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Identification of organic phosphorus covalently bound to collagen and non-collagenous proteins of chicken-bone matrix. The presence of O-phosphoserine and O-phosphothreonine in non-collagenous proteins, and their absence from phosporylated collagen.

Non-collagenous phosphoproteins, almost all of which can be extracted in EDTA at neutral pH in the presence of proteinase inhibitors, are identified in the matrix of chicken bone, and are therefore not covalently bound to collagen. Similarly, all the peptides containing gamma-carboxyglutamic acid are present in the EDTA extract and none in the insoluble residue, confirming that none is covalently linked to chicken bone collagen. However, organic phosphorus is also found to be present in chicken bone collagen, principally in the alpha2-chains. Of the total protein-bound organic phosphorus present in chicken bone matrix, approx. 80% is associated with the non-collagenous proteins and 20% with collagen. The soluble non-collagenous proteins contain both O-phosphoserine and O-phosphothreonine and these account for essentially of their organic phosphorus content. In contrast, collagen contains neither O-phosphoserine nor O-phosphothreonine. Indeed, no phosphorylated hydroxy amino acid, phosphoamidated amino acid or phosphorylated sugar could be identified in purified components of collagen, which contain approximately four to five atoms of organic phosphorus per molecule of collagen. Peptides containing organic phosphorus were isolated from partial acid hydrolysates and enzymic digests of purified collagen components, which contain an as-yet-unidentified cationic amino acid. These data, the very high concentrations of glutamic acid in the phosphorylated peptides, and the pH-stability of the organic phosphorus moiety in intact collagen chains strongly suggest that at least part of the organic phosphorus in collagen is present as phosphorylated glutamic acid. This would indicate that the two major chemically different protein fractions in chicken bone matrix that contain organic phosphorus may represent two distinct metabolic pools of organic phosphorus under separate biological control.

1-Carboxyglutamic Acid

Effect of cortisol acetate on collagen biosynthesis and on the activities of prolyl hydroxylase, lysyl hydroxylase, collagen galactosyltransferase and collagen glucosyltransferase in chick-embryo tendon cells.

Collagen synthesis and the activities of prolyl hydroxylase, lysyl hydroxylase, collagen galactosyltransferase and collagen glucosyltransferase were studied in isolated chick-embryo tendon cells after the administration of cortisol acetate to the chick embryos. When the steroid was injected 1 day before isolation of the tendon cells, collagen synthesis was decreased, even though the enzyme activities were not changed. When cortisol acetate was given as repeated injections over a period of 4 days, both collagen synthesis and the enzyme activities decreased. The hydroxylase activities decreased even more than the two collagen glycosyltransferase activities, both in isolated cells and in whole chick embryos. The amount of prolyl hydroxylase protein diminished to the same extent as the enzyme activity, indicating that cortisol acetate inhibits enzyme synthesis. The inhibitory effect of cortisol acetate on collagen synthesis and on the enzyme activities was partially reversible in 3 days. Total protein synthesis was completely restored within this time. Only massive doses of cortisol acetate inhibited collagen synthesis in vitro. Additional experiments indicated that cortisol acetate did not decrease the rate of the enzyme reactions when added directly to the enzyme incubation mixtures. The results suggest that cortisol acetate decreases collagen synthesis both by its direct effect on collagen polypeptide-chain synthesis and by decreasing the activities of enzymes involved in post-translational modifications.

Animals

Digestion of native collagen, denatured collagen, and collagen fragments by extracts of rat liver lysosomes.

Extracts of highly purified lysosomes from rat liver were examined for their ability to degrade native collagen and thermally denatured collagen at pH values between 3.5 and 7.0. After a 24-h digestion at 36 degrees with the lysosomal extract at a pH of 5.5 or lower (collagen/lysosomal protein; 2/1 or 8/1), both native and denatured collagen were degraded to an extent equivalent to 60 to 70% of that observed upon total acid hydrolysis in 6 N HCl as measured by the ninhydrin reaction (570 nm). At a pH of 6.0, native collagen and denatured collagen were degraded by the mixture of lysosomal proteinases to 11% and 40% of total acid hydrolysis, respectively. At pH 6.5 AND 7.0, the corresponding values were 3% versus 33% and 0.3% versus 11%, respectively. Fragments of collagen (TCA and TCB) are produced when mammalian collagenase degrades native collagen at 25 degrees. These fragments were degraded by the lysosomal extract at 36 degrees to an extent equivalent to 28% and 8% of total acid hydrolysis at pH 6.5 and 7.0, respectively. The experiments at pH 6.5 and 7.0 were done using a collagen/lysosomal protein ratio of 2/1. At pH 5.0 (a pH which is found within secondary lysosomes), the lysosomal extracts degraded collagen to a mixture of free amino acids and small peptides. Amino acid analysis established that approximately 30% of the amino acid residues of the collagen appeared in the lysosomal hydrolysate as free amino acids. Hydroxyproline and perhaps hydroxylysine were the only amino acids found in collagen which did not appear at least to some extent as the free amino acid in this hydrolysate.

Amino Acids

Intracellular enzymes of collagen biosynthesis in rat liver as a function of age and in hepatic injury induced by dimethylnitrosamine. Changes in prolyl hydroxylase, lysyl hydroxylase, collagen galactosyltransferase and collagen glucosyltransferase activities.

The relationship between the changes in the four enzyme activities catalysing intracellular post-translational modifications in collagen biosynthesis were studied in rat liver as a function of age and in experimental hepatic injury induced by the administration of dimethylnitrosamine. During aging, relatively large changes were found in prolyl hydroxylase and lysyl hydroxylase activities, whereas only minor changes took place in collagen galactosyltransferase and collagen glucosyltransferase activities. In hepatic injury, the two hydroxylase activities increased earlier and to a larger extent than did the two glycosyltransferase activities, and the largest was found in lysyl hydroxylase activity. The data support previous suggestions that changes in the rate of collagen biosynthesis in the liver cannot be explained simply by a change in the number of collagen-producing cells, but regulation of the enzyme activities existed, so that the two hydroxylase activities altered considerably more than did the two collagen glycosyltransferase activities.

Age Factors

Indoluble collagen II. The use of fluorescein labelled polymeric collagen fibrils in a very sensitive assay procedure for enzymes degrading insoluble collagen.

98% of the collagen in mature connective tissue is in the form of insoluble collagen fibers, consisting of bundles of polymeric collagen (PC) fibrils. The enzymes concerned in connective tissue remodeling degrade PC rather than tropocollagen (TC). TC is the most usual substrate for collagenase assays, and we believe it is essential to employ PC in any study of the activity of collagenolytic enzymes. In order to facilitate the study of enzymic degradation of PC we have labelled PC with fluorescein iso-thiocyanate to produce F-PC fibrils, containing 5 fluorescein labelled epilson-NH2 groups of lysine per TC molecule within the PC. The fluorescent F-PC is degraded at the same rate as PC with the release of hydroxyprolyl peptides but has the great advantage that the solubilised F-peptides can be quantitated by their fluorescent emission. The technique is described in detail employing bacterial collagenase and mammalian collagenase preparations to illustrate the methodology. The advantages of the fluorescent technique over the collagenolytic assay methods currently in use are outlined.

Animals

Immunologic characterization of the membrane-bound collagen in normal human fibroblasts: identification of a distinct membrane collagen.

Collagen, the major extracellular matrix protein, is also a membrane protein. Two types of collagen are detected on the normal human fibroblast membrane in culture, type I collagen and a new immunologically and chemically distinct collagen, type M (membrane) collagen. Antibodies to type M collagen elicited complement-mediated cytotoxicity, which could be blocked by pretreatment of the cells with bacterial collagenase or the antibody with type M collagen. Pretreatment of the cells with other proteolytic enzymes or the antibody with type I collagen or type III collagen had no effect on this complement-mediated cytotoxicity. Although type I collagen is the major collagen synthesized by normal human fibroblasts type M collagen may be the major cell membrane collagen and may be a major cell membrane component.

Antigen-Antibody Reactions

Collagen-induced acute synovitis in collagen-immunized rabbits.

Thirty rabbits were investigated in 3 groups: a) one consisting of non-immunized animsls which were injected intraarticularly with human soluble collagen, human gammaglobulin or saline, b) the other consisting of human gammaglobulin-immunized animals which were injected with human soluble collagen and human gammaglobulin into the knee joints, and c) the third consisting of human collagen-immunized rabbits which were injected with human soluble collagen and human gammaglobulin into the knee joints. Eighteen hours after injection animals were sacrificed, joint fluid collected, cell number in fluid determined and synovial tissue prepared for histologic investigation. Distinct acute synovitis was observed in collagen injected knees of collagen immunized rabbits, as shown by distinctly increased cell number in fluids and histologic investigation. In comparison to collagen- or gammaglobulin injected knees of non-immunized animals, increase in cell number of collagen injected knees of collagen injected animals was statistically significant with P less than 0.005 respectively with P less than 0.01, and with P less than 0.025 in comparison to gammaglobulin injected contralateral knee. Distinct acute inflammation was observed morphologically in synovial tissue of collagen injected knees of collagen immunized animals only. Acute synovitis was also observed in positive controls, i.e. gammaglobulin injected knees of gammaglobulin immunized animals. These observations show, that appearance of collagen in molecular disposable form can induce acute inflammation of joints in state of collagen immunization.

Acute Disease

Quantitative changes in insoluble collagen during ontogeny in rodents (collagen type I and type III).

It has been proved in three rodent species that in the insoluble collagen fraction which accumulates in skin collagen with age of the two categories of collagen present (collagen type I and collagen type III), their proportion alters in favour of collagen type I with the advancing age. Since it has also been shown that collagen type I is less resistant towards proteolytic cleavage than is collagen type III its accumulation can be explained either by rapidly advancing cross-linking of this collagen type or more likely by different proteosynthesis. The second alternative is preferred since a step-wise polymerization of collagen type III was also observed. No information revealing to what extent the lysine derived cross-links can combine both collagen types is at present available. On the basis of this information the rapid decrease in insoluble collagen in very early ontogeny (rats below 8 weeks of age) is explained.

Aging

Humoral and cellular sensitivity to collagen in type II collagen-induced arthritis in rats.

We have recently described a new animal model of arthritis induced by intradermal injection of a distinct type of collagen found in cartilage (type II collagen). Since immunologic sensitivity to collagen could play a role in the pathogenesis of this type II collagen-induced arthritis in rats, the ability of purified types of native collagens to induce cellular and humoral responses was quantified by antigeninduced tritiated thymidine incorporation into lymphocytes by collagen and passive hemagglutination, respectively. Rats injected intradermally with native heterologous or homologous type II collagens in adjuvant developed type-specific cellular as well as humoral reactivity. Types I and III collagens were less immunogenic than was type II. The latter collagen induced brisk cellular and humoral responses that were equivalent whether complete Freund's adjuvant or incomplete Freund's adjuvant were employed. Both responses could be induced by native type II collagens modified by limited pepsin digestion, indicating that they are not attributable to determinants in the telopeptide regions of the molecule. Thus, these studies demonstrate the unique immunogenic as well as arthritogenic properties of the type II collagen molecule and indicate that both result from a helical conformation of its structurally distinct alpha-chains. Further, they suggest that type II collagen may, by humoral or cellular mechanisms, provoke or perpetuate inflammation in other arthritic diseases.

Animals

Molecular basis of collagen triple helix recognition by VWF A-like domain two of collagen VII: Implications for interlaced anchoring fibril formation.

Anchoring fibrils formed by collagen VII play a critical role in stabilizing the dermal-epidermal junction. The N-terminal non-collagenous (NC1) domain of collagen VII binds firmly to basement membrane components including collagen IV and has also been reported to interact with mesenchymal fibrillar collagens via its von Willebrand factor A-like domain 2 (A2 domain). To elucidate how collagen VII recognizes fibrillar collagen, we performed yeast two-hybrid screening using a triple-helical random peptide library, which resulted in the identification of a Met-Gly-Φ (Φ; aromatic amino acid residue) motif. Biochemical analysis with synthetic triple-helical peptides revealed a binding preference of Trp > Phe as the Φ residue by the A2 domain despite Trp being absent in native collagens. The crystal structure of the A2 domain in complex with the Nle (Met surrogate)-Gly-Trp-containing peptide revealed a unique mechanism by which two distinct hydrophobic pockets of the A2 domain accommodate the Nle and Trp residues corresponding to the Met-Gly-Φ motif, engaging all three chains of the triple helix. Subsequent molecular dynamics simulations demonstrated that the A2 domain recognizes the corresponding native Met-Gly-Phe motif in a similar manner, but with lower affinity, implying a transient interaction with mesenchymal collagens. The findings obtained in this work suggest models in which transient A2-triple helix interaction promotes the recruitment of collagen I and III fibrils into the arc-shaped structure of anchoring fibrils. This also provides a foundation for linking structural understanding to skin fragility diseases caused by collagen VII dysfunction.

anchoring fibril

Fetal membrane collagens: identification of two new collagen alpha chains.

Human fetal membranes contain two new genetically distinct collagen polypeptide chains which are subunits of one (or two) new molecular species of collagen. These new polypeptide chains, which we have tentatively named alphaA and alphaB, have been directly compared with the polypeptide chain subunits of Types I, II, and III human collagen and Type IV collagen from bovine lens capsule. Both alphaA and alphaB exhibit characteristic profiles on carboxymethyl-cellulose chromatography and sodium dodecyl sulfate/polyacrylamide gel electrophoresis. The distribution of methionine residues along both new chains is different from known collagen chains as manifest by distinctly different cyanogen bromide peptide profiles on carboxymethyl-cellulose chromatography and/or sodium dodecyl sulfate/polyacrylamide gel electrophoresis. Both alphaA and alphaB exhibit contents of amino acids and glycine typical of collagens, and comparison with the observed and reported compositions of collagen chains of Types I-IV collagens reveals notable differences, particularly in the content of alanine, leucine, isoleucine, and the basic amino acids, lysine, hydroxylysine, and arginine. The new collagen species containing both alphaA and alphaB may be separated in the native (triple-helical) state from other native collagen species by differential salt precipitation. The observations that both chains coprecipitate in the same narrow NaCl range, and that the ratio of alphaA:alphaB is constant, suggest the possibility of a single new species of collagen with a subunit structure alphaA [alphaB]2.

Amino Acids

Specific suppression of delayed hypersensitivity skin reactions to collagen in guinea-pigs after immunization with collagen and Freund's incomplete adjuvant.

Partial suppression of cutaneous delayed hypersensitivity reactions to collagen in guinea-pigs was induced by pre-immunization with collagen and FIA. This suppression is specific since: (a) pretreatment with OA and FIA or FIA alone did not cause suppression of skin reactions to collagen; (b) suppression was observed only if the collagen used for pretreatment was from the same species as that employed for sensitization for delayed hypersensitivity reactions; and (c) animals with depressed skin reactivity to collagen reacted normally to PPD. The suppression is not mediated by inducible, circulating antibodies to collagen since: (a) antibody titres measured by passive haemagglutination did not correlate with the degree of suppression; (b) suppression was observed with collagen in random coil conformation which sensitizes guinea-pigs for delayed hypersensitivity skin reaction but does not induce antibodies to denatured collagen; (c) best suppression was obtained if the animals were pretreated with collagen and FIA 3 days before the sensitizing injection; and (d) passively transferred antibody from animals with suppressed skin reactivity did not suppress skin reactivity of animals made hypersensitive to collagen by injection of collagen and FCA.

Animals

Collagen-mediated platelet aggregation. Evidence for multivalent interactions of intermediate specificity between collagen and platelets.

We have shown previously that periodate oxidation of collagen carbohydrate does not affect its ability to aggregate platelets. We now describe an additional characterization of periodate-modified collagen which demonstrates that collagen devoid of intact carbohydrate is fully capable of fibril formation, and we confirm its capacity to initiate platelet aggregation. Furthermore, we demonstrate that the platelet aggregating abilities of Types I, II, and III fibrillar collagen are quite similar despite differences in carbohydrate content and amino acid sequence. We also demonstrate that monomeric, pepsin-solubilized Type I human collagen is ineffective inhibiting aggregation by performed fibrils derived from the same molecule, thus establishing that the affinity of platelets for collagen depends upon prior polymerization of collagen. We interpret these and other findings to demonstrate that the hydroxylysyl glycoside regions of collagen are not highly specific sites involved in platelet-collagen interactions leading to "physiological" aggregation, and that the possibility must be considered that multiple interactions involving collagen sites of comparatively low structural specificity may be the initiating events in release of platelet ADP and the ensuing aggregation.

Amino Acids

Collagen antibodies and collagen- anticollagen immune complexes in rheumatoid arthritis.

Serum, synovial fluid and synovial fluid cells of 14 patients with classic rheumatoid arthritis and of 5 controls were investigated serologically in regard to rheumatoid factors and collagen antibodies and by immunofluorescence double staining in regard to localization of collagen and gammaglobulin in fluid cells. Three patterns of staining were observed: a) gammaglobulin inclusions, b) gammaglobulin and collagen in identical localization, c) collagen inclusions. While distinct staining for gammaglobulin appeared only in seropositive cases, collagen inclusions were only observed in RA, however in seropositive and seronegative cases. In 5 RA cases collagen and gammaglobulin were demonstrated additionally in such identical localization that conclusion in regard to collagen-anticollagen immune complexes seems justified. 9 of 14 RA cases had collagen antibodies, all cases were collagen antibody positive which had collagen and gammaglobulin in identical localization in same inclusions.

Antigen-Antibody Complex

Collagen and non-collagen protein synthesis in developing lung exposed to tobacco smoke.

The present investigation was conducted to determine the rate of collagen and non-collagen protein synthesis by rat lung under in vitro conditions. The rate of synthesis of non-collagen protein was greater than the rate of collagen synthesis in animals between 1 and 95 days of age. Synthesis of both types of proteins was highest in 1-day-old animals. Rate of synthesis of non-collagen protein was markedly diminished after 7 days of age and that of collagen decreased after 14 days. Per gram lung, the total amount of collagen increased 3.5-fold between Day 7 and 95 whereas total protein was relatively constant. When lung was exposed to smoke under in vitro conditions synthesis of collagen and non-collagen protein was almost completely depressed.

Age Factors

Interaction between proteoglycan subunit and type II collagen from bovine nasal cartilage, and the preferential binding of proteoglycan subunit to type I collagen.

We studied the interaction of proteoglycan subunit with both types I and II collagen. All three molecular species were isolated from the ox. Type II collagen, prepared from papain-digested bovine nasal cartilage, was characterized by gel electrophoresis, amino acid analysis and CM-cellulose chromatography. By comparison of type I collagen, prepared from papain-digested calf skin, with native calf skin acid-soluble tropocollagen, we concluded that the papain treatment left the collagen molecules intact. Interactions were carried out at 4 degrees C in 0.06 M-sodium acetate, pH 4.8, and the results were studied by two slightly different methods involving CM-cellulose chromatography and polyacrylamide-gel electrophoresis. It was demonstrated that proteoglycan subunit, from bovine nasal cartilage, bound to cartilage collagen. Competitive-interaction experiments showed that, in the presence of equal amounts of calf skin acid-soluble tropocollagen (type I) and bovine nasal cartilage collagen (type II), proteoglycan subunit bound preferentially to the type I collagen. We suggest from these results that, although not measured under physiological conditions, it is unlikely that the binding in vivo between type II collagen and proteoglycan is appreciably stronger than that between type I collagen and proteoglycan.

Amino Acids

Collagen degradation in rat skin but not in intestine during rapid growth: effect on collagen types I and III from skin.

Metabolic degradation of prelabeled collagen in whole body skin and whole intestine was compared to that of types I and III collagens from skin in young, rapidly growing rats. Pregnant rats were given [3H]proline during the last week of gestation; and after birth, littermates were compared. Between the second and sixth weeks of age, there was a 43% loss of radioactivity from dermal collagen but no significant loss of radioactivity from intestinal collagen. Pepsin treatment solubilized 90% of the dermal collagen but only 12% of intestinal collagen. Skin from 2- and 6-week-old rats yielded the same proportions of type I and type III collagens (type I, 82%; type III, 18%). The relative losses of total radioactivity from types I and III were similar to each other (50 and 44%, respectively) and to the loss from whole skin. Because types I and III collagens are known to be present in both skin and intestine, the marked degradation of both collagen types in skin but not in the intestine may be related to the amount and kind of intermolecular crosslinks present.

Aging

Non-helical sequences of rabbit collagen. Correlation with antigenic determinants detected by rabbit antibodies in homologous regions of rat and calf collagen.

Non-helical peptide fragments were isolated from rabbit skin collagen after cleavage of alpha chains with cyanogen bromide and proteases. Determination of their amino acid sequence indicated a length of 9, 16 and 25 amino acid residues for the non-helical sequences located in the N-terminal region of alpha2 and alpha1 chain and in the C-terminal region of alpha1 chain, respectively. The C-terminal sequence Tyr-Tyr hitherto considered as the genuine end of collagen alpha1 chain is in part of rabbit collagen extended by two residues, alanine and arginine. Rabbit collagen may differ considerably in its non-helical sequences from other vertebrate collagens, particularly in the C-terminal part. Some but not all of these differences are clustered in areas occupied by antigenic determinants which are recognized in the antibody response of rabbits to rat or calf collagen. On the other hand, a high homology to rabbit collagen, e.g. in the N-terminal region of rat collagen alpha1 chain or calf collagen alpha2 chain, probably prevents immunological recognition by the rabbit. The degree of foreignness alone, however, may not necessarily determine whether a particular non-helical area is able to express immunogenic activity.

Amino Acid Sequence