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Fred T Bosman - One of the best experts on this subject based on the ideXlab platform.
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immunohistochemical expression of endothelial markers CD31 cd34 von willebrand factor and fli 1 in normal human tissues
Journal of Histochemistry and Cytochemistry, 2006Co-Authors: Marc Pusztaszeri, Walter Seelentag, Fred T BosmanAbstract:Few systematic studies have been published comparing the expression and distribution of endothelial cell (EC) markers in different vascular beds in normal human tissues. We investigated by immunohistochemistry the expression of CD31, CD34, von Willebrand factor (vWF), and Fli-1 in EC of the major organs and large vessels. Tissue samples obtained from autopsies and biopsy specimens were routinely processed and stained immunohistochemically for CD31, CD34, and vWF. Biopsy material was also stained immunohistochemically for Fli-1, D2-40, and Lyve-1. The expression pattern of the markers was heterogeneous in some of the organs studied. In the kidney, fenestrated endothelium of the glomeruli strongly expressed CD31 and CD34 but was only focally positive or completely negative for vWF. Alveolar wall capillaries of the lung strongly stained for CD31 and CD34 but were usually negative for vWF. The staining intensity for vWF increased gradually with the vessel caliber in the lung. Sinusoids of the spleen and liver...
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immunohistochemical expression of endothelial markers CD31 cd34 von willebrand factor and fli 1 in normal human tissues
Journal of Histochemistry and Cytochemistry, 2006Co-Authors: Marc Pusztaszeri, Walter Seelentag, Fred T BosmanAbstract:Few systematic studies have been published comparing the expression and distribution of endothelial cell (EC) markers in different vascular beds in normal human tissues. We investigated by immunohistochemistry the expression of CD31, CD34, von Willebrand factor (vWF), and Fli-1 in EC of the major organs and large vessels. Tissue samples obtained from autopsies and biopsy specimens were routinely processed and stained immunohistochemically for CD31, CD34, and vWF. Biopsy material was also stained immunohistochemically for Fli-1, D2-40, and Lyve-1. The expression pattern of the markers was heterogeneous in some of the organs studied. In the kidney, fenestrated endothelium of the glomeruli strongly expressed CD31 and CD34 but was only focally positive or completely negative for vWF. Alveolar wall capillaries of the lung strongly stained for CD31 and CD34 but were usually negative for vWF. The staining intensity for vWF increased gradually with the vessel caliber in the lung. Sinusoids of the spleen and liver were diffusely positive for CD31. They were negative for CD34 in the spleen and only expressed CD34 in the periportal area in the liver. Fli-1 was expressed in all types of EC but also in lymphocytes. D2-40 stained lymphatic endothelium only. Lyve-1 immunostaining was too variable to be applied to routinely processed tissues. The expression of EC markers CD31, CD34, and vWF in the vascular tree is heterogeneous with a specific pattern for individual vessel types and different anatomic compartments of the same organ. D2-40 labels lymphatic EC only.
Anne Bouloumié - One of the best experts on this subject based on the ideXlab platform.
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Chemotaxis and differentiation of human adipose tissue CD34+/CD31- progenitor cells: role of stromal derived factor-1 released by adipose tissue capillary endothelial cells.
Stem Cells Stem Cells (Miamisburg), 2007Co-Authors: Coralie Sengenès, Alexandra Miranville, Marie Maumus, Sandra De Barros, Rudi Busse, Anne BouloumiéAbstract:The native CD34+/CD31- cell population present in the stroma-vascular fraction of human adipose tissue (hAT) displays progenitor cell properties since they exhibit adipocyte- and endothelial cell-like phenotypes under appropriate stimuli. To analyze the signals within hAT regulating their phenotypes, the influence of hAT-derived capillary endothelial cells (CECs) was studied on the chemotaxis and differentiation of the hAT-CD34+/CD31- cells. Conditioned medium from hAT-CECs led to a strong chemotaxis of the hAT-CD34+/CD31- cells that was inhibited with pretreatments with pertussis toxin, CXCR-4 antagonist, or neutralizing antibodies. Furthermore, hAT-CECs produced and secreted the CXCR-4 ligand, that is, the stromal derived factor-1 (SDF-1). Finally, hAT-CECs induced the differentiation of hAT-CD34+/CD31- cells toward an endothelial cell (EC) phenotype. Indeed, hAT-CECs and -CD34+/CD31- cell coculture stimulated in a two-dimensional system the expression of the EC CD31 marker by the hAT-progenitor cells and, in a three-dimensional approach, the formation of capillary-like structures via a SDF-1/CXCR-4 dependent pathway. Thus, the migration and differentiation of hAT progenitor cells are modulated by hAT-CEC-derived factors. SDF-1, which is secreted by hAT-derived CECs, and its receptor CXCR-4, expressed by hAT-derived progenitor cells, may promote chemotaxis and differentiation of hAT-derived progenitor cells and thus contribute to the formation of the vascular network during the development of hAT.
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chemotaxis and differentiation of human adipose tissue cd34 CD31 progenitor cells role of stromal derived factor 1 released by adipose tissue capillary endothelial cells
Stem Cells, 2007Co-Authors: Coralie Sengenès, Alexandra Miranville, Marie Maumus, Sandra De Barros, Rudi Busse, Anne BouloumiéAbstract:The native CD34/CD31 cell population present in the stroma-vascular fraction of human adipose tissue (hAT) displays progenitor cell properties since they exhibit adipocyte- and endothelial cell-like phenotypes under appropriate stimuli. To analyze the signals within hAT regulating their phenotypes, the influence of hAT-derived capillary endothelial cells (CECs) was studied on the chemotaxis and differentiation of the hAT-CD34/CD31 cells. Conditioned medium from hAT-CECs led to a strong chemotaxis of the hAT-CD34/CD31 cells that was inhibited with pretreatments with pertussis toxin, CXCR-4 antagonist, or neutralizing antibodies. Furthermore, hAT-CECs produced and secreted the CXCR-4 ligand, that is, the stromal derived factor-1 (SDF-1). Finally, hAT-CECs induced the differentiation of hAT-CD34/CD31 cells toward an endothelial cell (EC) phenotype. Indeed, hAT-CECs and -CD34/ CD31 cell coculture stimulated in a two-dimensional system the expression of the EC CD31 marker by the hATprogenitor cells and, in a three-dimensional approach, the formation of capillary-like structures via a SDF-1/CXCR-4 dependent pathway. Thus, the migration and differentiation of hAT progenitor cells are modulated by hAT-CEC-derived factors. SDF-1, which is secreted by hAT-derived CECs, and its receptor CXCR-4, expressed by hAT-derived progenitor cells, may promote chemotaxis and differentiation of hATderived progenitor cells and thus contribute to the formation of the vascular network during the development of hAT. STEM CELLS 2007;25:2269–2276
Fabio Malavasi - One of the best experts on this subject based on the ideXlab platform.
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cd38 CD31 interactions activate genetic pathways leading to proliferation and migration in chronic lymphocytic leukemia cells
Molecular Medicine, 2010Co-Authors: Silvia Deaglio, Semra Aydin, Maurizia Mello Grand, Tiziana Vaisitti, L Bergui, Giovanni Darena, Giovanna Chiorino, Fabio MalavasiAbstract:Human CD38 is a pleiotropic glycoprotein belonging to a family of enzymes/receptors involved in the catabolism of extracellular nucleotides. CD38-receptor activities are regulated through binding to the nonsubstrate ligand CD31. CD38 expression above a critical threshold is a negative prognostic marker for chronic lymphocytic leukemia (CLL) patients. Activation of CD38 by means of agonistic monoclonal antibodies or the CD31 ligand induces proliferation and immunoblast differentiation of CLL cells. Here we define the genetic signature that follows long-term in vitro interactions between CD38+ CLL lymphocytes and CD31+ cells. The emerging profile confirms that the CD31/CD38 axis activates genetic programs relevant for proliferative responses. It also indicates a contribution of this pathway to the processes mediating migration and homing. These results further support the notion that the CD31/CD38 axis is part of a network of accessory signals that modify the microenvironment, favoring localization of leukemic cells to growth-permissive sites.
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Expression of CD31 by cells of extensive ductal in situ and invasive carcinomas of the breast
The Journal of pathology, 2001Co-Authors: Anna Sapino, Silvia Deaglio, Massimo Bongiovanni, Paola Cassoni, Luisella Righi, Riccardo Arisio, Fabio MalavasiAbstract:CD31, an adhesion molecule expressed by endothelial cells, leukocytes, and platelets, is used in surgical pathology as a marker of normal and neoplastic vascularization. During the assessment of angiogenesis in breast carcinomas, CD31 expression was observed in a single case of large (5.2 cm diameter) high nuclear grade ductal carcinoma in situ (HG-DCIS) associated with poorly differentiated invasive ductal carcinoma (G3-IDC). Expression was limited to the cell membrane. This study focused on 32 HG-DCIS> or = 2 cm, either pure or associated with IDC. Cancer cells wereCD31(+) in 11 cases. Double staining using anti-CD31 monoclonal antibody (MAb) and anti-CD44 MAb, the anti-hyaluronate receptor, showed that foci of CD31(+) and CD44(-) tumour cells could be traced throughout the glandular tree, marking the intraductal diffusion of tumour up to Paget's cells at the nipple. The associated G3-IDC and their lymph node metastases were instead CD31(+) and CD44(+). CD31(+) tumours were oestrogen receptor (ER)(-), frequently p53(+) and c-erb-B2(+), and infiltrated by CD4(+) T lymphocytes. Normal and hyperplastic epithelia were constantly CD31(-). Other endothelial markers (e.g Factor VIII-RA and CD34) were not expressed by carcinoma cells, as was CD38, the CD31 ligand. In conclusion, CD31 expression is a feature acquired by breast cancer cells in the DCIS model. CD31 expression mainly correlates with tumour cells spreading within the ductal system. Finally, the invasive phenotype requires the co-expression of CD31 and CD44.
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Human myeloma cells express the CD38 ligand CD31
British Journal of Haematology, 1999Co-Authors: Antonella Vallario, Fabio Malavasi, Silvia Deaglio, Marco Chilosi, Fausto Adami, Licia Montagna, Federico Caligaris-cappioAbstract:Multiple myeloma (MM) plasma cells (PC) are CD38+. A ligand for CD38 is the adhesion molecule CD31. By flow cytometry and immunocytochemistry we have investigated whether malignant PC co-express CD38 and CD31. All 68 patients studied were CD38+. 14/14 monoclonal gammopathies of undetermined significance (MGUS) and 39/39 plasmacytic MM patients co-expressed CD38 and CD31 at high density. Only 1/11 plasmablastic MM and 1/4 plasma cell leukaemias (PCL) expressed CD31. These data indicated that PC malignancies co-expressed high levels of both CD38 and its ligand CD31, with the exception of plasmablastic MM and PCL.
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CD38 binding to human myeloid cells is mediated by mouse and human CD31
Biochemical Journal, 1998Co-Authors: L. Alberto Horenstein, Hannes Stockinger, A. Beat Imhof, Fabio MalavasiAbstract:Soluble forms of membrane receptors are emerging candidates as physiological regulators of leukocyte trafficking. In the present study, we found that the soluble form of the CD38 antigen (sCD38) bears a binding domain of low affinity for a cellular receptor on U937 cells. Cross-linking and peptide-mapping studies confirmed the physical association and the identification of the U937 receptor as a 130 kDa protein. The binding of sCD38 to the receptor was differentially inhibited by several monoclonal antibodies against the CD31 cell-adhesion molecule. Thus the interaction was analysed through direct association of soluble and membrane CD38 with soluble recombinant murine CD31 with three N-terminal and with all six extracellular Ig domains. Cross-linking experiments on U937 intact cells, and ligand blot assays of the immunoprecipitated CD38 molecule, indicated that (i) the recognized epitope is determined by the tertiary structure of the molecule, and that (ii) the binding domain involved resides in the ectocellular portion of the CD31 molecule, more precisely in the first three N-terminal domains. A comparative functional activity between murine and human CD31 was also explored. The data presented suggest that (i) human CD31 bears a highly functional similarity with its murine counterpart, as it is a receptor in myeloid cells with more than one ligand (the alphavbeta3 integrin and the CD38 molecule), and that (ii) the activity of sCD38 as decoy molecule for CD31 may play an important role in cell-cell interactions in physiological and pathological conditions.
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human cd38 adp ribosyl cyclase is a counter receptor of CD31 an ig superfamily member
Journal of Immunology, 1998Co-Authors: Silvia Deaglio, Massimo Morra, Roberto Mallone, Clara M Ausiello, Elisabeth Prager, G Garbarino, Umberto Dianzani, Hannes Stockinger, Fabio MalavasiAbstract:Human CD38 is a cell surface molecule involved in the regulation of lymphocyte adhesion to endothelial cells. This suggests that HUVEC bear a ligand(s) for CD38 on the cell surface. By means of the mAb Moon-1, which specifically inhibits CD38-mediated cell adhesion, we have identified a trans-membrane 130-kDa molecule acting as a ligand for CD38. Here, we report that the molecule recognized by the Moon-1 mAb is CD31, a member of the Ig superfamily. This conclusion is based on 1) cross-inhibition assays between Moon-1 and reference anti-CD31 mAbs; 2) sequential immunoprecipitation experiments using Moon-1 and known anti-CD31 mAbs, and 3) reactivity of the Moon-1 mAb with CD31 transfectants. Further, CD31 and CD38 cognate interactions were found to modulate heterotypic adhesion as well as to implement cytoplasmic calcium fluxes identical to those obtained by means of agonistic anti-CD38 mAbs. Other effects tested included the synthesis of messages for a panel of cytokines, markedly increased upon receptor-ligand interactions. These results suggest that the interplay between CD38 and its ligand CD31 is an important step in the regulation of cell life and of the migration of leukocytes (and CD38+ cancer cells) through the endothelial cell wall.
Marc Pusztaszeri - One of the best experts on this subject based on the ideXlab platform.
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immunohistochemical expression of endothelial markers CD31 cd34 von willebrand factor and fli 1 in normal human tissues
Journal of Histochemistry and Cytochemistry, 2006Co-Authors: Marc Pusztaszeri, Walter Seelentag, Fred T BosmanAbstract:Few systematic studies have been published comparing the expression and distribution of endothelial cell (EC) markers in different vascular beds in normal human tissues. We investigated by immunohistochemistry the expression of CD31, CD34, von Willebrand factor (vWF), and Fli-1 in EC of the major organs and large vessels. Tissue samples obtained from autopsies and biopsy specimens were routinely processed and stained immunohistochemically for CD31, CD34, and vWF. Biopsy material was also stained immunohistochemically for Fli-1, D2-40, and Lyve-1. The expression pattern of the markers was heterogeneous in some of the organs studied. In the kidney, fenestrated endothelium of the glomeruli strongly expressed CD31 and CD34 but was only focally positive or completely negative for vWF. Alveolar wall capillaries of the lung strongly stained for CD31 and CD34 but were usually negative for vWF. The staining intensity for vWF increased gradually with the vessel caliber in the lung. Sinusoids of the spleen and liver...
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immunohistochemical expression of endothelial markers CD31 cd34 von willebrand factor and fli 1 in normal human tissues
Journal of Histochemistry and Cytochemistry, 2006Co-Authors: Marc Pusztaszeri, Walter Seelentag, Fred T BosmanAbstract:Few systematic studies have been published comparing the expression and distribution of endothelial cell (EC) markers in different vascular beds in normal human tissues. We investigated by immunohistochemistry the expression of CD31, CD34, von Willebrand factor (vWF), and Fli-1 in EC of the major organs and large vessels. Tissue samples obtained from autopsies and biopsy specimens were routinely processed and stained immunohistochemically for CD31, CD34, and vWF. Biopsy material was also stained immunohistochemically for Fli-1, D2-40, and Lyve-1. The expression pattern of the markers was heterogeneous in some of the organs studied. In the kidney, fenestrated endothelium of the glomeruli strongly expressed CD31 and CD34 but was only focally positive or completely negative for vWF. Alveolar wall capillaries of the lung strongly stained for CD31 and CD34 but were usually negative for vWF. The staining intensity for vWF increased gradually with the vessel caliber in the lung. Sinusoids of the spleen and liver were diffusely positive for CD31. They were negative for CD34 in the spleen and only expressed CD34 in the periportal area in the liver. Fli-1 was expressed in all types of EC but also in lymphocytes. D2-40 stained lymphatic endothelium only. Lyve-1 immunostaining was too variable to be applied to routinely processed tissues. The expression of EC markers CD31, CD34, and vWF in the vascular tree is heterogeneous with a specific pattern for individual vessel types and different anatomic compartments of the same organ. D2-40 labels lymphatic EC only.
Coralie Sengenès - One of the best experts on this subject based on the ideXlab platform.
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Chemotaxis and differentiation of human adipose tissue CD34+/CD31- progenitor cells: role of stromal derived factor-1 released by adipose tissue capillary endothelial cells.
Stem Cells Stem Cells (Miamisburg), 2007Co-Authors: Coralie Sengenès, Alexandra Miranville, Marie Maumus, Sandra De Barros, Rudi Busse, Anne BouloumiéAbstract:The native CD34+/CD31- cell population present in the stroma-vascular fraction of human adipose tissue (hAT) displays progenitor cell properties since they exhibit adipocyte- and endothelial cell-like phenotypes under appropriate stimuli. To analyze the signals within hAT regulating their phenotypes, the influence of hAT-derived capillary endothelial cells (CECs) was studied on the chemotaxis and differentiation of the hAT-CD34+/CD31- cells. Conditioned medium from hAT-CECs led to a strong chemotaxis of the hAT-CD34+/CD31- cells that was inhibited with pretreatments with pertussis toxin, CXCR-4 antagonist, or neutralizing antibodies. Furthermore, hAT-CECs produced and secreted the CXCR-4 ligand, that is, the stromal derived factor-1 (SDF-1). Finally, hAT-CECs induced the differentiation of hAT-CD34+/CD31- cells toward an endothelial cell (EC) phenotype. Indeed, hAT-CECs and -CD34+/CD31- cell coculture stimulated in a two-dimensional system the expression of the EC CD31 marker by the hAT-progenitor cells and, in a three-dimensional approach, the formation of capillary-like structures via a SDF-1/CXCR-4 dependent pathway. Thus, the migration and differentiation of hAT progenitor cells are modulated by hAT-CEC-derived factors. SDF-1, which is secreted by hAT-derived CECs, and its receptor CXCR-4, expressed by hAT-derived progenitor cells, may promote chemotaxis and differentiation of hAT-derived progenitor cells and thus contribute to the formation of the vascular network during the development of hAT.
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chemotaxis and differentiation of human adipose tissue cd34 CD31 progenitor cells role of stromal derived factor 1 released by adipose tissue capillary endothelial cells
Stem Cells, 2007Co-Authors: Coralie Sengenès, Alexandra Miranville, Marie Maumus, Sandra De Barros, Rudi Busse, Anne BouloumiéAbstract:The native CD34/CD31 cell population present in the stroma-vascular fraction of human adipose tissue (hAT) displays progenitor cell properties since they exhibit adipocyte- and endothelial cell-like phenotypes under appropriate stimuli. To analyze the signals within hAT regulating their phenotypes, the influence of hAT-derived capillary endothelial cells (CECs) was studied on the chemotaxis and differentiation of the hAT-CD34/CD31 cells. Conditioned medium from hAT-CECs led to a strong chemotaxis of the hAT-CD34/CD31 cells that was inhibited with pretreatments with pertussis toxin, CXCR-4 antagonist, or neutralizing antibodies. Furthermore, hAT-CECs produced and secreted the CXCR-4 ligand, that is, the stromal derived factor-1 (SDF-1). Finally, hAT-CECs induced the differentiation of hAT-CD34/CD31 cells toward an endothelial cell (EC) phenotype. Indeed, hAT-CECs and -CD34/ CD31 cell coculture stimulated in a two-dimensional system the expression of the EC CD31 marker by the hATprogenitor cells and, in a three-dimensional approach, the formation of capillary-like structures via a SDF-1/CXCR-4 dependent pathway. Thus, the migration and differentiation of hAT progenitor cells are modulated by hAT-CEC-derived factors. SDF-1, which is secreted by hAT-derived CECs, and its receptor CXCR-4, expressed by hAT-derived progenitor cells, may promote chemotaxis and differentiation of hATderived progenitor cells and thus contribute to the formation of the vascular network during the development of hAT. STEM CELLS 2007;25:2269–2276