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R Garrone

Publications and source records attributed to R Garrone.

At least 73 records · Page 4Linked to original sources

Anchorin CII, a collagen-binding chondrocyte surface protein of the calpactin family.

In an attempt to identify collagen-binding proteins on the chondrocyte surface, a protein of Mr 34KD, called Anchorin CII was isolated from chondrocyte membranes by affinity chromatography on type II collagen sepharose (Mollenhauer & von der Mark, 1983). The protein was localized on the chondrocyte surface by immunofluorescence labeling using a specific rabbit antibody (Mollenhauer et al., 1984), by immunogold labeling and by cell surface iodination (Pfäffle et al., 1988). Fab'fragments of anti anchorin CII reduced the binding of chondrocytes to type II collagen substrates (Mollenhauer et al., 1984). Analysis of the complete primary structure of anchorin CII revealed 4 repetitive domains of each 70-80 amino acid residues, and the absence of hydrophobic transmembrane sequences or signal peptides (Fernández et al., 1988). Thus, anchorin CII is another member of the calpactin/lipocortin/annexin family, although most other members of this family are located strictly intracellularly. Similar to lipocortin I, however, anchorin CII can be identified extracellularly, e.g. in the culture medium of chondrocytes and fibroblasts (Pfäffle et al., 1988). Here we report on further studies on sequence homologies to other annexins, and on the Ca(++)- and phospholipide binding of this protein.

Amino Acid Sequence↗

Problems in the immunolocalization of type IX collagen in fetal calf cartilage using a monoclonal antibody.

Monoclonal antibodies were prepared against the pepsin-resistant fragments (X1-X3) of bovine type IX collagen. One of the five hybridomas that gave a positive reaction in an enzyme-linked immunosorbent assay was selected (H1a) for structural analysis and immunolocalization of type IX collagen. The location of the epitope for H1a was deducted from immunoblots and electron microscopic observations after rotary shadowing. The H1a antibody binds to one end of the longest X2, X3, X4 molecules, and preferentially 40-55nm from one end of X1 molecules thus, on or near the noncollagenous domain, NC2. Different immunolocalizations of type IX collagen in the superficial, middle and deep zones of fetal calf epiphyseal cartilage were observed depending on the thickness of the section and on hyaluronidase digestion conditions. In the middle and deep zones, staining with H1a throughout the matrix was obtained only with thin sections (5 microns) and digestion for 1 h at 37 degrees C. With thick sections (15 microns) or with digestion for 1 h at 24 degrees C, staining was restricted to the pericellular regions. Staining throughout the matrix was obtained in the superficial zone under all experimental conditions. Without hyaluronidase treatment, no immunofluorescent staining was seen with either H1a or polyclonal antibody to type II collagen, indicating that type IX collagen is present throughout the matrix in the different zones of fetal calf cartilage. This result is in good accordance with the recent demonstration of common cross-links between type II and type IX collagen in chicken and bovine cartilage. However, the preferential unmasking of type IX collagen antigenic sites in the pericellular regions of middle and deep zones of fetal calf cartilage does not preclude the presence in that region of a special pericellular organization of the collagenous network.

Animals↗

Biosynthesis, secretion and extracellular localization of anchorin CII, a collagen-binding protein of the calpactin family.

The amino acid sequence of anchorin CII, a collagen-binding protein isolated originally from chondrocyte membranes, was previously determined by sequencing of cDNA and proteolytic fragments of the protein. Computer analysis of the protein sequence revealed four internal repeats of approximately 70-80 residues, each containing a highly conserved consensus sequence of 17 residues. These repeats show considerable homology with sequences in human and bovine calpactin, lipocortin, endonexin and protein II, which are members of a family of Ca2+- and phospholipid-binding proteins, as well as major substrates of tyrosine kinases. While these proteins have been located at the inner side of the plasma membrane of fibroblasts and epithelial cells, here we present experimental evidence that anchorin CII is at least partially released from cells and binds to the outer cell surface. Biosynthesis studies in cell-free systems and in cell culture indicate that anchorin CII is not processed, which is consistent with the absence of signal sequences from the protein. Yet, pulse-chase experiments show that anchorin is released into the culture medium of fibroblasts after 30 min, and in chondrocyte cultures after 20 h. Anchorin CII was located to the outer cell surface of chondrocytes by lactoperoxidase-catalyzed cell surface iodination as well as by antibody labeling both at light- and electron-microscopical level. The pericellular localization of anchorin CII is consistent with the notion that this protein is involved in the interaction of chondrocytes and fibroblasts with extracellular collagen.

Amino Acid Sequence↗

Retention of carboxypropeptides in type-II collagen fibrils in chick embryo chondrocyte cultures.

An antibody reacting with the C-propeptide of chick type-II procollagen was used in an attempt to localize this terminal extension of the procollagen molecule (by immunogold labelling) during early collagen fibrillogenesis in chondrocyte cultures. After 2 days in culture the chondrocytes were surrounded by pericellular type-II collagen, as demonstrated by an indirect immunofluorescence labelling technique. An electron microscopy study of these cultures showed that the collagen fibrils were thin (approximately 15 nm diameter), with a poorly visible cross striation, sometimes enhanced by slight thickenings. The antibody against the C-propeptide of type-II procollagen labelled most of the collagen fibrils, according to a very regular pattern constituting a 60 nm periodicity. After 3 days the label was still present on the pericellular collagen fibrils but disappeared from the collagen fibrils of the extracellular matrix. Our results indicate that the C-propeptide of type-II procollagen is retained in the newly formed fibrils.

Animals↗

Changes in location of type I collagen synthesis in two stages of fetal calf skin as revealed by in situ hybridization.

The distribution of sites of type I collagen gene expression was studied in frozen sections of skin of 4 and 9 month-old calf fetuses by in situ hybridization using a human pro-alpha 1 type I collagen cDNA. The labelling varied with the different layers of the dermis and with the developmental stage considered. In the 4 month old fetus skin, the label appeared concentrated in the upper layer of the dermis at the lewel of the hair follicles. In the 9 month-old fetus skin, the difference of labelling between upper papillary dermis and lower dermis was less marked. Comparatively the distribution of the extracellular type I collagen was determined by indirect immunofluorescence. This collagen appeared present throughout the whole dermis with slight variations at 4 months, where there was less extracellular collagen near the hair bulbs. These results are in agreement with the idea that the collagen synthesis follows cutaneous differentiation. In addition, they support the hypothesis that collagen is deposited once morphogenetic events have occurred and plays thus a stabilizing role in formation of cutaneous appendages.

Animals↗

[Ultrastructural aspects of collagen].

Collagen knowledge is relevant to the combination of three technologies: biochemistry, crystallography and ultra-structural studies. Its fibrillar nature has been early recognised by electron microscopy. The author presents the various ultra-structural aspects of collagen according to the various known types. Fibrillar, micro-fibrillar structures are described as well as basement membranes.

Amino Acid Sequence↗

Further biochemical and physicochemical characterization of minor disulfide-bonded (type IX) collagen, extracted from foetal calf cartilage.

Minor disulfide-bonded collagen (previously termed X1-X7 and now called type IX collagen) was isolated from foetal calf cartilage after pepsin treatment. At least three native fractions, containing, respectively, the X1X2X3, X4, and X5X6X7 chains, were separated; and from further biochemical and physicochemical experiments (differential scanning calorimetry, electrical birefringence, rotary shadowing), we propose a tentative model for their organization within a parent molecule. X1 and X2 are molecules composed of three chains of apparent Mr 62,000 and 50,000 linked by interchain disulfide bonds and containing pepsin-sensitive regions. The cleavage of at least three of these sites, present within X2, gives rise to the X3 and X5X6X7 fractions composed of molecules 80-100 nm and 40-55 nm in length, respectively. The X5X6X7 fraction is not digested by pepsin at 30 degrees C owing to its high thermal stability (certainly explained by its high hydroxyproline + proline content). This organization is in good accordance with that proposed for chicken cartilage type IX collagen; differences could only exist in the number and (or) the location of the pepsin-sensitive sites.

Animals↗

An ultrastructural study of the contact between type I collagen assemblies and the induced human platelet aggregates.

Several type I collagen assemblies have been tested for their ability to induce platelet aggregation: a molecular solution, native and reconstituted native-type fibrils, segment long spacing aggregates (SLS) and an unordered collagen multimer. The ultrastructure of the inducer has been observed before its introduction into the platelet suspension as well as within the final aggregates. The following results have been obtained: 1) platelet aggregation was induced by the monomeric solution of collagen only after a long lag phase. While the original solution did not contain fibrillar elements, the platelet aggregates were in contact with collagen filaments showing a faint banding pattern. The results confirm that the longer lag time recorded is necessary for the collagen to polymerize and that the monomeric collagen actually does not induce platelet aggregation; 2) native and reconstituted native-type fibrils, SLS and unordered collagen multimer similarly induce platelet aggregation and were not modified during the course of this phenomenon; 3) although the general ultrastructure of the contacts between platelet and collagen assemblies were similar, a difference was noted in the extent of contact: a focal zone with native-type fibrils, numerous zones of contact with SLS and very extensive contact with unordered multimer. These results suggest that the combination of three factors are necessary to trigger platelet activation by collagen: the nature of the active sites on collagen, the density of these sites and the geometry of the collagen assembly.

Animals↗

Specific binding and biological effects of tumor promoting phorbol esters on sponges.

Sponges grown in the presence of 12-O-tetradecanoyl phorbol-13-acetate (TPA) show deep alterations of their structure and development. Their aquiferous system (flagellated cells and canals) is largely altered and the tissues show an unusually high cell density. This focalized effect of TPA on the aquiferous system seems specific and is reversible at low concentrations (100 ng/ml). A toxic, non-specific effect is also noted, particularly at high concentrations (5000 ng/ml). Using 3H-phorbol-12, 13-dibutyrate (3H-PDBu), we demonstrate a class of specific binding sites for phorbol esters in the homogenates of sponges. These binding sites have high affinity (Kd = 26.0 nM) for PDBu and at saturation about 20 pmoles of 3H-PDBu is bound per mg protein of sponge homogenates. The binding of 3H-PDBu was inhibited by other phorbol esters and their congeners, and there was a good correlation between their potency in binding inhibition and their tumor promoting activity. It is concluded that sponges have a class of specific saturable and high affinity receptors for phorbol esters and that there is a very high conservation of these receptors during evolution. Such specific binding may be responsible for subsequent biological effect of TPA on sponges.

Animals↗

A routine method for contrasting elastin at the ultrastructural level.

A reliable, simple, and inexpensive method for ultrastructural investigation of elastin is described. This method uses uranyl acetate dissolved in absolute methanol, followed by an optional lead citrate counterstain. The procedure was tested on a number of animal and human tissues that had been fixed and processed differently.

Animals↗

A freeze-fracture and thin section study of the interaction of blood platelets with native type I collagen fibrils.

The membranes of non-activated and activated human blood platelets have been studied with freeze-fracture and conventional electron microscopy. Aggregated platelets activated by ADP or by native collagen fibrils did not show any intramembrane particle clustering. No intramembrane modification is detectable at the contact regions with collagen fibrils. However, a local densification of the cortical cytoplasm is noted in thin sections where platelets make contact with collagen fibrils. These results suggest that either the membrane receptor for collagen is not visualized by freeze-fracturing or that, as suggested previously, the binding site on collagen may not have a specificity and affinity as high as expected from a conventional receptor-ligand interaction.

Blood Platelets↗

Fine structures of sponge cell membranes: comparative study with freeze-fracture and conventional thin section methods.

Freeze-fracture replicas of sponge cell membranes revealed in general a low density of intramembranous particles, with the exceptions of the membrane (silicalemma) surrounding the siliceous spicules in Ephydatia and the membranes of spherulous cells in Chondrosia. In addition, several types of particle arrangements were observed. A classical necklace is present at the base of the choanocyte flagellum. Rosettes of particles are particularly obvious in the apical membranes of choanocytes, where they are associated with the fuzzy coat covering these cells. Parallel ridges of particles were observed along the microvilli of the choanocyte collar, at sites of insertion of connecting filaments. Rows of particles were observed in the plasma membrane of pinacocytes in Ephydatia where they are located on areas deformed by protruding fibrillar inclusions. Pinacocyte plasma membranes in this species also can contain accumulations of particles which are likely related to desmosomes. Single rows of aligned particles and double rows of staggered particles (sometimes organized in large plates) in addition to rhombic particle arrays were encountered on replicas of marine sponge cell membranes. No classical arrangements corresponding to gap junctions, tight junctions or septate desmosomes were observed. The significance of these data is analysed.

Animals↗

Interaction of germanium (Ge) with biosilicification in the freshwater sponge Ephydatia mülleri: evidence of localized membrane domains in the silicalemma.

In the presence of germanium (Ge) the needle-shaped silica spicules of the freshwater sponge Ephydatia m ulleri are very short and thin and possess bulbs with large spines. SEM-coupled X-ray analyses confirm the incorporation of Ge into the silica. A small number of bulbs are susceptible to erosion by HNO3 and hypochlorite and although the chemical basis of such erosion is presently unknown it suggests the presence of an organic matrix within the bulbs and/or an incomplete polymerization of the silica. Addition of Ge to control media in which silicification is newly initiated increases the incidence of erosion and results in centrally located eroded areas of the silica and discontinuities in its deposition. Removal of Ge from such newly forming structures results in a partial recovery of normal morphology (spine development and thickening of the silica) but only in the central region surrounding the bulbs. Both results establish the presence of a central, active region for silicification and further support the view that there is a distal spreading, away from this center, of transported forms of silica. Secondary centers may also be present. The newly assembled organic core of control structures is associated with tubular elements possibly derived from the surrounding membrane. In such newly silicifying structures the spicule tips contain oriented material in the form of "rays." Both of these new observations increase the likelihood of the presence of an organic matrix within the silica.

Animals↗

Solubilization and characterization of Chondrosia reniformis sponge collagen.

Chondrosia reniformis sponge collagen, insoluble in its native form, was solubilized by chemical modification of lysyl residues. The solubilized sponge collagen had the same amino acid composition as insoluble collagen and the helicoidal tertiary structure was found by negative Cotton effect to be the same as in native vertebrate collagens. Achromobacter iophagus collagenase, a collagen specific protease, hydrolyzed the soluble sponge collagen. These experiments confirmed that the protein had the same structure as collagen.

Amino Acids↗

Reversible cell scattering in developing sponges induced by penicillamine.

The development and substratum adhesion of fresh-water sponges were reversibly altered by penicillamine concentrations of 5 x 10(-3) M to 10(-2) M. Development was delayed and most of the resulting individuals were unable to attach to a substratum. In fixed sponges, the classical lacunose structure was replaced by a dense cellular tissue, imperfectly limited by a discontinuous epithelium. Numerous scattered cells (epithelial and amoeboid) were visible around each sponge. They were either flattened against the glass or in migration. These modifications are interpreted as the result of a penicillamine-induced abnormal synthesis of the collagenous basal layer which normally attaches the whole sponge to its substratum. Due to the loose sponge cell junctions, basal and internal cells could then disaggregate and attach individually to the substratum. Penicillamine treatment could thus be a suitable means of obtaining normal isolated sponge cells and even sponge cell cultures, since classical dissociation of sponge tissue with EDTA gives only rounded cells that are unable to migrate.

Animals↗

Sponge glycoconjugates: immunological properties and localization by fluorescent antibodies and lectins.

By immunodiffusion and immunoelectrophoresis, glycoconjugates previously isolated from a sponge, Spongia officinalis, and fractionated on lectins, showed identical immunological behaviour which was species specific. By fluorescent antiserum and lectins, these glycoconjugates were located on sections of two sponges, S. officinalis and Chondrosia reniformis. A strong pericellular staining occurred together with a diffused labeling.

Animals↗