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P Van Alten

Publications and source records attributed to P Van Alten.

4 recordsLinked to original sources

Evidence for the recycling nature of the fibronectin receptor of macrophages.

Plasma fibronectin (pFN) has been shown to mediate phagocytosis of several types of artificial particles and tissue debris by macrophages. In the present investigation some of the dynamic aspects of this receptor-mediated cellular process have been studied. Plasma fibronectin did not bind specifically to fibronectin (FN)-receptors of rat peritoneal macrophages at either 4 degrees C or 37 degrees C. On the other hand, pFN aggregated on the surface of gelatin-coated latex beads (gLtx) and 125I-labeled pFN covalently coupled to latex beads (pFN-Ltx) bound strongly to macrophages at both temperatures. Both of these particles were also internalized at 37 degrees C. Treatment of macrophages by chymotrypsin, thermolysin, or trypsin in a protein-free tissue culture medium did not affect either of the above reactions; however, pronase treatment strongly reduced both the binding and internalization of the pFN-coated particles. The pronase-treated macrophage monolayers in time regained their ability to bind and internalize pFN-gLtx when incubated in fresh tissue culture medium. Such recovery, however, did not take place when the medium contained cycloheximide. On the other hand, phagocytosis of pFN-gLtx was not affected directly by cycloheximide with untreated macrophages; this suggests that the FN-receptor recycles during sustained phagocytosis. This assumption was substantiated by the observations that some of the established lysosomotropic amines--i.e., chloroquine, dansylcadaverine, and dimethyldansylcadaverine--caused total inhibition of internalization without affecting the binding of particles to macrophages. Furthermore, chloroquine protected the FN-receptors against destruction by pronase. Together these results suggest that macrophage receptors for FN are protein, present both on the cell surface and intracellularly, and recycle between the plasma membrane and intracellular sites during phagocytosis.

Animals↗

Phagocytosis-promoting activity of avian plasma and fibroblastic cell surface fibronectins.

The purpose of this investigation was to determine whether fibronectin preparations from both chicken plasma and cell surface of fibroblasts can promote phagocytosis of gelatin-coated latex particles. Chicken plasma fibronectin was isolated (a) by ammonium sulfate fractionation, chromatography on Sepharose-4B followed by purification on a Sepharose-4B-heparin column; (b) by affinity chromatography on a Sepharose-4B-rat-antifibronectin column; (c) by affinity chromatography on Sepharose-4B-gelatin followed by molecular sieve separation on Sepharose-CL4B; (d) by a dual affinity chromatographic method using a Sepharose-4B-gelatin column and a Sepharose-4B-heparin column. Chicken cell surface fibronectin from fibroblast cultures was purified by ammonium sulfate precipitation followed by chromatography on Sepharose-CL4B. The purity of preparations was examined by polyacrylamide gel electrophoresis in the presence of sodium dodecylsulfate; all samples showing high purity. The opsonic activities of the preparations were measured by the uptake of 125I-labeled gelatin coated latex particles in conjunction with rat liver slice, and peritoneal macrophage monolayer systems. Both the plasma fibronectin and cell surface fibronectin preparations showed substantial opsonic activities in the test systems. Fresh chicken plasma did not reveal any phagocytosis promoting activity due to the presence of some unidentified inhibitor(s). The results showed that an opsonically active protein can be isolated from chicken plasma or serum and this protein is identical to plasma fibronectin. Furthermore, it could be concluded that cell surface fibronectin from chicken fibroblasts also can serve as an opsonin for gelatin coated particles.

Animals↗

A simple method for obtaining peritoneal macrophages from chickens.

A simple technique for inducing the production of peritoneal exudate cells within 3 to 4 days in chickens is described. In each 5 to 6 week old chicken, 5 to 8 ml of washed Sephadex particles suspension in saline (3%) were injected intraperitoneally. Three to 4 days later, peritoneal exudate cells were harvested, washed, suspended in Hank's solution, counted and adjusted to one million cells per ml. In each well of 4-chamber slide 1 ml of peritoneal cell suspension was incubated at 37 degrees C for 30 min. Cultures were then gently washed several times leaving a monolayer of glass adherent cells. The phagocytic activity of these adherent cells was examined using either latex particles or antibody-sensitized sheep erythrocytes. The monolayer cells were incubated with particles in Hank's solution (with excess particles in particle/peritoneal cell ratio) for 1 h at 37 degrees C. From 99.5 to 100% of the monolayer cells were found actively phagocytic for either the latex particles or sensitized erythrocytes or both. Adherent cell monolayers were cultivated in vitro for several weeks with no detectable decrease in their phagocytic activity.

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