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A non-radioactive in situ hybridization method is described for the localization of transcription units of defined genes to lateral loops of Xenopus laevis lampbrush chromosomes. Two Xenopus cONA probes were used encoding the nucleolar protein N038/ B23 and cytokeratin 1(8). Both proteins are known to be synthesized in Xenopus oocytes, and Northern blot analysis revealed the presence of the corresponding mRNAs in different oogenic stages. The probes were enzymatically labeled with biotin-dCTP and hybridized to lampbrush chromosomes. The sites of hybridization were detected either by indirect immunofluorescence microscopy using rabbit antibodies against biotin and fluorescein-conjugated antirabbit IgG or enzymatically using peroxidase-conjugated streptavi din. The probe encoding the nucleolar protein hybridized to two sets of lateral loops on different bivalents, the cytokeratin probe to at least four. Our finding that each probe hybridized to more than one chromosomal locus may reflect the tetraploid nature of the Xenopus laevis genome or results from cross-hybridization to other transcriptionally active members of the N038/ B23-nucleoplasmin or the cytokeratin-Iamin gene families. The method described should facilitate further in situ hybridization studies with appropriate genomic clones in order to map specific DNA sequences to defined loop regions and to come to a better understanding of the relationship between loop organization and gene transcription unit.
Antibody against tubulin from porcine brain was used to evaluate the immunological cross reactivity of tubulin from a variety of animal and plant cells. Indirect immunofluorescence microscopy revealed microtubule-containing structures including cytoplasmic microtubules, spindle microtubules, cilia and fIagella. Thus tubulin from diverse species of both mammals and plants show immunological cross-reactivity with tubulin from porcine brain. Results obtained by immunofluorescence microscopy are whenever possible compared with previously known ultrastructural results obtained by electron microscopy.
In order to investigate the DNA localization within Ehrlich tumor cell nucleoli during mitosis, two recent immunocytochemical methods using either an anti-DNA or an anti-bromodeoxyuridine (BrdU) monoclonal antibody have been applied. In both cases, the immunogold labeling has been performed on ultrathin sections of cells embedded either in Lowicryl K4M or in Epon, respectively. Identical results are observed with both immunocytochemical approaches. In the interphase nucleolus, besides the labeling of the perinucleolar chromatin shell and of its intranucleolar invaginations which penetrate into the nucleolar body and often terminate at the fibrillar centers, a few gold particles are also preferentially found towards the peripheral region of the fibrillar centers. In contrast, the dense fibrillar component and the granular component are never labeled. During mitosis, the fibrillar centers persist at the chromosomal nucleolus organizing regions (NOR's) and can be selectively stained by the silver method. However, these metaphase fibrillar centers are no longer decorated by the DNA- or BrdU antibodies. These results indicate that until the end of prophase, rRNA genes are present inside the fibrillar center material, disappear during metaphase and reappear in reconstituting nucleoli during telophase. Thus, fibrillar centers appear to represent structures sui generis, which are populated by rRNA genes only when the nucleolus is functionally active. In segregated nucleoli after actinomycin D treatment, the DNA labeling is exclusively restricted to the perinucleolar chromatin blocks. These findings also suggest that the DNA content of the fibrillar center material varies according to the rRNA transcription level of the cells. The results are discussed in the light of the present knowledge of the functional organization of the nucleolus.
Primary (giant) nuclei of the green algae Acetabularia mediterranea and A. major were studied by light and electron microscopy using in situ fixed material as well as manually isolated nuclear components. In addition, cytochemical reactions of nuclear structures and biochemical determinations of nuclear and cytoplasmic RNA and of genome DNA content were performed. The data obtained and the structures observed are interpreted as demonstralions of transcriptional activities of different gene classes. The most prominent class is the nucleolar cistrons of precursors of ribosomal RNA which occur highly repeated in clusters in the form of regularly alternating intercepts on deoxyribonucleoprotein axes of transcribed rDNA, the fibril-covered matrix units, and the fibril-free "spacer" segments. A description and a classification of the various structural complexes which seem to represent transcriptional activities is given. Quantitative evaluations of these arrangements are presented. The morphology and the dimensions of such structures are compared with the RNA molecular weight determinations and with the corresponding data reported from various animal cell systems. It is suggested that the formation of the giant nucleus is correlated with, and probably due to, an enormous amplification of transcriptionally active rDNA and packing of the extrachromosomal copies into the large nucleolar aggregate bodies.
The synaptonemal complex (SC) is a proteinaceous, meiosis-specific structure that is highly conserved in evolution. During meiosis, the SC mediates synapsis of homologous chromosomes. It is essential for proper recombination and segregation of homologous chromosomes, and therefore for genome haploidization. Mutations in human SC genes can cause infertility. In order to gain a better understanding of the process of SC assembly in a model system that would be relevant for humans, we are investigating meiosis in mice. Here, we report on a newly identified component of the murine SC, which we named SYCE3. SYCE3 is strongly conserved among mammals and localizes to the central element (CE) of the SC. By generating a Syce3 knockout mouse, we found that SYCE3 is required for fertility in both sexes. Loss of SYCE3 blocks synapsis initiation and results in meiotic arrest. In the absence of SYCE3, initiation of meiotic recombination appears to be normal, but its progression is severely impaired resulting in complete absence of MLH1 foci, which are presumed markers of crossovers in wild-type meiocytes. In the process of SC assembly, SYCE3 is required downstream of transverse filament protein SYCP1, but upstream of the other previously described CE–specific proteins. We conclude that SYCE3 enables chromosome loading of the other CE–specific proteins, which in turn would promote synapsis between homologous chromosomes.
High sensitivity immunolocalization of double and single-stranded DNA by a monoclonal antibody
(1987)
A monoclonal antibody (AK 30-10) is described which specifically reacts with DNA both in double and single-stranded forms but not with other molecules and structures, including deoxyribonucleotides and RNAs. When used in immunocytochemical experiments on tissue sections and permeabilized cultured cells, this antibody detects DNA-containing structures, even when the DNA is present in very small amounts. Examples of high resolution detection include the DNA present in amplified extrachromosomal nucleoli, chromomeres of lampbrush chromosomes, mitochondria, chloroplasts and mycoplasmal particles. In immunoelectron microscopy using the immunogold technique, the DNA was localized in distinct substructures such as the "fibrillar centers" of nucleoli and certain stromal centers in chloroplasts. The antibody also reacts with DNA of chromatin of living cells, as shown by microinjection into cultured mitotic cells and into nuclei of amphibian oocytes. The potential value and the limitations of immunocytochemical DNA detection are discussed.
Ultrastructural localization of DNA in two Cryptomonas species by use of a monoclonal DNA-antibody
(1986)
Immunogold cytochemistry - DNA localization - Cryptomonas nucleomorph The distribution and subcellular localization of DNA in the unicellular alga Cryptomonas has been investigated electron-microscopically by indirect immunocytochemistry, using a monoclonal DNA antibody and a gold-Iabeled secondary antibody. This technique proved to be very sensitive and entirely specific. DNA could be demonstrated in four different compartments (nucleus, nucleomorph, plastid, and mitochondrion). Within the plastid, DNA is concentrated in stroma regions that are localized preferentially around the center of the organelle. The mitochondrion contains several isolated DNA-containing regions (nucleoids). Within the nucleus, most of the DNA is localized in the 'condensed' chromatin. DNA was also detectable in small areas of the nucleolus, whereas the interchromatin space of the nucleus appeared almost devoid of DNA. Within the nucleomorph, DNA is distributed inhomogeneously in the matrix. DNA could furthermore be detected in restricted areas of the 'fibrillogranular body' of the nucleomorph, resembling the situation encountered in the nucleol us. The presence of DNA and its characteristic distribution in the nucleomorph provide additional, strong evidence in favour of the interpretation of that organelle as the residual nucleus of a eukaryotic endosymbiont in Cryptomonas.
Transcribed nucleolar chomatin, including the spacer regions interspersed between the rRNA genes, is different from the bulk of nontranscribed chromatin in that the DNA of these regions appears to be in an extended (B) conformation when examined by electron microscopy. The possibility that this may reflect artificial unfolding of nucleosomes during incubation in very low salt buffers as routinely used in such spread preparations has been examined by studying the influence of various ion concentrations on nucleolar chromatin structure. Amplified nucleolar chromatin of amphibian oocytes (Xenopus laevis, Pleurodeles waltlii, Triturus cristatus) was spread in various concentrations of NaCl (range 0 to 20 mM). Below 1 mM salt spacer chromatin frequently revealed a variable number of irregularly shaped beads, whereas above this concentration the chromatin axis appeared uniformly smooth. At all salt concentrations studied, however, the length distribution of spacer and gene regions was identical. Preparations fixed with glutaraldehyde instead of formaldehyde, or unftxed preparations, were indistinguishable in this respect. The observations indicate that (i) rDNA spacer regions are not compacted into nucleosomal particles and into supranucleosomal structures when visualized at chromatin stabilizing salt concentrations (e.g., 20 mM NaCl), and (ii) spacer DNA is covered by a uniform layer of proteins of unknown nature which, at very low salt concentrations (below 1 mM NaCl), can artificially give rise to the appearance of small granular particles of approximately nucleosome-like sizes. These particles, however, are different from nucleosomes in that they do not foreshorten the associated spacer DNA. The data support the concept of an altered nucleohistone conformation not only in transcribed chromatin but also in the vicinity of transcriptional events.
In rho0-Zellen, die über keine mitochondriale DNA (mtDNA) mehr verfügen, entstehen während der Kultivierung Megamitochondrien durch endogene Milchsäure-Azidifizierung des Kulturmediums. Diese Riesenorganellen bilden sich dabei durch mitochondriale Fusionsereignisse und/oder eine Hemmung der Fission. In Zellen mit mitochondrialem Genom ist es ebenso möglich Megamitochondrien durch artifizielles Ansäuern des Kulturmediums zu induzieren. Diese Erkenntnisse wurden im Rahmen dieser Arbeit als Werkzeug verwendet, um Einblicke in mitochondriale Fusions- und Fissionsereignisse zu erlangen. Zunächst wurde die Fusion mitochondrialer Matrixkompartimente mithilfe der photoaktivierbaren Variante des grünen fluoreszierenden Proteins (PA-GFP) untersucht. Hiermit konnte gezeigt werden, dass das Vermischen der Matrixkompartimente nach der Fusion ein sehr schneller Prozess ist. Die Analyse der Bildung und Rückbildung der Megamitochondrien erfolgte sowohl konfokal- als auch elektronenmikroskopisch, wobei sich zeigte, dass die Matrix der Riesenorganellen kaum mehr Cristae beinhaltet. Die Rückbildung der Megamitochondrien zum normalen Netzwerk ist ein sehr schneller Prozess, bei dem schon nach 15 min keine vergrößerten Organellen mehr sichtbar sind. Dies indiziert, dass der Rückbildungsprozess wahrscheinlich durch Veränderungen von verfügbaren Proteinen durchgeführt wird, ohne die Induzierung von Proteinneusynthese. Untersuchungen auf ultrastruktureller Ebene zeigten, dass es während der Rückbildung zur Formation von drei unterschiedlichen Mitochondrientypen kam, die sich in ihrer Morphologie stark unterschieden. Weiterhin wurden vergleichende Studien zur Bildung der Megamitochondrien durchgeführt, bei denen der Einfluss von Atmungsketten-Inhibitoren auf die Bildung von Milchsäure-induzierten Riesenorganellen untersucht wurde. Die Resultate deuten für die Megamitochondrieninduktion auf eine Abhängigkeit auf ein intaktes Membranpotential hin. Immunzytochemisch wurde die endogene Lokalisation der mitochondrialen Fusions- und Fissionsproteine Mitofusin 2, hFis1 und Drp1/DNM1L am Modellsystem der Megamitochondrieninduktion aufgeklärt. Es zeigte sich, dass diese Proteine punktförmig an der äußeren Membran der Riesenorganellen lokalisieren Um das Modellsystem an lebenden Zellen zu nutzen, wurden Vektoren konstruiert, die fluoreszenzmarkierte Proteine der mitochondrialen Fusions- und Fissionsmaschinerie exprimierten. Hiermit konnte einerseits die Lokalisation von Mitofusin 1, Mitofusin 2, hFis1 und Drp1/DNM1L in lebenden Zellen nach Induktion der Megamitochondrien analysiert werden und andererseits der Einfluss der Überexpression dieser Proteine auf die Bildung der Riesenorganellen dokumentiert werden. Die Ergebnisse machten deutlich, dass nur die Überepxression von hFis1 die Bildung der Megamitochondrien verhinderte. Ein weiterer Schwerpunkt der vorliegenden Arbeit lag in der Visualisierung und Dynamik mitochondrialer Nucleoids in lebenden Zellen. Nucleoids sind Protein-DNA-Komplexe, in denen mitochondriale Genome organisiert sind. Mit dem Farbstoff PicoGreen gelang es mtDNA in lebenden Zellen zu färben und Dynamikstudien der punktförmigen Strukturen mikroskopisch festzuhalten. Während sich mtDNA im mitochondrialen Netzwerk nur marginal aufgrund stattfindender Fusions- und Fissionsereignisse bewegte kam es in den Milchsäure-induzierten Megamitochondrien zu einer extensiven und extrem schnellen Bewegung von mitochondrialer DNA. In anschließenden Versuchen wurde der mitochondriale Transkriptions- und Verpackungsfaktor TFAM als fluoreszentes Fusionsprotein in Zellen transfiziert und Kolokalisationsstudien zeigten, dass das Fusionsprotein mit mtDNA kolokalisiert. In den Riesenorganellen präsentierten punktförmige TFAM-gefärbte Nucleoids ein sehr dynamisches Verhalten mit schneller Bewegung. In rho0-Zellen ohne mitochondriale DNA war die TFAM-Fluoreszenz hingegen gleichmäßig verteilt. Ein weiterer Nucleiodbestandteil ist das mitochondriale DNA-Einzelstrangbindeprotein SSBP1, welches in Megamitochondrien ebenso ein sehr dynamisches Verhalten aufwies. Eine mitochondrial-zielgesteuerte und EGFP-markierte Restriktionsendonuklease wies ebenfalls das typische, punktförmige Nucleoidmuster im mitochondrialen Netzwerk auf, was auf eine Interaktion mit der mtDNA schließen lässt. In rho0-Zellen ohne mtDNA kam es jedoch zur gleichmäßigen Verteilung des Konstruktes in den Mitochondrien. Zusammenfassend wurden in dieser Arbeit sowohl Einblicke in die Biologie der Megamitochondrien gewonnen, als auch Erkenntnisse über die Dynamik mitochondrialer Protein-DNA-Komplexe, wobei der Schwerpunkt hierbei auf einer Analyse mit Hilfe optischer Methoden lag.