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Nuclear reprogramming of somatic cells after fusion with human embryonic stem cells.

We have explored the use of embryonic stem cells as an alternative to oocytes for reprogramming human somatic nuclei. Human embryonic stem (hES) cells were fused with human fibroblasts, resulting in hybrid cells that maintain a stable tetraploid DNA content and have morphology, growth rate, and antigen expression patterns characteristic of hES cells. Differentiation of hybrid cells in vitro and in vivo yielded cell types from each embryonic germ layer. Analysis of genome-wide transcriptional activity, reporter gene activation, allele-specific gene expression, and DNA methylation showed that the somatic genome was reprogrammed to an embryonic state. These results establish that hES cells can reprogram the transcriptional state of somatic nuclei and provide a system for investigating the underlying mechanisms.

Adult↗

Spatial and temporal patterns of distribution of the gap junction protein connexin43 during mouse gastrulation and organogenesis.

Connexin43 (Cx43) is a member of the family of channel-forming proteins that make up the gap junction and are believed to provide pathways for cell-cell exchange of developmental signals. We have used immunofluorescence and confocal microscopy to characterize the patterns of distribution of Cx43 in postimplantation mouse embryos representing stages of development extending through gastrulation and the major period of organogenesis [through 13.5 days post coitum (dpc)]. We find that Cx43 is expressed early after implantation by the undifferentiated, pluripotent cells of the primitive embryonic ectoderm from which all tissues of the fetus are believed to be derived. As cells become committed to particular developmental pathways, there is a progressive restriction of Cx43 to specific areas and organ systems. The patterns are complex and not limited by germ layer of origin, although there is a clear preference for expression in ectodermal and, to a lesser extent, mesodermal derivatives. Expression in lens, retina, kidney, brain, pineal and pituitary glands is initiated early in organogenesis. In heart, the first clear signal for Cx43 appears in the ventricle at about 10 dpc and is only subsequently detected in the atrium at about 13-13.5 dpc. Particularly intriguing with regard to functional implications is the high level expression observed at sites of inductive interaction; the eye lens and optic cup, the infundibulum and the apical ectodermal ridge of the limb bud.

Animals↗

[Rare forms of ovarian tumor].

The most frequent ovarian tumour is cancer of the superficial epithelial layer. Sex cord mesenchymal tumours, lipoid cell tumours, germ cell tumours, gonadoblastomas, non-specific soft tissue tumours and metastatic tumours are rare. All these tumours are dissimilar, but they can be distinguished from the common ovarian adenocarcinoma by certain characteristics. It is among these rare tumours that cancers with feminizing effect (granula and theca cell tumours) or masculinizing effects (lipoid cell tumours, androblastomas) can be found. These tumours often affect children or young subjects; they are more belatedly and more rarely bilateral and they raise the problem of the conservative treatment of ovarian and reproductive functions. Among them, granula cell tumours sometimes recur after a long period, dysgerminoma is radio-sensitive and of good prognosis, and the prognosis of non-seminoma tumours has been much improved by chemotherapy. Most metastatic tumours are consecutive to endometrial, mammary or gastrointestinal cancer, the latter being the usual origin of Krukenberg's tumour.

Adolescent↗

Differential expression of sea urchin Otx isoform (hpOtxE and HpOtxL) mRNAs during early development.

Two distinct types of orthodenticle-related proteins (early type: HpOtxE, late type: HpOtxL) of the sea urchin, Hemicentrotus pulcherrimus, have been implicated as enhancer element binding factors of the aboral ectoderm-specific arylsulfatase (HpArs) gene. In order to understand the role of these isoforms during sea urchin development, we have isolated and characterized HpOtx gene. Here we describe the spatial expression patterns of HpOtxE and HpOtxL mRNAs and effects of overexpression of these mRNAs on embryogenesis. Whole-mount in situ hybridization using each isoform-specific probe reveals the complex and dynamic change of expression patterns among three germ layers. HpOtxE mRNA is maternally stored and exists apparently in a nonlocalized manner by the blastula stage. After hatching, HpOtxE transcripts are expressed predominantly in presumptive endoderm cells and gradually decrease during gastrulation. Signals for HpOtxL mRNA are intense at the vegetal half after hatching and subsequently, its expression is restricted to the micromere-derived cells. After primary mesenchyme cell (PMC) ingression, HpOtxL transcripts are localized at the vegetal plate and thereafter, concentrated primarily in ectoderm. Eggs injected with HpOtxE or HpOtxL mRNA develop into similar radialized structures without PMC ingression and gut invagination, whose oral-aboral axes are disrupted. Overexpression of HpOtxE induces accumulation of HpOtxL mRNA at the significantly earlier stages, though HpOtxL overexpression inhibits the accumulation of HpOtxE transcripts. Expression patterns of HpOtxE and HpOtxL in all three germ layers and dramatic morphological changes observed in the mRNA-injected embryos suggest that each HpOtx isoform has an important role in sea urchin embryogenesis.

Animals↗

The pattern of retinoic acid receptor gamma (RAR gamma) expression in normal development of Xenopus laevis and after manipulation of the main body axis.

Nuclear receptors are a prerequisite for the transduction of retinoid signals in vertebrate embryogenesis. We have raised an antiserum against the X. laevis retinoic acid receptor gamma (xRAR gamma), which specifically detects a polypeptide with an M(r) of 54 x 10(3) in embryos at gastrula and neurula stages. The antiserum reveals xRAR gamma as a nuclear protein in the head endomesoderm, the neuroectoderm of the hindbrain region, and the entire posterior region during neurula stages. Explanted animal caps express low amounts of xRAR gamma in the absence of mesoderm induction. Treatment of animal caps with activin leads to an increase of the amount and to a regionalization of the xRAR gamma expression. In exogastrulae and in Keller sandwiches, the pattern of expression in the endomesoderm is as expected by analogy to the normal embryo and therefore independent of the vertical contact between the germ layers. A planar signal coming from the dorsal mesoderm is sufficient to impose region-specific expression of xRAR gamma in the neuroectoderm of Keller sandwiches.

Activins↗

Spatial expression of the alternatively spliced EIIIB and EIIIA segments of fibronectin in the early chicken embryo.

Using domain-specific antibodies, we have analyzed the tissue distribution of fibronectins (FNs) containing the alternatively spliced EIIIB and EIIIA segments relative to total FN in early chicken embryos. The results show a selective loss of EIIIA+ FN staining in the notochordal sheath and in cartilaginous structures between 4.5 and 7.0 days of development. In other regions, EIIIB+ and EIIIA+ FNs are extensively codistributed in and around mesoderm-derived structures (somites, notochord, heart, and blood vessels), in basal laminae of endoderm and ectoderm-derived structures, as well as within the vicinity of neural crest formation and migration. We also noted that EIIIA staining overlaps with spatial patterns of distribution that have previously been described for the alpha4 integrin subunit, a component of the EIIIA receptor alpha4beta1.

Alternative Splicing↗

Tissue specific distribution of the 3243A->G mtDNA mutation.

BACKGROUND: The 3243A-->G is a common pathogenic mitochondrial DNA (mtDNA) point mutation causing a variety of different phenotypes. Segregation of this mutation to different tissues during embryonic life and postnatally is still enigmatic. OBJECTIVE: To investigate the tissue distribution of this mutation. METHODS: In 65 individuals from nine families segregating the 3243A-->G mutation, the mutation load (% mutated mtDNA) was determined in various tissues. Mutation load was measured in two to four cell types--blood leucocytes, buccal cells, skeletal muscle cells, and urine epithelial cells (UEC)--derived from all three embryogenic germ layers. RESULTS: There was a significant correlation among mutation loads in the four tissues (r = 0.80-0.89, p<0.0001). With blood serving as reference, the mutation load was increased by 16% in buccal mucosa, by 31% in UEC, and by 37% in muscle. There were significant differences between the mitotic tissues blood, buccal mucosa, and UEC (p<0.0001), but no difference between UEC and muscle. Using the present data as a cross sectional investigation, a negative correlation of age with the mutation load was found in blood, while the mutation load in muscle did not change with time; 75% of the children presented with higher mutation loads than their mothers in mitotic tissues but not in the post-mitotic muscle. CONCLUSIONS: There appears to be a uniform distribution of mutant mtDNA throughout the three germ layers in embryogenesis. The significant differences between mutation loads of the individual tissue types indicate tissue specific segregation of the 3243A-->G mtDNA later in embryogenesis.

Adolescent↗

A molecular basis for Smad specificity.

Bone morphogenetic proteins (BMPs) and activins are members of the TGFbeta superfamily of growth factors, a crucial group of regulators of induction and patterning of embryonic germ layers in metazoa. In early Xenopus embryos, activin, Vgl, and nodal are potent inducers of dorsal mesoderm, whereas BMPs can ventralize mesoderm, repress neural fate, and induce blood differentiation. These characteristic responses rely on ligand-specific signaling pathways, encompassing transmembrane kinase receptors and signal transducers belonging to the Smad family. The overexpression in Xenopus embryos of BMP-activated Smad1 and of activin/Vg1/ nodal-activated Smad2 is sufficient to specifically recapitulate ligand responses. In a search for determinants of a Smad specificity code, we have identified two small regions within the conserved carboxyl-domain that are necessary and sufficient for specific Smad action. Swapping both residue clusters (C1 and C2) between Smadl and Smad2 completely switches Smad effects in vivo. Thus, Smadl with swapped Smad2 clusters responds specifically to BMP but elicits an activin response, while a Smad2 protein containing the Smadl clusters is activated by activin and elicits a BMP response. Furthermore, association between Smads and FAST-1, a mediator of mesoderm induction by activin, is dependent upon the presence of the Smad2 C1 sequence. Finally, the Smadl-specific antagonist Smad6 can inhibit a Smad2 molecule harboring Smadl C1 and C2 sequences. Thus, the C1 and C2 regions of Smads specify the association between Smads and pathway-specific partners, such as FAST-1 and Smad6, and account for activin- and BMP- specific responses in vertebrate embryogenesis.

Amino Acid Sequence↗

Beta 3 tubulin expression characterizes the differentiating mesodermal germ layer during Drosophila embryogenesis.

During embryogenesis, the beta 3 tubulin gene of Drosophila is transcribed predominantly in the mesoderm. We have raised antibodies specific to the C-terminal domain of the beta 3 tubulin and analysed by immunostaining the distribution of this tubulin isotype during Drosophila embryogenesis. The protein is first detectable in the cephalic mesoderm at maximal germband extension. Shortly afterwards, beta 3 tubulin is expressed in single cells at identical positions of the thoracic and abdominal segments. We suggest that these cells represent muscle pioneer cells of Drosophila. During later embryonic development the somatic musclature, visceral musculature, dorsal vessel and macrophages contain beta 3 tubulin. In dorsalizing mutants dorsal, snail and twist, which do not form a ventral furrow during gastrulation, beta 3 expression is greatly reduced but not completely abolished. Our analysis shows that beta 3 tubulin immunostaining characterizes the differentiation of mesodermal derivatives during embryogenesis.

Animals↗

Bves expression during avian embryogenesis.

Bves (blood vessel/epicardial substance) is a transmembrane protein postulated to play a role in cell adhesion. While it is clear that Bves and gene products of the same family are expressed in adult striated muscle cells, the distribution of these proteins during development has not been critically examined. An understanding of the expression pattern of Bves is essential for a determination of protein function and its role in embryogenesis. In this study, we present an expression analysis of Bves during chick gastrulation and germ layer formation. Our data show that Bves is expressed in epithelia of all three germ layers early in development. Furthermore, Bves protein is observed in epithelial tissues during organogenesis, specifically the developing epidermis, the gut endoderm, and the epicardium of the heart. These data support the hypothesis that Bves may play a role in cell adhesion and movement of epithelia during early embryogenesis.

Amino Acid Sequence↗

Relation of an evolutionary mechanism to differentiation.

It is believed that new gene products and differentiations arise during evolution by the creation of new members of families of repeated DNA sequences which undergo diversification and take on new functions, while still retaining some common sequences indicating their common ancestry. Since some of the sequences of such DNA families control differentiations that occur in present-day embryos, it appears that members of such families formed during evolution are active in development. The presence of partially homologous proteins in related types of cells, as well as the labile pattern of determination and differentiation of these cells, supports this idea. The ontogenetic sequence of differentiation follows the phylogenetic one and this may occur because the more conservative members of any family of DNA sequences are more reiterated and transcribe more copies of RNA.

Animals↗

POPK-1/Sad-1 kinase is required for the proper translocation of maternal mRNAs and putative germ plasm at the posterior pole of the ascidian embryo.

Maternal mRNAs localized to specific regions in eggs play important roles in the establishment of embryonic axes and germ layers in various species. Type I postplasmic/PEM mRNAs, which are localized to the posterior-vegetal cortex (PVC) of fertilized ascidian eggs, such as the muscle determinant macho-1 mRNA, play key roles in embryonic development. In the present study, we analyzed the function of the postplasmic/PEM RNA Hr-POPK-1, which encodes a kinase of Halocynthia roretzi. When the function of POPK-1 was suppressed by morpholino antisense oligonucleotides, the resulting malformed larvae did not form muscle or mesenchyme, as in macho-1-deficient embryos. Epistatic analysis indicated that POPK-1 acts upstream of macho-1. When POPK-1 was knocked down, localization of every Type I postplasmic/PEM mRNA examined, including macho-1, was perturbed, showing diffuse early distribution and eventual concentration into a smaller area. This is the probable reason for the macho-1 dysfunction. The postplasmic/PEM mRNAs such as macho-1 and Hr-PEM1 are co-localized with the cortical endoplasmic reticulum (cER) and move with it after fertilization. Eventually they become highly concentrated into a subcellular structure, the centrosome-attracting body (CAB), at the posterior pole of the cleaving embryos. The suppression of POPK-1 function reduced the size of the domain of concentrated cER at the posterior pole, indicating that POPK-1 is involved in the movement of postplasmic/PEM RNAs via relocalization of cER. The CAB also shrank. These results suggest that Hr-POPK-1 plays roles in concentration and positioning of the cER, as well as in the concentration of CAB materials, such as putative germ plasm, in the posterior blastomeres.

Animals↗

Alternative sources of neurons and glia from somatic stem cells.

Stem cell populations have been shown to be extremely versatile: they can generate differentiated cells specific to the tissue in which they reside and descendents that are of different germ layer origin. This raises the possibility of obtaining neuronal cells from new biological source of the same adult human subjects. In this study, we found that epidermal growth factor (EGF) and basic fibroblast growth factor (bFGF) cooperated to induce the proliferation, self-renewal, and expansion of neural stem cell-like population isolated from several newborn and adult mouse tissues: muscle and hematopoietic tissues. This population, in both primary culture and secondary expanded clones, formed spheres of undifferentiated cells that were induced to differentiate into neurons, astrocytes, and oligodendrocytes. Brain engraftment of the somatic-derived neural stem cells generated neuronal phenotypes, demonstrating the great plasticity of these cells with potential clinical application.

Aging↗

The behaviour of embryonic chick and quail tissues in culture.

Pieces of tissue were dissected from early chick and quail embryos (Stages XIII and XIV of Eyal-Giladi & Kochav, 1976; and stages 3-5 of Hamburger & Hamilton, 1951). These tissues were taken from three different regions of the early embryos, and from eight different regions of the older ones, and were derived mainly from the lower layer. Epiblast tissues were also used. The experiments were designed to test the ability of one tissue to penetrate another. A single tissue was grown in culture in a Falcon dish for 18-24 h until it had formed a coherent sheet of cells (Explant I). A second tissue was then combined with it in one of two ways: (a) A small piece of tissue (Explant II) was explanted on top of Explant I. In most cases Explant II penetrated through Explant I and spread on the Falcon dish. (b) Another small piece of tissue (Explant III) was explanted beside (in confrontation with) Explant I. Usually, Explant III penetrated into Explant I rather than vice versa. The results were analysed to see if there were any variations in behaviour of the different tissues. The main result was that important differences were found to exist between certain types of chick and quail cells when grown in culture; the implications of this finding for the widely used technique of xenoplastic grafting are mentioned. Another result was that Explant I was more likely to be penetrated when the second tissue was placed on top of it (Explant II) than when it was confronted with it (Explant III). The significance of these results is discussed.

Age Factors↗

Circulating stem cells and tissue repair.

Stem cells are defined as cells that have clonogenic, self-renewing capacities and the capability to differentiate into multiple cell lineages. Whereas embryonic stem cells are derived from mammalian embryos in the blastocyst stage and can generate terminally differentiated cells of all 3 embryonic germ layers, adult human stem cells are capable of maintaining, generating, and replacing terminally differentiated cells within their own specific tissue as a consequence of physiologic cell turnover or tissue injury. The traditional idea of organ-restricted stem-cell differentiation is now being challenged by the suggestion that adult stem cells retain developmental plasticity. Preclinical and clinical studies described in this review provide evidence that within the blood circulate not only progenitor cells that differentiate into hematopoietic cells, but also stem/progenitor cells which can participate in the homeostasis, repair and replacement of solid organ tissues. In addition to the occurrence of cell fusion, there are 4 suggested mechanisms of adult stem cell differentiation into solid organ cells. Preclinical data support these models particularly that of transdifferentiation as the most likely model, allowing stem/progenitor cells to differentiate across lineage, tissue, and germ layer boundaries. There is increasing evidence that we can manipulate in vivo circulating adult stem cells to repair or regenerate solid organ tissue, which offers potential clinical benefit in the treatment of many hereditary and acquired diseases.

Animals↗

Developmental localization of the splicing alternatives of fibroblast growth factor receptor-2 (FGFR2).

The gene for fibroblast growth factor receptor-2 (FGFR2) encodes two splice variants designated here as keratinocyte growth factor (KGFR) and bek. Their ligand-binding specificity is markedly different due to mutually exclusive alternative splicing. We asked whether alternative exon usage, in addition to influencing receptor specificity, could be correlated with transcriptional localization. This problem was studied by in situ hybridization and PCR, using probes and primers specific for the alternative exons of FGFR2. Transcripts of both variants were detected in all three germ layers within the embryonic and the extraembryonic areas of the primitive-streak embryo. The overall level of KGFR expression surpassed that of bek. The localized expression of both variant receptors was, however, more diffuse in the gastrula than later during organogenesis, when KGFR transcripts were evident mainly in epithelia, whereas bek was present in the corresponding mesenchymes. Our findings show the following: (1) Expression of both FGFR2 variants is concordant with their involvement in murine gastrulation. They may endow competence to multiple areas, which may be restricted by their more confined ligands. (2) KGFR and bek seem to have unique roles in the development of the skin and its derivatives, whereas bek is preferentially expressed during osteogenesis. The two variants share potential regions of trans regulation in the genome; hence, we suggest that alternative splicing is jointly responsible for ligand binding and spatial specificity. (3) Finally, we defined the binding specificity of KGFR and bek to various FGF. The possibility of identifying specific functional areas for certain ligand-receptor pairs is discussed.

Alternative Splicing↗

Absorption of trigonelline from the small intestine of the specific pathogen-free (SPF) and germ-free (GF) rats in vivo.

After the direct injection of trigonelline (Tg) to the upper end of the duodenum in SPF and GF rats, the remaining Tg in the contents of small intestine was determined after fractionation by ion-exchange and Nucher column chromatography, and by using a high performance thin-layer chromatography (HPTLC). When Tg was injected to the upper end of the duodenum of SPF rats, the remaining Tg in the sac markedly decreased with time. The results obtained from the experiment with GF rats almost correspond to that with SPF rats. It was therefore clear that Tg is not destroyed by the small intestinal microflora and a greater part of Tg is absorbed from the small intestine.

Aging↗

Germ layer induction from embryonic stem cells.

Embryonic stem (ES) cells have the potential to develop into all cell types of the adult body. This capability provides the basis for considering the ES cell system as a novel and unlimited source of cells for replacement therapies for the treatment of a wide range of diseases. Before the cell-based therapy potential of ES cells can be realized, a better understanding of the pathways regulating lineage-specific differentiation is required. Current studies suggest that the bone morphogenic protein, transforming growth factor-beta, Wnt, and fibroblast growth factor pathways that are required for gastrulation and germ layer induction in the embryo are also essential for differentiation of ES cells in culture. The current understanding of how these factors influence germ layer induction in both the embryo and in the ES cell differentiation system is addressed in this review.

Animals↗