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Characteristics of cartilage engineered from human pediatric auricular cartilage.

In the repair of cartilage defects, autologous tissue offers the advantage of lasting biocompatibility. The ability of bovine chondrocytes isolated from hyaline cartilage to generate tissue-engineered cartilage in a predetermined shape, such as a human ear, has been demonstrated; however, the potential of chondrocytes isolated from human elastic cartilage remains unknown. In this study, the authors examined the multiplication characteristics of human auricular chondrocytes and the ability of these cells to generate new elastic cartilage as a function of the length of time they are maintained in vitro. Human auricular cartilage, harvested from patients 5 to 17 years of age, was digested in collagenase, and the chondrocytes were isolated and cultured in vitro for up to 12 weeks. Cells were trypsinized, counted, and passaged every 2 weeks. Chondrocyte-polymer (polyglycolic acid) constructs were created at each passage and then implanted into athymic mice for 8 weeks. The ability of the cells to multiply in vitro and their ability to generate new cartilage as a function of the time they had been maintained in vitro were studied. A total of 31 experimental constructs from 12 patients were implanted and compared with a control group of constructs without chondrocytes. In parallel, a representative sample of cells was evaluated to determine the presence of collagen. The doubling rate of human auricular chondrocytes in vitro remained constant within the population studied. New tissue developed in 22 of 31 experimental implants. This tissue demonstrated the physical characteristics of auricular cartilage on gross inspection. Histologically, specimens exhibited dense cellularity and lacunae-containing cells embedded in a basophilic matrix. The specimens resembled immature cartilage and were partially devoid of the synthetic material of which the construct had been composed. Analyses for collagen, proteoglycans, and elastin were consistent with elastic cartilage. No cartilage was detected in the control implants. Human auricular chondrocytes multiply well in vitro and possess the ability to form new cartilage when seeded onto a three-dimensional scaffold. These growth characteristics might some day enable chondrocytes isolated from a small auricular biopsy to be expanded in vitro to generate a large, custom-shaped, autologous graft for clinical reconstruction of a cartilage defect, such as for congenital microtia.

Absorbable Implants↗

Porcine cartilage transplants in the cynomolgus monkey. III. Transplantation of alpha-galactosidase-treated porcine cartilage.

BACKGROUND: Studies on transplantation of porcine meniscus and articular cartilage into monkeys are important for evaluating the possible use of such tissues in humans. In addition, such studies shed light on the chronic xenograft rejection process in primates. Transplantation of porcine cartilage into cynomolgus monkeys for 2 months results in a many-fold increase in anti-Gal activity and in a strong cellular inflammatory response of T lymphocytes and macrophages within the implants. The objective of this study was to determine whether elimination of Galalpha1-3Galbeta1-4GlcNAc-R (alpha-gal epitopes) from the xenograft may alter the immune response and the inflammatory reaction. METHODS: Porcine meniscus and articular cartilage specimens were treated with recombinant alpha-galactosidase (100 U/ml), and the absence of alpha-gal epitopes was assessed by the binding of the monoclonal anti-Gal antibody M86. The treated cartilage specimens were transplanted into the suprapatellar pouch of cynomolgus monkeys. The immune response to cartilage was monitored in the serum and the inflammatory reaction was assessed in the xenografts, which were explanted after 2 months. RESULTS: Incubation with alpha-galactosidase resulted in complete removal of alpha-gal epitopes from the cartilage. The increase in anti-Gal activity in the transplanted monkeys was marginal. However, most monkeys produced antibodies to antigens specific to porcine cartilage. The inflammatory response within the alpha-galactosidase-treated xenografts was much lower than in nontreated cartilage and the proportion of T lymphocytes within the cellular infiltrates was greatly reduced. CONCLUSIONS: Treatment of cartilage xenografts with alpha-galactosidase successfully removes alpha-gal epitopes from porcine cartilage. Transplantation of the treated cartilage results in the production of only anti-porcine cartilage-specific antibodies and a reduced inflammatory response consisting primarily of macrophages infiltrating into the cartilage.

Animals↗

Embryonic chick cartilage produces its own somatomedin-like peptide to stimulate cartilage growth in vitro.

Embryonic chick pelvic cartilages increase in size and weight when incubated in a chemically defined medium in the absence of serum. We addressed the question of whether endogenous production of growth factors by the cartilage was responsible for this growth. We found that conditioned medium, in which pelvic cartilages from 9-day-old chick embryos had been incubated for 3 days, increased cartilage dry weight 32% over weights of cartilages incubated in fresh medium. Increasing concentrations of conditioned medium stimulated cartilage weight and proline incorporation in a dose-dependent manner. To determine the molecular size(s) of potential growth-stimulating factors, conditioned medium was dialyzed at acid pH, lyophilized, and fractioned over HPLC-TSK Spherogel 3000. The collections were pooled into five fractions (greater than 100K, 30-100K, 20-30K, 12-20K, 1-12K, and less than 1K). Each fraction was readded to organ culture, and growth was assessed 3 days later. Only the 1-12K fraction stimulated growth above that of control cartilage. We assayed cartilage and conditioned medium for somatomedin-C (Sm-C) by RIA to determine if Sm-like peptides were present. Although Sm-C was not detectable within the cartilage, it was readily measurable in concentrated medium (248 +/- 35 pg/ml). Since Sm-like peptides might play a functional role in the growth process, we used a monoclonal antibody to Sm-C to determine whether immunoneutralization of the Sm-like peptides would inhibit cartilage growth in vitro. Addition of anti-Sm-C to organ culture of chick cartilage prevented increases in cartilage wet and dry weights (only 16% and 0%, respectively, above preincubation weights). The inhibitory effect of anti-Sm-C could be reversed by the addition of high doses of insulin to the medium. These studies suggest that endogenously produced Sm-like peptides have a functional role in promoting cartilage growth and support the hypothesis that growth factors may regulate growth through autocrine mechanisms.

Animals↗

[Allograft of cultured chondrocytes into articular cartilage defects in rabbits--experimental study of the repair of articular cartilage injuries].

Articular cartilage defects were created by dill holes, 2 mm wide and 3 mm deep, through the articular cartilage into the subchondral bone in the patellar groove of the femur in mature rabbits. The defects received graft of cultured chondrocytes and the matrix obtained from the primary culture of chondrocytes isolated from the articular cartilage or auricular cartilage in immature rabbits. The isolated cells were cultured for 10 to 14 days. For graft, the cultured chondrocytes together with the matrix were detached from the culture chamber using rubber policemen and centrifuged. The repair of the grafted defects or defects without graft (control) was histologically studied 2 to 12 weeks after operation. The defects without the graft were progressively filled with fibrous tissue containing spindle shaped cells, fibers perpendicular to the surface, and matrix showing weak metachromasia with toluidin blue at 8 weeks. The defects received articular cartilage cell graft were occupied by new cartilage tissue consisting colonylike crumps of chondrocytes 2 weeks after operation. The crumps showed strong metachromasia with toluidin blue and strong stainability for safranin-O. By 4-8 weeks, the defects were filled with homogeneous cartilage. At 12 weeks, arrangement of the chondrocytes of the superficial layer of the new cartilage became columnar as seen in the normal articular cartilage. The defects received elastic cartilage cell graft were filled by reformed cartilage with chondrocytes surrounded by elastic fibers 2-12 weeks after operation. The results indicate that allograft of cultured chondrocytes with matrix into the articular cartilage defects accerated the repair process of the defects by formation of the new cartilage derived from the grafted chondrocytes.

Animals↗

Type IIA procollagen: expression in developing chicken limb cartilage and human osteoarthritic articular cartilage.

Type IIA procollagen is an alternatively spliced product of the type II collagen gene and uniquely contains the cysteine (cys)-rich globular domain in its amino (N)-propeptide. To understand the function of type IIA procollagen in cartilage development under normal and pathologic conditions, the detailed expression pattern of type IIA procollagen was determined in progressive stages of development in embryonic chicken limb cartilages (days 5-19) and in human adult articular cartilage. Utilizing the antibodies specific for the cys-rich domain of the type IIA procollagen N-propeptide, we localized type IIA procollagen in the pericellular and interterritorial matrix of condensing pre-chondrogenic mesenchyme (day 5) and early cartilage (days 7-9). The intensity of immunostaining was gradually lost with cartilage development, and staining became restricted to the inner layer of perichondrium and the articular cap (day 12). Later in development, type IIA procollagen was re-expressed at the onset of cartilage hypertrophy (day 19). Different from type X collagen, which is expressed throughout hypertrophic cartilage, type IIA procollagen expression was transient and restricted to the zone of early hypertrophy. Immunoelectron microscopic and immunoblot analyses showed that a significant amount of the type IIA procollagen N-propeptide, but not the carboxyl (C)-propeptide, was retained in matrix collagen fibrils of embryonic limb cartilage. This suggests that the type IIA procollagen N-propeptide plays previously unrecognized roles in fibrillogenesis and chondrogenesis. We did not detect type IIA procollagen in healthy human adult articular cartilage. Expression of type IIA procollagen, together with that of type X collagen, was activated by articular chondrocytes in the upper zone of moderately and severely affected human osteoarthritic cartilage, suggesting that articular chondrocytes, which normally maintain a stable phenotype, undergo hypertrophic changes in osteoarthritic cartilage. Based on our data, we propose that type IIA procollagen plays a significant role in chondrocyte differentiation and hypertrophy during normal cartilage development as well as in the pathogenesis of osteoarthritis.

Aged↗

Different expression of 25-kDa heat-shock protein (Hsp25) in Meckel's cartilage compared with other cartilages in the mouse.

The 25-kDa heat-shock protein (Hsp25) is expressed in the cartilage of the growth plate and suggested to function in chondrocyte differentiation and degeneration. Using immunohistochemistry, we examined the temporal and spatial occurrence of Hsp25 in Meckel's cartilage in embryonic mice mandibles, and in other types of cartilage in both embryonic and adult mice. In adults, Hsp25 immunoreactivity was detected in the hypertrophic chondrocytes located in growth plates of long bones and in non-osteogenic laryngeal and tracheal cartilages. No chondrocytes in the resting or proliferating phase exhibited Hsp25 immunoreactivity. In the embryonic mandibles, resting and proliferating chondrocytes in the anterior and intermediate portions of Meckel's cartilage showed Hsp25 immunoreactivity from the 12th day of gestation (E12) through E15, whereas those in the posterior portion showed little or no immunoreactivity. After E16, the overall Hsp25 immunoreactivity in Meckel's cartilage substantially reduced in intensity, and little or no immunoreactivity was detected in the hypertrophic chondrocytes located in the degenerating portions of Meckel's cartilage. The antisense oligonucleotide for Hsp25 mRNA applied to the culture media of the mandibular explants from E10 embryos caused significant inhibition of the development of the anterior and middle portions of Meckel's cartilage. These results suggested that Hsp25 is essential for the development of Meckel's cartilage and plays different roles in Meckel's cartilage from those in the permanent cartilages and the cartilages undergoing endochondral ossification.

Animals↗

[Ultrastructure of cultured cartilage, articular cartilage, growth plate and meniscus].

OBJECTIVE: To investigate possibility of cartilage cultured in centrifuge tube as graft materials. METHODS: Articular chondrocytes isolated from a 3-week-old rabbit formed cartilage after cultivation for 2 weeks. Articular cartilage of humeral head, growth plate of proximal tibia and meniscus were collected from a 6-week-old rabbit. The ultrastructure of chondrocytes and extracellular matrix in the three kinds of cartilages and cultured cartilage were observed by transmission electronic microscopy. RESULTS: Cartilage cultured in centrifuge tube possessed unique ultrastructure and was similar to articular cartilage and growth plate, but it was markedly different from meniscus. The four kinds of cartilages were characteristic of respectively different chondrocytes and extracellular matrix. Cultured cartilage showed typical apoptosis of chondrocytes and "dark chondrocytes" appeared in growth plate. Condrocyte apoptosis was not seen in articular cartilage and meniscus. CONCLUSION: Cartilage cultured in centrifuge tube has unique ultrastructure and may be used as graft materials for articular cartilage and growth plate.

Animals↗

Factors influencing the oxygen concentration gradient from the synovial surface of articular cartilage to the cartilage-bone interface: a modeling study.

OBJECTIVE: There is very little information on the gradients of oxygen concentration from the synovial surface to the subchondral bone in articular cartilage. Cartilage is usually regarded as hypoxic, even though cellular metabolism is inhibited at low oxygen concentrations. We therefore measured rates of cellular consumption of oxygen and used these rates to calculate oxygen tension profiles across articular cartilage. METHODS: The rate of oxygen consumption by bovine articular chondrocytes was measured in vitro, either in intact cartilage slices or in isolated chondrocytes. The oxygen tension profile across articular cartilage was predicted by solving a 1-dimensional reaction-diffusion equation. The effect of synovial fluid oxygen concentration, cell density, cartilage thickness, and influx of oxygen from the subchondral bone on the oxygen profile in the tissue was examined. RESULTS: Oxygen consumption rates were relatively independent of oxygen tension at high oxygen tensions (5-21%), where they were approximately 10 nmoles/10(6) cells/hour for both isolated chondrocytes and for cartilage slices. Below 5% oxygen, the rate fell in an oxygen tension-dependent manner. Analysis showed that the oxygen profile across cartilage fell steeply in all but the thinnest cartilage samples but only fell to approximately 1% for low oxygen tensions in synovial fluid, with no supply from the subchondral bone. CONCLUSION: The oxygen tension in normal cartilage is not likely to fall to 1% except under abnormal conditions. Oxygen tensions within cartilage are strongly affected by a number of factors, including oxygen concentrations in synovial fluid, cartilage thickness, cell density, and cellular oxygen consumption rates. Supply from the subchondral bone may be of particular importance.

Animals↗

Electrical charge of a protein determines penetration and localization in hyaline articular cartilage. Quantitative and autoradiographic studies on cartilage of different species, including man.

Sufficient antigen retention in joint structures is a prerequisite for sustained antigen-induced arthritis. In this in vitro study we investigated the retention of native and charge-modified bovine serum albumin (BSA) with patellar cartilage of different species (mouse, rat, rabbit, and man). Association of BSA with cartilage due to charge of the protein with that due to immune complex formation was compared. Using radiolabeled proteins we showed quantitatively that the retention of highly positively charged BSA is considerably higher (200-500 times) than retention of the anionic BSA in all cartilage species examined. Mouse, rat, and human cartilage bind more protein per mg dry weight, compared to rabbit cartilage. No clear-cut relation was found with the glycosaminoglycans (GAG) contents. Retention of native BSA by anti-BSA antibodies was low in the dense hyaline patellar cartilage in all species. Enhanced immune-complex formation was found in marginal regions of rabbit patellar cartilage, consisting of fibrous-like cartilage. Localization studies by autoradiography showed that cationic BSA penetrates deeply into the cartilage matrix. Even in a thick cartilage specimen, such as rabbit cartilage, very deep penetration into the calcified zone was demonstrated. This study indicates that binding and deep penetration of cationized protein in cartilage is not restricted to mouse specimen, as had been found previously, but is a general phenomenon.

Animals↗

Cartilage sulfation inhibitor from rat liver curtails growth of embryonic chicken cartilage in vitro.

We studied the effect of high MW cartilage sulfation (somatomedin) inhibitors from rat liver on cartilage growth in vitro. Pelvic rudiments from 11-day-old chicken embryos (5.70 mg average weight) were incubated in an organ-culture system with defined tissue-culture medium; after two days (T0-2), media were changed and incubation continued for another three days (T2-5). Normal rat serum (10% vol/vol) stimulated cartilage growth (weight change + 1.33 +/- 0.16 mg, mean +/- SEM T0-2 and + 1.33 +/- 0.27 mg, T2-5). Partially purified cartilage sulfation inhibitors (CSI) caused a weight decrease (-1.09 +/- 0.17 mg T0-2 and -0.44 +/- 0.06 mg T2-5). Adding inhibitors to cartilage incubations containing normal serum abolished the growth-promoting effect of serum (-0.79 +/- 0.07 mg T0-2 and -0.40 +/- 0.08 mg T2-5). The growth-curtailing effect of CSI was reversible; after preincubating cartilage with CSI for two days (-0.62 +/- 0.11 mg T0-2), subsequently exposing it to normal serum allowed cartilage growth to resume (+1.02 +/- 0.21 mg T2-5). Cartilages incubated with normal serum and various concentrations of inhibitor exhibited a dose-dependent inhibition of serum-stimulated growth. Cartilage Length was not altered by the inhibitor; cartilage dry:wet weight ratio or protein concentration (microgram/mg wet weight) did not differ among groups. Triodothyronine (T3) stimulated cartilage growth in a dose-dependent manner as expected. Adding CSI to cartilage incubations containing T3 (1.5 nmol/l or 15 nmol/L) completely abolished the growth-stimulating effect of T3.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Fibronectin fragments bind to and penetrate cartilage tissue resulting in proteinase expression and cartilage damage.

We have reported that fibronectin (Fn) fragments added to bovine articular cartilage slices in culture causes marked cartilage damage by enhancing proteinase expression and resultant degradation and release of proteoglycan (PG). Several different non-overlapping Fn fragments, an amino-terminal 29-kDa, gelatin-binding 50-kDa and integrin-binding 140-kDa Fn fragment, representing nearly all of the polypeptide chain, were compared in terms of ability to cause PG release from cartilage and to bind cartilage. The most active fragment, the 29-kDa fragment, was able to enter cartilage in an intact metacarpophalangeal joint in culture and cause PG release at the same rate as with surgically cut cartilage. Further, when radiolabelled 29-kDa fragment was added to cartilage, a large proportion bound the intact articular surface, while a lesser amount diffused throughout the tissue matrix and concentrated in clusters near the mid-section of full thickness cartilage. The 29-kDa, 50-kDa, 140-kDa Fn fragments and Fn, respectively, showed PG degradation activities 9-, 6-, 2- and 1.1-fold that of control levels and bound cartilage to the extent of 180, 20, 18 and 2 pmol/100 mg cartilage, respectively. Therefore, the PG degradation activities were greatest for the smaller fragments, which bound to the greatest extent. The apparent Kd values for interaction of the 29-kDa, 50-kDa, 140-kDa fragments and Fn for cartilage tissue were about 1.2, 0.3, 0.1 and 0.02 microM, respectively, and the order was inversely related to PG degradation activities. We conclude that the smaller the Fn fragment, the greater the degradation activity and extent of binding to cartilage tissue, but the weaker the affinity.

Animals↗

[Histologic-histochemical and immunocytochemical investigations of cartilage canals in human rib cartilage].

In contrast to articular cartilage the hyaline rib cartilage takes up a special position due to its size, shape and the kind of mechanical stress as well. These facts may influence the metabolism of rib cartilage. In our histological, histochemical and immunohistochemical investigations on pieces of rib cartilages of 34 persons at the age of fourth fetal month up to 60 years we could regularly demonstrate cartilage canals containing blood vessels without any spatial or temporal relationship to degenerative changes in cartilage tissue. Many of these cartilage canals are located in the center of the rib cartilage. Blood vessels as well as neuronal structures in the connective tissue of cartilage canals were detected by means of antibodies against components of the vessel wall (Von Willebrand factor) and nerve fibers (PGP 9.5). Nerves may have sensoric or vasomotoric functions as well, and they may influence cell differentiation and regeneration processes, respectively. Cartilage can not be regarded as vascularized like other tissues, but cartilage canals may have great functional importance for the metabolism of rib cartilage.

Adolescent↗

[What becomes of free septum cartilage transplants? Experimental studies of orthotopic cartilage transplantation].

BACKGROUND. Orthotopic septal cartilage transplants are grafted in numerous rhinosurgical operations. To ensure long-lasting success of surgery, preservation of the vitality of the grafted cartilage is imperative. Although many studies have been conducted on heterotopic cartilage transplants, no studies have been published on a follow-up of the course of orthotopic grafts. METHODS. We performed submucous septal resection in 33 rabbits and then regrafted the cartilage between the laminae of the mucous membrane. Microangiography was performed one, two, six and twelve weeks later and the cartilage was then examined histologically. Cartilage biopsies were performed on humans and compared with the experimental results. RESULTS. Integration of the cartilage presented a characteristic pattern: In the rabbit, the grafted cartilage had healed completely and had been stably integrated in three months' time. Reintegration with the orthotopic cartilage occurred by means of appositional reorganisation of cartilage originating from the inner perichondrium. Microangiography revealed that reintegration took place the faster, the shorter the distance between the cartilage cells and the vessels. We confirmed these experimental results also clinically by means of the cartilage biopsies in man.

Angiography↗

Viability of diced, crushed cartilage grafts and the effects of Surgicel (oxidized regenerated cellulose) on cartilage grafts.

The viability of cartilage grafts has been well documented; however, controversy still exists about the viability of crushed cartilage. Recently, there has been a tendency to use diced cartilage grafts wrapped with oxidized regenerated cellulose (Surgicel) sheets for improving dorsal contour in rhinoplasty. The viability of diced cartilage grafts and the effect of Surgicel on cartilage grafts are not well known. In this study, we used ear cartilage from 18 New Zealand rabbits. Cartilage grafts were transplanted to surgically created subcutaneous pockets on the back of the rabbits on both the left and right sides. There were three groups: (1) intact cartilage grafts, (2) crushed cartilage grafts, and (3) diced cartilage grafts. The grafts that were transplanted to the right side were wrapped with Surgicel. Cartilage grafts in all groups were viable. In grafts that were wrapped with Surgicel, a marked increase in the collagen content was investigated. Grafts that were wrapped with Surgicel demonstrated no evidence of proliferation, whereas the bare cartilage grafts demonstrated significant amounts of proliferation.

Animals↗

Reaction of hypochlorous acid with bovine nasal cartilage comparison to pig articular cartilage.

The action of sodium hypochlorite (NaOCl) on bovine nasal cartilage was studied by proton nuclear magnetic resonance (1H-NMR) spectroscopy in order to model degradation processes of cartilage caused by neutrophil-derived hypochlorous acid. Nasal cartilage was chosen as a mean of comparison because it differs from articular cartilage in its composition. It contains some more proteoglycans, i.e. polymeric carbohydrates and less collagen than articular cartilage. This is important for studying the influence of hypochlorous acid on cartilage components (collagen and polysaccharides). Cartilage samples were incubated at 37 degrees C with phosphate buffer in the presence or absence of NaOCl. Supernatants were collected and assayed by NMR-spectroscopy. In the presence of pure phosphate buffer, the supernatants of bovine nasal cartilage were less rich in low molecular mass metabolites (e.g. amino acids, lactate) than articular cartilage. However, intense signals for highly mobile N acetyl groups of cartilage polysaccharides were detectable in nasal cartilage. NaOCl caused an increase in signals for acetate and formiate. Signals for N-acetyl groups rose only during the first 25 minutes of incubation with NaOCl. Then, their concentration decreased markedly. These changes were related to an enhanced release of chondroitinsulfate from nasal cartilage.

Animals↗

Esculetin (dihydroxycoumarin) inhibits the production of matrix metalloproteinases in cartilage explants, and oral administration of its prodrug, CPA-926, suppresses cartilage destruction in rabbit experimental osteoarthritis.

OBJECTIVE: To investigate the in vitro effects of 6,7-dihydroxycoumarin (esculetin) on the production of matrix metalloproteinases (MMP) in rabbit articular cartilage, and the in vivo effects of orally administered CPA-926, a prodrug of esculetin, on cartilage destruction in rabbit experimental osteoarthritis (OA). METHODS: In vitro studies were performed using rabbit articular cartilage explants. Esculetin 10-100 microM was added to cartilage explants in the presence or absence of interleukin 1alpha (IL-1alpha). Effects of esculetin on cartilage metabolism were assessed. Proteoglycan release into medium was determined by dye precipitation with 1,9-dimethylmethylene blue, synthesis of proMMP-1 (interstitial procollagenase) and proMMP-3 (prostromelysin 1) by Western blotting, and collagen degradation activity using FITC labeled collagen. In vivo experimental OA was induced in the knee joints of 15 Japanese adult white rabbits by partial lateral meniscectomy. Ten rabbits were orally administered 200 or 400 mg/kg/day of CPA-926 from the day of surgery for 14 days. The size of the macroscopic erosive area on the femoral condyle and tibial plateau was measured, and cartilage destruction was histologically evaluated. Collagenolytic activities in synovial fluid were measured using FITC labeled collagen as a substrate. RESULTS: In vitro, esculetin inhibited the IL-1alpha induced release of proteoglycan into the medium in a dose dependent manner. The collagenolytic activities in cartilage explant medium induced by IL-1alpha were also suppressed with the addition of 33-100 microM esculetin (p = 0.0209 at 33 and 100 microM, p = 0.0202 at 66 microM). Western blotting of cartilage explant medium showed a decrease in the levels of proMMP-1 and proMMP-3 in the medium by treatment with esculetin. In vivo: At 14 days after surgery, the femoral condyle and tibial plateau in the control group showed macroscopic erosions of cartilage. Compared with the control group, the rabbits treated with CPA-926 at the dose of 400 mg/kg exhibited reduction of the size of the erosive area on the tibial plateau (p = 0.009). Histological evaluation indicated protection against the development of destructive changes in the tibial plateau cartilage at a dose of 200 mg/kg (p = 0.0442) and 400 mg/kg (p = 0.0446) of CPA-926. CONCLUSION: These results indicate that esculetin inhibits matrix degradation in rabbit joint cartilage explants through the suppression of MMP synthesis, secretion, or activity. Prophylactic administration of its prodrug, CPA-926, appears to provide some protection against cartilage destruction in a short term rabbit experimental OA model.

Administration, Oral↗

Comparison of a 550,000 dalton cartilage matrix glycoprotein in cartilage from immature and mature dogs.

Cartilage matrix glycoprotein is a disulfide bonded 550,000 dalton protein found in cartilage and in the vitreous of the eye. Immunofluorescence studies using a specific antiserum to this glycoprotein have previously demonstrated a difference between the topographic distribution of staining for cartilage matrix glycoprotein in cartilage from immature and mature animals. Using a polyclonal antiserum to cartilage matrix glycoprotein, we studied this protein in cartilage from normal immature and mature dogs to determine if it changes with maturation. Cartilage matrix glycoprotein from immature canine cartilage migrates as a doublet, with apparent molecular weights of 100-116,000, regardless of its state of reduction, and is immunologically cross reactive with cartilage matrix glycoprotein from adult canine cartilage. Cartilage matrix glycoprotein from mature canine cartilage is disulfide bonded before reduction with 2-mercaptoethanol and its 116,000 Da subunit migrates as a single band after reduction.

Aging↗

Cartilage contribution to gender differences in joint disease progression. A study with rat articular cartilage.

OBJECTIVE: Rheumatoid arthritis is associated with a worse prognosis in females and is influenced by sex hormone changes. Similar observations in osteoarthritis support the hypothesis that gender differences in cartilage make a hitherto unrecognized contribution to gender differences in arthritis. The aim of the present study was to investigate potential gender differences in articular cartilage biochemistry, metabolism and response to inflammatory mediators. METHODS: Femoral head cartilages from age-matched male and female Wistar rats were analysed for the water, glycosaminoglycan, hydroxyproline and collagen crosslink contents. Proteoglycan loss and synthesis were assessed in vitro, and in the presence and absence of serum and interleukin-1. An in vivo model of inflammation-induced cartilage degradation was employed to investigate gender differences in cartilage susceptibility to erosion caused by granulomatous tissue. RESULTS: Articular cartilage from male Wistar rats presented higher levels of both proteoglycan and collagen and showed a lower spontaneous glycosaminoglycan loss and higher proteoglycan synthesis in vitro than cartilage from females. Proteoglycan synthesis from female, but not male, cartilage was significantly stimulated by foetal calf serum. Female cartilage was more sensitive to IL-1 inhibition of proteoglycan synthesis while the opposite was observed in IL-1-induced proteoglycan loss. Female cartilage was more susceptible to granuloma-induced degradation than male when implanted into female mice, but no differences were observed between male and female cartilage implanted in male mice. CONCLUSION: These results demonstrate important gender differences in cartilage biochemistry, metabolism and susceptibility to inflammatory mediators which may have important consequences for the joint destruction in arthritis and support a role for hormone therapy.

Animals↗