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Biomedical subjects

B Vandenbunder

Publications and source records attributed to B Vandenbunder.

At least 37 records · Page 2Linked to original sources

The avian transcription factor c-Rel is expressed in lymphocyte precursor cells and antigen-presenting cells during thymus development.

Transcription factors of the Rel/NF-kappaB family are widely involved in the immune system. In this study, we investigate the in vivo expression of the avian protein c-Rel in the T-cell lineage during thymus development. The majority of thymocytes do not express the c-Rel protein. However, lymphocyte precursor cells that colonize the thymus express the c-Rel protein shortly after their homing in the organ and before they begin to differentiate. c-Rel is also detected in different subsets of antigen-presenting cells such as epithelial cells, dendritic cells, and macrophages. In vitro studies have shown that Rel/NF-kappaB proteins are sequestered in an inactive form in the cytoplasm by interaction with the IkappaBalpha inhibitory protein. By immunocytochemistry, we show that in vivo c-Rel is localized in the cytoplasm of antigen-presenting cells but in both the cytoplasm and nucleus of lymphocyte precursor cells. The cytoplasmic localization of c-Rel in antigen-presenting cells correlates with a high expression of IkappaBalpha, whereas the nuclear localization of c-Rel in lymphocyte precursor cells correlates with a much lower expression of IkappaBalpha. These results suggest that c-Rel might be constitutively activated in lymphocyte precursor cells.

Animals↗

The expression of an Ets1 transcription factor lacking its activation domain decreases uPA proteolytic activity and cell motility, and impairs normal tubulogenesis and cancerous scattering in mammary epithelial cells.

Cell migration and invasion play a crucial role during normal and pathological development. The expression of several members of the Ets family of transcription factors has been shown to correlate with the occurrence of these processes. In the present study, we investigated the effect of the expression of Ets1-DB, the DNA-binding domain of c-Ets1, on the functional properties of NMuMG and MMT epithelial cell lines, from normal and cancerous mouse mammary tissues, respectively. We found that stable expression of this Ets1-DB mutant inhibited, in both cell types, the gene expression and activity of urokinase type-plasminogen activator (uPA), a potential target of c-Ets1. uPA is a key serine proteinase in the proteolytic cascade leading to the degradation of the extracellular matrix. In two-dimensional cultures, expression of the Ets1-DB mutant resulted in a decrease in cell migration and invasion in both cell lines. In three-dimensional collagen gels, NMuMG cells underwent tubular morphogenesis, while MMT cells developed as scattered structures. The Ets1-DB mutant impaired the capacity of NMuMG cells to form tubules and reduced the ability of MMT cells to invade these gels. Similar inhibition of cell migration, invasion and morphogenesis were observed in non-infected NMuMG and MMT cell lines treated with aprotinin, a serine proteinase inhibitor, suggesting that the inhibition of the plasmin cascade mediates in part the biological effects induced by the Ets1-DB mutant. These results demonstrate that Ets family members are involved in the control of uPA activity, cell motility and invasion during normal tubular morphogenesis and cancerous scattering in mammary epithelial cells.

Animals↗

[Hypoxia and tumors: does HIF-1 transcription factor favor tumor growth or hypoxia?].

HIF-1 is a transcription factor which stimulates the expression of several genes induced by hypoxia, such as the gene encoding the vascular endothelial growth factor VEGF. Three papers report the effects of the inactivation of the HIF-1 alpha gene. The absence of HIF-1 alpha impairs morphogenesis of the vascular tree, both in the embryo and in teratocarcinomas obtained after injection of ES cells. HIF-1 alpha-/-embryos do not survive beyond midgestation. In contrast, one paper reports tumour growth inhibition, and another one its stimulation. These results suggest that the role of HIF-1 in the hypoxic response is dependent on the genetic background.

Cell Division↗

The avian transcription factor c-Rel is induced and translocates into the nucleus of thymocytes undergoing apoptosis.

This study investigates the involvement of the avian transcription factor c-Rel in thymocyte apoptosis occurring either in vivo or in organotypic culture. In vivo, only a few cortical thymocytes express the c-Rel protein. Their number, localization and morphology resemble that of apoptotic cells evidenced by TUNEL staining. In organotypic culture, the expression of c-Rel is induced in medullary thymocytes as apoptosis is triggered. This induction would be post-transcriptional since no increase in the c-rel gene expression is detected. Moreover, c-Rel translocates into the nucleus of medullary thymocytes during the time course of apoptosis. This translocation is preceded by a decrease in ikba expression, the gene which encodes the avian homologue of IkappaBalpha. Altogether these results suggest that the proto-oncogene c-rel could take an active part in apoptosis of cortical thymocytes occurring in vivo during T-cell selection as well as in experimentally-induced apoptosis of medullary thymocytes.

Journal Article↗

The ETS1 transcription factor is expressed during epithelial-mesenchymal transitions in the chick embryo and is activated in scatter factor-stimulated MDCK epithelial cells.

In embryos and in human tumors, the expression of the ETS1 transcription factor correlates with the occurrence of invasive processes. Although this was demonstrated in cells of mesodermal origin, the expression of ETS1 was not detected in epithelial cells. In the present study, we show that during early organogenesis in the chick embryo, ETS1 mRNA expression was transiently induced in epithelial structures, during emigration of neural crest cells and dispersion of somites into the mesenchymal sclerotome. In contrast, the expression of ETS1 was not detected in situations where epithelial layers stayed cohesive while forming a new structure, such as the dermomyotome forming the myotome. The involvement of ETS1 in epithelial cell dissociation was examined in MDCK epithelial cells stimulated by scatter factor/hepatocyte growth factor (SF/HGF), a potent inducer of cell dissociation and motility. SF/HGF was found to stimulate ETS1 mRNA and protein expressions, and these increases coincided with the dispersion of cells and the expression of protease mRNAs, such as urokinase-type plasminogen activator and collagenase, but not with the protease inhibitor, plasminogen activator inhibitor type 1. Furthermore, we showed that SF/HGF was able to induce a transcriptional response involving ETS1 by using artificial as well as cellular promoters, such as the urokinase-type plasminogen activator and collagenase 1 promoters, containing RAS-responsive elements with essential ETS-binding sites. These data demonstrate expression of ETS1 during epithelial-mesenchymal transitions in the developing embryo and show that ETS1 can act as a downstream effector of SF/HGF in MDCK epithelial cells. Taken together, these data identify ETS1 as a molecular actor of epithelia cell dissociation.

Animals↗

[New inhibitors of tumor angiogenesis].

During the past few years, our understanding of the molecular mechanisms of angiogenesis has steadily increased. These informations allowed the design of new strategies aimed to kill cancer cells by shutting off the blood vessels through which they get the oxygen and nutrients they need to grow. Therapies that target tumor blood vessels cause the regression of solid tumors in mice. The possibility to obtain synergistic effects by combining antiangiogenic and cytotoxic therapy, and the therapeutic applications of these studies will be discussed, following a meeting on angiogenesis held in Boston on February 10th and 11th 1997.

Animals↗

[Angiopoietin-2, a new molecular actor involved in vascular tree morphogenesis].

Angiopoietin-2 is a new member of the family of the ligands of Tek (Tie2), a transmembrane receptor with tyrosine kinase activity which is specifically expressed in endothelial cells during angiogenesis. Several lines of evidence indicate that angiopoietin-1 is involved in pericyte recruitment by endothelial cells and in the maintenance of cell-cell and cell matrix association in mature capillaries. Angiopoietin-2 behaves as an antagonist of angiopoietin-1. It is suggested that it looses capillary structure and renders endothelial cells to become responsive to angiogenic stimuli.

Angiopoietin-2↗

PEA3 transactivates vimentin promoter in mammary epithelial and tumor cells.

We have used differential display RT-PCR method to detect the genes specifically activated or repressed between mammary tumor and normal mammary epithelial cells. One of the genes identified is vimentin. The vimentin gene is abundantly expressed in both human and mouse mammary tumor cells and its expression decreased dramatically in normal mammary epithelial cells. The expression of vimentin gene correlates with the expression of transcription factor PEA3. Since the promoters of human and mouse vimentin genes contain one PEA3 binding site we investigated the ability of PEA3 to transactivate the vimentin promoter in mouse mammary epithelial cell CLS1, mouse mammary tumor MMT and human mammary tumor cell lines MCF7 and MDA231. Our results suggest that PEA3 specifically transactivates vimentin promoter through PEA3 site. Among members of the ETS transcription factor family only Erg showed ability to transactivate vimentin promoter besides PEA3. Our results also suggest that NFkB site on the vimentin promoter may act as a positive regulatory element for the transcription of vimentin. In metastatic mammary tumors derived from mice carrying the polyoma middle T or neu transgene, PEA3 is overexpressed and vimentin has been shown to play a key role in the motility of cells. Our results suggest that one of the roles of PEA3 in mammary tumor is to participate the activation of vimentin gene whose gene product in turn contributes to the metastatic potential of mammary tumors.

Animals↗

The c-ets-1 proto-oncogene is a new early-response gene differentially regulated by cytokines and growth factors in human fibroblasts.

In various invasive human tumors, c-ets-1 mRNA was found to be selectively expressed in stromal fibroblasts. We have now investigated the possibility that soluble factors could regulate c-ets-1 expression in cultured human fibroblasts. We show that both conditioned media from tumor cell lines and a number of characterized cytokines and growth factors were able to induce c-ets-1 expression. TNF alpha and IL-1 alpha were the most potent c-ets-1 stimulators, inducing rapid (within 1 h) and long-lasting (19 h) increases of c-ets-1 mRNA and protein expression. In contrast, bFGF, EGF, and PDGF were mainly delayed stimulators, with maximal stimulation being detected by 19 h. In addition, these growth factors potentiated the rapid induction of c-ets-1 by TNF alpha. While all these factors were able to stimulate c-ets-1 expression, TGF beta was found to be ineffective. Using inhibitors of transcription and translation, we also found that increase of c-ets-1 mRNA by TNF alpha resulted from new transcription rather than from stabilization and did not require new protein synthesis. These results demonstrated that c-ets-1 is a new nuclear target for several factors and behaves as an early-response gene for TNF alpha.

Cells, Cultured↗

Changes in the expression of matrix proteases and of the transcription factor c-Ets-1 during progression of precancerous bronchial lesions.

Matrix proteases and the transcription factor c-Ets-1, which regulates in vitro stromelysin 1, collagenase 1, and urokinase type plasminogen activator gene promoters, are frequently expressed in invasive carcinomas. Using in situ hybridization and immunohistochemistry, we analyzed collagenase 1, stromelysins 1 and 3, matrilysin, urokinase type plasminogen activator, and c-Ets-1 gene expression on serial frozen sections of 39 intraepithelial bronchial lesions, including areas of hyperplasia, metaplasia, dysplasia, carcinoma in situ, and corresponding lung carcinomas in 13 patients. In intraepithelial lesions, expression of all matrix proteases was detected in epithelial cells. Conversely, in microinvasive or invasive lesions, a fibroblastic expression was observed. Collagenase 1 and matrilysin were expressed seldomly in intraepithelial lesions and frequently in carcinomas (p = 0.0016 and p < 0.0001, respectively). Stromelysin 1 was expressed inconsistently in 31% of intraepithelial lesions of all grades and in 50% of carcinomas. Stromelysin 3 and urokinase type plasminogen activator were expressed only, but frequently, in preinvasive lesions (dysplasia, carcinoma in situ) and in carcinomas. The expression of stromelysin 3 in fibroblasts started with dysplasia and carcinoma in situ, but was more frequent in invasive than preinvasive lesions (p = 0.0012). c-Ets-1 was more often expressed in carcinomas than in intraepithelial lesions (p < 0.0001) and was always expressed in fibroblasts. Comparing preinvasive lesions adjacent to or at a distance from squamous lung carcinoma, stromelysin 3 epithelial expression was more frequent in preinvasive lesions adjacent to invasive foci than in others (p = 0.036). We conclude that (a) both epithelial expression of matrix proteases in intraepithelial bronchial lesions and their stromal expression in microinvasive and invasive lesions suggest their role in lung tumor development; (b) c-Ets-1 does not act as a transcriptional activator for matrix proteases genes in preinvasion, although it might regulate collagenase 1 gene during lung tumor progression; and (c) matrix proteases might offer new therapeutic targets for chemoprevention of lung cancer.

Bronchial Neoplasms↗

Expression of c-ets-1 and uPA genes is associated with mammary epithelial cell tubulogenesis or neoplastic scattering.

Although the inductive interactions which trigger epithelial morphogenesis have been extensively described, little is known about the transcription factors involved in these processes. During mammary gland morphogenesis, we report the expression of the transcription factor c-ets-1 and one of its target genes uPA in mesenchymal cells during early stages of epithelial invasion, and later in epithelial cells themselves. In vitro studies show that both c-ets-1 and uPA mRNAs can be induced in cultured normal mammary epithelial cells in response to medium conditioned by MRC-5 fibroblasts. In contrast, invasive tumorigenic cell lines from the mammary epithelium express constitutively c-ets-1 and uPA while non-invasive tumorigenic cells do not. In three dimensional co-cultures in collagen gels, a preferential expression of these genes is detected in epithelial cells migrating through the gel either at the tips of normal ducts or in cancerous cells which are scattering. These genes are also expressed in the neighboring fibroblasts. In MRC-5 fibroblasts, conditioned media from tumorigenic epithelial cells induce more efficiently c-ets-1 and uPA mRNA accumulation than do conditioned medium from normal cells. These results suggest that epithelial-mesenchymal interactions trigger c-ets-1 and uPA expression in both compartments during mammary gland morphogenesis. The expression of the genes correlates with invasiveness of epithelial cells irrespective of their being normal or cancerous.

Animals↗

Invasive tumors induce c-ets1 transcription factor expression in adjacent stroma.

The stroma reaction plays a central role in tumor growth, invasion and metastasis. Tumor growth is dependent on angiogenesis and requires the vascular supply provided by new capillary blood vessels of the stroma. The expression of the gene encoding the transcription factor c-ets1 is localized within fibroblasts and endothelial cells of the stromal compartment. This expression correlates with the accumulation of transcripts for potential target genes such as collagenase I and stromelysin I in stromal fibroblasts surrounding malignant cells in invasive tumors. We suggest that c-Ets1 protein might regulate the transcription of the genes coding for matrix-degrading proteases necessary for both angiogenesis and tumor invasion.

Angiogenesis Inducing Agents↗

Expression of interstitial collagenase is restricted to skeletal tissue during mouse embryogenesis.

Collagenases are thought to be involved in physiological and pathological processes that require extracellular matrix remodeling. Using the in situ hybridization technique, we describe the expression of interstitial collagenase gene during mouse embryogenesis between E6.5 and E17. We demonstrate that interstitial collagenase expression is exclusively detected in one event, namely the onset of bone formation. Transcripts accumulate in hypertrophied chondrocytes, found in the mature cartilaginous matrix of long-bone growth plates or ribs, and in osteoblasts and/or in endothelial cells that have migrated into the shafts of developing long bones. The expression of the tissue inhibitor of metalloproteinases (TIMP-2) gene precedes the expression of interstitial collagenase in developing bones. These data suggest that interstitial collagenase plays a specific role in bone development and that the tight regulation of its activity during development is achieved not only by post-translational mechanisms with TIMPs, as previously suggested, but also at the transcriptional level.

Animals↗

Expression of c-ets-1, collagenase 1, and urokinase-type plasminogen activator genes in lung carcinomas.

The c-ets-1 transcription factor has been involved in the in vitro transactivation of matrix-degrading protease genes that might play an important role in tumor invasion. Using in situ hybridization, we analyzed serial frozen sections for c-ets-1, collagenase 1, and urokinase-type plasminogen activator gene expression in 54 lung carcinomas including 34 non-neuroendocrine carcinomas (18 squamous carcinomas, 10 adenocarcinomas, 3 large cell carcinomas, and 3 basaloids) and 20 neuroendocrine carcinomas (7 small cell lung carcinomas, 4 large cell neuroendocrine carcinomas, 4 well differentiated neuroendocrine carcinomas, and 5 carcinoids). c-ets-1 gene was expressed in stromal cells in 44/54 lung carcinomas including one metastasizing carcinoid. c-ets-1 transcripts were also detected in cancer cells more frequently in neuroendocrine than in non-neuroendocrine carcinomas (P = 0.0059) and in stages III and IV and metastasis more frequently than in stages I and II ( P = 0.0065). Collagenase 1 gene was expressed in 16/34 non-neuroendocrine tumors and in 1/20 neuroendocrine tumors, either in stromal (12/17) or in cancer cells (6/17). Urokinase-type plasminogen activator mRNAs were expressed in 45/54 lung carcinomas in stromal and/or cancer cells. In non-neuroendocrine tumors, c-ets-1 and collagenase 1 gene expressions in stromal cells were correlated. These results demonstrate that the transcription factor c-ets-1, collagenase 1, and urokinase-type plasminogen activator are involved in lung cancer invasion and suggest that c-ets-1 protein might transactivate collagenase 1 gene during tumor invasion.

Carcinoma↗

Stromal expression of c-Ets1 transcription factor correlates with tumor invasion.

The stroma reaction has an important role in tumor growth, invasion, and metastasis. In various invasive human carcinomas, as well as in a mouse model for tumor invasion, transcripts encoding the transcription factor c-Ets1 were detected within stromal fibroblasts, whereas they were absent in epithelial tumor cells. This expression of c-Ets1 was often increased in fibroblasts directly adjacent to neoplastic cells. Endothelial cells of stromal capillaries were also positive for c-Ets1 expression. In contrast, fibroblasts of corresponding noninvasive lesions and of normal tissues were consistently negative. In cultured human fibroblasts stimulated by basic fibroblast growth factor and tumor necrosis factor alpha, the expression of c-Ets1 correlated with the accumulation of transcripts for potential target genes, collagenase-1 and stromelysin-1. The same correlation was observed in some of the invasive carcinomas investigated. These results suggest that c-Ets1 participates in the regulation of tumor invasion in vivo.

Adult↗

The tyrosine hydroxylase gene is expressed in endoderm and pancreas of early quail embryos.

The initial expression of the gene encoding tyrosine hydroxylase (TH) was studied in the trunk of quail embryos by in situ hybridization. We detected the presence of quail TH mRNA on embryonic day 3.5 (E3.5) in the sympathetic ganglia and aortic plexus, both neural crest derived structures. In contrast, the TH gene was expressed much earlier in the endodermal layer of E2 embryos, i.e. from the 8-somite stage onwards. TH mRNA was found also in the pancreatic bud, an endoderm-derived structure. The TH protein and catecholamines were subsequently looked for in these structures. TH immunoreactivity was found in cells of E2 explanted endoderm, but no catecholamine histofluorescence was observed before or after a few days in culture. TH-positive cells were also detected in cultures of pancreatic rudiments, explanted from E3 to E6 quail embryos. We suggest that the TH-positive cells of the endoderm are the progenitors of the catecholaminergic cells of the pancreas and of the enterochromaffin cells of the gut. The hypothesis that the TH-positive cells of the endoderm are involved in the expression of the catecholaminergic phenotype by neural crest cells is discussed.

Animals↗

[How tumors abuse their host: the transcription factor c-ets1 and the regulation of tumor angiogenesis or invasion].

During their progression, epithelial tumors induce a stromal reaction essential for their development and for metastasis. In situ hybridization studies have revealed that the protooncogene c-ets1 is expressed in endothelial cells at the beginning tumor angiogenesis, and in stromal fibroblasts surrounding invasive tumors. C-ets1 encodes a transcription factor that may activate the transcription of genes encoding collagenase 1, stromelysin 1 and urokinase plasminogen activator, proteases involved in extracellular matrix degradation. A working hypothesis is that c-Ets1 takes part in regulating invasive processes by controlling the transcription of these genes. Experimental evidences that may confirm this hypothesis will be discussed.

Animals↗