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Biomedical subjects

C Cintron

Publications and source records attributed to C Cintron.

At least 37 records · Page 2Linked to original sources

Biochemical analyses of proteoglycans in rabbit corneal scars.

Macromolecules from normal rabbit cornea and cornea containing a 2-mm diameter button of scar tissue were biosynthetically labeled with 35S-sulfate and 3H-glucosamine in vivo and in organ culture. Labeled macromolecules, including proteoglycans (PGs) extracted from the normal cornea, scar tissue, and corneal tissue adjacent to the scar with guanidine hydrochloride were chromatographed on DEAE-Sepharose CL-6B columns and eluted with increasing concentrations of NaCl. The elution pattern of corneal macromolecules synthesized in vitro was remarkably similar to that in vivo. In another experiment, corneas having 2-, 4-, and 8-week-old scars were labeled in organ culture and also extracted. Scars synthesized PGs with lower sulfation than those of adjacent corneal tissue. Although PG synthesis in scar decreased with wound age, the synthesis in adjacent cornea remained the same. In a third experiment, PGs extracted from pools of unlabeled 2- and 4-week-old scars, adjacent corneal tissue, and normal corneas were chromatographed on ion-exchange columns and analyzed chemically. The quantity of PGs in scar and adjacent cornea increased with healing time. The ratios of keratan sulfate PG to dermatan sulfate PG in normal cornea, scar, and adjacent cornea was 2.3, 0.6, and 1.5, respectively. The PGs from adjacent corneal tissue had a higher charge density than those from scar. The predominant adjacent-cornea dermatan sulfate PG had a higher charge density than that in normal cornea. The authors conclude that cornea adjacent to the healing wound synthesized PGs measurably different fro those in scar and normal cornea.

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Morphogenesis of rabbit corneal endothelium.

We studied ultrastructurally the development of rabbit corneal endothelium from the 13th day of gestation to 3 days after birth. Precursor corneal endothelial cells, stromal cells, and a vascular network migrate in close association with each other between the developing corneal and lens epithelia. During development, newly deposited extracellular fibrous matrices separate the prospective endothelium from the capillaries and corneal stroma. The extracellular matrix between the apical endothelial surface and the vascular network loses its fibrous appearance early in development. Simultaneously, randomly organized fibrils are deposited on the basal endothelial surface facing the stroma. These fibrils, gradually obscured by the deposition of a nonfibrous component, eventually become part of Descemet's membrane. Early in development, prospective endothelial cells cannot be distinguished morphologically from the overlying corneal stromal cells. Morphologic differentiation of the endothelial cell is characterized by the formation of sinuous lateral borders that interdigitate with those of adjacent cells to form a continuous single-cell layer of tissue. The basal endothelial membrane forms a pitted surface, distinguishing it from the apical cell membrane. Intercellular junctions between lateral membranes, a cilium projecting into the anterior chamber, and deposition of Descemet's membrane on the basal endothelial surface contribute to the polarization of the endothelium. Throughout most of corneal development the vascular pupillary membrane maintains a close association with the apical surface of the differentiating endothelium. We conclude that fetal corneal endothelium develops within a complex extracellular matrix environment and in proximity to the underlying vascular network. These structures play an important role in the morphogenesis of corneal endothelium.

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Organ culture of rabbit cornea: morphological analyses.

Tissues maintained in vitro often undergo changes in the pattern of protein synthesis that result in the deposition of macromolecules quantitatively or qualitatively unrelated to those normally synthesized. In these preliminary studies, we modified published techniques to maintain adult and neonate rabbit corneas in vitro for 24 to 48 h. Measurements of corneal wet weight, and histologic and ultrastructural analyses were made to determine the success of maintaining rabbit corneas in culture. The results show that rabbit corneas can maintain normal corneal hydration and tissue structure for at least 48 h when incubated in Coon's modification of Ham's F12, 5% fetal or newborn calf serum, 2 mM glutamine, and 2% chondroitin sulfate or 2% 50 kDa dextran sulfate at 37 degrees C in a 5% CO2/air atmosphere. In addition, we confirmed previous observations that corneal explants must have a 1 to 2 mm rim of limbal sclera, and the organ placed in the culture dish with the epithelial side down to guard against damage and insure endothelial functioning. Normal ultrastructure of neonate rabbit cornea is also maintained when organ-cultured with these procedures. Moreover, neonate corneas continue to synthesize collagen in culture.

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Immunoanalysis of keratan sulfate proteoglycan from corneal scars.

Corneal keratan sulfate proteoglycan (KSPG) from scar tissue of experimental penetrating corneal wounds in rabbits was analyzed 2-8 weeks after injury using three previously characterized antibodies. Keratan sulfate (KS) was identified in 2 week scars and normal corneal tissue by indirect immunofluorescence using a monoclonal antibody against sulfated KS epitopes. KSPG was measured in unfractionated extracts of scar and of normal corneal tissue using a "sandwich" enzyme-linked immunosorbent assay (ELISA). In extracts of 2 week scars, KSPG molecules reacting with two different anti-KS monoclonal antibodies were 55% and 82% as abundant as in normal tissue extracts. Ion exchange high performance liquid chromatography (HPLC) of tissue extracts found qualitatively similar elution profiles of KSPG antigens from both scar and normal tissues. Direct ELISA of the HPLC-purified KSPG showed identical quantitative binding of antibodies against core protein and KS from normal and scar tissue. KS in the HPLC-purified extracts was sensitive to digestion with endo-beta-galactosidase, whereas core protein antigens were not affected by this enzyme, as expected. Alteration of the antigenic characteristics of the KSPG of scars was detected with a competitive immunoassay using immobilized monoclonal antibodies against KS. KS in extracts from 2, 6, and 8 week scars competed only 5-11% as effectively as KS from normal cornea, although core protein antigens in the scar extracts competed 61-80% as well as those of normal cornea.(ABSTRACT TRUNCATED AT 250 WORDS)

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Heterogeneity of collagens in rabbit cornea: type VI collagen.

Normal adult rabbit corneas were digested with 5% pepsin and their collagens extracted with acetic acid. Collagen extracts were fractionated by differential salt precipitation. The 2.5 M NaCl fraction was then redissolved with tris buffer and precipitated with sodium acetate. The precipitate contained a high-molecular-weight disulfide-bonded aggregate which, upon reduction with mercaptoethanol, was converted into three distinct polypeptides having molecular weights between 45 and 66 Kd. These physical characteristics, together with the susceptibility of these polypeptides to collagenase and their amino acid composition, identified the high molecular weight aggregate as type VI collagen. Corneas from neonate rabbits and adult corneas containing 2-week-old scars were organ cultured in the presence of [14C] glycine to incorporate radiolabel into collagen. Tissues were digested with 0.02% pepsin and their collagens extracted with formic acid. The total radioactivity of the extracts and tissue residues was determined before the collagens were separated by SDS-polyacrylamide slab gel electrophoresis. Radioactive collagen polypeptides bands were then stained with Coomassie blue, processed for fluorography, and analyzed by densitometry. The results show that: (1) type VI collagen is synthesized by neonate corneas and healing adult corneas; (2) it is not readily solubilized from either corneal tissue by 0.02% pepsin digestion and formic acid extraction; and (3) the proportion of type VI collagen deposited in scar tissue is markedly lower than that found in neonate corneas.

Amino Acids↗

Heterogeneity of collagens in rabbit cornea: type III collagen.

Whole neonate rabbit corneas and adult corneas containing 2-week-old scars were incubated in the presence of [14C] glycine. Radiolabeled collagen extracted from the corneas and scar tissue were analyzed by sodium dodecylsulfate/polyacrylamide gel electrophoresis and fluorography to determine the types and relative quantity of collagen polypeptides present and synthesized by these tissues. In addition to other collagen types, type III was found in both neonate cornea and scar tissue from adult cornea, albeit in relatively small quantities. Type III collagen in normal cornea was associated with the residue after pepsin digestion and formic acid extraction of the tissue, and the same type of collagen was extracted from scar tissue after similar treatment. Type III collagen-specific monoclonal antibody bound to developing normal corneas and healing adult tissue sections, as determined by immunofluorescence. Antibody binding was localized to the endothelium and growing Descemet's membrane in fetal and neonate corneas, and restricted to the most posterior region of the corneal scar tissue. Although monoclonal antibody to keratan sulfate, used as a marker for stromal fibroblasts, bound to most of the scar tissue, the antibody failed to bind to the posterior scar tissue positive for type III collagen. We conclude that endothelial cells from fetal and neonate rabbit cornea and endothelium-derived fibroblasts from healing wounds of adult cornea synthesize and deposit type III collagen. Moreover, this collagen appears to be incorporated into the growing Descemet's membrane of normal corneas and narrow posterior portion of the scar tissue.(ABSTRACT TRUNCATED AT 250 WORDS)

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Developmental changes in proteoglycans of rabbit corneal stroma.

Proteoglycans have been extracted from rabbit corneal stromas at developmental stages from fetal to adult. Ion exchange fractionation and gel chromatography show that proteodermatan sulfates decrease in sulfation and relative amount and proteokeratan sulfates increase in sulfation and relative amount during development. There are small increases in size of all of the proteoglycans up to 2 weeks after birth, and the final adult composition is achieved by 8 weeks.

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Development of monoclonal antibodies recognizing collagenase from rabbit PMN; the presence of this enzyme in ulcerating corneas.

Rabbit uterine collagenase was purified from the medium of involuting uterus (1-2 days postpartum) in culture using ammonium sulfate fractionation, DEAE-cellulose, heparin-affinity, and high performance liquid chromatography. The enzyme was purified more than 1600 fold. Hybridoma cell-lines producing monoclonal antibodies were prepared by fusing the spleen cells of mice immunized with the purified enzyme with mouse myeloma cells (Sp2/O-Ag14). The hybridoma cells were selected with HAT medium, cloned, and screened by ELISA. Antibody-producing ascites were prepared by injecting hybridoma cell-lines into the peritoneal cavities of mice. Western-blot analysis indicated that the antibodies recognized a polypeptide having a molecular weight of 52,000. The IgG isolated from the ascites inhibited the enzyme. Indirect immunofluorescent staining demonstrated that polymorphonuclear leukocytes (PMNs) in the superficial layer of alkali-burned corneas contained collagenase, whereas stromal cells and PMNs within the stroma were not stained by the antibodies. Our results suggest that collagenases produced by rabbit PMNs are different from those produced by fibroblasts from cornea. We hypothesize that PMNs in alkali-burned corneas secrete all or most of their collagenases by degranulation at the anterior surface of the cornea, and then continue to migrate into the deeper portion of the stroma.

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Disparate effects of calmodulin inhibitors on corneal epithelial migration in rabbit and rat.

We investigated the effects of two calmodulin inhibitors, trifluoperazine and N-6-aminohexyl-5-chloro-1-naphthalenesulfonamide, on corneal epithelial wound closure in rabbits and rats. Measured, round epithelial defects were made on corneas by gentle scraping. After 20 h in organ culture with or without inhibitor, the remaining wound area was measured and samples were fixed for microscopy. In the rabbit, these inhibitors had little or no effect on the rate of wound coverage. In the rat, however, both trifluoperazine (3-40 microM) and N-6-aminohexyl-5-chloro-1-naphthalenesulfonamide (10-100 microM) inhibited wound closure in a dose-dependent manner. Thus we believe that calmodulin plays a crucial role in epithelial migration in the rat. In the rabbit, there seems to exist a mechanism that is not critically dependent upon an intact calmodulin pathway.

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Different corneal epithelial healing mechanisms in rat and rabbit: role of actin and calmodulin.

The authors investigated the effects of calmodulin inhibitors, trifluoperazine (10-20 microM) and W-7 (25-50 microM), and of cytochalasin B (5 micrograms/ml) on the F-actin distribution, surface morphology, and migration of rat and rabbit corneal epithelial cells in tissue culture. In the rat, actively migrating cells have abundant F-actin-containing stress fibers and numerous cytoplasmic extensions of the plasmalemma. These features, and ultimately cell migration, are inhibited by calmodulin inhibitors and cytochalasin B. In the rabbit, migrating cells are devoid of stress fibers and cytoplasmic extensions. Cell migration is not inhibited by calmodulin inhibitors but is arrested by cytochalasin B. The cell-to-substrate adhesion is reduced by calmodulin inhibitors in both rat and rabbit. These findings corroborate our earlier observations in organ culture studies and support the view that corneal epithelial cell migration is calmodulin-dependent in the rat, while it is not in the rabbit. The complete blockage of migration in both species by cytochalasin B suggests that actin polymerization is critical for corneal epithelial locomotion in both species.

Actins↗

Fibronectin in developing rabbit cornea.

Fibronectin is believed to be important in tissue morphogenesis. We examined the distribution of fibronectin in developing rabbit cornea by immunohistofluorescence. Cryostat sections of cornea from 13, 15, and 20-day-old fetuses, 3-day neonates, and adults were incubated with affinity-purified fluoresceinated guinea pig anti-rabbit fibronectin antiserum (aFN). aFN bound to components within the presumptive stromal region and along the basal surfaces of corneal and lens epithelia during early stages of mesenchymal invasion. At 15 days of gestation, fluorescence was associated with the stromal extracellular matrix of the cornea, the subepithelial zone, and the lens capsule. In the 20-day fetus an intense aFN fluorescence was present along the inner corneal stromal border coincident with the formation of Descemet's membrane. Fluorescence within the corneal stroma appeared as fine lines, restricted to the collagen lamellae, remaining through birth and disappearing in the adult. Although stromal fluorescence disappeared in the adult, Descemet's membrane continued to fluoresce, albeit to a lesser extent. The results of our studies indicate the presence of fibronectin in developing rabbit cornea. Because fibronectin is important to cell adhesion in vitro, and because intercellular and cell-extracellular matrix interactions, including adhesion, are necessary for tissue morphogenesis, our observation suggests that fibronectin plays an important role in corneal morphogenesis.

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Beta-adrenergic and serotonergic stimulation of rabbit corneal tissues and cultured cells.

The adult rabbit cornea synthesizes cyclic AMP in response to both serotonin and isoproterenol. The authors have examined the postnatal development of these pathways and attempted to localize the responsive cell type(s) by dissection, cell culture, and surgical denervation. Full thickness corneas of neonatal rabbits have beta-adrenergic responses similar to the adult but fail to respond to serotonin until the animals are 9-12 weeks old. When adult corneas are separated into epithelia, stromal, and endothelial layers, only the stromal layer synthesizes cyclic AMP in response to serotonin, whereas all layers respond to isoproterenol. When grown in tissue culture, keratocytes, epithelial, and endothelial cells are unresponsive to serotonin but respond to isoproterenol. Neither adrenergic nor sensory denervation abolishes the corneal adrenergic or serotonergic response pathways. These results indicate that the epithelial cells do not contain the serotonin stimulated, cyclic AMP-mediated pathway as originally postulated. The cell population that does contain this pathway is within the stroma and may be the Schwann cells.

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A microassay for UDP-glucose dehydrogenase.

An assay for UDP-glucuronic acid [J. Singh, L. R. Schwarz, and F. J. Wiebel, Biochem. J. 189, 369-372 (1980)] has been utilized for determining UDP-glucose dehydrogenase activity. The assay for UDP-glucuronic acid, a product of UDP-glucose dehydrogenase, is based on the fluorometric determination of D-glucuronosyl benzo(a)pyrene. This compound is formed from UDP-glucuronic acid and 3-hydroxybenzo(a)pyrene in a reaction catalyzed by the glycuronosyl transferase of guinea pig microsomes. Unreacted 3-hydroxybenzo(a)pyrene is removed by extraction with chloroform-methanol, and the amount of gluconosylbenzo(a)pyrene formed is determined fluorometrically. Because this assay for UDP-glucose dehydrogenase is about 500 times more sensitive than spectrophotometric assays, it can be used to measure the amount of enzyme extractable from milligram quantities of connective tissue. Some kinetic properties of UDP-glucose dehydrogenase extracted from rabbit tissue have been determined. No evidence of different forms of the enzyme in rabbit liver, cartilage, or corneal stroma was found.

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Proteoglycan changes during restoration of transparency in corneal scars.

Corneal scars generated in rabbits by penetrating wounds are initially opaque but become transparent within a year. Previous studies have shown that the corneal stroma consists of proteoglycans and collagen fibrils spaced at regular intervals and that the interfibrillar spaces, the presumed location of proteoglycans, are abnormally large in opaque scars. In the present study, the size and glycosaminoglycan composition of the corneal stromal proteoglycans were determined in corneal scars during the restoration of transparency. The results showed that initially opaque scars which contained the large interfibrillar spaces also contained unusually large chondroitin sulfate proteoglycans with glycosaminoglycan side chains of normal size. These opaque scars also lacked the keratan sulfate proteoglycan but did contain hyaluronic acid. In the 1-year-old scars there was a restoration of normal interfibrillar spacing, and a return to corneal stromal proteoglycans of normal size and composition. These correlations suggest that the corneal stromal proteoglycans may play a fundamental role in regulating corneal collagen fibril spacing.

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Effects of prednisolone and medroxyprogesterone on corneal wound healing, ulceration, and neovascularization.

Albino rabbits were treated four or six times daily with 1% prednisolone acetate, 1% medroxyprogesterone acetate, or a control vehicle, after one of three conditions. First, after 3-mm linear perforating stromal incisions; drugs were given for seven days, and wound bursting strength was determined. Prednisolone suppressed wound tensile strength by 20%; medroxyprogesterone suppressed it by 11%. Second, after trephination, drug administration for 14 days decreased collagen formation in the scar buttons by 43% in the prednisolone-treated group and 39% in the medroxy-progesterone-treated group. Third, after thermal burns; when drug application followed the burn immediately, deep ulceration or perforation developed in 85% of the controls, in none of the prednisolone-treated group, and in 17% of the medroxyprogesterone-treated group. When drug delivery was withheld until day 6, severe ulceration developed in 44% of both groups. In both experiments, stromal neovascularization was markedly suppressed by prednisolone, but only moderately decreased by medroxyprogesterone.

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Proteoglycans of rabbit cornea: labelling in organ culture and in vivo.

Rabbit corneas maintained with radioactively-labelled precursors in organ culture for up to 42 hr produced labelled proteoglycans of the same kind as those that exist normally or that are produced by labelling in vivo. Whole corneas, including a narrow strip of sclera, were kept in culture in the presence of [3H]-glucosamine and [35S]-sulfate. The rate of incorporation of sulfate into extractable proteoglycans was linear over the time investigated, as was the rate of incorporation of glucosamine after a short lag. Three labelled proteoglycans were isolated and found to behave in ion-exchange chromatography and gel chromatography in the same way as they did in previous studies by chemical analysis. Their labelled glycosaminoglycans were primarily dermatan sulfate and keratan sulfate, with traces of hyaluronic acid and heparan sulfate. When labelled precursors were injected directly into the anterior chamber of rabbit eyes, the resulting labelled proteoglycans were similar to those obtained in organ culture. Both in vivo and during organ culture, the specific activity of hexosamine in the keratan sulfate proteoglycans was about one-half that in dermatan sulfate, probably because of different synthetic rates or different specific activities of immediate precursors.

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Morphogenesis of rabbit corneal stroma.

Corneas of fetal and young albino rabbits were examined by light and transmission electron microscopy. In addition, DNA and hydroxyproline content were measured in developing stroma. The results were compared with similar data from healing corneas in adult rabbits and from developing corneas of other animal species. In the fetal rabbit, the prospective corneal stroma region contains an unorganized, sparse extracellular matrix until about the 13th day of gestation, when mesenchymal cells and capillaries from the hyaloid vessels move in to form the vascular pupillary membrane, endothelium, and stroma. Stromal growth is due to alteration in the density and morphology of the cell population early in development, along with a sequential thickening and thinning of the whole stroma. These events are similar to those reported in primates, but differ markedly from those reported in avian species. Normal developing cornea and healing adult cornea both involve migration of stomal fibroblasts and deposition of extracellular matrix. Stromal fibroblasts in the rabbit fetus are oriented with their long axis parallel to the corneal surface early in development compared with randomly oriented fibroblasts in the early healing wound of adult rabbit corneas. Although collagen and cell number progressively increase throughout the developmental periods studied, the ratio of cells to collagen is high initially but decreases with development. In contrast, the proportion of cells to collagen in the young scar tissue of adult cornea is low initially, indicating a marked deposition of collagen in comparison to that in the early normal developing stroma. The results suggest that the healing tissue differs from the normal fetal stroma in its coordination of cell population growth with collagen deposition and cellular organization.

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Scanning electron microscopy of rabbit corneal scars.

Central full-thickness perforating excision wounds were made in rabbit corneas and were examined by light and scanning electron microscopy at various times after wounding to study the three-dimensional morphologic changes in the tissue during healing and remodeling. Formation of a fibrin clot soon after wounding seals the hole and functions as a substrate for the healing epithelium. Changes in the histologic appearance of the fibrin lot immediately below the new epithelium are followed by migration of adjacent stromal cells under the epithelium, parallel to the basal surface of this tissue. Further healing is characterized by the organization of stromal fibroblasts into several layers parallel to the corneal surface and the deposition of collagen as a matted meshwork of fibrils tangential to the cell surface. Although remodeling of the collagenous matrix of corneal scar is evident and the scar eventually appears less opaque, the lamellae of the scar are narrower and shorter than normal. Evidence from this and other studies suggests that the orientation of the fibroblasts in healing tissues is determined by the organization of the newly formed epithelium. Furthermore, our observations are consistent with the hypothesis that collagen fibrils are deposited parallel to the flat surface of the fibroblasts during scar formation. Subsequent reorganization of this collagenous matrix approaches the normal lamellar appearance, but the matrix fails to regenerate even after 2 years.

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