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Biomedical subjects

M C Kenney

Publications and source records attributed to M C Kenney.

At least 37 records · Page 2Linked to original sources

Basement membrane abnormalities in human eyes with diabetic retinopathy.

Vascular and parenchymal basement membranes (BMs) are thickened in diabetes, but alterations in individual BM components in diabetic eyes, especially in diabetic retinopathy (DR), are obscure. To identify abnormalities in the distribution of specific constituents, we analyzed cryostat sections of human eyes obtained at autopsy (seven normal, five diabetic without DR, and 13 diabetic with DR) by immunofluorescence with antibodies to 30 BM and extracellular matrix components. In non-DR eyes, no qualitative changes of ocular BM components were seen. In some DR corneas, epithelial BM was stained discontinuously for laminin-1, entactin/nidogen, and alpha3-alpha4 Type IV collagen, in contrast to non-DR corneas. Major BM alterations were found in DR retinas compared to normals and non-DR diabetics. The inner limiting membrane (retinal BM) of DR eyes had accumulations of fibronectin (including cellular) and Types I, III, IV (alpha1-alpha2), and V collagen. The BM zone of new retinal blood vessels in neovascularized areas accumulated tenascin and Type XII collagen, whereas normal, diabetic, and adjacent DR retinas showed only weak and irregular staining. In preretinal membranes, perlecan, bamacan, and Types VI, VIII, XII, and XIV collagen were newly identified. Diabetic BM thickening appears to involve qualitative alterations of specific BM markers at an advanced disease stage, with the appearance of DR.

Basement Membrane↗

Cleavage of structural components of mammalian vitreous by endogenous matrix metalloproteinase-2.

Our goal was to determine if the major endogenous vitreous matrix metalloproteinase (MMP-2) could digest known collagenous components of the vitreous body. Matrix metalloproteinase-2 and its associated inhibitors were isolated from porcine vitreous by affinity column chromatography. The inhibitors were inactivated by chemical modification with dithiothreitol and iodoacetamide. The latent MMP-2 was then activated with the organomercurial, p-aminophenyl mercuric acetate (APMA). Bovine vitreous fibrillar collagens (types II, V/XI and IX) were isolated by pepsin extraction and differential salt precipitation. Intact type IX collagen was purified by selective salt precipitation followed by ion exchange and size exclusion chromatography. These isolated collagens were incubated for 6 to 24 h with different concentrations of activated MMP-2, and the extent of collagen degradation was analyzed. Activated MMP-2 was also introduced into freshly isolated vitreous gels and the degree of liquefaction was determined. Our results showed that the activated MMP-2 has no apparent effect upon type II collagen but can degrade type V/XI collagen and type IX collagen fragments (COL2 and COL2 + COL3). In addition, when the type IX collagen was in the intact helical form, MMP-2 appeared to selectively digest alpha 3 (IX) chains. This suggested that vitreous MMP-2 preferentially cleaved certain vitreous collagen chains into large fragments rather than small peptides. MMP-2 also disrupted the vitreous gel in vitro, releasing proteins but not hexuronic acid or sulfated glycosaminoglycans into the liquefied supernatant. We conclude that MMP-2 activity should be considered as a potential mechanism of vitreous liquefaction that is seen in aging and various pathological states.

Aging↗

Extracellular matrix alterations in human corneas with bullous keratopathy.

PURPOSE: To uncover abnormalities of extracellular matrix (ECM) distribution in human corneas with pseudophakic and aphakic bullous keratopathy (PBK/ABK). METHODS: Indirect immunofluorescence with antibodies to 27 ECM components was used on frozen sections of 14 normal and 20 PBK/ABK corneas. RESULTS: Fibrillar deposits of an antiadhesive glycoprotein tenascin in the anterior and posterior stroma, epithelial basement membrane (BM), bullae and subepithelial fibrosis (SEF) areas, and posterior collagenous layer (PCL) were revealed in disease corneas. Tenascin in midstroma, which was observed in some cases, correlated with decreased visual acuity. In normal central corneas, tenascin was never found. Other major ECM abnormalities in PBK/ABK corneas compared to normals included: discontinuous epithelial BM straining for laminin-1 (alpha 1 beta 1 gamma 1), entactin/nidogen and fibronectin; accumulation of fibronectin and alpha 1-alpha 2 type IV collagen on the endothelial face of the Descemet's membrane; and abnormal deposition of stromal ECM (tenascin, fibronectin, decorin, types I, III, V, VI, VIII, XII, XIV collagen) and BM components (type IV, collagen, perlecan, bamacan, laminin-1, entactin-nidogen, fibronectin) in SEF areas and in PCL. CONCLUSIONS: The study provides a molecular description of an ongoing fibrosis on the epithelial, stomal, and endothelial levels in PBK/ABK corneas. These fibrotic changes may follow initial endothelial damage after cataract surgery, may be caused by the upregulation of fibrogenic cytokines, and may play a significant role in the progression of bullous keratopathy.

Aged↗

Cleavage of human corneal type VI collagen alpha 3 chain by matrix metalloproteinase-2.

The human cornea contains significant amounts of type VI collagen and matrix metalloproteinase-2 (MMP-2), but there has been no established relation between these two components. The objective of this study was to determine whether corneal type VI collagen was susceptible to digestion by MMP-2. Human corneas were frozen and then pulverized in liquid nitrogen. The type VI collagen was isolated by sequential extractions with sodium chloride buffer, guanidinium chloride solution, and guanidinium chloride/dithiothreitol solution. Visualization of type VI collagen alpha 3(VI) chain was made by using Western blots with specific monoclonal antibodies. The extracts were incubated up to 24 h with isolated, activated MMP-2. Within 4 h of incubation, two lower molecular weight bands (approximately 190 and 170 kDa) appeared. These bands increased in intensity with time but were not further digested into smaller fragments. This cleavage activity was inhibited by ethylenediaminetetraacetic acid (EDTA). Because type VI collagen represents approximately 25% of the corneal dry weight, its degradation properties may be important for the integrity of the stroma in scarring episodes and corneal diseases, such as keratoconus.

Animals↗

Human corneal basement membrane heterogeneity: topographical differences in the expression of type IV collagen and laminin isoforms.

BACKGROUND: The corneal epithelium converges at the peripheral zone (limbus) with the conjunctival epithelium, forming a continuous sheet with phenotypically distinct regions--central, limbal, and conjunctival. The epithelial basement membrane (EBM) is important for corneal functions and cell adhesion, but its regional composition is poorly understood. Current literature is controversial as to the occurrence of type IV collagen in the cornea. The aim of this study was to investigate in detail corneal basement membrane (BM) composition and correlate it with the differentiation state of contributing cells. EXPERIMENTAL DESIGN: Adult human corneas (N = 8) were cryosectioned and analyzed by immunofluorescence with antibodies to 15 BM components and to keratin 3, a marker of corneal epithelial differentiation. RESULTS: A novel type of spatial heterogeneity ("horizontal") in the EBM composition was found between the central cornea, limbus, and conjunctiva. Central EBM had type IV collagen alpha 3-alpha 5 chains, whereas limbal and conjunctival EBM contained alpha 1-alpha 2 chains and also laminin alpha 2 and beta 2 chains. Limbal EBM in addition had alpha 5(IV) chain. Laminin-1 (alpha 1 beta 1 gamma 1), laminin-5 (alpha 3 beta 3 gamma 2), perlecan, fibronectin, entactin/nidogen, and type VII collagen were seen in the entire EBM. Another novel type of BM heterogeneity ("vertical") was typical for the corneal Descemet's membrane: its stromal face had alpha 1(IV) and alpha 2(IV) chains and fibronectin, whereas alpha 3(IV)-alpha 5(IV) chains, entactin/nidogen, laminin-1, and perlecan were present on the endothelial face. CONCLUSIONS: Type IV collagen controversy is the result of the shifts of isoforms in the limbus and conjunctiva. These shifts and the appearance of additional laminins in the limbus may be related to the differentiation state of corneal cells contributing to the EBM formation. Novel types of BM heterogeneity in the human cornea are described: regional (horizontal) in the EBM and vertical in the Descemet's membrane. The first one may be a common feature of converging complex epithelia, whereas the second one may be another unique property of the Descemet's membrane.

Adult↗

Altered gelatinolytic activities in an apparent unilateral keratoconus patient. A case report.

Recent studies have suggested that one possible cause of keratoconus involves increased degradation of the corneal extracellular matrix. Most studies have examined corneas from patients with bilateral, sporadic keratoconus. In this report, both corneas from a 70-year-old man with a history of familial keratoconus and clinical signs of unilateral keratoconus were examined for gelatinase activity. Our results demonstrated a qualitative (three additional activity bands of 88, 92, and 100 kDa molecular weights) and quantitative differences (an apparent increase in overall amounts) in the gelatinolytic enzyme profiles of the affected keratoconus cornea as compared with his unaffected (nonkeratoconus) cornea, normal corneas, bilateral sporadic keratoconus corneas, and cultured keratocytes. In addition, gelatinolytic enzymes were more readily extracted from the affected cornea compared with controls. These data lend support to the hypothesis of a heterogeneous etiology for keratoconus and to previous suggestions that this disorder may be related to an alteration in extracellular matrix degradation.

Adult↗

Increased gelatinolytic activity in keratoconus keratocyte cultures. A correlation to an altered matrix metalloproteinase-2/tissue inhibitor of metalloproteinase ratio.

Keratoconus is a noninflammatory corneal disorder characterized by gradual stromal thinning and astigmatism. Altered degradation of corneal extracellular matrix is a suggested etiology for this disorder. In the present study we established keratocyte cultures from normal and keratoconus corneas and investigated the roles that matrix metalloproteinases (MMPs) and tissue inhibitors of metalloproteinases (TIMP, TIMP-2) may play. After chemical modification (reduction and alkylation) to remove the inhibitor and activation of enzyme with p-aminophenylmercuric acetate (APMA), keratoconus-conditioned media displayed a significant increase (p < 0.05) in the total potential gelatinolytic activity when compared with normal culture media treated in a similar manner. Basal levels of gelatinolytic activity in keratoconus culture media (no reduction, alkylation, or APMA treatment), determined by two different assay methods, tended to be about twice that of normal cell cultures. By zymography, both keratoconus and normal cultures showed identical enzyme patterns, which represented MMP-2 (72 kDa) in its proform and, depending on the treatment of the media, varying amounts of activated MMP-2 (65 kDa). This suggests that the increased gelatinolytic activity in keratoconus was not correlated with an increased appearance of either the 65-kDa-activated form of MMP-2 or a new MMP species. In addition, no differences in the amount of MMP-2 were detected that could account for the increased activities in keratoconus cultures. However, a relative decline in the detectable TIMP levels in keratoconus cultures resulted in an apparent three-fold increase in the ratio of MMP-2/TIMP. Northern blots showed no significant changes in mRNA levels for MMP-1, MMP-2, MMP-3, TIMP, or TIMP-2. These data suggest that a possible alteration in the interaction between MMP-2 and TIMP may play a role in the increased gelatinolytic activity seen in keratoconus tissues.

Adolescent↗

Characterization of an endogenous metalloproteinase in human vitreous.

The vitreous is a gel-like connective tissue that undergoes liquefaction during aging and pathological processes. We isolated and characterized a degradative enzyme from the vitreous of different species and identified it to be matrix metalloproteinase-2 (MMP-2). This enzyme was found in a latent form and may be associated with endogenous inhibitors. Vitreous isolated from both non-diabetic and diabetic patients contained MMP-2 in the same concentrations. However, the diabetic samples had an additional gelatinase activity at 92 kDa which may be associated with a compromised vasculature. These results suggest that the normal human vitreous contains an endogenous MMP and the appearance of an additional activity is associated with pathologic conditions.

Adult↗

Keratoconus corneas: increased gelatinolytic activity appears after modification of inhibitors.

We examined the metalloproteinase activity from normal and keratoconus corneal extracts. No differences were detected in the total amount of the metalloproteinase or its physical form of activation. However, there was a significant elevation in enzymatic activity in the keratoconus extracts after chemical modification of inhibitory elements. This suggests either a difference in the enzymatic capabilities of keratoconus corneas or, as suggested previously, a decrease in the amount of TIMP (tissue inhibitor of metalloproteinase) present in the tissue.

Cells, Cultured↗

Characterization of a human corneal metalloproteinase inhibitor (TIMP-1).

The gradual corneal thinning seen in keratoconus may be due to altered degradation of the corneal extracellular matrix. Studies have shown that human keratocytes produce matrix metalloproteinase-2 (MMP-2) and two proteins (28 kDa and 21 kDa) that are capable of inhibiting the activity of MMP-2. In the present study, the 28 kDa inhibitor from keratoconus keratocyte cultures has been characterized as it may be important to the elevated MMP-2 activity seen in these cultures. Biochemical analyses indicated that this keratoconus corneal inhibitor was similar to TIMP-1 from other sources. Oligonucleotides to the reported sequence of human tumor cell TIMP-1 were used for reverse-transcriptase PCR to generate a 700 bp clone of the 28 kDa inhibitor from keratoconus keratocyte cytoplasmic RNA. Sequence analysis verified that the clone was nearly identical to the reported human TIMP-1 with a single base substitution that did not affect the predicted amino acid sequence. In addition, protein translated from the clone corresponded to the expected size. This data suggests that the elevated levels of gelatinolytic activity in these keratoconus keratocyte cultures is not due to a primary alteration of the TIMP-1 molecule. Protein expression studies of the TIMP-1 clone are currently underway.

Amino Acid Sequence↗

Characterization of the major matrix degrading metalloproteinase of human corneal stroma. Evidence for an enzyme/inhibitor complex.

The human cornea is an avascular, highly organized tissue with the unique property of transparency. While the extracellular matrices of this tissue are composed of a variety of collagen types, proteoglycans and glycoproteins, little is known of the normal degradation and remodeling of these components. We examined the capacity of organ cultured human ocular tissues to produce and secrete metalloproteinases, a family of related enzymes capable of digesting a variety of extracellular matrices. We demonstrated that while enzymatic activities similar to type I collagenase and stromelysin are produced, the predominant activities of the corneal stroma and keratocyte cultures are a 68-kDa gelatinase. In our hands, this enzyme does not appear to be induced significantly by phorbol esters in vitro. In addition, this enzyme appears to be secreted as a complex with a 21-kDa protein that functions as an enzymatic inhibitor. Moreover, the keratocytes also produce a 28-kDa inhibitor which has similar properties to tissue inhibitor of metalloproteinase (TIMP).

Adult↗

Abnormal extracellular matrix in corneas with pseudophakic bullous keratopathy.

The present study describes biochemical and morphological differences of pseudophakic bullous keratopathy (PBK) corneas as compared with normal corneas. At the ultrastructural level, all PBK corneas studied had abnormal fibrillar material posterior to the Descemet's membrane. In addition, two of the six PBK buttons had subepithelial fibrocellular materials disrupting the epithelial basement membrane and Bowman's layer. Aggregates of collagen fibrils with 110 nm periodicity were occasionally seen within the stroma of the PBK corneas. Isolation and purification of the collagen from the Descemet's membrane/posterior collagenous layer (DM/PCL) showed an increased amount of material with molecular weight in the range of 50-60K daltons (presumably type VIII collagen) and decreased amounts of higher molecular weight, disulfide-bonded collagenous materials (presumably type IV collagen) as compared with normals. Sugar-specific lectin studies showed an increased deposition of peanut agglutinin (PNA) and Ricinus communis agglutinin I (RCA120) in the DM/PCL of the PBK corneas. Our data suggest that the DM/PCL of PBK corneas have an increased accumulation of terminal B-galactose and B-D-galactose (1-3)-D-N-acetylgalactosamine residues and altered ratios of low and high molecular weight collagenous proteins.

Basement Membrane↗

Altered gelatinolytic activity by keratoconus corneal cells.

Keratoconus involves thinning and central protuberance of the cornea, scarring and significantly decreased vision. It is one of the major causes of corneal transplantation in this country, but the etiology of this disorder is unclear. In the present study stromal keratocytes were isolated and cultured from normal and keratoconus human corneas. Consistent with the phenotype of cornea thinning, we observed an increased gelatinolytic activity in keratoconus cultures. Characterization of enzyme properties in these cells suggested that gelatinase (type IV collagenase) was responsible for the majority of proteolytic activity found in this system. This elevated gelatinolytic activity was present in spite of lower amounts of total protein being produced by the keratoconus cultures.

Cells, Cultured↗

High resolution 2-dimensional mapping of protease activities.

Proteases are secreted by wide variety of cells and are involved in many important processes. The qualitative analysis of these activities from small volumes of conditioned media is often difficult and limited to a description of apparent molecular weights. Here we report the application of a 2-dimensional system with the capability to resolve and identify subtle alterations of post translational modifications of individual activities.

Electrophoresis, Gel, Two-Dimensional↗

Characterization of stroma from Fuchs' endothelial dystrophy corneas.

Fuchs' endothelial dystrophy is commonly regarded as an endothelial cell disorder. In the present study we compared glycoconjugates of Fuchs' and normal corneas using FITC conjugated lectins [peanut agglutinin (PNA), castor bean agglutinin (RCA120), soybean agglutinin (SBA), and wheat germ agglutinin (WGA)]. Our results showed increased staining with RCA120 and PNA in the posterior region of the Fuchs' corneas, indicating an accumulation of terminal beta-galactose and B-D-galactose (1-3)-D-N-acetylgalactosamine residues. The stromal and epithelial regions of normal and Fuchs' corneas exhibited similar staining patterns with all lectins tested. Our collagen studies showed an increased extractability and abnormal amino acid analyses of collagen from Fuchs' corneas as compared with normals. The purified collagens did have similar banding patterns by sodium dodecyl sulfate gels. However, further characterization by 125(1) two-dimensional peptide mapping revealed that Fuchs' alpha 1-sized chains contained fingerprints that were distinctly different from normal cornea stromal collagen. These data suggest that in addition to abnormal accumulation of RCA120- and PNA-specific glycoconjugates in the posterior cornea, Fuchs' corneas contained stromal collagens with altered biochemical properties. We postulate that the characteristic deterioration of endothelial function in Fuchs' dystrophy may compromise the microenvironment of the stroma and its keratocytes, and thereby lead to an altered collagenous extracellular matrix.

Amino Acids↗

Keratoconus: I. Biochemical studies.

The present study analyses collagenous and non-collagenous components from age-matched normal and keratoconus corneas. Intact keratoconus corneas showed decreased collagen, total protein, and hydroxylysine levels, with normal reducible collagen cross-linking. Non-collagenous fractions were isolated from corneas with a 4 M guanidine procedure. As demonstrated by PAGE-silver stain, the keratoconus cornea guanidine extracts had a 75 kDa band that was absent in normal cornea guanidine extracts. In addition, there was a markedly increased level of protein, uronic acid and neutral hexose in keratoconus extracts as compared with controls. Our Western blot studies showed increased affinity for the castor-bean agglutinin (RCA120, specific for terminal galactose) in the keratoconus extracts as compared with normals. These data suggest the presence of an abnormal noncollagenous component in keratoconus corneas.

Adult↗

Effect of vitamin E on the production of collagen, DNA and fibronectin in keratocytes in vitro.

Vitamin E (DL-alpha-tocopherol acetate) can inhibit collagen production in rabbit corneal keratocytes in vitro when incubated in the absence of serum. Cell growth is not appreciably affected but fibronectin synthesis is increased after exposure to vitamin E (DL-alpha-tocopherol and DL-alpha-tocopherol acetate) in the absence of serum. These findings may be important in understanding how vitamin E is advocated as both an inhibitor of scar formation and as an aid to healing.

Animals↗

Modulation of rabbit keratocyte production of collagen, sulfated glycosaminoglycans and fibronectin by retinol and retinoic acid.

This study elucidates the biochemical response of rabbit corneal keratocytes (fibroblasts) to retinol and retinoic acid in their production of collagen, fibronectin, sulfated glycosaminoglycans, collagenase, and [3H]thymidine incorporation. The morphologic appearance of cultured keratocytes was not altered by retinoid treatment. Collagen production and [3H]thymidine incorporation demonstrated a parallel decline in response to retinoids. Collagen type was unaffected as was collagenase activity. Retinoids had minimal effect on cell layer-associated 35S-labeled glycosaminoglycans, however medium-soluble 35S-glycosaminoglycans were increased. The most dramatic effect was in fibronectin synthesis which was increased 2-3-fold. These data demonstrate that rabbit keratocytes alter their biosynthesis of extracellular matrices in response to retinoids. This may be significant in corneal pathology, since the delicate balance of these extracellular macromolecules is responsible for corneal integrity and stability.

Animals↗