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Y Legrand

Publications and source records attributed to Y Legrand.

At least 55 records · Page 3Linked to original sources

[Arterial subendothelial structures: anatomy, biochemistry, functions].

This review summarizes the main structural and biochemical features of the fibrillar constituents of the subendothelial layers of the arterial wall. Several constituents are directly identified by various histochemical methods and electron-microscopic studies. (1) The microfibrils (MF), stained by tannic acid, cationic stains such as ruthenium red, and various peroxidase-labeled lectins are mostly found in association with elastin within the internal elastic lamina (IEL). They have been characterized by chemical analysis as acidic glycoproteins, hydrolyzed by a variety of proteases, but resistant to collagenases. The endothelial cells seem to participate in their biosynthesis. (2) Elastin (El), which is the main constituent of the IEL, forms a wide, concentric, electron-lucent, tannic-acid-stainable zone. Fibrous El results from the association of tropoelastin (or proelastin) molecules by intermolecular cross-linkage. During the elastigenesis, this cross-linkage occurs directly between tropoelastin molecules which have been previously sterically oriented by the MF probably synthetized by the same cells (smooth muscle cells and possibly endothelial cells). (3) Interstitial collagen forms sparse fibers characterized by their cross-striation (with a periodicity of 640 A). They are relatively resistant to most proteolytic enzymes, except collagenases. They result from the intermolecular cross-linkage of rigid molecules, resulting themselves from the intramolecular cross-linkage of three helical alpha chains as a triple helix. The interstitial subendothelial collagen has been identified by indirect immunofluorescence as a type III collagen. The same technique has also been used to detect type IV collagen and fibronectin. This glycoprotein could play a role in the attachment of the endothelial cells to the fibrillar network of the subendothelium, despite an affinity which is greater toward denatured collagen than toward native collagen. One of the most important functions of the subendothelium is its role in thrombogenesis, in which both MF and collagen are involved. In type III collagen, this property is linked to the preservation of an ordered structure in which a 9-amino acids fragment, localized in the central part of each chain, could bear an adhesion site.

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↗

Two simple methods for the quantitative evaluation of platelet adhesion to collagen.

14C serotonine labelled platetel rich plasma (PRP) incubated with fibrillar collagen is either gel filtered through a Sepharose 2B column (Sepharose test) or centrifugated on a 23% Ficoll layer (Ficoll test). In the Sepharose test, the adhesion is quantified by the determination of the per cent yield of free platelets eluted from the column and the release by a quantitative evaluation of the 14C serotonin. In the Ficoll test, the released seroton is measured from the distribution of radioactivity in the different layers (supernatant plasma, platelets adherent to collagen, Ficoll, platelet pellet) of the tube after centrifugation. Both methods are rapid and quite reproducible.

Carbon Radioisotopes↗

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↗