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H C Bauer

Publications and source records attributed to H C Bauer.

114 records · Page 7Linked to original sources

Effect of prostaglandin E1 on the level of cAMP in bone marrow macrophages. Inhibition of phagocytosis and cell shape changes.

The effect of prostaglandins E1 (PGE1) and F2 alpha (PGF 2 alpha) on levels of cAMP, cell shape and phagocytosis of zymosan were examined. The addition of 10(-6) M PGE1 induced an immediate rise in the level of cAMP which fell again after 2.5 min. Phagocytosis was inhibited only after 60 min. of drug treatment. PGF 2 alpha did not show this effect. Neither db-cAMP or papaverine showed a similar effect on phagocytosis and cell shape to that produced by PGE1 treatment. Therefore, we conclude, that PGE1 does at least not exclusively act by changing cAMP levels, but rather directly influences cell membrane functions.

Animals↗

Preparation and fractionation of membrane vesicles of thymocytes after osmotic cell disruption.

The isolation of plasma membranes is often accompanied with a loss of sensitivity to stimulatory agents (e.g. mitogens). Changes in the structure of the cell membranes after cell breakage have also been reported. Concerning this problem, "mild" cell disruption conditions were tested by using osmotic shock. Different membrane fractions were isolated, resulting in an enrichment of plasma membranes in one fraction. All fractions were characterized by plasma membrane marker enzymes (alkaline phosphatase, gamma-glutamyltransferases), the amount of cholesterol, the molar ratio of cholesterol and phospholipid, by dodecyl sulfate-gelectrophoresis and by electronmicroscopy. Total balance sheets of the fraction were made for each of the different biochemical parameters. The enriched plasma membranes resulting by using the described method had also lost the sensitivity to the stimulatory effect caused by mitogens such as Concanavalin A.

Animals↗

Fractionation of membrane vesicles. II. A method for separation of membrane vesicles bearing different enzymes by free-flow electrophoresis.

Free-flow electrophoresis was used to subfractionate membrane vesicles from calf thymocyte plasma membranes. The fractionation resulted in a separation of vesicle populations bearing four different enzymes: alkaline nitrophenyl-phosphatase (orthophosphoric-monoester phosphohydrolase (alkalin optimum) EC 3.1.3.1), gamma-glutamyltransferase (EC 2.3.2.2), (Mg2+ + Na+ + K+)-ATPase (ATP phosphohydrolase, EC 3.6.1.3) and acyl-CoA:lysophosphatidylcholine acyltransferase (acyl-CoA:1-acylglycero-3-phosphocholine-O-acyltransferase, EC 2.3.1.23). The specific content of cholesterol and total phospholipid coincided with the distribution of membrane-bound protein. However, vesicles migrating towards the cathode had a higher molar ratio of cholesterol to phospholipid (0.75) compared to those migrating to the anode (0.55). Sodium dodecyl sulphate-gel electrophoresis of pooled vesicle fractions also demonstrates distinct differences in their protein pattern. Electron-micrographic thin sections show that the vesicle populations have a similar morphology and size distribution. These results are discussed in terms of heterogeneity of the original thymocytes, contamination with intracellular membranes and a heterogeneous structure of the plasma membrane.

1-Acylglycerophosphocholine O-Acyltransferase↗

Incorporation of beta-galactosidase-expressing endothelial cells into the skeletal muscle microvascular bed of mice.

Cloned murine endothelial cells (cEC) were used as a carrier system for introducing a foreign gene into the microvascular bed of the hind limb of inbred mice. cEC were transfected with a beta-galactosidase-neo fusion construct, which enables both selection for DNA uptake in the presence of G 418 and the staining of cells for beta-galactosidase activity. Transfected cEC adhered and integrated readily into confluent monolayers of nontransfected cEC (up to 26% of total cell number). Seeding lacZ-transfected cEC on explanted arteries revealed rapid adhesion of the cells (within minutes) to the intact endothelium. After injection of 10(6) transfected EC via the femoral artery into the microvascular bed of the hind limb their presence was documented by beta-galactosidase staining after various time periods (1 h to 4 wk). Implanted cEC were detected in numerous elements of the microcirculation both in frozen sections and in squash preparations of the hind limb muscle and in the femoral bone up to 4 wk after the injection. The microvascular bed of skeletal muscle of the mouse as a recipient site for transduced syngeneic endothelial cells is, thus, a suitable experimental model to study various strategies for somatic gene therapy.

Animals↗