PubMed Health⌕ Search

Biomedical subjects

G Pignaud

Publications and source records attributed to G Pignaud.

At least 37 records · Page 2Linked to original sources

Aortic endothelial cells in culture secrete glycoproteins reacting with blood platelets.

The culture medium of bovine aortic endothelial cells contains proteins which inhibit the aggregation of platelets induced by aortic microfibrils but not by type III collagen. From this medium, fibronectin, thrombospondin and a glycoprotein with MW of 128 Kd (GP 128), similar to a glycoprotein described in a microfibrillar extract from bovine aorta were separated by affinity and ion exchange chromatography. GP 128 was further purified by molecular sieve chromatography on SW 3000 column. GP 128 inhibited the aggregation of platelets by microfibrils. This suggests a role of GP 128 in the platelet/subendothelium interaction.

Amino Acids↗

Differentiation of the elastase-type protease of platelets from other elastases.

Elastase activities were determined near neutral pH on several specific substrates using platelet-derived preparations mixed with decreasing amounts of leukocytes. Activities were extrapolated to zero leukocyte content enabling the estimation of intrinsic platelet elastase activity. In contrast to human leukocyte elastase, metal chelating agents inhibited partly the elastase activity of the platelet extract and soybean trypsin inhibitor did not modify its activity. Serine active site titrants (phenylmethane sulfonyl fluoride) as well as acetyl-di-L-alanyl-L-propyl-L-valine chloromethylketone completely abolished the activity of platelet lysates. The platelet protease was purified from Triton X-100 platelet lysates. No cross-reactivity could be demonstrated by immunoelectrophoresis with either porcine pancreatic elastase or human leukocyte elastase using monospecific antisera. Applying gel electrophoresis, most of the elastase activity of the platelet protease migrated towards the anode, whereas the pancreatic and leukocyte elastases migrated towards the cathode. The anionic character of the platelet enzyme might explain its capacity to degrade better elastin treated with cationic detergents in contradistinction to other elastases which act better on anionic detergent-treated elastins.

Animals↗

Histochemical and ultrastructural characterization of subendothelial glycoprotein microfibrils interacting with platelets.

The interaction of human blood platelets with collagenase-treated rabbit subendothelium was studied by histochemical ultrastructural methods and by morphometric semi-quantitative analysis. Aortas were deendothelialized and incubated: 1) with a highly purified bacterial collagenase whose specificity was controlled; and 2) with the same collagenase followed by chymotrypsin. For histochemical studies, tannic acid, ruthenium red, and peroxidase-labeled Ricinus communis and concanavalin A were used. Electron microscopy showed that after digestion of fibrillar collagen by collagenase, adherent and aggregated platelets were observed on Ricinus communis-, concanavalin A-, and ruthenium red-positive glycoprotein microfibrils. After successive incubation with collagenase and chymotrypsin, the microfibrils disappeared. No platelets were observed on the remnant amorphous elastin. Morphometric analysis confirmed the interaction of platelets with collagenase-treated subendothelium. In addition, glycoproteins were extracted from collagenase-treated rabbit aortas using 5 M guanidine. Using an in vitro quantitative test, significant platelet adhesion to these glycoproteins was observed. Our results show an interaction between platelets and noncollagenic glycoprotein microfibrils.

Animals↗

Human blood platelet elastase and proelastase. Activation of proelastase and release of elastase after ahesion of platelets to collagen.

After an in vitro incubation of platelets with fibrillar collagen, their elastase activity is markedly and rapidly increased while proelastase decrease: proelastase is activated in situ into elastase which is released in its active form from the platelet. The activation of proelastase is likely due to the action of a trypsin-like enzyme present in the platelet. This protease has the same type of localization as proelastase and elastase: their highest activity is associated with light granules but part of these enzymes (or precursor) is also associated with the membranes. The mechanism of the arterial elastolysis induced by the platelets probably involves their adhesion to intimal thrombogenic surfaces (collagen) followed by a reaction during which proelastase would become available to the trypsin-like enzyme and would be activated into elastase directly released in the vessel wall.

Blood Platelets↗

Human blood platelet elastase and proelastase.

Platelet elastase has been differenciated from various protein fractions into a trypsin dependent form and a trypsin independent form. Trypsin independent elastase has been purified by affinity chromatography on cellulose elastin column as a pure protein raction of molecular weight: 26,000 ou SDS acrylamide gels. Trypsin dependent elastase has been purified by preparative acrylamide disc gel electrophoresis. This fraction, proteolysed (limited proteolysis) and activated by trypsin into active elastase, has been identified as the precursor (platelet proelastase) of platelet elastase. Its molecular weight is 28,000 before trypsin and 26,000 after trypsin.

Blood Platelets↗