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K Frasier-Scott

Publications and source records attributed to K Frasier-Scott.

4 recordsLinked to original sources

Tissue plasminogen activator messenger RNA levels increase in cultured human endothelial cells exposed to laminar shear stress.

Fluid shear stress can stimulate secretion of tissue plasminogen activator (tPA) by cultured human endothelial cells, while plasminogen activator inhibitor type-1 secretion remains unstimulated. To determine whether hemodynamically induced changes in tPA messenger RNA (mRNA) levels also occur, primary cultures from the same harvest of primary human umbilical vein endothelial cells were either maintained in stationary culture or exposed to arterial levels of shear stress (25 dynes/cm2) for 24 hours. Total cellular RNA was isolated from the shear stressed and stationary cultures and the relative levels of tPA mRNA and glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA were determined using a coupled reverse transcriptase/polymerase chain reaction method. As indicated by the amount of amplification product, tPA mRNA levels were many fold higher (greater than 10) in endothelial cells subjected to shear stress for 24 hours than in stationary controls. In contrast, mRNA levels for GAPDH were similar in control and shear stressed cells. The constancy of the measured GAPDH signal indicated that the tPA response was a selective effect of fluid shear stress. When a similar polymerase chain reaction method was used, the mRNA levels of basic fibroblast growth factor (bFGF) were found not to vary in comparison to GAPDH mRNA after 24 hours of shear stress. These results indicate that enhancement of the fibrinolytic potential of endothelial cells in response to hemodynamic forces could involve transcriptional events.

Base Sequence↗

Isoprenaline induced changes in ornithine decarboxylase activity and polyamine content in regions of the rat heart.

Isoprenaline stimulated increases in ornithine decarboxylase activity and polyamine content in cardiac tissues are implicated in macromolecular synthesis and cellular growth, but little is known about polyamine metabolism in functionally distinct regions of the heart. We therefore determined regional changes in ornithine decarboxylase activity and polyamine content in the right and left ventricles, septum, and the right and left atria of the rat following the administration of isoprenaline. An increase in ornithine decarboxylase specific activity and tissue polyamine content occurred in all cardiac regions, but the highest ornithine decarboxylase activity was found in the septum. Propranolol inhibited the isoprenaline stimulated ornithine decarboxylase activity in all the regions. Putrescine increased and peaked between 6 and 8 h in right and left ventricles and septum and declined to a control level by 12 h. Following a peak increase at 8 h, spermidine and spermine contents of both ventricles were maintained at peak levels, while those in the septum declined to control values by 12 h. There was no detectable putrescine in the right atria from the control experiments and in either atrium at 2 h following isoprenaline administration. Putrescine content peaked at 6 h in the right atrium and at 8 h in the left atrium and then declined. In both atria there was a peak increase in spermidine and spermine contents between 4 and 8 h. These results show that there is a regional variation in the accumulation of polyamines in the rat heart following isoprenaline administration.

Animals↗

Endothelial cell function in hemostasis and thrombosis.

Endothelial cells play a pivotal role in hemostasis and thrombosis. They produce a myriad of factors either associated with the membrane or released into the blood stream and the subendothelial matrix which are involved in various steps of hemostasis. The endothelial cell function is modulated by a diversified group of biologically active molecules, notably thrombin, vasoactive amines and cytokines. Mechanism and selectivity of the effects of these molecules differ and the difference may have important physiological implications. Most of the information is gathered through experiments performed in cultured endothelial cells. Availability of the cultured cells has greatly facilitated the understanding of endothelial cell biology. In vivo models, however, are still needed to understand how the endothelial cell function is modulated. Furthermore, as the cultured endothelial cells exhibit nor only species differences but also vascular origin difference in behavior and function, these factors should be carefully considered when designing experiments involving the use of cultured endothelial cells.

Animals↗

Influence of natural and recombinant interleukin 2 on endothelial cell arachidonate metabolism. Induction of de novo synthesis of prostaglandin H synthase.

We studied the effects of natural and recombinant human IL-2 (rIL-2) on secretion of prostacyclin (PGI2), vWf, and tissue-type plasminogen activator (tPA). IL-2 elicited a steady increase in PGI2 synthesis by cultured human umbilical vein endothelial cells (HUVECS) and bovine aortic endothelial cells but had no effect on vWf or tPA. Both purified natural IL-2 (nIL-2) and rIL-2 induced significant PGI2 synthesis. Substitution of the cysteine residue at position 125 of rIL-2 with serine or alanine led to loss of PGI2-stimulatory activity in HUVECS without affecting thymidine incorporation in lymphocytes. HPLC analysis of arachidonate metabolites detected predominantly 6 keto-PGF1 alpha (6KPGF1 alpha) peak. Treatment of cultured endothelial cells with cycloheximide and actinomycin D resulted in inhibition of 6KPGF1 alpha synthesis. The Western blot using a polyclonal antibody against PGH synthase revealed an increment in the 70-kD subunit of PGH synthase by nIL-2 and rIL-2, but not by alanine-substituted rIL-2. We conclude that IL-2 stimulated sustained PGI2 production by a mechanism that includes the de novo synthesis of PGH synthase. This mechanism for regulating AA metabolism probably has important physiologic implications.

6-Ketoprostaglandin F1 alpha↗