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At least 19 recordsLinked to original sources

Factor VIII-associated antigen in human lymphatic endothelium.

Lymphatic vascular endothelium both on tissue section and in culture exhibits positivity for Factor VIII-associated antigen although staining is generally less intense and more spotty than in comparable blood vascular endothelium. Lymphatic endothelium also exhibits Weibel-Palade bodies. Neither marker, therefore, reliably distinguishes blood vascular endothelium from lymphatic endothelium.

Antigens↗

Culture and characterization of bovine mesenteric lymphatic endothelium.

Lymphatic endothelial cells isolated from bovine mesenteric lymphatic vessels were cultured and characterized. Lymphatic endothelial cells grew as a monolayer displaying an elongated morphology in preconfluent primary cultures. When confluent, the cells exhibited a polygonal morphology to form a "cobblestone" pattern previously described for cultured vascular endothelium. All culture lymphatic endothelial cells expressed Factor VIII-related antigen and bound Ulex europaeus I lectin. Ultrastructurally, cultured lymphatic endothelium was characterized by the presence of Weibel-Palade bodies as well as the usual cytoplasmic organelles.

Animals↗

Rat gastric adenocarcinoma cell line BV9 avidly adheres to lymphatic endothelium under lymphatic flow condition.

Cancer cell adhesion to lymphatic endothelial cells (LEC) was examined under shear stress mimicking lymph flow. An established rat gastric adenocarcinoma cell line, BV9, was perfused over a primary cultured monolayer of LEC, which were explanted from the rat thoracic duct, and the adhesion pattern was observed. BV9 preferably adhered to LEC, at a level 8-fold greater than that to vascular endothelium in the unstimulated condition. When shear stress was increased after adhesion, a considerable number of BV9 on LEC withstood shear up to 50 dyn/cm2, while BV9 attached on vascular endothelium did not remain adherent under 5 dyn/cm2. Adhesion was significantly augmented by prestimulation of LEC with 10 ng/ml IL1-beta or 500 ng/ml TNF-alpha. Our study indicates high affinity between cancer cells and LEC, and suggests the possibility that lymph node metastasis arises from cancer cells adherent to LEC, which can be augmented by an inflammatory stimulus.

Adenocarcinoma↗

Homogeneity of mesothelial cells with lymphatic endothelium: expression of lymphatic endothelial markers by mesothelial cells.

BACKGROUND: Mesothelial cell monolayers cover the serous cavities and internal organs, and provide a protective low-friction interface between apposed organs and tissues. The mesothelium also regulates inflammation, fluid and cell exchange, and tissue repair in these compartments and possibly tumor metastasis. In the present study, a stable pleural mesothelial cell line (MIM) was isolated and characterized, and the expression of several lymphatic specific markers by these cells examined. METHODS AND RESULTS: MIM were isolated from mice stably expressing a temperature-sensitive SV40 large T antigen ('Immortomouse', strain: H-2K(b)-tsA58). These cells were compared with lymphatic endothelial cells (LEC) derived from the mesenteric adventitia of the Immortomouse. MIM and LEC expression of lymphatic-specific markers (Flt-4, LYVE-1, and Prox-1) was examined, and the tight junction protein (ZO-1) was studied by immunofluorescence and immunoblotting in these cells. RESULTS: LYVE-1, Prox-1, and Flt-4 were detected in both MIM and LEC, with Prox-1 and LYVE-1 more strongly expressed on LEC than MIM. Conversely, Flt-4 was more densely expressed on MIM than on LEC. Spatially, ZO-1 was prominent at MIM junctions, but was less well organized in LEC. CONCLUSION: MIM and LEC share several characteristic markers usually associated with lymphatic endothelium. MIM might be useful for studying the biology and pathology of mesothelial cells in vitro and help in the development of therapies for mesothelial-related diseases, such as mesothelioma and pleural effusion.

Animals↗

The organization of endocytotic vesicles in lymphatic endothelium.

The lymphatic endothelium from renal hilar lymphatics in the rat was subjected to qualitative and quantitative ultrastructural analysis with emphasis on the extent and disposition of its vesicular component. The uncoated endocytotic vesicles had an average maximum diameter of 0.073 micron and occupied 7% of the cytoplasm. There were approximately 21 vesicles in each cubic micrometer of cytoplasm. In standard electron microscopic preparations of glutaraldehyde-fixed endothelium 50% of the vesicles appeared to lie free within the cytoplasm. The remainder were seen to touch or open onto the luminal or abluminal surface of the endothelium. The degree to which intracytoplasmic endocytotic vesicles remained discrete or communicated with the plasma membrane was examined using tannic acid and ruthenium red. These substances specifically bind to charged molecules on the cell surface and identify membranes continuous with it. When this technique was applied to aldehyde-fixed tissue nearly 90% of the vesicles that were apparently free within the cell could be shown to retain a connection with the surface, approximately equal numbers communicating with either the luminal or abluminal surface. At least 15% of these vesicles existed as intercommunicating clusters. These results suggest that many vesicles are not simple discrete units, but rather form parts of chains that reach either luminal or abluminal surface. Thus, apparently discrete vesicles may be parts of vesicular chains cut in cross section. The possible relation between chemical fixation and this plan of vesicular organization is discussed and it is concluded that while chemical fixation may result in an overestimation of the numbers of intercommunicating vesicles, the qualitative aspects of vesicle disposition seem largely unaffected. Although the functional significance of our observations has yet to be determined, should this plan of vesicular organization apply to initial lymphatics as well, the concept of vesicular transport solely by random movement of discrete vesicles across lymphatic endothelium should be modified.

Animals↗

Cytochemical differentiation between blood and lymphatic endothelium: bovine blood and lymphatic large vessels and endothelial cells in culture.

Cytochemical differentiation between blood and lymphatic endothelium has been studied only in microvessels; 5'-nucleotidase (5'Nase) has been reported to be specific for lymphatic and alkaline phosphatase (ALPase) for blood endothelium. Adenylate and guanylate cyclase (AC and GC) have recently been proposed as lymphatic endothelial markers, but conflicting data exist. This study was designed to verify the presence of these enzymes in the endothelium of large vessels and to determine whether they are retained in endothelial cells (ECs) in culture. Segments of bovine mesenteric arteries, veins, and lymphatic collectors, and EC cultures obtained by collagenase treatment of the same vessels, were assayed for 5'Nase, ALPase, AC, and GC, and were observed by transmission electron microscopy. We found ALPase activity in blood and lymphatic vessels, and this was the only enzyme activity consistently retained under culture conditions. 5'Nase was found in lymphatic but not in blood endothelium, as previously reported for microvessels. AC and GC activity was found in blood but not in lymphatic endothelium. Hence, ALPase is not a useful marker to differentiate blood from lymphatic endothelium in large vessels, whereas 5'Nase is specific for lymphatic and AC and GC for blood endothelium. It is not clear why these enzyme activities are not expressed in culture.

5'-Nucleotidase↗

CLEVER-1 mediates lymphocyte transmigration through vascular and lymphatic endothelium.

Common lymphatic endothelial and vascular endothelial receptor-1 (CLEVER-1; also known as stabilin-1 or FEEL-1) is a large multifunctional glycoprotein implicated in scavenging, angiogenesis, and cell adhesion. Here we studied the function of human CLEVER-1 in leukocyte trafficking. Lymphatic vessels expressed CLEVER-1 constitutively in skin in vivo, whereas on vascular endothelium it appeared only upon inflammation. On isolated vascular endothelial cells, CLEVER-1 supported rolling and transmigration of peripheral blood mononuclear cells (PBMCs) under physiologically relevant laminar shear stress. Intriguingly, CLEVER-1 also mediated transmigration of leukocytes through cultured lymphatic endothelium under static conditions. Thus, synthesis of CLEVER-1 is differentially regulated on the 2 anatomically distinct vascular beds, and CLEVER-1 mediates the transmigration step of the leukocyte traffic in both of them. Notably, CLEVER-1 is the first adhesion molecule shown to be involved in the PBMC transmigration through the lymphatic arm of the immune system.

Capillaries↗

Weibel-Palade bodies and lymphatic endothelium: observations in the lymphatic vessels of normal and inflamed human dental pulps.

The Weibel-Palade bodies, cytoplasmic organelles characterizing endothelial cells, are abundant in lymphatic capillary endothelium of human dental pulp. Their number almost double in the lymphatic vessels of inflamed dental pulps. The data were discussed and compared with others concerning the demonstration of the presence of von Willebrand factor and P-selectin in the Weibel-Palade bodies of lymphatic vessels in mesentery. It is suggested that the increase in the number of Weibel-Palade bodies observed in dental pulp may be connected along with those in the lymphatic vessels to the function that these adhesive molecules play during inflammatory states.

Dental Pulp↗

Prox1 is a marker of ectodermal placodes, endodermal compartments, lymphatic endothelium and lymphangioblasts.

The lymphatic endothelium has mostly been thought to be derived by sprouting from specialized veins. Recently it has been shown that mice deficient for the homeobox transcription factor Prox1 are practically devoid of lymphatics. We have studied the expression of Prox1 mRNA and protein in chick embryos and human fetuses. In the chick, Prox1 is expressed in specific compartments of all germ layers. In the ectoderm, it is found in the neural tube, trigeminal, spinal and sympathetic ganglia and the retina, and also in placodal structures such as the lens, olfactory, otic, facial, glossopharyngeal and vagal placodes, and the apical ectodermal ridge. In the endoderm, Prox1 is a marker of hepatocytes, bile duct and pancreatic epithelium. In the mesoderm, weak expression is observed in cardiomyocytes, and strong expression in lymphatic endothelium. Identical expression domains are found in 19-week-old human fetuses. In day 6.5 chick embryos, there are several sites of contact of lymphatics with the jugular vein, which has a mixed endothelium of Prox1-positive and -negative cells. The only non-lymphatic endothelial cells expressing Prox1 are found on the concave side of the cardiac valves. To further analyse development of lymphatics, we studied early chick embryos and observed scattered Prox1-positive cells in the dermatome, giving rise to Prox1-positive lymphatic networks during subsequent development. Furthermore, the anlagen of the posterior lymph sacs and the paired thoracic duct can already be observed in day-4 chick embryos. Our studies show that lymphatics develop much earlier than previously described, and they mostly do not seem to be derived by sprouting from veins. In contrast, lymphangioblasts are present in the deep and superficial compartments of the early mesoderm, independently giving rise to the deep and superficial lymphatics.

Animals↗

Expression of immunoglobulin superfamily members on the lymphatic endothelium of inflamed human small intestine.

Previously, lymphatic endothelium of human tissue has been shown to express only platelet-endothelial cell adhesion molecule-1 (PECAM-1). In this study we examined the expression of immunoglobulin superfamily members on the lymphatic endothelium of human small intestine while in the presence of inflammatory cytokines. Lymphatic vessels were identified by using a cocktail of IgGs for desmoplakin I and II while the presence of inflammatory cytokines was determined by the expression of major histocompatibility complex (MHC) class II in the venules. As a result, lymphatic vessels in the tissue with venules expressing MHC class II expressed PECAM-1, intercellular adhesion molecule (ICAM)-1, ICAM-3, and vascular cell adhesion molecule-1 (VCAM-1). The expression of ICAM-3 and VCAM-1 was significantly stronger in lymphatic vessels than in blood vessels. The results suggest that inflamed lymphatic endothelium may allow more lymphocyte subpopulations to adhere to the endothelium than non-inflamed lymphatic endothelium, due to the expression of multiple adhesion molecules playing a role.

Aged↗

Comparison of the diagnostic accuracy of lymphatic endothelium markers: Bayesian approach.

Tumor lymphatic density is evaluated by means of specific lymphatic endothelium markers, and is a potential predictor of clinically meaningful outcomes. There are many claims on the postulated superiority of some of these markers to identify lymphatics, always in the absence of quantitative data. We therefore compared the diagnostic accuracy of the antibody against podoplanin and the commercially available D2-40, employing Bayesian statistics to account for the absence of a gold standard. We used the pan-endothelial marker CD34 to identify 23,542 distinct blood and lymphatic vessels in sections from 30 formalin-fixed, paraffin-embedded archival tissue blocks of head and neck squamous cell carcinoma specimens. We stained two adjacent sections with podoplanin and D2-40 and identified the continuum of each stained vessel in the sections with a comprehensive method. Overall, 1,864 vessels were stained with both markers, 119 only with podoplanin and 391 only with D2-40. Significantly more vessels with intraluminal red blood cells were stained with D2-40 compared to podoplanin (McNemar's P<0.0001). Both antibodies had extremely high specificity (99.7% (95% credible interval (CrI): 99.5-99.9%) and 98.8% (95% CrI: 98.3-99.5%) for podoplanin and D2-40, respectively) and very high sensitivity (92.6% (95% CrI: 86.1-97.9%) and 97.3% (95% CrI: 94.9-99.2%) for podoplanin and D2-40, respectively). Inferences were qualitatively similar when we took into account in the analyses the possibility that the two tests (antibodies) may be correlated. We calculated that 96.3% (95% CrI: 94.2-98.6%) of the vessels stained with podoplanin and 88.9% (95% CrI: 83.9-95.7%) of the vessels stained with D2-40 were truly lymphatics. These numbers were in agreement with the observed number of stained vessels without intraluminal red blood cells. Our results suggest that both antibodies are excellent lymphatic endothelium markers and that there may be little reason to prefer either of them in most settings.

Antibodies, Monoclonal↗

Immunohistochemical study on leukocyte adhesion molecules expressed on lymphatic endothelium.

Leukocyte adhesion molecules expressed on the lymphatic endothelium in human small intestine and submandibular lymph node were studied immunohistochemically. Lymphatic capillaries in the lamina propria, mucosal muscle layer, and submucosal connective tissue of the intestine and in the capsule of the lymph node showed strong expression of platelet-endothelial cell adhesion molecule-1 (PECAM-1). A few lymphatic capillaries that weakly expressed intercellular adhesion molecule-1 (ICAM-1) were found in the capsule of the lymph node but in the small intestine, no lymphatic capillaries expressed detectable amounts of ICAM-1. Lymphatic capillaries also did not express detectable amounts of endothelial cell-selectin in the small intestine and lymph node. When lymphocytes migrate from tissue into lymphatic capillaries, multiple adhesion molecules may not be required for the migration. PECAM-1, however, may contribute to adherence of lymphocytes to lymphatic endothelium and the expression of adhesion molecules on lymphatic endothelium may be different between tissues.

Aged↗

A comparative study of cultured vascular and lymphatic endothelium.

There is comparatively little knowledge of the structure and function of cultured lymphatic endothelium. A study was carried out to compare the intrinsic growth characteristics of cultured lymphatic endothelial cells with cultured endothelial derived from blood vessels. It was found that cultured lymphatic endothelium has growth requirements and growth characteristics similar to vascular endothelium. It also possesses FVIIIRA and Weibel-Palade bodies for specific identification. The results of this study have provided important base line data for subsequent studies of the pathobiology of lymphatic endothelium.

Animals↗

Lymphatic endothelium expresses PECAM-1.

The expression of adhesion molecules on the lymphatic endothelium of human small intestine and submandibular lymph node was studied immunohistochemically with the antibodies for selectin family and Ig superfamily members. In both small intestine and submandibular lymph node, lymphatic endothelium did not express intercellular adhesion molecule-1 and endothelial cell-selectin but expressed platelet-endothelial cell adhesion molecule-1 (PECAM-1). Though lymphatic vessels may not have a positive function in leukocyte rolling and adhesion, lymphatic endothelium may interact with leukocytes, with PECAM-1 playing a role.

Aged↗

The passage of macrophage and lymphocytes from the interstitium across the lymphatic endothelium of rat lacteals.

The passage of cells across the lymphatic endothelium of rat lacteals in both normal and non-pathological experimental conditions (fasting, lymphatic, stasis) was studied by means of serial thin sections and three-dimensional models. Two different pathways of transendothelial migration were observed: (1) macrophages enter the lymphatic lumen via the cytoplasm of endothelial cells, without involvement of intercellular junctions, whereas (2) lymphocytes migrate through "intraendothelial channels", dynamic structures organized by the lymphatic endothelium under physiological conditions.

Animals↗

Evidence for the origin of Kaposi's sarcoma from lymphatic endothelium.

Previous studies utilizing enzyme histochemistry, electron microscopy, and immunohistochemistry have failed to establish the cell of origin in Kaposi's sarcoma. The authors have rigorously tested the prevailing hypothesis that the lesion defined as Kaposi's sarcoma is derived from vascular endothelial cells. They use seven markers to characterize endothelial cells: three antigens (Factor VIII-related antigen, HLA-DR/Ia, macrophage/endothelial antigens), three enzymes (5'-nucleotidase, ATPase, alkaline phosphatase), and lectin binding (Ulex europaeus I). They applied the markers first to normal skin and lymph node, and then to biopsy specimens from 40 patients with Kaposi's sarcoma. Normal blood vessel endothelium was positive for all seven markers, but normal lymphatic endothelium was negative for all of the markers except 5'-nucleotidase and Ulex europaeus lectin. The neoplastic cells in 40 cases of Kaposi's sarcoma closely resembled those of normal lymphatic endothelium but not those of blood vessel endothelium. This suggests that Kaposi's sarcoma may originate in lymphatic endothelium.

5'-Nucleotidase↗

Lymphatic endothelium isolation, characterization and long-term culture.

Using a collagenase trypsin-EDTA treatment, we have been able to successfully isolate and grow primary cultures of the lymphatic endothelium (LEC) that were subcultured, frozen for storage, subsequently thawed with good recovery and growth, and serially subcultured. The morphological features of cultured LEC were consistent with that observed for the endothelium of intact lymphatic vessels. A prominent feature of growing cultures was the appearance of large vacuoles in the perinuclear region of the cytoplasm, which became filled with fluid and cell debris engulfed from the culture medium. The basal cell surface lacked a well defined basal lamina and anchoring filaments were observed extending from the basal plasmalemmal surface into the underlying substratum. LEC in cultures were also positive for Factor VIII-related antigen. However, specific granules, characteristic of Weibel-Palade bodies were not observed in ultrathin sections of confluent cultures. F-actin was identified in LEC cultures using fluorescein phalloidin, and in confluent cultures actin filaments were located at the periphery of the cell as a continuous circumferential thin band and short filamentous bundles in the central part of the cell. By using heparin and endothelial cell growth supplement in the culture medium we have been able to grow stable cultures of lymphatic endothelial cells that could be maintained when serially subcultured for over two years. These LEC cultures provide an in vitro model for investigating the function and biochemical properties of the lymphatic endothelium.

Animals↗