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Biomedical subjects

J K Sheehan

Publications and source records attributed to J K Sheehan.

At least 55 records · Page 3Linked to original sources

Immunochemical analysis of high molecular-weight human salivary mucins (MG1) using monoclonal antibodies.

Using four Mabs with different specificities for salivary mucins, an ELISA has been developed in which human whole saliva, glandular salivas, salivary protein fractions and purified, high molecular-weight, mucin fractions (MG1) isolated from human submandibular and sublingual glandular tissues have been immunochemically analysed. All four Mabs reacted with MG1s. Three of them reacted with the purified, low molecular-weight salivary mucins (MG2). None was reactive with parotid saliva. MG1 preparations isolated from submandibular and sublingual glandular tissues of one and the same individual displayed different patterns of reactivity with these Mabs, indicating that they differ immunochemically. Analysis of the MG1s in salivas derived from individual salivary glands showed differences in immunochemical composition. These results indicate that the MG1 fraction in human whole saliva consists of several immunochemically different species.

ABO Blood-Group System↗

Mucin structure. The structure and heterogeneity of respiratory mucus glycoproteins.

Respiratory mucus glycoproteins purified from both "normal" respiratory secretions and sputa of patients with a variety of hypersecretory conditions are high Mr linear molecules adopting a random coil configuration in solution. Studies on their polydispersity show them to have an Mr in the range 3 to 32 x 10(6) and a distribution of length from 200 nm to beyond 10 microns. These macromolecules are fragmented by reduction of intermolecular disulfide bonds into subunits, with Mr approximately 2 x 10(6) and length from 200 to 600 nm. Reduction not only cleaves the mucin molecule but opens, presumably by breaking intramolecular disulfide bonds, cryptic "naked" protein regions. Trypsin digestion of subunits yields high Mr glycopeptides (Mr, 300 to 500,000), presumably by cleavage of the peptide core within the unfolded "naked" protein domains. Respiratory mucus glycoproteins from infected sputum samples are usually heterogeneous in CsCl density gradients, in contrast to those from "normal" tracheobronchial secretions. The former are characterized by the presence of a number of different mucin species, and the basis for the separation of these mucins appears to be the variable presence of sialic acid and sulfate moieties in the oligosaccharide clusters. This heterogeneity may reflect a difference in cellular origin of the mucins and also may be clinically significant.

Glycoproteins↗

Electron microscopy of cervical-mucus glycoproteins and fragments therefrom. The use of colloidal gold to make visible 'naked' protein regions.

Subunits of human cervical-mucus glycoproteins obtained by reductive cleavage of whole mucins and high-Mr glycopeptides (T-domains) obtained after their trypsin digestion were studied with electron microscopy after spreading the macromolecules in a monolayer of benzyldimethylalkylammonium chloride. Subunits were observed as linear and apparently flexible particles, with number- and weight-average lengths of 390 nm and 460 nm respectively. T-domains randomly distributed on the grid have number- and weight-average lengths of 90 nm and 103 nm respectively, whereas when aligned (possibly stretched by flow) they were longer, with number-average and weight-average lengths of 150 nm and 170 nm respectively. Subunits complexed with gold appeared as segmented structures, with a distribution of inter-gold distances similar to the length distribution for the relaxed T-domains. The whole mucins had few binding sites for gold, suggesting that reduction exposes hydrophobic protein-rich regions with high affinity for gold. Most T-domains had a binding site at one end, indicating the presence of a residual protruding naked peptide region. We conclude that mucins are assembled from subunits joined end-to-end, and that each subunit consists of alternating oligosaccharide 'clusters' (approx. 100 nm) and naked peptide regions which have (after reduction) a high affinity for colloidal gold.

Cervix Mucus↗

Mucus glycoproteins from 'normal' human tracheobronchial secretion.

Mucous secretions were collected from tracheas of patients undergoing minor surgery under general anaesthesia with tracheal intubation, and mucus glycoproteins were isolated by using isopycnic density-gradient centrifugation in CsCl/guanidinium chloride. 'Whole' mucins were excluded from a Sepharose CL-2B gel, whereas subunits obtained after reduction were included. Trypsin digestion of subunits afforded high-Mr glycopeptides (T-domains), which were further included in the gel. The latter fragments are heterogeneous and comprise two or three populations, as indicated by gel chromatography and ion-exchange h.p.l.c. Rate-zonal centrifugation showed that the 'whole' mucins are polydisperse in size, with a weight-average Mr of (14-16) x 10(6). The macromolecules were observed by electron microscopy, as linear and apparently flexible thread-like structures. Subunits and T-domains had weight-average contour lengths of 490 nm and 160 nm respectively. It is concluded that mucus glycoproteins are present in secretions from the healthy lower respiratory tract. The 'whole' tracheal mucins are assembled from subunits, which in turn can be fragmented into high-Mr glycopeptides corresponding to the oligosaccharide domains typically found in mucus glycoproteins. The size and macromolecular architecture of the tracheal mucins is thus similar to that observed for mucins from human cervical mucus, chronic bronchitic sputum and pig stomach, providing yet another example of this general design of these macromolecules, i.e. subunits assembled end-to-end into very large linear and flexible macromolecules.

Bronchi↗

Mucinophilic and chemotactic properties of Pseudomonas aeruginosa in relation to pulmonary colonization in cystic fibrosis.

Representative isolates of nonmucoid Pseudomonas aeruginosa were studied to investigate the hypothesis that mucinophilic and chemotactic properties in this species act as potential factors in the initial stages of pulmonary colonization in patients with cystic fibrosis (CF). Transmission electron microscopy with a surfactant monolayer technique was used in a novel manner to demonstrate the adhesion of all 10 P. aeruginosa strains examined to porcine gastric mucin and tracheobronchial mucin from a patient with CF. Control experiments showed that Escherichia coli K-12 and single representatives of Proteus mirabilis and Klebsiella aerogenes did not bind to these mucins. The Adler capillary technique, used to measure bacterial chemotactic response, showed that purified CF mucin acted as a chemoattractant for most P. aeruginosa strains, with the exception of the nonmotile mutant M2Fla- and the nonchemotactic mutant WR-5. The ability of the major sugar and amino acid components of mucin to act as chemoattractants was investigated. The degree of chemotaxis was strain specific; optimum chemotaxis was observed toward serine, alanine, glycine, proline, and threonine. No strain showed chemotaxis to N-acetylneuraminic acid, but all strains showed a strain-dependent chemotactic response to the sugars L-fucose, D-galactose, N-acetyl-D-galactosamine, and N-acetyl-D-glucosamine. These results provide new information on the mucinophilic and chemotactic properties of nonmucoid P. aeruginosa and support the hypothesis that these properties could play a role in the initial stages of pulmonary colonization in patients with CF.

Amino Acids↗

Quantitation of mucus glycoproteins blotted onto nitrocellulose membranes.

A sensitive assay for mucus glycoproteins (mucins) and fragments thereof is presented. The macromolecules are blotted onto nitrocellulose membranes and visualized using a periodate-Schiff (PAS) reaction and the color yield quantitated with an image analysis system used as a reflectance densitometer. At least 50 ng of the macromolecules was detected. "Whole" mucins and subunits were assayed on 0.2-micron pore size nitrocellulose membranes whereas immobilization of the high-molecular-weight mucin glycopeptides (Mr 300-500,000) required pretreatment of membranes with poly-L-lysine. Binding of the glycopeptides to the polylysine-treated membranes was found to decrease with increasing salt concentration suggesting an electrostatic interaction. The data obtained with this method and a solution PAS assay are in good agreement but the former is more sensitive and can be performed on samples dissolved in chaotropic solvents.

Collodion↗

Structure and macromolecular properties of cervical mucus glycoproteins.

The endocervical canal is filled with a mucus gel, the properties of which vary during the ovulatory cycle. At mid-cycle the amount of mucus increases, mainly owing to an oestrogen-induced increased hydration of the gel, mucus becomes less visco-elastic and the penetration of the spermatozoa is facilitated. In contrast, under the influence of progesterone during the luteal phase, mucus turns into a less hydrated, highly visco-elastic structure which acts as a barrier to sperm. The mucus gel is formed by very large and structurally complex glycoproteins perfected by evolution to tease and disunite the scientists engaged in unravelling their secrets. The macromolecules are referred to as the mucus glycoproteins or the mucins. Hydrodynamic studies show that cervical mucus glycoproteins (Mr 10-15 x 10(6] behave as random coils, which occupy large spheroidal domains in dilute solution. The predicted 'linear' structure is supported by evidence obtained with electron microscopy. By this technique, the macromolecules are visualized as 'threads' with a skewed and polydisperse distribution of contour lengths (number-average length, 1.5 microns; range 0.5-5 microns). The macromolecules may be cleaved into subunits (Mr 2-3 x 10(6] by reduction of disulphine bonds and these fragments can be divided into large glycopeptides (T-domains; Mr 300,000-400,000) by trypsin. Most of the carbohydrate, which accounts for approximately 80% by weight of the macromolecule and occurs as a heterogeneous population of oligosaccharides, is enriched within the T-domains. The high-Mr glycopeptides thus correspond to long (of the order 100 nm) stretches of protein covered with 100-300 oligosaccharides which protect the core from proteolysis. These regions of the macromolecule are referred to as oligosaccharide 'clusters' and subunits of cervical mucins contain, on average, 3-5 of these 'clusters'. Each 'cluster' is flanked by stretches of protein which are less substituted with carbohydrate and, consequently, more sensitive to proteolysis. There is evidence that these parts of the core, referred to as the 'naked' regins, are folded and stabilized by disulphide bonds. Cervical mucus glycoproteins may thus be viewed as a linear array of oligosaccharide-rich 'clusters' alternating with structures reminiscent of a globular protein. Little is known about how the mucus glycoproteins interact to form the gel. The classical 'Odeblad concept' postulates that the mucins form bundles ('micelles') which are then interconnected in a hormone-dependent way. In contrast, light-scattering studies suggest that cervical mucus is an entangled net-work of long and flexible macromolecules.(ABSTRACT TRUNCATED AT 400 WORDS)

Carbohydrate Sequence↗

Only trace amounts of fatty acids are found in pure mucus glycoproteins.

The presence of noncovalently associated lipids and covalently bound fatty acids was investigated in preparations of mucus glycoproteins obtained by using density-gradient centrifugation in CsCl/guanidinium chloride. No phospholipids, glycolipids, cholesterol, or triglycerides could be detected. However, small amounts of extractable fatty acids were consistently found, the sum of which ranged from 0.3 to 0.9 micrograms/mg of glycoprotein. The amount of fatty acid released after subsequent treatment with KOH ranged from 0 to 27 ng/mg of glycoprotein. We conclude that density-gradient centrifugation in CsCl/guanidinium chloride is very efficient in removing noncovalently associated lipids from mucus glycoproteins and that covalently bound fatty acids are probably not present in the macromolecules.

Animals↗

A study of the interaction between cartilage proteoglycan and link protein.

The interaction between proteoglycan and link protein extracted from bovine articular cartilage (15-18-month-old animals) was investigated in 0.5 M-guanidinium chloride. The proteoglycans, radiolabelled as the aggregate (A1 fraction), were fractionated by two 'dissociative' density-gradient centrifugations (A1D1D1) followed by a rate-zonal centrifugation (S1) to yield an A1D1D1S1 preparation. At least 65% of these proteoglycans were able to bind to hyaluronate, but only 52% were able to bind to link protein as assessed by chromatography on Sepharose CL-2B. Over 80% of the [3H]link-protein preparation, radiolabelled as the aggregate, was able to interact with proteoglycan as assessed by chromatography on Sepharose CL-4B. Equilibrium-boundary-centrifugation studies performed at low link-protein concentrations (2.42 x 10(-9) M-5.93 x 10(-8) M) were analysed by Scatchard-type plots and indicated a Kd of 1.5 x 10(-8) M and a stoichiometry, n = 0.56, i.e. approx. 56% of those proteoglycans capable of binding to link protein had a strong site for link protein if a 1:1 stoichiometry were assumed. However, experiments performed at higher link-protein concentrations (3.5 x 10(-7) M and 8 x 10(-7) M) yielded stoichiometry values which were link-protein-concentration-dependent. Non-equilibrium binding studies using chromatography on Sepharose CL-2B and rate-zonal centrifugation yielded apparent stoichiometries between 0.6 and 7.5 link-protein molecules per proteoglycan monomer as a function of increasing link-protein concentration. It was concluded that a proportion of the proteoglycan molecules had a strong site for binding a single link protein (Kd 1.5 x 10(-8) M) and that at high link-protein concentrations a weaker, open-ended, process of link-protein self-association nucleated upon the strong link-protein-proteoglycan complex occurred. Hyaluronate oligosaccharides appeared to abolish a proportion of this self-association (as observed by Bonnet, Dunham & Hardingham [(1985) Biochem. J. 228, 77-85] in a study of link-protein-hyaluronate-oligosaccharide interactions) so as to leave a link protein:proteoglycan stoichiometry of 2. It is not clear whether this second link-protein molecule binds directly to the proteoglycan or to the first link protein.

Animals↗

The detection of substructures within proteoglycan molecules. Electron-microscopic immuno-localization with the use of Protein A-gold.

Proteoglycan monomers from pig laryngeal cartilage were examined by electron microscopy with benzyldimethylalkylammonium chloride as the spreading agent. The proteoglycans appeared as extended molecules with a beaded structure, representing the chondroitin sulphate chains collapsed around the protein core. Often a fine filamentous tail was present at one end. Substructures within proteoglycan molecules were localized by incubation with specific antibodies followed by Protein A-gold (diameter 4 nm). After the use of an anti-(binding region) serum the Protein A-gold (typically one to three particles) bound at the extreme end of the filamentous region. A small proportion of the labelled molecules (10-15%) showed the presence of gold particles at both ends. A monoclonal antibody specific for a keratan sulphate epitope (MZ15) localized a keratan sulphate-rich region at one end of the proteoglycan, but gold particles were not observed along the extended part of the protein core. This distribution was not changed by prior chondroitin AC lyase digestion of the proteoglycan. Localization with a different monoclonal antibody to keratan sulphate (5-D-4) caused a change in the spreading behaviour of a proportion (approx. 20%) of the proteoglycan monomers that lost their beaded structure and appeared with the chondroitin sulphate chains projecting from the protein core. In these molecules the Protein A-gold localized antibody (5-D-4) along the length of the protein core whereas in those molecules with a beaded appearance it labelled only at one end. Labelling with either of the monoclonal antibodies was specific, as it was inhibited by exogenously added keratan sulphate. The differential localization achieved may reflect structural differences within the proteoglycan population involving keratan sulphate and the protein core to which it is attached. The results showed that by this technique substructures within proteoglycan molecules can be identified by Protein A-gold labelling after the use of specific monoclonal or polyclonal antibodies.

Animals↗

An enzyme-linked immunosorbent assay (ELISA) of denatured cartilage link protein.

Antiserum (MB007) was raised in rabbits to SDS-denatured cartilage link protein in order to develop an enzyme-linked immunosorbent assay (ELISA) to quantify link protein in cartilage extracts. The antibodies were characterized by using native and denatured link protein, either as the immobilised or the inhibiting antigen in the assay, and shown to bind more effectively to denatured link protein. At low concentrations, neither hyaluronate (0-30 micrograms/ml), proteoglycan (0-50 micrograms/ml) nor hyaluronate-binding region (0-3 micrograms/ml) competitively inhibited the link protein assay. However, at higher concentrations of proteoglycan (50 micrograms/ml-4 mg/ml) and hyaluronate-binding region (3-40 micrograms/ml) inhibition was observed. A more highly purified proteoglycan and a further purified hyaluronate-binding region preparation showed identical behaviour. The inhibition produced by proteoglycan and hyaluronate-binding region occurred at approximately equivalent molar concentrations (assuming Mr of 10(6) and 7 X 10(4), respectively). These results suggest that a significant proportion of these polyclonal antibodies recognize an epitope common to link protein and hyaluronate-binding region. However, the possibility that these effects are due to contamination with covalently bound link protein cannot be excluded. Trypsinated aggregates (0-10 micrograms/ml) produced no inhibition in the link protein ELISA, but as higher concentrations the inhibition was approximately 2000-fold lower than might have been expected from the link protein concentration present. Thus, the accessibility and/or binding of the antibodies to link protein was substantially decreased, illustrating masking of the link protein antigenic sites, as found by A. Ratcliffe and T.E. Hardingham (Biochem. J. 213 (1983) 371-378). These studies indicate that link protein in tissue extracts may be quantified in the concentration range 30-200 ng/ml and in the presence of hyaluronate, proteoglycan and hyaluronate-binding region, provided that both the immobilised and extracted link proteins are denatured.

Animals↗

Size heterogeneity of human cervical mucus glycoproteins. Studies performed with rate-zonal centrifugation and laser light-scattering.

Mucus glycoproteins (mucins) from cervical pregnancy mucus were fractionated by using rate-zonal centrifugation in a gradient of guanidinium chloride. The distribution of the macromolecules, as assessed by using sialic acid determination, suggested the presence of three populations of different size. Individual fractions were subjected to laser light-scattering performed as total-intensity measurements as well as photon correlation spectroscopy. The results showed that points of inflexion were present in the distribution of both Mr and DT (translational diffusion coefficient) and that the three populations have Mr values of approx. 24 X 10(6), 16 X 10(6) and 6 X 10(6) respectively. The weight-average Mr for the whole distribution, as calculated from the values obtained for the individual fractions, was 13.6 X 10(6), which is in good agreement with that found for the unfractionated material (11.1 X 10(6]. Plots of log RG (radius of gyration) and log (1/DT) versus log Mr are in keeping with the macromolecules being linear flexible chains.

Centrifugation, Zonal↗

Electron-microscopic and electrophoretic studies of bovine femoral-head cartilage proteoglycan fractions.

Proteoglycans (A1D1) extracted from bovine femoral-head cartilage were examined by electron microscopy using benzyldimethylammonium chloride as a spreading agent. The preparation contained a mixture of particles, some with a 'beaded' structure and a contiguous filamentous 'tail' at one end and others which appeared as round 'blobs', some of which also had filamentous tails. Previous electron-microscopic studies of proteoglycan monomers have indicated that their length distributions were apparently unimodal, a finding that contrasted with agarose/polyacrylamide-gel-electrophoresis results, which generally indicated two bands. In the present study proteoglycans isolated from the slowly migrating electrophoretic band were shown to be predominantly the larger molecules of beaded appearance, whereas the rapidly migrating proteoglycans were predominantly molecules with the 'blob-like' appearance. Gel-filtration, isopycnic-density-gradient-centrifugation and rate-zonal-centrifugation techniques were evaluated as means of proteoglycan fractionation by electron microscopy and agarose-gel electrophoresis. Rate-zonal centrifugation in mixed-salt gradients of caesium chloride/4 M-guanidinium chloride yielded the most effective fractionation.

Animals↗

Electron microscopy of cervical, gastric and bronchial mucus glycoproteins.

Mucus glycoproteins (mucins) were obtained from human cervical and pig gastric mucus as well as from chronic-bronchitic sputum after low-shear extraction. The mucus gel was solubilized in guanidinium chloride supplemented with proteinase inhibitors, and the macromolecules were purified by using isopycnic density-gradient centrifugation. The macromolecules were spread in monolayers of benzyldimethylalkyl-ammonium chloride and studied with electron microscopy after staining with uranyl acetate and/or shadowing with platinum/carbon. The mucins appeared as flexible linear threads with lengths varying from approx. 200 nm to about 400 nm. No regularly branched or star-shaped structures were observed. The macromolecular architecture of cervical, respiratory and gastric mucins is thus similar.

Animals↗

The effect of guanidinium chloride on the behaviour of human cervical-mucus glycoproteins. Evidence for unfolding regions of ordered structure in 6M-guanidinium chloride.

The macromolecular properties of cervical-mucus glycoproteins (mucins) were studied as a function of the concentration of guanidinium chloride with conventional light-scattering, photon-correlation spectroscopy and sedimentation-velocity centrifugation. No evidence for an association of the mucins in 0.2M-NaCl as compared with 6M-guanidinium chloride was found at mucin concentrations below approx. 0.5 mg/ml. However, an increase in the frictional coefficient and in the radius of gyration occurred with increasing concentrations of guanidinium chloride, in particular between 4 M and 6 M, suggesting an expansion of the individual macromolecule. The change in the particle-scattering function is consistent with a transition from a 'stiff' random coil in 0.2 M-NaCl into a more flexible one in 6 M-guanidinium chloride. We suggest that the mucins contain regions of 'ordered' structure which can undergo a reversible 'unfolding' analogous to the behaviour of a conventional globular protein exposed to a denaturing solvent. Such regions might carry sites for specific interactions between mucins and/or be decisive for their conformation and macromolecular properties in physiological solvents.

Cervix Mucus↗