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Transcriptional regulation of the TGF-beta 2 gene in choriocarcinoma cells and breast carcinoma cells: differential utilization of Cis-regulatory elements.

Previous studies have shown that the transcription of the TGF-beta 2 gene is controlled by at least one negative and two positive regulatory regions in differentiated cells derived from both embryonal carcinoma cells and embryonic stem cells. The use of TGF-beta 2 promoter/reporter gene constructs has also identified a CRE/ATF motif near the TATA box that appears to heavily influence the transcription of the TGF-beta 2 gene. In this study, two choriocarcinoma cell lines, JAR and JEG-3, and the breast cancer cell line, MCF-7, were used to determine whether differences exist in the transcriptional regulation of the TGF-beta 2 gene. We demonstrated that both similarities and differences exist in the transcriptional regulation of this gene. Common to all cells examined to date, the positive regulatory region just upstream of the TATA box contains an essential CRE/ATF motif that binds at least one transcription factor, ATF-1, in gel mobility shift assays. However, we did not detect ATF-2 binding to this site with any of the nuclear extracts used. We also determined that the effect of the region between -187 and -78 (relative to the transcription start site) is cell type dependent. Previous studies have shown that this region acts to reduce the activity of the TGF-beta 2 promoter in differentiated cells derived from embryonal carcinoma cells and embryonic stem cells. In direct contrast, this region acts as a strong positive regulatory region in JAR, JEC-3, and MCF-7 cells. The mechanisms responsible for these differing effects remain to be established. Interestingly, this region does not appear to contain sequence motifs that bind known transcription factors. Thus, this region is likely to bind one or more novel transcription factors or contain novel recognition sites for known transcription factors.

Activating Transcription Factor 1↗

The critical role of the nucleolus in cell differentiation and stem cell development with particular reference to its importance in imaginal development, spermatogenesis and haemopoiesis - a new fundamental concept.

A new approach to cell staining and cell culture is used which allows for better observation of nucleolar behaviour than is possible with traditional methods. The role of the nucleolus in stem cell maturation in the mosquito and woodlouse is discussed, and evidence presented to show that certain of their stem cells are multi-nucleolated cells and that they give rise to a clone of small round cells (daughter cells) by a novel method of division. This type of cell formation has been given the name "clonal division" to distinguish it from classical mitotic division. The new approach is used in the search for the elusive haemopoietic stem cell and evidence presented to show that this is also a multinucleolated stem cell which, in like fashion, gives rise to a clone of small round cells. The development takes place extravascularly, and the small round cells which arise are the immediate precursors of the differentiated cells found in peripheral blood. An analysis of the role of the nucleolus in stem cell development is made, and the conclusion reached that it plays an important part in clonal division, its behavior being consistent with some form of instructional role. It is suggested that all primitive cells are enveloped in a basophilic reticulum which is composed of instructional RNA responsible for the transformation of the primitive cell into a differentiated cell. It is further suggested that the nucleoli and basophilic reticulum are but interchangeable forms of the one structure (to be known as nucleolar material), and that this is inherited the same way that chromosomal material is inherited.

Animals↗

[Potential of human adipose tissue derived adult stem cells differentiate into endothelial cells].

OBJECTIVE: To investigate whether human adipose derived adult stem (hADAS) cells can differentiate into endothelial cells. METHODS: Stem cells were isolated and expanded from adipose tissue and then induced to differentiate into cells of osteogenic, adipogenic and neurogenic lineages in vitro. hADAS cells were induced with vascular endothelial growth factor (VEGF) and basic fibroblast growth factor (bFGF) to endothelial cells differentiation. hADAS cells were intravenously injected into mouse hindlimb ischemic models to test their ability to differentiate endothelial cells in vivo. RESULTS: hADAS cells were easily isolated and expanded in vitro. They had the ability to differentiate into osteogenic, adipogenic and neurogenic lineages. The cells expressed vascular endothelial growth factor receptor-2 (VEGFR-2, Flk1), and expressed endothelial markers when cultured with VEGF and bFGF. In response to local cues, hADAS cells in vivo differentiate into endothelial cells that contributed to neoangiogenesis in hindlimb ischemia models. CONCLUSIONS: Flk1+ hADAS cells have multipotential not only similar to bone marrow mesenchymal stem cells, but also exhibiting characteristics of endothelial progenitor cells. They may be a potential source of endothelial cells for cellular pro-angiogenic therapies.

Adipose Tissue↗

Automated cell differentiation of bronchoalveolar lavage samples with two-step image analysis.

OBJECTIVE: To establish an easy method for performing an automated differential cell count on bronchoalveolar lavage (BAL) cytocentrifuge samples using morphometric parameters acquired by a digital image analyzer. STUDY DESIGN: The study population comprised 20 satisfactory cytocentrifuge preparations routinely processed in our laboratory. Images of at least 40 fields of interest were digitized and stored. The images were analyzed to assess the planimetric parameters. These were used for cell identification. Basic morphometric parameters were acquired by an automated image analysis procedure. The results obtained by this method are compared to those of the manual counting procedure. RESULTS: Following sequential analysis, computerized identification corresponded, in > 97% of the cells, to the results of manual cell typing. After data analysis, < 1% of cells remained unidentifiable. CONCLUSION: Although the number of specimens evaluated is not yet large enough to allow a definitive statement, the use of image analysis systems seems a promising approach in automated differential cell counting in BAL preparations.

Bronchoalveolar Lavage Fluid↗

Human tonsil B lymphocyte function. II. Pokeweed mitogen-induced plasma cell differentiation of B cell subpopulations expressing multiple heavy chain isotypes on their surface.

Human tonsil non-T cells were successfully separated into surface IgM+G-ve (sIgM+G-), sIgM+G+, sIgM-G-, and sIgM-G+ B cell fractions. The two-step separation technique used did not affect the pokeweed mitogen- (PWM) induced plasma cell differentiation of the B cells. The highest percentages of plasma cells after PWM stimulation were found in the sIgM- fractions, and the lowest percentage was in the sIgM+G- fraction (20.8 +/- 2.3%), the latter predominantly cytoplasmic mu-chain-positive (c mu +) (84.1 +/- 3.5%) plasma cells. In this fraction, almost no c gamma + plasma cells were found. The sIgM+G+ produced c mu + (47.5 +/- 7.5%), c gamma + (35.7 +/- 5.8%), and c alpha + (16.8 +/- 4.0%) plasma cells. All three isotypes were found on the surface of the B cells in this fraction before PWM stimulation. The sIgM-G- fraction contained about 10% plasma cells before stimulation, which were predominantly c gamma +. After PWM stimulation, primarily c alpha + (64.2 +/- 4.3%) plasma cells were found. The sIgM-G+ fraction produced both c gamma + (75.0 +/- 2.3%) and c alpha + (24.1 +/- 2.5) plasma cells. A mu to gamma class switch did not occur in vitro in the sIgM+G- fraction on PWM stimulation, and the sIgM+G+ fraction did not complete in vitro the mu to gamma switch it had started in vivo.

B-Lymphocytes↗

[Bronchoalveolar lavage in systemic scleroderma and systemic lupus erythematosus--differential cell values and enzyme cytochemistry].

The aim of the study was to determine the bronchoalveolar lavage (BAL) cell differentiation and the activity of beta-glucuronidase and N-acetyl-beta-D-glucosaminidase in alveolar macrophages. In 12 patients with systemic sclerosis (SS), 4 with systemic lupus erythematosus and 4 healthy controls BAL was performed. The activity of beta-glucuronidase and N-acetyl-beta-D-glucosaminidase was measured semiquantitative by means of cytochemical methods. Lymphocytes and neutrophils in BAL cell differentiation are increased, also the activity of beta-glucuronidase. The activity of N-acetyl-beta-D-glucosaminidase is decreased in SS and SLE in comparison with controls. The activity of beta-glucuronidase seems to be a marker of activity of alveolar macrophages in SS and SLE.

Acetylglucosaminidase↗

Inducers of mammalian cell differentiation stimulate dome formation in a differentiated kidney epithelial cell line (MDCK).

Cell cultures of a differentiated kidney epithelial cell line, MDCK, spontaneously form fluid-filled domes or hemicysts composed of numbers of cells as a manifestation of specialized epithelial transport phenomena. Addition to MDCK cells of a broad spectrum of compounds that are known as potent inducers of mammalian cell differentiation in cell culture caused a striking increase in the frequency of dome formation. Polar compounds such as N,N-dimethylformamide, dimethyl sulfoxide, or hexamethylene bisacetamide stimulated increased dome formation 15--30 hr after addition. Induction of domes by these compounds was prevented either by inhibitors of protein synthesis or by ouabain, cytochalasin B, or vinblastine. Inhibition of DNA synthesis did not block chemical induction of domes. Other inducers were compounds of physiological occurrence such as n-butyrate or adenosine. Furthermore, a variety of conditions expected to elevate intracellular levels of cyclic AMP also stimulated dome formation. These findings suggest the hypothesis that domes are formed in cell culture by a form of cell differentiation that is under positive control by cyclic AMP.

Acetamides↗

Fine structure of dividing cells and of nondividing, differentiating cells of nickel sulfide-induced rhabdomyosarcomas.

Cells of nickel sulfide-induced rhabdomyosarcomas were studied with the electron microscope. Cells in the proliferative compartment were mononucleate and exhibited neither myofilaments nor other features of normal muscle cell differentiation. Cells in the nonproliferative compartment had myofilaments and differentiated similarly to the normal fetal and early postnatal muscle cells. The tumor cells did not differentiate beyond the initial stage of formation of triads and of the smooth endoplasmic reticulum. Transitional forms between undifferentiated and differentiated tumor cells were observed. Only a fraction of the progeny of the dividing cells seemed to differentiate; the remaining fraction did not and remained in the proliferative cell compartment as stem cells. The ratio between these cells and the descendants of the dividing cells that, by differentiation, became part of the nonproliferative cell compartment was a factor in the growth of the rhabdomyosarcomas. The pattern of fetal differentiation of the rhabdomyosarcomas was analogous to that of diethylnitrosamine-induced hepatomas studied previously in this laboratory.

Animals↗

Sequential development of hematopoietic and cardiac mesoderm during embryonic stem cell differentiation.

The ability to generate a wide spectrum of differentiated cell types from ES cells in culture offers a powerful approach for studying lineage induction and specification and a promising source of progenitors for cell replacement therapy. Although significant efforts are being made to optimize culture conditions for the generation of different cell populations from ES cells, the identification and efficient isolation of specific progenitors for many lineages within these cultures remains a major challenge. By specifically tracking hematopoietic and cardiac development, we demonstrate here that these two lineages arise from distinct mesoderm subpopulations that develop in sequential waves from pre-mesoderm cells. Access to these populations provides a unique approach to isolate and characterize the earliest progenitors of these lineages.

Animals↗

Surface membrane glycopeptides and cell differentiation.

It is suggested that a correlation exists between the proportions of specific groups of glycopeptides that are found in the surface membranes and the ability of neuroblastoma clones to differentiate morphologically. The evidence for this is examined and a comparison is made with other properties of the differentiated cells.

Animals↗

Divide, accumulate, differentiate: cell condensation in skeletal development revisited.

Cell condensation is a pivotal stage in skeletal development. Although prechondrogenic condensations normally exist for some 12 h, duration can vary. Variation is seen both between condensations for different cartilages (Meckel's vs. elastic ear cartilage) and within a single condensation from which more than one skeletal element will form, as in the three components of the single first arch chondrogenic condensation. Understanding how duration of the condensation phase is established--how the condensation phase is entered and exited during cell differentiation--remains a major area for future study. During chondrogenesis, cell-specific products such as collagen types II and IX and cartilage proteoglycan appear concomitant with condensation. Therefore, during chondrogenesis, condensation precedes commitment of cells as prechondroblasts. During osteogenesis, however, differentiation of preosteoblasts precedes condensation. Therefore, during osteogenesis, condensation amplifies the number of committed osteogenic cells. Further comparative analysis of skeletogenesis should provide us with a more rigorous understanding of cell commitment, when differentiation is initiated, how commitment and differentiation are measured and the relationship of condensation to onset of differentiation. Current knowledge of molecules characteristic of condensations focused attention on extracellular matrix and cell surface components on the one hand, and on growth factors homeobox genes and transcription factors on the other. We have drawn together the molecular data for pre-chondrogenic condensations in diagrammatic form in Figure 2. Three major phases of chondrogenesis are identified: (a) epithelial-mesenchymal interactions that precede condensation, (b) condensation itself, and (c) cell differentiation. Although we label the third phase differentiation, it is important to recognize that phases a and b also constitute aspects of chondroblast cell differentiation (see Dunlop and Hall, 1995 for a discussion of this point. The pre-condensation phase is characterized by expression of Hox genes, growth factors (TGF-beta and BMP-2) and the cell surface proteoglycan receptor, syndecan-1. Expression of Msx-1 and Msx-2, growth factors and syndecan continues into the condensation phase. Other molecules, such as versican, syndecan-3 and tenascin, present in low concentrations before condensation, are up-regulated during condensation. Yet other molecules--Hox genes, transcription factors, growth factors (activin, BMP-4 and -5, GDF-5), cell adhesion molecules and proteoglycans--are only expressed during the condensation phase, while the transcription factor Pax-1, fibronectin, hyaluronan and hyaladherin are expressed both during and after condensation. During condensation mRNAs for collagen types II and IX and for the core protein of cartilage proteoglycan are up-regulated. Late in condensation and increasingly thereafter, the protein products of these genes accumulate as chondroblasts differentiate (see Fig. 2 for details). Not all the molecules present before, during of after condensation can be placed into causal sequences. Some however can. In Figure 3 we summarize the causal sequences discussed in this paper as they relate to initiation of condensation and to transit from condensation to overt differentiation during chondrogenesis. Condensations form following activation of at least three pathways: (1) Initiation of epithelial-mesenchymal interactions by tenascin, BMP-2, TGF beta-1 and Msx-1 and -2. (2) Up-regulation of N-CAM by activin. (3) Up-regulation of fibronectin by TGF-beta, further enhancing N-CAM accumulation (Fig. 3). It is by these three pathways that condensations are initiated and grow. Transition from condensation to overt cell differentiation is under both positive and negative control (Fig. 3). Syndecan blocks fibronectin and so blocks N-CAM accumulation, preventing accumulation of additional cell

Animals↗

Differential human T cell-dependent B cell differentiation induced by staphylococcal superantigens (SAg). Regulatory role for SAg-dependent B cell cytolysis.

Microbial superantigens (SAg), by virtue of their binding to TCR V beta elements and to class II MHC molecules on accessory cells, trigger T cell proliferation in a dose-dependent fashion. In contrast, SAg-induced T cell-dependent B cell differentiation occurs only at SAg concentrations that are orders of magnitude lower that those required for optimal mitogenesis (low-dose SAg). At optimal mitogenic doses (high-dose SAg), SAg-driven B cell differentiation does not ensue. In this report, we demonstrate that this dichotomy in SAg-driven B cell differentiation is due to the active inhibition of B cell differentiation by high-dose SAg. Such inhibition is not reversed by feeding cultures with fresh medium, with conditioned media, or with IL2 +/- IL4, and impaired B cell differentiation is observed in cultures containing purified T cells or CD4+ T cells + B cells, as well as in PBMC cultures. Although preincubation of either T cells or B cells with high-dose SAg impairs subsequent SAg-induced B cell differentiation, high-dose SAg is not toxic per se, since high-dose SAg does promote vigorous B cell differentiation in cultures of mitomycin C-treated T cells + B cells and does not inhibit T cell-independent B cell differentiation. No correlation exists between SAg-induced B cell surface expression of CTLA4 ligand and generation of Ig-secreting cells, but the dose of SAg does correlate with T cell-mediated SAg-dependent cytolysis of transformed B cell targets or autologous nontransformed activated B cell targets. B cell recovery from cultures stimulated with high-dose SAg is lower than that from cultures stimulated with low-dose SAg, whereas B cell apoptosis is greater in the former cultures than that in the latter cultures. T cells stimulated with high-dose SAg do not inhibit differentiation of activated B cells in the absence of physical contact between the T cells and the target B cells, supporting the notion of direct killing of activated B cells by T cells. The ability of low doses of SAg to promote B cell differentiation without generating biologically meaningful cytolytic activity and the ability of higher doses of SAg to modulate Ig production may have important pathogenetic and therapeutic ramifications for certain autoimmune disorders, such as systemic lupus erythematosus.

B-Lymphocytes↗

Complex extracellular matrices promote tissue-specific stem cell differentiation.

Most cells in tissues contact an extracellular matrix on at least one surface. These complex mixtures of interacting proteins provide structural support and biological signals that regulate cell differentiation and may be important for stem cell differentiation. In this study, we have grown a rhesus monkey embryonic stem cell line in the presence of various extracellular matrix components in monolayer, in a NASA-developed rotating wall vessel bioreactor in vitro, and subcutaneously in vivo. We find that individual components of the extracellular matrix, such as laminin-1 or collagen I, do not influence the growth or morphology of the cells. In contrast, a basement membrane extract, Matrigel, containing multiple extracellular matrix components, induces the cells within 4 days to form immature glandular- and tubular-like structures, many of which contain a lumen with polarized epithelium and microvilli. Such structures were seen in vitro when the cells were grown in the bioreactor and when the cells were injected into mice. These tubular- and glandular-like structures were polarized epithelia based on immunostaining for laminin and cytokeratin. The cell aggregates and tumors also contained additional mixed populations of cells, including mesenchymal cells and neuronal cells, based on immunostaining with vimentin and neuronal markers. An extract of cartilage, containing multiple cartilage matrix components, promoted chondrogenesis in vivo where alcian blue-stained cartilage nodules could be observed. Some of these nodules stained with von Kossa, indicating that they had formed calcified cartilage. We conclude that extracellular matrices can promote the differentiation of embryonic stem cells into differentiated cells and structures that are similar to the tissue from which the matrix is derived. Such preprogramming of cell differentiation with extracellular matrices may be useful in targeting stem cells to repair specific damaged organs.

Animals↗

CMV promotor activity during ES cell differentiation: potential insight into embryonic stem cell differentiation.

The activity of the P(CMV IE) promoter was studied during the differentiation of ES cells into neurons. In order to do this, stable embryonic stem (ES) cell lines that express enhanced green fluorescent protein (EGFP) under the control of P(CMV IE) were created and these ES cells were differentiated by aggregation of cells in the presence of retinoic acid (RA). Based on our observations that the activity of P(CMV IE) was highest in undifferentiated cells, and that cell-cell interaction and addition of RA that lead to enhanced cell proliferation also increased expression from P(CMV IE), we hypothesized that the activity of P(CMV IE) was positively regulated in cycling cells. However, when analysis was done at the single cell level it was found that BrdU label and EGFP expression were not correlated. EGFP expression was found to be down-regulated in many cells that were BrdU positive and conversely there were significant numbers of BrdU negative cells that were EGFP positive. Further, P(CMV IE) activity was not observed in cells that were nestin positive or in differentiated neurons, but P(CMV IE) was active in cells with a fibroblast-like morphology. Finally, several proteins present in undifferentiated ES cells were found to bind to regulatory regions of P(CMV IE). These were absent when cells were aggregated in the presence of RA. The above results have implications for expression of transgenes in ES cells as well as providing new insight into the mechanism of lineage restriction.

Animals↗