977 resultados para embryo suspensor


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Cytochemical localization of hydrogen peroxide-generating sites suggests NADPH (nicotinamide adenine dinucleotide 3-phosphate [ reduced form]) oxidase expression at the maternal-fetal interface. To explore this possibility, we have characterized the expression and activity of the NADPH oxidase complex in trophoblast cells during the postimplantation period. Implantation sites and ectoplacental cones (EPCs) from 7.5-gestational day embryos from CD1 mice were used as a source for expression analyses of NADPH oxidase catalytic and regulatory subunits. EPCs grown in primary culture were used to investigate the production of superoxide anion through dihydroxyethidium oxidation in confocal microscopy and immunohistochemical assays. NADPH subunits Cybb (gp91phox), Cyba (p22phox), Ncf4 (p40phox), Ncf1 (p47phox), Ncf2 (p67phox), and Rac1 were expressed by trophoblast cells. The fundamental subunits of membrane CYBB and cytosolic NCF2 were markedly upregulated after phorbol-12-myristate-13-acetate (PMA) treatment, as detected by quantitative real-time PCR, Western blotting, and immunohistochemistry. Fluorescence microscopy imaging showed colocalization of cytosolic and plasma membrane NADPH oxidase subunits mainly after PMA treatment, suggesting assembly of the complex after enzyme activation. Cultured EPCs produced superoxide in a NADPH-dependent manner, associating the NADPH oxidase-mediated superoxide production with postimplantation trophoblast physiology. NADPH-oxidase cDNA subunit sequencing showed a high degree of homology between the trophoblast and neutrophil isoforms of the oxidase, emphasizing a putative role for reactive oxygen species production in phagocytic activity and innate immune responses.

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The objectives of this study were to evaluate the effect of low-level laser irradiation (LLLI) on bovine oocyte and granulosa cells metabolism during in vitro maturation (IVM) and further embryo development. Cumulus-oocytes complexes (COCs) were subjected (experimental group) or not (control group) to irradiation with LLLI in a 633-nm wavelength and 1 J/cm2 fluency. The COCs were evaluated after 30 min, 8, 16, and 24 h of IVM. Cumulus cells were evaluated for cell cycle status, mitochondrial activity, and viability (flow cytometry). Oocytes were assessed for meiotic progression status (nuclear staining), cell cycle genes content [real-time polymerase chain reaction (PCR)], and signal transduction status (western blot). The COCs were also in vitro fertilized, and the cleavage and blastocyst rates were assessed. Comparisons among groups were statistically performed with 5% significance level. For cumulus cells, a significant increase in mitochondrial membrane potential and the number of cells progressing through the cycle could be observed. Significant increases on cyclin B and cyclin-dependent kinase (CDK4) levels were also observed. Concerning the oocytes, a significantly higher amount of total mitogen-activated protein kinase was found after 8 h of irradiation, followed by a decrease in all cell cycle genes transcripts, exception made for the CDK4. However, no differences were observed in meiotic progression or embryo production. In conclusion, LLLI is an efficient tool to modulate the granulosa cells and oocyte metabolism

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Investigations on formation and specification of neural precursor cells in the central nervous system of the Drosophila melanogaster embryoSpecification of a unique cell fate during development of a multicellular organism often is a function of its position. The Drosophila central nervous system (CNS) provides an ideal system to dissect signalling events during development that lead to cell specific patterns. Different cell types in the CNS are formed from a relatively few precursor cells, the neuroblasts (NBs), which delaminate from the neurogenic region of the ectoderm. The delamination occurs in five waves, S1-S5, finally leading to a subepidermal layer consisting of about 30 NBs, each with a unique identity, arranged in a stereotyped spatial pattern in each hemisegment. This information depends on several factors such as the concentrations of various morphogens, cell-cell interactions and long range signals present at the position and time of its birth. The early NBs, delaminating during S1 and S2, form an orthogonal array of four rows (2/3,4,5,6/7) and three columns (medial, intermediate, and lateral) . However, the three column and four row-arrangement pattern is only transitory during early stages of neurogenesis which is obscured by late emerging (S3-S5) neuroblasts (Doe and Goodman, 1985; Goodman and Doe, 1993). Therefore the aim of my study has been to identify novel genes which play a role in the formation or specification of late delaminating NBs.In this study the gene anterior open or yan was picked up in a genetic screen to identity novel and yet unidentified genes in the process of late neuroblast formation and specification. I have shown that the gene yan is responsible for maintaining the cells of the neuroectoderm in an undifferentiated state by interfering with the Notch signalling mechanism. Secondly, I have studied the function and interactions of segment polarity genes within a certain neuroectodermal region, namely the engrailed (en) expressing domain, with regard to the fate specification of a set of late neuroblasts, namely NB 6-4 and NB 7-3. I have dissected the regulatory interaction of the segment polarity genes wingless (wg), hedgehog (hh) and engrailed (en) as they maintain each other’s expression to show that En is a prerequisite for neurogenesis and show that the interplay of the segmentation genes naked (nkd) and gooseberry (gsb), both of which are targets of wingless (wg) activity, leads to differential commitment of NB 7-3 and NB 6-4 cell fate. I have shown that in the absence of either nkd or gsb one NB fate is replaced by the other. However, the temporal sequence of delamination is maintained, suggesting that formation and specification of these two NBs are under independent control.

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Die Zellgenealogie des Polychaeten Platynereis dumerilii wurde durch Farbstoffinjektion in die Blastomeren des 2-, 4- und 8-Zellstadiums, sowie die Zellen 2d, 2d112, 4d und 4d1 untersucht. Injektionen gelangen durch Aufweichung der Vitellinhülle mittels Dithioerythritol und Trypsin. Die injizierten Keime wurden zur Trochophora bzw zum dreisegmentigen Jungwurm aufgezogen, fixiert und mit dem konfokalen Rasterlichtmikroskop dreidimensional aufgenommen. Die animal-vegetale Achse des Frühkeims entspricht der antero-posterioren Achse des Jungwurms. Die Mikromeren des ersten Quartetts sind radiär um die antero-posteriore Achse angeordnet und bilden den Kopf. Die Mikromere 2d proliferiert bilateralsymmetrisch von der dorsalen Mittellinie aus und liefert das gesamte Rumpfektoderm. Indirekt ließ sich ableiten, daß die Mikromeren 2a1 bis 2c1 schmale ektodermale Streifen zwischen Kopf und Rumpf bilden und aus 2a2 und 2c2 das ektodermale Stomodaeum hervorgeht. Die Mikromeren des dritten Quartetts sowie möglicherweise 2b2 bilden 'Ektomesoderm'. 4d proliferiert ebenfalls bilateralsymmetrisch von der dorsalen Mittellinie aus zum Rumpfmesoderm und liefert vielleicht noch kleine Beiträge zum Aufbau des Darmes. Der Mitteldarm stammt von den dotterreichen Makromeren 4A bis 4D.

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Gliazellen kommen in allen höheren Organismen vor und sind sowohl für die korrekte Entwicklung, als auch für die Funktionalität des adulten Nervensystems unerlässlich. Eine der mannigfachen Funktionen dieses Zelltyps ist die Umhüllung von Axonen im zentralen und peripheren Nervensystem (ZNS und PNS). Um eine vollständige Umhüllung zu gewährleisten, wandern Gliazellen während der Neurogenese zum Teil über enorme Distanzen von ihrem Entstehungsort aus. Dies trifft insbesondere auf die Gliazellen zu, durch deren Membranausläufer die distalen Axonbereiche der peripheren Nerven isoliert werden.rnIn dieser Arbeit wurde die Migration von Gliazellen anhand des Modelorganismus Drosophila untersucht. Ein besonderes Interesse galt dabei der Wanderung einer distinkten Population von Gliazellen, den sogenannten embryonalen Peripheren Gliazellen (ePG). Die ePGs werden überwiegend im sich entwickelnden ventralen Bauchmark geboren und wandern anschließend entlang der peripheren Nerventrakte nach dorsal aus, um diese bis zum Ende der Embryogenese zu umhüllen und dadurch die gliale Blut-Nerv-Schranke zu etablieren. Das Hauptziel dieser Arbeit bestand darin, neue Faktoren bzw. Mechanismen aufzudecken, durch welche die Migration der ePGs reguliert wird. Dazu wurde zunächst der wildtypische Verlauf ihrer Wanderung detailliert analysiert. Es stellte sich heraus, dass in jedem abdominalen Hemisegment eine invariante Anzahl von 12 ePGs von distinkten neuralen Vorläuferzellen generiert wird, die individuelle Identitäten besitzen und mittels molekularer Marker auf Einzelzellebene identifiziert werden können. Basierend auf der charakteristischen Lage der Zellen erfolgte die Etablierung einer neuen, konsistenten Nomenklatur für sämtliche ePGs. Darüber hinaus offenbarten in vivo Migrationsanalysen, dass die Wanderung individueller ePGs stereotyp verläuft und demzufolge weitestgehend prädeterminiert ist. Die genaue Kenntnis der wildtypischen ePG Migration auf Einzelzellebene diente anschließend als Grundlage für detaillierte Mutantenanalysen. Anhand derer konnte für den ebenfalls als molekularen Marker verwendeten Transkriptionsfaktor Castor eine Funktion als zellspezifische Determinante für die korrekte Spezifizierung der ePG6 und ePG8 nachgewiesen werden, dessen Verlust in einem signifikanten Migrationsdefekt dieser beiden ePGs resultiert. Des Weiteren konnte mit Netrin (NetB) der erste diffusible und richtungsweisende Faktor für die Migration von ePGs enthüllt werden, der in Interaktion mit dem Rezeptor Uncoordinated5 speziell die Wanderung der ePG6 und ePG8 leitet. Die von den übrigen Gliazellen unabhängige Navigation der ePG6 und ePG8 belegt, dass zumindest die Migration von Gruppen der ePGs durch unterschiedliche Mechanismen kontrolliert wird, was durch die Resultate der durchgeführten Ablationsexperimente bestätigt wird. rnFerner konnte gezeigt werden, dass während der frühen Gliogenese eine zuvor unbekannte, von Neuroblasten bereitgestellte Netrinquelle an der initialen Wegfindung der Longitudinalen Gliazellen (eine Population Neuropil-assoziierter Gliazellen im ZNS) beteiligt ist. In diesem Kontext erfolgt die Signaldetektion bereits in deren Vorläuferzelle, dem Longitudinalen Glioblasten, zellautonom über den Rezeptor Frazzled. rnFür künftige Mutantenscreens zur Identifizierung weiterer an der Migration der ePGs beteiligter Faktoren stellt die in dieser Arbeit präsentierte detaillierte Beschreibung eine wichtige Grundlage dar. Speziell in Kombination mit den vorgestellten molekularen Markern liefert sie die Voraussetzung dafür, individuelle ePGs auch im mutanten Hintergrund zu erfassen, wodurch selbst subtile Phänotypen überhaupt erst detektiert und auf Einzelzellebene analysiert werden können. Aufgrund der aufgezeigten voneinander unabhängigen Wegfindung, erscheinen Mutantenanalysen ohne derartige Möglichkeiten wenig erfolgversprechend, da Mutationen vermutlich mehrheitlich die Migration einzelner oder weniger ePGs beeinträchtigen. Letzten Endes wird somit die Aussicht verbessert, weitere neuartige Migrationsfaktoren im Modellorganismus Drosophila zu entschlüsseln, die gegebenenfalls bis hin zu höheren Organismen konserviert sind und folglich zum Verständnis der Gliazellwanderung in Vertebraten beitragen.

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In vertebrates, efficient gas exchange depends primarily on establishment of a thin blood-gas barrier (BGB). The primordial air conduits of the developing avian lung are lined with a cuboidal epithelium that is ultimately converted to a squamous one that participates in the formation of the BGB. In the early stages, cells form intraluminal protrusions (aposomes) then transcellular double membranes separating the aposome from the basal part of the cell establish, unzip and sever the aposome from the cell. Additionally, better endowed cells squeeze out adjacent cells or such cells constrict spontaneously thus extruding the squeezed out aposome. Formation of vesicles or vacuoles below the aposome and fusion of such cavities with their neighboring cognates results in severing of the aposome. Augmentation of cavities and their subsequent fusion with the apical plasma membranes results in formation of numerous microfolds separating concavities on the apical part of the cell. Abscission of such microfolds results in a smooth squamous epithelium just before hatching.

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Morphogenesis of the secondary palate in mammalian embryos involves two major events: first, reorientation of the two vertically oriented palatal shelves into a horizontal position above the tongue, and second, fusion of the two shelves at the midline. Genetic evidence in humans and mice indicates the involvement of matrix metalloproteinases (MMPs). As MMP expression patterns might differ from sites of activity, we used a recently developed highly sensitive in situ zymography technique to map gelatinolytic MMP activity in the developing mouse palate. At embryonic day 14.5 (E14.5), we detected strong gelatinolytic activity around the lateral epithelial folds of the nasopharyngeal cavity, which is generated as a consequence of palatal shelf elevation. Activity was concentrated in the basement membrane of the epithelial fold but extended into the adjacent mesenchyme, and increased in intensity with lateral outgrowth of the cavity at E15.5. Gelatinolytic activity at this site was not the consequence of epithelial fold formation, as it was also observed in Bmp7-deficient embryos where shelf elevation is delayed. In this case, gelatinolytic activity appeared in vertical shelves at the exact position where the epithelial fold will form during elevation. Mmp2 and Mmp14 (MT1-MMP), but not Mmp9 and Mmp13, mRNAs were expressed in the mesenchyme around the epithelial folds of the elevated palatal shelves; this was confirmed by immunostaining for MMP-2 and MT1-MMP. Weak gelatinolytic activity was also found at the midline of E14.5 palatal shelves, which increased during fusion at E15.5. Whereas MMPs have been implicated in palatal fusion before, this is the first report showing that gelatinases might contribute to tissue remodeling during early stages of palatal shelf elevation and formation of the nasopharynx.

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Genetic evidence indicates that the major gelatinases MMP-2 and MMP-9 are involved in mammalian craniofacial development. Since these matrix metalloproteinases are secreted as proenzymes that require activation, their tissue distribution does not necessarily reflect the sites of enzymatic activity. Information regarding the spatial and temporal expression of gelatinolytic activity in the head of the mammalian embryo is sparse. Sensitive in situ zymography with dye-quenched gelatin (DQ-gelatin) has been introduced recently; gelatinolytic activity results in a local increase in fluorescence. Using frontal sections of wild-type mouse embryo heads from embryonic day 14.5-15.5, we optimized and validated a simple double-labeling in situ technique for combining DQ-gelatin zymography with immunofluorescence staining. MMP inhibitors were tested to confirm the specificity of the reaction in situ, and results were compared to standard SDS-gel zymography of tissue extracts. Double-labeling was used to show the spatial relationship in situ between gelatinolytic activity and immunostaining for gelatinases MMP-2 and MMP-9, collagenase 3 (MMP-13) and MT1-MMP (MMP-14), a major activator of pro-gelatinases. Strong gelatinolytic activity, which partially overlapped with MMP proteins, was confirmed for Meckel's cartilage and developing mandibular bone. In addition, we combined in situ zymography with immunostaining for extracellular matrix proteins that are potential gelatinase substrates. Interestingly, gelatinolytic activity colocalized precisely with laminin-positive basement membranes at specific sites around growing epithelia in the developing mouse head, such as the ducts of salivary glands or the epithelial fold between tongue and lower jaw region. Thus, this sensitive method allows to associate, with high spatial resolution, gelatinolytic activity with epithelial morphogenesis in the embryo.

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The tall epithelium of the developing chick embryo lung is converted to a squamous one, which participates in formation of the thin blood-gas barrier. We show that this conversion occurred through processes resembling exocrine secretion. Initially, cells formed intraluminal protrusions (aposomes), and then transcellular double membranes were established. Gaps between the membranes opened, thus, severing the aposome from the cell. Alternatively, aposomes were squeezed out by adjacent cells or were spontaneously constricted and extruded. As a third mechanism, formation and fusion of severed vesicles or vacuoles below the aposome and their fusion with the apicolateral plasma membrane resulted in severing of the aposome. The atria started to form by progressive epithelial attenuation and subsequent invasion of the surrounding mesenchyme at regions delineated by subepithelial alpha-smooth muscle actin-positive cells. Further epithelial attenuation was achieved by vacuolation; rupture of such vacuoles with resultant numerous microfolds and microvilli, which were abscised to accomplish a smooth squamous epithelium just before hatching.