PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Embryonic Structures”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 451 records · Page 25Linked to original sources

[Structure of the cytoskeleton of embryonic muscle fibroblasts. Electron microscopic study of platinum replicas].

Cultured mouse embryo fibroblasts were extracted with 1% Triton X-100 at pH 6.7 in buffer containing EGTA and stabilizing supplements. Exposed during this extraction cytoskeletons were fixed, dried with the critical point technique, and shadowed with platinum. The platinum replicas of cytoskeleton were used for electron microscopic characterization of the three-dimensional distribution of cytoskeletal fibrils in cytoplasm. Four cytoplasmic regions are revealed with different cytoskeletal structure; these being a "mesh-work zone", a "loose zone", which together formed an active edge of cell lamelloplasm, the "lamella proper" and endoplasm. The two former zones are occupied with dense three-dimensional or loose planar actin network, respectively. The "lamella proper" contains two-dimensional network of different fibrils: microfilaments, microtubules, intermediate filaments and thin connective filaments. The central perinuclear area has a thick microfilament sheath at dorsal cell surface. The most important cytoplasmic elements of fibroblasts are actin microfilament bundles. The fine structure of these bundles, their junctions with each other ("organizing centers") and their terminal parts corresponding to cell-substrate focal contacts are described.

Animals↗

Osteochondral differentiation and the emergence of stage-specific osteogenic cell-surface molecules by bone marrow cells in diffusion chambers.

The osteochondral potential and emergence of osteogenic cell-surface molecules by avian marrow cells was evaluated in in vivo diffusion chamber cultures. The chambers were inoculated with unselected marrow cells from young chick tibiae and implanted intraperitoneally into athymic mice. At the light microscopic level, morphologic evidence of de novo bone and cartilage formation, including specific immunostaining by antibody probes, was observed in 14 out of 16 chambers incubated for 20 days or longer. In order to monitor the osteogenic differentiation of the marrow-derived cells, indirect immunofluorescence was performed with monoclonal antibodies against stage-specific cell surface antigens on cells of the embryonic osteogenic lineage. The binding of these and other specific monoclonal antibodies in the developing tissue indicates that the cell surface and extracellular matrix molecules expressed by descendants of marrow-derived mesenchymal progenitor cells are indistinguishable from their in vivo counterparts found in embryonic skeletal structures. Furthermore, the experiments reported here describe the first molecular identification of osteogenic cells by probes which are selective for stage-specific surface antigens on cells of the osteogenic lineage. Importantly, bone formation by these marrow-derived cells appears to occur through a lineage progression which is similar to that observed for embryonic tibial osteoblasts. In summary, these data support the use of diffusion chambers inoculated with avian marrow to study aspects of osteogenic and chondrogenic differentiation.

Animals↗

Structural and ultrastructural analysis of embryonic development of Prochilodus lineatus (Valenciennes, 1836) (Characiforme; Prochilodontidae).

This survey was performed to characterize the embryogenesis of Prochilodus lineatus. Seven stages of embryo development were identified--zygote, cleavage, blastula, gastrula, segmentation, larval and hatching--after a period of incubation of 22 h (24 degrees C) or 14 h (28 degrees C). The following cleavage pattern was identified: the first plane was vertical (2 blastomeres); the second was vertical and perpendicular to the first (4 blastomeres); the third was vertical and parallel to the first (4 x 2); the fourth cleavage was vertical and parallel to the second (4 x 4); the fifth was vertical and parallel to the first (4 x 8); and the sixth cleavage was horizontal (64 blastomeres). At the blastula stage (3.0-4.0 h (24 degrees C); 1.66-2.0 h (28 degrees C)) irregular spaces were detected and periblast structuring was initiated. At the gastrula stage (4.0-8.0 h (24 degrees C); 3.0-6.0 h (28 degrees C)) the epiboly, convergence and cell movements, as well as the formation of embryonic layers, had begun. The segmentation stage (10.0-15.0 h (24 degrees C); 7.0-10.0 h (28 degrees C)) was characterized by a rudimentary formation of organs and systems (somites, optic vesicle and intestinal delimitation). The embryo at the larval stage (16.0-21.0 h (24 degrees C); 11.0-13.0 h (28 degrees C)) showed a free tail, more than 25 somites, an optic vesicle and a ready-to-hatch larval shape. The blastomeres at cleavage stage had disorganized nuclei indicating high mitotic activity. At gastrula, the blastomeres and the periblast had euchromatic nuclei and a large number of mitochondria and vesicles. The yolk was organized into globose sacs, which were dispersed into small pieces prior to absorption.

Animals↗

Seasonal changes in the fine structure of the accessory sex gland in the mole (Talpa europaea).

The mole has a single pair of accessory sex organs with features of both the prostate and the seminal vesicle, for which the term prostate gland is not appropriate. Seasonal changes occuring in this gland were related to four periods: a) the quiescence period, b) the maturation period, c) the active period and d) the involution period. During the quiescence period the cuboidal epithelial cells display a quasi-embryonic fine structure and are sparse in cytoplasmic organelles, but rich in glycogen and lipopigment. With the onset of sexual activity glycogen and lipopigment disappear and the rough endoplasmic reticulum as well as the Golgi apparatus begin to proliferate. The fully active gland is lined by a low epithelium with parallel stacks of rough endoplasmic reticulum, a large Golgi apparatus and several lysosomes and secretory granules. In the involution period the gland collapses and the epithelial cells are eliminated by hetero- and autophagic processes. During this period a great number of presumably endocrine cells were observed. The results were compared with findings in experimental studies and those on postnatal development of accessory sex glands in laboratory animals.

Animals↗

Generalizing the control process for embryonic genes.

Embryonic genes are considered as a separate subset of genes with unique chromatin properties. There is a problem of defining the duration of perturbations of embryonic gene activity that has been chemically induced and the normal relatively longer lasting changes that occur during differentiation. This problem may be related to unique properties of the chromatin of embryonic genes. Methylation of DNA is thought to be only one level of control and the superstructure of chromatin involving heterochromatin is of equal importance to embryonic gene expression. Proto-oncogenes are considered to be embryonic type genes whose activities are regulated under the same mechanisms by which other embryonic genes are regulated. Control aspects are discussed in the light of i) repressor-derepressor and blocking-deblocking mechanisms, ii) activator genes, pseudogenes, LINES, SINES, v-type position effects, iii) effects of ethionine, and iv) steroid hormone effects especially with respect to a subset of repeated rRNA genes which are considered to be structured in embryonic type chromatin.

Animals↗

Planar differences in nuclear area and orientation in the subventricular and intermediate zones of the rat embryonic neocortex.

Nuclear area and orientation in the subventricular and intermediate zones was studied quantitatively in coronal vs. sagittal sections of the dorsomedial neocortex. Nissl-stained methacrylate-embedded normal rat embryos were studied between embryonic days (E) 13 and E22. The area of nuclear profiles and the degrees their long axes (defined as a straight line through the two most distant points in the nuclear profile) deviated from the horizontal (defined as parallel to the pial membrane) were determined with a computer-graphics program. Because the nucleus is the most clearly outlined structure in embryonic cells, the area and orientation of the nucleus was taken to reflect the overall size and orientation of the cell body. Nuclear area is larger in the coronal plane than it is in the sagittal plane, especially between E17 and E20. Cell body orientation in the subventricular and lower intermediate zones is predominantly horizontal in the coronal plane and predominantly vertical in the sagittal plane. In the upper intermediate zone, cell body orientation is predominantly vertical in both planes, but more so in the sagittal plane. These data indicate that the majority of cell bodies in the subventricular and lower intermediate zones have a horizontally oriented, flattened elliptical shape with their larger diameters lying within the coronal plane and their smaller diameters in the sagittal plane. Because of the flattening, the cell bodies falsely appear to be vertically oriented in the sagittal plane. Qualitative observations in horizontal sections confirmed the quantitative computer analysis. These results are related to other findings with [3H]thymidine autoradiography concerning cell migration and the sojourn of cells in the subventricular and intermediate zones.

Animals↗

The effects of ochratoxin A on postimplantation rat embryos in culture.

The mycotoxin, ochratoxin A (OA), is a potent in vivo teratogen. Studies were performed to determine the in vitro effects of OA on postimplantation rat embryos. Embryos were explanted from pregnant Sprague-Dawley rats on day 10 of gestation and were cultured (within the yolk sac) for 45 hr in gassed rat serum containing OA at concentrations between 0 and 300 micrograms/mL. Gross morphology, histopathology and protein and DNA content of embryos were evaluated. An OA concentration-dependent reduction in yolk sac diameter, crown-rump length, somite number count, and protein and DNA content was observed. Ochratoxin A treatment also resulted in an increase in the incidence of defective embryos. Malformations included: growth retardation, hypoplasia of the telencephalon, poor flexion, stunted limb bud development, underdeveloped sensory primordia and decreased mandibular and maxillary size. Histological examination demonstrated extensive OA-induced necrosis of embryonal mesodermal structures and neuroectoderm. Thus, the rat embryo in culture is a sensitive indicator of OA toxicity and may be useful for predicting developmental hazards associated with this mycotoxin.

Animals↗

Embryogenomics: developmental biology meets genomics.

Fundamental questions in developmental biology are: what genes are expressed, where and when they are expressed, what is the level of expression and how are these programs changed by the functional and structural alteration of genes? These questions have been addressed by studying one gene at a time, but a new research field that handles many genes in parallel is emerging. The methodology is at the interface of large-scale genomics approaches and developmental biology. Genomics needs developmental biology because one of the goals of genomics--collection and analysis of all genes in an organism--cannot be completed without working on embryonic tissues in which many genes are uniquely expressed. However, developmental biology needs genomics--the high-throughput approaches of genomics generate information about genes and pathways that can give an integrated view of complex processes. This article discusses these new approaches and their applications to mammalian developmental biology.

Animals↗

Locomotor performance of the rat after neonatal repairing of spinal cord injuries: quantitative assessment and electromyographic study.

In spinal cord injuries, various attempts have been made to reconstruct neural connections once disrupted. To improve current procedures and develop therapeutic methodologies it appears important to compare these reconstructive attempts via a standardized quantification of any ensuing functional recovery with parallel correlations to any potentially repaired neural connections. We have reported previously a quantitative assessment of neural connections across the graft site of rats whose spinal cord segments were neonatally replaced with embryonic spinal cord segments or a peripheral nerve section under comparable conditions. Using this same experimental model the present study assessed locomotor performance quantitatively using an open field locomotor scale at various postoperative intervals from day 0 to 5 weeks postinjury. To examine hind-forelimb coordination in further detail, electromyography was employed to record simultaneously from all four limbs during locomotion. Half of the rats whose spinal cord segments were repaired by replacement with embryonic homologous structures acquired virtually normal locomotor function, with a delay of five days compared with that of sham-operated rats. Detailed analysis revealed an abnormality in ankle joint movement and the stability of trunk during locomotion. Electromyography revealed that the pattern of locomotion in these rats was similar to controls. Grafted segments joined with the host spinal cord without gliosis at the host-graft interface. The remaining rats with an embryonic tissue graft showed various grades of hind-forelimb coordination. Gliosis and cavity were observed at the host-graft interface. The rats whose spinal cord was repaired by periphral nerve graft lacked hind-forelimb coordination despite the achievement of weight-supported steps. It appears likely that the grade of locomotor performance depends on quantity and quality of reestablished neural connections across the graft.

Animals↗

Cellular expression patterns of acetylcholinesterase activity during grasshopper development.

We examined the expression of acetylcholinesterase (AChE) in the nervous system and epidermal body structures during embryonic and larval development of two grasshopper species: Locusta migratoria and Schistocerca americana. Histochemical labelling was blocked by the enzyme inhibitors eserine and BW284c51, but not by iso-OMPA, showing that the staining reflected true AChE activity. The majority of staining was localized on the cell surface but granular intracellular staining was also visible in many cell bodies. In both species, the cellular expression of AChE followed a similar but complex spatiotemporal staining pattern. Initially, mainly epidermal tissue structures were stained in the various body appendages (stages 25%-30%). Labelling subsequently appeared in outgrowing neurons of the central nervous system (CNS) and in the nerves innervating the limbs and dorsal body wall (stages 30%-40%). The latter staining originated in motoneurons of the ventral nerve cord. In a third phase (after 45%), the somata of certain identified mechanosensory neurons started to express AChE activity, presumably reflecting cholinergic differentiation. Staining was also found in repo-positive glial cells of the CNS, longitudinal glia of connectives, glia of the stomatogastric nervous system and glial cells ensheathing peripheral nerves. Glial cells remained AChE-positive during larval to adult development, whereas motoneurons lost their AChE expression. The expression pattern in non-neuronal cells and glutamatergic motoneurons and the developmental appearance of AChE prior to synaptogenesis in the CNS suggest non-cholinergic functions of AChE during grasshopper embryogenesis.

Acetylcholinesterase↗

Embryonic and fetal development of structures associated with the cerebro-spinal fluid in man and other species. Part I: The ventricular system, meninges and choroid plexuses.

Little is known about the development of the central nervous system (CNS) in humans. Ethical considerations preclude experimental studies in this field, and as a result most available data on human ontogenesis are descriptive. Comparative anatomic and embryologic studies have demonstrated that the main developmental milestones are conserved across species, and their results can be used to suggest a likely scenario for human development. The development of the ventricles, meninges, and choroid plexuses are discussed in this article. The central cavity of the neural tube is formed during neurulation, which occurs during the fourth gestational week. The first milestone is occlusion of the spinal neurocele (the central canal in the neural tube) shortly after neurulation. This prevents free communication between the ventricular system and the amniotic cavity. The second milestone is development of the meninges, which separate the central nervous system from the rest of the body. The embryonic origin of the meninges varies across species. In birds (and probably in mammals), the spinal meninges are derived from the somitic mesoderm, the brainstem meninges from the cephalic mesoderm, and the telencephalic meninges from the neural crest. Differentiation of the meninges, which involves formation of the subarachnoid space, occurs early, before the cerebrospinal fluid (CSF) begins to flow around the CNS. During ontogenesis, the meninges play a key role in regulating the growth of underlying nervous structures. They induce the formation of the superficial glial limiting layer and stimulate the growth of precursors located in the superficial blastemas of the cerebellum and hippocampus. The choroid plexuses are complex specialized structures that produce most of the CSF. Their epithelium derives from the neural tube epithelium and their mesenchyma from the meninges. Of the many enzymes produced in the choroid plexuses, some reflect the pivotal metabolic role of these structures (alkaline and acid phosphatases, magnesium-dependent ATPase, glucose-6-phosphatase, thiamine pyrophosphatase, adenylate cyclase, oxidoreductase, esterases, hydrolases, cathepsin D, and glutathion S-transferase). The two enzymes that are crucial to the production of CSF are Na+/K+ ATPase and carbonic anhydrase. Inactivation of catecholamines is mediated by catechol-O-methyltransferase and by the monoamine oxidases A and B. The morphology and synthesis profile of the choroid plexuses changes during development, although little is known about these changes in humans.

Animals↗

[Embryonic stem cells: spontaneous and directed differentiation].

The specific structural features of embryonic stem cells and embryoid bodies and mechanisms of their differentiation in different cell types are considered. The mouse embryonic stem cells (line R1) formed multilayer colonies which enlarged as a result of fast cell division. Embryoid bodies that derived from embryonic stem cells consisted of an outer layer, an inner layer, and an internal cavity. The structure of cells of the outer and inner layers markedly differed. Spontaneous and directed differentiation of embryoid bodies is determined by some unspecific and specific factors (growth and differentiation factors and extracellular matrix proteins). Retinoic acid, the most commonly used inducer of differentiation of the embryonic stem cells, induces different types of differentiation when applied at different concentrations. The sequence of expression of tissue specific genes and proteins during differentiation of the embryonic stem cells in vitro is similar to that in vivo.

Animals↗

Perlecan participates in proliferation activation of quiescent Drosophila neuroblasts.

Drosophila neuroblasts act as stem cells. Their proliferation is controlled through cell cycle arrest and activation in a spatiotemporal pattern. Several genes have been identified that control the pattern of neuroblast quiescence and proliferation in the central nervous system (CNS), including anachronism (ana), even skipped (eve) and terribly reduced optic lobes (trol). eve acts in a non-cell-autonomous manner to produce a transacting factor in the larval body that stimulates cell division in the population of quiescent optic lobe neuroblasts. ana encodes a secreted glial glycoprotein proposed to repress premature proliferation of optic lobe and thoracic neuroblasts. trol was shown to act downstream of ana to activate proliferation of quiescent neuroblasts either by inactivating or bypassing ana-dependent repression. Here, we show that trol codes for Drosophila Perlecan, a large multidomain heparan sulfate proteoglycan originally identified in extracellular matrix structures of mammals. The results suggest that trol acts in the extracellular matrix and binds, stores, and sequesters external signals and, thereby, participates in the stage- and region-specific control of neuroblast proliferation.

Amino Acid Sequence↗

The malignant stem cell.

A recent study of embryonic cells at organogenesis revealed that their nucleus was bare of cytoplasm along one section of the envelope, and that they formed aggregates in which nucleus to nucleus contact was a feature. Their behaviour could be divided into three stages, the first when the embryonic cell was small and motile, the second when cell aggregation took place and the third when differentiation occurred. The embryonic cell at organogenesis was considered to be committed and hence stem cell in nature. It is hypothesized that stem cells in the adult also start off as small, motile embryonic-like cells and progress through the same three stages. This embryonic-like structure and behaviour also applies to the malignant stem cell, and evidence is put forward to support this view. Finally the suggestion is made that metastases are due to the small size and motile nature of the malignant stem cell, and not due to a decrease in any adhesive forces between tumour cells.

Cell Differentiation↗

Persistence of Cloquet's canal in normal healthy eyes.

PURPOSE: Optic nerve head (ONH) structural imaging with state-of-the-art, high-speed, ultra-high-resolution optical coherence tomography (hsUHR-OCT). DESIGN: Observational cohort study. METHODS: ONH centered 3-dimensional (94,371,840 voxel measurements in a 6- x 6- x 1.4-mm tissue volume) hsUHR-OCT data were obtained in one eye from each of six males and nine females normal healthy volunteers (40 +/- 9 years of age). The presence of structures projecting anteriorly from the disk into the vitreous was noted. RESULTS: Structures were noted in 14 of 15 (93%) examined eyes, emanating from the rim of the ONH at the nasal inferior sector, presenting as thin tissue meandering into the vitreous. CONCLUSIONS: Previous technologies provided limited visualization of ONH structures. The ability to scan the entire disk using 3-dimensional OCT (3D-OCT) in a high-density raster pattern reveals a high frequency of persistence of Cloquet's canal in the normal healthy eye.

Adult↗

Spec2 genes of Strongylocentrotus purpuratus. Structure and differential expression in embryonic aboral ectoderm cells.

Members of the Spec gene family are expressed during embryonic development of the sea urchin, Strongylocentrotus purpuratus. The family encodes proteins related to the calmodulin/troponin C/myosin light chain group of calcium binding proteins and one gene, Spec1, has been studied extensively in our laboratory. In this paper, we analyze other members of the family, collectively termed Spec2 genes. We make use of several hybridization probes derived from Spec1 and Spec2 cDNA clones, which recognize different members of the family. Genomic DNA gel blot and slot blot analyses show that there are approximately eight Spec genes in the S. purpuratus genome. The structures of three Spec2 genes, Spec2a, Spec2c and Spec2d, are described. A 60 kb (kb = 10(3) bases or base-pairs) region of the genome contains the linked Spec1-Spec2c genes and two separate 20 kb regions contain the Spec2a and Spec2d genes. Six members of a repetitive sequence family are dispersed at various locations among the genes. The transcriptional initiation sites of the three Spec2 genes are mapped, and 400 to 500 base-pairs of 5'-flanking DNA sequenced. All three Spec2 genes initiate transcription approximately 120 base-pairs upstream from the 3' end of the first exon. In contrast, the 5' end of the Spec1 transcript begins about 107 base-pairs farther upstream, so it contains 5' untranslated sequences that correspond to non-transcribed 5'-flanking sequences of the Spec2 genes. There is little similarity among the sequences upstream from the CAP site of the Spec2 genes except the TATA consensus sequence and a repeating trinucleotide, AAC. Measurements of Spec mRNA levels during embryogenesis show that Spec1 mRNA begins to accumulate at the early blastula stage and is the most abundant; Spec2a/Spec2c mRNAs begin accumulating several hours later at the late blastula-early gastrula stage and reach about 40 to 60% the levels of Spec1; and Spec2d mRNAs accumulate mostly during the gastrula and pluteus stages with levels reaching only 2% those of Spec1. In situ hybridization with probes that recognize either all Spec2 mRNAs or only Spec2d mRNAs show that, like Spec1, these mRNAs are restricted to aboral ectoderm cells and their precursors. The Spec gene family represents a group of related genes whose mRNAs all accumulate in the same cell type but at different times and to different levels during embryogenesis.

Animals↗

Regulation of cellular plasticity in Drosophila imaginal disc cells by the Polycomb group, trithorax group and lama genes.

Drosophila imaginal disc cells can switch fates by transdetermining from one determined state to another. We analyzed the expression profiles of cells induced by ectopic Wingless expression to transdetermine from leg to wing by dissecting transdetermined cells and hybridizing probes generated by linear RNA amplification to DNA microarrays. Changes in expression levels implicated a number of genes: lamina ancestor, CG12534 (a gene orthologous to mouse augmenter of liver regeneration), Notch pathway members, and the Polycomb and trithorax groups of chromatin regulators. Functional tests revealed that transdetermination was significantly affected in mutants for lama and seven different PcG and trxG genes. These results validate our methods for expression profiling as a way to analyze developmental programs, and show that modifications to chromatin structure are key to changes in cell fate. Our findings are likely to be relevant to the mechanisms that lead to disease when homologs of Wingless are expressed at abnormal levels and to the manifestation of pluripotency of stem cells.

Animals↗

Fusion between myoblasts and adult muscle fibers promotes remodeling of fibers into myotubes in vitro.

Muscle satellite cells are residual embryonic myoblast precursors responsible for muscle growth and regeneration. In order to examine the role of satellite cells in the initial events of muscle regeneration, we placed individual mature rat muscle fibers in vitro along with their satellite cells. When the satellite cells were allowed to proliferate, they produced populations of myoblasts that fused together to form myotubes on the laminin substrate. These myoblasts and myotubes also fused with the adult fibers. When they did so, the fibers lost their adult morphology, and by 8 days in vitro, essentially all of them were remodeled into structures resembling embryonic myotubes. However, when proliferating satellite cells were eliminated by exposure to cytosine arabinoside (araC), the vast majority of fibers retained their adult shape. Addition of C2C12 cells (a myoblast line derived from adult mouse satellite cells) to araC-treated fiber cultures resulted in their fusion with the rat muscle fibers and restored the ability of the fibers to remodel, whereas addition of either a fibroblast cell line or a transformed, non-fusing variant of C2C12 cells, or addition of conditioned medium from C2C12 cells, failed to do so. These results imply that myoblast fusion is responsible for triggering adult fiber remodeling in vitro.

Animals↗