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B C Marcus

Publications and source records attributed to B C Marcus.

5 recordsLinked to original sources

Prolonged hypoxia alters endothelial barrier function.

BACKGROUND: It is well recognized that hypoxia/reoxygenation and exposure to inflammatory mediators such as cytokines and neutrophils alter the barrier function of the vascular endothelium. The experiments we conducted tested whether hypoxia alone could produce changes in permeability and whether a prolonged period of hypoxia alters the surface expression of cell adhesion molecules. METHODS: Endothelial cells were cultured from human umbilical vein endothelial cells (HUVECs). Hypoxia was created by isolating the cells in a chamber through which 1% 02, 5% CO2, and 94% N2 were insufflated (30 min at 1/min). Oxygen tension was measured through oxygen-quenching phosphorescence. Hypoxia was maintained for 24 hours. Changes in endothelial permeability were measured by transendothelial electrical resistance (TEER). Endothelial leukocyte adhesion molecule 1 (ELAM-1) and intercellular adhesion molecule 1 (ICAM-1) expression were assessed by flow cytometry (mean +/ standard error of the mean [SEM]. RESULTS: Exposure of endothelial cells to hypoxia resulted in increased permeability between 6 and 24 hours, with the greatest decrease in TEER at 18 hours (63% +/ 3%; P < .05). Prolonged hypoxia produced no change in the surface expression of ELAM-1 or ICAM-1. CONCLUSIONS: Hypoxia alone produced a significant reversible alteration in endothelial permeability. However, this change was observed only under severe hypoxic conditions (eg, below 20 mm Hg); higher oxygen tensions (25 and 35 mm Hg) had no significant effect. Unlike observations made after cytokine exposure, hypoxic breakdown of endothelial barrier function was unassociated with up-regulation of either ELAM-1 or ICAM-1.

Cell Hypoxia↗

TNF-alpha and IL-1 upregulate membrane-bound and soluble E-selectin through a common pathway.

BACKGROUND: Endothelial cell adhesion molecules such as E-selectin promote the capture of neutrophils (PMN) in the microcirculation and initiate the inflammatory response. In contrast, when "shed" into the microcirculation, soluble E-selectin can bind PMN in the blood stream, reducing the number available for adhesion to injured tissue. These experiments were designed to better characterize the molecular response to cytokines and the balance between cell surface (bound) and soluble (unbound) E-selectin. METHODS: Cultured human umbilical veins, exposed to human recombinant TNF-alpha or IL-1 (10 pg/ml), were analyzed for E-selectin mRNA induction (Northern blot), E-selectin cell surface expression (flow cytometry), and sE-selectin release (ELISA). Transcriptional regulation was analyzed via Raf kinase dominant negative gene transfection. RESULTS: E-selectin mRNA expression was markedly increased at 2 h and sustained through 8 h. No further induction was noted at 12 h. Upregulation of cell surface E-selectin was noted (mean fluorescence) as early as 2 h for TNF-alpha (baseline, 12.28 +/- 1.32; TNF-alpha, 23.03 +/- 1.81) or 4 h for IL-1 (baseline, 12.28 +/- 1.32; IL-1, 70.00 +/- 3.04) with maximum expression at 6 h (TNF-alpha, 118.8+/-15; IL-1, 94.11 +/- 9. 34). Expression returned to baseline levels by 24 h. Soluble E-selectin (ng/ml) assays demonstrated later increases beginning at 12 h (TNF-alpha, 0.313 +/- 0.077; IL-1, 0.159 +/- 0.075) and continuing through 24 h (TNF-alpha, 0.340 +/- 0.062; IL-1, 0.157 +/- 0.030). Transfection of endothelial cells with Raf kinase 301 dominant negative gene resulted in proportionate decreases in the peak expression in both surface (bound) E-selectin (TNF-alpha, 51. 7%; IL-1, 29.6%) and sE-selectin (TNF-alpha, 49.2%; IL-1, 34.5%). CONCLUSION: The temporal sequence of late decreases in cell surface E-selectin accompanied by increases in soluble E-selectin indicates that the source of E-selectin in the microcirculation is shed receptors rather than synthesis of a different type of receptor. Enhancement of such "shedding" may decrease PMN adhesion to injured tissue and have therapeutic potential.

Cell Adhesion↗

Loss of endothelial barrier function requires neutrophil adhesion.

BACKGROUND: The inflammatory response is characterized by cytokine-induced up-regulation of endothelial adhesion molecules followed by polymorphonuclear neutrophil (PMN) adhesion and breakdown of tight junctions between cells. The purpose of this investigation was to determine whether PMN adhesion is an essential element in the alteration of endothelial permeability or whether cytokines alone can produce this change. METHODS: Human umbilical vein endothelial cells (HUVECs) were exposed to formylated met-leu-phe-activated PMNs. In a second series of experiments, PMNs were contained in a microporous membrane that allowed passage of secreted cytokines but not cells. Permeability was quantified by using transendothelial electrical resistance (TEER, ohm.cm2,) whereas expressions of two cell adhesion molecules (endothelial leukocyte adhesion molecule-1 [ELAM-1] and intercellular adhesion molecule-1 [ICAM-1]) were measured by flow cytometry (% shift). Cytokine production was monitored with enzyme-linked immunosorbant assays (picograms per milliliter). RESULTS: Stimulated PMNs secreted comparable amounts of cytokines whether allowed access to HUVECs or trapped in a microporous membrane (interleukin-1 alpha, 5.88 +/- 2.38 versus 3.65 +/- 1.84 pg/ml; tumor necrosis factor-alpha, 10.27 +/- 3.21 versus 6.61 +/- 1.82 pg/ml). Up-regulation of ELAM-1 and ICAM-1 was observed whether PMNs were free or restricted (52.97% +/- 2.14% versus 75.32% +/- 4.19% and 71.66% +/- 7.37% versus 73.66% +/- 4.32%, respectively). TEER was unchanged in controls and when PMNs were membrane restricted. In contrast, TEER decreased precipitously (51% +/- 5.9% of control, p < 0.05) if PMNs were allowed access to HUVECs. CONCLUSIONS: Cytokine secretion by PMNs is independent of endothelial contact and is sufficient to upregulate adhesion molecules. However, PMN adhesion is essential for the loss of endothelial barrier function, which leads to diapedesis of activated PMNs and eventual tissue injury.

Cell Adhesion↗

Cytokine-induced increases in endothelial permeability occur after adhesion molecule expression.

BACKGROUND: Transmigration of neutrophils (PMNs) through endothelial cell tight junctions is a critical stage in the tissue injury of ischemia-reperfusion (I/R). Although cytokines are released in I/R, it is unclear whether cytokines directly increase permeability or this phenomenon requires both expression of cell adhesion molecules and PMN adhesion-activation. METHODS: We exposed confluent monolayers of human umbilical vein endothelial cells to physiologic concentrations of interleukin-1 (10 pg/ml) and tumor necrosis factor-alpha (10 pg/ml) in the absence of PMNs. Tight junction permeability was quantified with both transendothelial electrical resistance and albumin flux, whereas expression of endothelial-leukocyte adhesion molecule-1 was measured by flow cytometry (t test p < 0.05). RESULTS: Stimulation with tumor necrosis factor-alpha or interleukin-1 produced maximal transendothelial electrical resistance decreases at 12 hours with return to baseline at 24 hours. Increases in albumin flux began at 6 hours, with maximum effects at 24 hours. These changes occurred soon after maximal expression of endothelial-leukocyte adhesion molecule-1 at 4 hours. CONCLUSIONS: Cytokines induced increases in both cell adhesion molecule expression and endothelial permeability. This sequence of events is consistent with direct cytokine effects on cytoarchitecture, because it occurred without the adhesion-activation of PMNs.

Albumins↗