zu einer Veränderung der Transitkinetik von Flüssigphasenmarker. Allerdings konnte ein Defekt in der Phagocytose festgestellt werden. Es könnte hierbei ein Zusammenhang zwischen der Mobilisierung von intrazellulärem Calcium während der Partikelaufnahme und der Calcium-abhängigen Regulation der Severin-Aktivität bestehen. Das Hybridprotein aus Vacuolin und Cofilin zeigte neben einer Assoziation mit der vacuolären Membran auch eine Lokalisation im Cytoplasma und Cortex der Zellen. Mit der Lokalisation im Cytoplasma und Cortex korrelierte eine Veränderung der endocytotischen Aktivität. Das Vacuolin-Cofilin-Fusionsprotein am Postlysosom rief einen Verlust des lokalen Actin Coats hervor. Dies führte zu einer traubenförmigen Assoziation der späten Endosomen; exocytotische Parameter blieben jedoch unbeeinflusst. Aufgrund der hier erhobenen Daten kann vermutet werden, dass der Actin Coat am Postlysosom dazu dient, eine Agglutination dieser Endosomen zu inhibieren. Dies könnte ein Schutzmechanismus zum Ausschluss von Docking- und Fusionsereignissen sein.
Resumo:
Heterochromatin Protein 1 (HP1) is an evolutionarily conserved protein required for formation of a higher-order chromatin structures and epigenetic gene silencing. The objective of the present work was to functionally characterise HP1-like proteins in Dictyostelium discoideum, and to investigate their function in heterochromatin formation and transcriptional gene silencing. The Dictyostelium genome encodes three HP1-like proteins (hcpA, hcpB, hcpC), from which only two, hcpA and hcpB, but not hcpC were found to be expressed during vegetative growth and under developmental conditions. Therefore, hcpC, albeit no obvious pseudogene, was excluded from this study. Both HcpA and HcpB show the characteristic conserved domain structure of HP1 proteins, consisting of an N-terminal chromo domain and a C-terminal chromo shadow domain, which are separated by a hinge. Both proteins show all biochemical activities characteristic for HP1 proteins, such as homo- and heterodimerisation in vitro and in vivo, and DNA binding activtity. HcpA furthermore seems to bind to K9-methylated histone H3 in vitro. The proteins thus appear to be structurally and functionally conserved in Dictyostelium. The proteins display largely identical subnuclear distribution in several minor foci and concentration in one major cluster at the nuclear periphery. The localisation of this cluster adjacent to the nucleus-associated centrosome and its mitotic behaviour strongly suggest that it represents centromeric heterochromatin. Furthermore, it is characterised by histone H3 lysine-9 dimethylation (H3K9me2), which is another hallmark of Dictyostelium heterochromatin. Therefore, one important aspect of the work was to characterise the so-far largely unknown structural organisation of centromeric heterochromatin. The Dictyostelium homologue of inner centromere protein INCENP (DdINCENP), co-localized with both HcpA and H3K9me2 during metaphase, providing further evidence that H3K9me2 and HcpA/B localisation represent centromeric heterochromatin. Chromatin immunoprecipitation (ChIP) showed that two types of high-copy number retrotransposons (DIRS-1 and skipper), which form large irregular arrays at the chromosome ends, which are thought to contain the Dictyostelium centromeres, are characterised by H3K9me2. Neither overexpression of full-length HcpA or HcpB, nor deletion of single Hcp isoforms resulted in changes in retrotransposon transcript levels. However, overexpression of a C-terminally truncated HcpA protein, assumed to display a dominant negative effect, lead to an increase in skipper retrotransposon transcript levels. Furthermore, overexpression of this protein lead to severe growth defects in axenic suspension culture and reduced cell viability. In order to elucidate the proteins functions in centromeric heterochromatin formation, gene knock-outs for both hcpA and hcpB were generated. Both genes could be successfully targeted and disrupted by homologous recombination. Surprisingly, the degree of functional redundancy of the two isoforms was, although not unexpected, very high. Both single knock-out mutants did not show any obvious phenotypes under standard laboratory conditions and only deletion of hcpA resulted in subtle growth phenotypes when grown at low temperature. All attempts to generate a double null mutant failed. However, both endogenous genes could be disrupted in cells in which a rescue construct that ectopically expressed one of the isoforms either with N-terminal 6xHis- or GFP-tag had been introduced. The data imply that the presence of at least one Hcp isoform is essential in Dictyostelium. The lethality of the hcpA/hcpB double mutant thus greatly hampered functional analysis of the two genes. However, the experiment provided genetic evidence that the GFP-HcpA fusion protein, because of its ability to compensate the loss of the endogenous HcpA protein, was a functional protein. The proteins displayed quantitative differences in dimerisation behaviour, which are conferred by the slightly different hinge and chromo shadow domains at the C-termini. Dimerisation preferences in increasing order were HcpA-HcpA << HcpA-HcpB << HcpB-HcpB. Overexpression of GFP-HcpA or a chimeric protein containing the HcpA C-terminus (GFP-HcpBNAC), but not overexpression of GFP-HcpB or GFP-HcpANBC, lead to increased frequencies of anaphase bridges in late mitotic cells, which are thought to be caused by telomere-telomere fusions. Chromatin targeting of the two proteins is achieved by at least two distinct mechanisms. The N-terminal chromo domain and hinge of the proteins are required for targeting to centromeric heterochromatin, while the C-terminal portion encoding the CSD is required for targeting to several other chromatin regions at the nuclear periphery that are characterised by H3K9me2. Targeting to centromeric heterochromatin likely involves direct binding to DNA. The Dictyostelium genome encodes for all subunits of the origin recognition complex (ORC), which is a possible upstream component of HP1 targeting to chromatin. Overexpression of GFP-tagged OrcB, the Dictyostelium Orc2 homologue, showed a distinct nuclear localisation that partially overlapped with the HcpA distribution. Furthermore, GFP-OrcB localized to the centrosome during the entire cell cycle, indicating an involvement in centrosome function. DnmA is the sole DNA methyltransferase in Dictyostelium required for all DNA(cytosine-)methylation. To test for its in vivo activity, two different cell lines were established that ectopically expressed DnmA-myc or DnmA-GFP. It was assumed that overexpression of these proteins might cause an increase in the 5-methyl-cytosine(5-mC)-levels in the genomic DNA due to genomic hypermethylation. Although DnmA-GFP showed preferential localisation in the nucleus, no changes in the 5-mC-levels in the genomic DNA could be detected by capillary electrophoresis.
Resumo:
Previous work in yeast has suggested that modification of tRNAs, in particular uridine bases in the anticodon wobble position (U34), is linked to TOR (target of rapamycin) signaling. Hence, U34 modification mutants were found to be hypersensitive to TOR inhibition by rapamycin. To study whether this involves inappropriate TOR signaling, we examined interaction between mutations in TOR pathway genes (tip41Δ, sap190Δ, ppm1Δ, rrd1Δ) and U34 modification defects (elp3Δ, kti12Δ, urm1Δ, ncs2Δ) and found the rapamycin hypersensitivity in the latter is epistatic to drug resistance of the former. Epistasis, however, is abolished in tandem with a gln3Δ deletion, which inactivates transcription factor Gln3 required for TOR-sensitive activation of NCR (nitrogen catabolite repression) genes. In line with nuclear import of Gln3 being under control of TOR and dephosphorylation by the Sit4 phosphatase, we identify novel TOR-sensitive sit4 mutations that confer rapamycin resistance and importantly, mislocalise Gln3 when TOR is inhibited. This is similar to gln3Δ cells, which abolish the rapamycin hypersensitivity of U34 modification mutants, and suggests TOR deregulation due to tRNA undermodification operates through Gln3. In line with this, loss of U34 modifications (elp3Δ, urm1Δ) enhances nuclear import of and NCR gene activation (MEP2, GAP1) by Gln3 when TOR activity is low. Strikingly, this stimulatory effect onto Gln3 is suppressed by overexpression of tRNAs that usually carry the U34 modifications. Collectively, our data suggest that proper TOR signaling requires intact tRNA modifications and that loss of U34 modifications impinges on the TORsensitive NCR branch via Gln3 misregulation.