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M Stenberg

Publications and source records attributed to M Stenberg.

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Kinetics supramolecular structure and equilibrium properties of fibrinogen adsorption at liquid-solid interfaces.

Adsorption of fibrinogen onto hydrophobic and hydrophilic quartz surfaces was studied by ellipsometry and transmission electron microscopy (TEM) of negatively stained proteins. The initial adsorption at the hydrophobic surface, measured by ellipsometry, can be described by an apparent forward rate constant k1 of 2 x 10(4) M-1 s-1. This constant was time-dependent and is therefore considered as a rate coefficient. The apparent forward rate coefficient of adsorption to a hydrophilic surface was both time-dependent and concentration-dependent, indicating a history-dependent process of adsorption. Plateau levels of adsorption were concentration-dependent and lower at the hydrophilic quartz surface (1.2 pmol/cm2) than at the hydrophobic surface (1.8 pmol/cm2). These surface concentrations correspond to rather tight-packed monolayers of molecules adsorbed end-on. The initial desorption can be described by a first order rate constant (k-1 approximately 10(-4) s-1), down to 80-90% of the initial surface concentration. The dissociation rate then decreased (k-1 approximately 10(-6) s-1) resulting in an apparently stable level of adsorbed protein. Slow changes of the binding strength of adsorbed proteins was seen during 24-72 h adsorption time. Deviations from an ideal equilibrium isotherm were seen both in the time dependence and as concavities in a Scatchard plot, suggesting intermolecular cooperativity. At low bulk concentrations a heterogeneous distribution of fibrinogen molecules was found at the surface below monolayer coverage. The supramolecular structure was characterized by the formation of end-to-end dimers and trimers laying down at the surface. At higher surface concentration adsorbed molecules showed polycrystalline structure with repeated nearest neighbor distances at 16 nm. The distribution of adsorbed fibrinogen molecules indicates that surface-adsorbed fibrinogen may form a two-phase system, containing significant amounts of water. The atypical kinetics and concentration dependence of fibrinogen adsorption may thus be due to properties of a two-dimensional phase separation from a three-dimensional liquid bulk.

Adsorption

Computer simulation of surface-induced aggregation of ferritin.

Models are presented describing the transient mass-transport limited adsorption and cluster growth of ferritin at a solid surface. Computer simulations are carried out on a hexagonal lattice using a computer model that can be characterized as a two-dimensional stochastic cellular automaton allowing different rules regarding association, lateral interaction and dissociation to be incorporated in the model. The fractal dimensions of individual clusters were extracted from simulated aggregates and for similar rules found to be consistent with literature values on reversible diffusion-limited aggregation in two dimensions. The distribution of clusters versus free surface were shown to be affected by neighbor-dependent association probability. Low fractal dimension clusters were generated by a combination of strong lateral cohesion and neighbor-dependent dissociation to the bulk. By comparing computer simulated aggregation to experimental electron micrographs of adsorbed ferritin layers it is suggested that neighbor-dependent association, neighbor-dependent dissociation and lateral interactions are important factors in the complex dynamics of adsorbed protein layers.

Computer Simulation

Biological monitoring of isocyanates and related amines. I. Determination of 1,6-hexamethylene diamine (HDA) in hydrolysed human urine after oral administration of HDA.

1,6-Hexamethylene diamine (HDA), used as raw material in industrial manufacturing operations, was orally administered to six healthy volunteers. After acid hydrolysis of the urine by hydrochloric acid, HDA and the metabolite 6-aminohexanoic acid were quantified. HDA was determined as an ethyl-chloroformate derivative by capillary gas chromatography using thermionic specific detection (TSD), and 6-aminohexanoic acid was quantified by ion chromatography using the ninhydrin reaction. In nonhydrolysed urine, monoacetylated HDA (N-acetyl-1,6-hexamethylene diamine) and HDA, were verified as heptafluorobutyric anhydride derivatives by gas chromatography-mass spectrometry (GC-MS), in a chemical ionization mode using isobutane and ammonia as reagent gases. In hydrolysed urine, a mean of 0.28 mg (range 1-6%) of the administered dose (8.2 mg) was recovered as HDA, and a mean of 0.8 mg (range less than 1-27%) as 6-aminohexanoic acid. The urinary excretion of both the determined compounds was rapid, and the principal part (greater than 90%) of the elimination was completed within 10 h. There was a considerable inter-individual variation in the excreted amounts, but the intra-individual variation in the excretion of HDA was limited. The subjects N-acetylator phenotype was determined by a dapsone test. Three slow acetylators excreted lower amounts (mean 2% of given dose) of HDA than three rapid ones (mean 5%).

Acetylation

Immunochemistry at interfaces.

The immunochemistry of antibody binding to solid-phase immobilized antigen is reviewed. Experimental data are compared with different theoretical models of reaction mechanisms at solid-liquid interfaces. It was found that reactions at the solid-liquid interface can become limited by the diffusion rate due to depletion of reactants close to the surface, even though the intrinsic bimolecular reaction at the surface is reaction-rate limited. The forward reaction-rate constant decreases with increasing concentration of bound antibodies at the surface, and when not limited by diffusion the forward reaction rate can be more than 1000-fold slower than the corresponding reaction in a liquid solution. Possible explanations for this phenomenon are discussed. The dissociation of bound antibodies is a slow process at solid phases. The antigen-antibody complexes formed are practically irreversible. Some evidence is presented which indicates that the stability of these complexes can be due to attractive lateral interactions between bound antibodies.

Antigen-Antibody Reactions

Kinetics of antigen-antibody reactions at solid-liquid interfaces.

The kinetics of antigen-antibody reactions is reviewed with special attention paid to the specific properties at solid-liquid interfaces. Theories of possible diffusion limitation in forward reaction rates are compared to experiments. It is found that the intrinsic forward reaction rate in the bimolecular antigen-antibody reaction is normally not limited by diffusion either in solution or at the solid-liquid interface. However, reactions at the solid-liquid interface can be diffusion limited due to depletion of reactants close to the surface. This effect depends on geometry, intrinsic reaction rate and surface concentration of receptor molecules. Normally cell surface reactions are not diffusion limited whereas reactions at artificial surfaces often are limited by diffusion. When not limited by diffusion it is also found that the intrinsic forward and reverse reaction rates are lower for surface reactions compared to reactions in solution. Antigen-antibody reactions at solid-liquid interfaces can often be considered as practically irreversible and limited by mass transport or steric interactions.

Antigen-Antibody Reactions

A diffusion limited reaction theory for a microtiter plate assay.

Calculations are presented describing the diffusion limited kinetics of a solid-phase immunoassay in which reactants are immobilized at the inner surface of a cylindrical well. The calculations refer to an unstirred situation and simplified expressions are presented which can be used for calibration and optimization of the assay.

Animals

Molecular and supramolecular structure of adsorbed fibrinogen and adsorption isotherms of fibrinogen at quartz surfaces.

The adsorption of fibrinogen to quartz surfaces was measured by ellipsometry, ELISA, and electron microscopy. The initial adsorption at low concentrations was diffusion rate limited as determined by the ELISA and by counting the number of adsorbed molecules at electron micrographs. From ellipsometry, ELISA, and electron microscopy measurements it was found that the surface concentration of adsorbed fibrinogen increased continuously over four decades in bulk concentration of fibrinogen. At a hydrophilic quartz surface a plateau level of the adsorption isotherm was found at a surface concentration of 0.1 pmol/cm2 where the adsorbed molecules had a mean intermolecular distance of 10 +/- 5 nm between neighbors. At higher surface concentrations the molecules were densely packed and formed a layer where single molecules could not be identified. Adsorbed fibrinogen showed different structure at hydrophobic and hydrophilic quartz surfaces. At a hydrophilic surface, the fibrinogen molecules appeared as a 46 nm nodose rod consisting of 6-7 nodes with a diameter of 4 nm. At a hydrophobic surface, the molecule appeared as a binodular or trinodular rod with a node diameter of 5-9 nm, connected with a thin filament to form a 40-nm rod. Adsorption from higher concentrations of fibrinogen in solution resulted in adsorbed spheric structures with a diameter of 18-24 nm at the hydrophobic surface and in end-to-end polymers at the hydrophilic quartz membrane.

Adsorption

Adsorption of coagulation proteins and adhesion and activation of platelets at the blood-solid interface. An experimental study of human whole blood.

A procedure is presented allowing detailed studies of the adsorption of coagulation factors from whole blood on to surface. Anticoagulant (citrate or hirudin) was added to fresh venous blood. The blood was incubated in hydrophilic or hydrophobic glass tubes without contact with air. The adsorption of fibrinogen, fibronectin and factor IX was measured with an enzyme immunoassay using specific antibodies directed against these proteins. Adsorption of enzymically active kallikrein was measured using a chromogenic peptide substrate. Adhesion and activation of platelets was measured by direct examination in a scanning electron microscope and by measurement of release of beta-thromboglobulin. The results show that the adsorption of plasma proteins at the blood-solid interface is dependent on the anticoagulant used, surface energy of the test surface and incubation time. In experiments using hirudin a specific inactivator of thrombin, as anticoagulant, we found dynamic changes of the adsorbed protein film which could not be studied using citrated blood.

Adsorption

Kinetics of antibody binding to solid-phase-immobilised antigen. Effect of diffusion rate limitation and steric interaction.

The binding of monoclonal antibodies to surface-immobilised antigen was studied. Antibodies against dinitrophenyl-benzene and O6-ethyl-2'-deoxyguanosine with a known affinity for the antigen were used. The amount of bound antibodies was measured by ellipsometry with an accuracy of +/- 0.15 pmol/cm2, and a sensitivity of 0.11 pmol/cm2. The binding rate of the initial antibody binding could become diffusion rate limited, and the binding rate at surface concentrations above 1 pmol/cm2 was affected by steric interaction between bound antibodies. Bound antibodies did not dissociate when rinsed with saline for up to 20 h, but dissociated in the presence of antigen (0.1 mM). The dissociation rate did not follow any identifiable rate constant. The results are discussed in relation to theoretical models of the kinetics of antigen-antibody reactions at solid-liquid interfaces.

Antibodies, Monoclonal

An improved negative staining technique using a thin quartz membrane as sample support.

A negative staining technique is presented based on the use of 40-60 nm quartz membrane supported by a silicon grid. The quartz membrane is fabricated by thermal growth of silicon dioxide on a silicon substrate followed by an anisotropic silicon etching step giving rectangular holes in the silicon substrate. The hydrophilic membrane is shown to be ideally suited for negative staining due to its spreading characteristics, homogeneity, heat resistance and mechanical stability. Micrographs of phage lambda are presented showing the detailed structure of the tail. A simple method of calculating the number of adsorbed particles based on diffusion limited association is also presented.

Microscopy, Electron

Determination by ellipsometry of the affinity of monoclonal antibodies.

The reaction between monoclonal antibodies and surface-immobilised hapten was studied by ellipsometry, a method allowing absolute measurement of the surface concentration of proteins. Monoclonal antibodies against 2-phenyloxazolone were used and their affinity for the antigen in solution was determined by calculations of the equilibrium constant from data obtained by measuring fluorescence quenching of the hapten due to antibody binding. The binding rate of antibody to surface-immobilised hapten and the dissociation rate of the complex were measured by ellipsometry. The equilibrium constant of the heterogeneous antigen-antibody reaction was determined by a Scatchard plot. The affinity of the antibodies for the antigen was found to be higher in the heterogeneous than in the homogeneous reaction by a factor which varied between different monoclonal antibodies.

Animals

External diffusion in solid-phase immunoassays.

Calculations are presented describing the influence of external diffusion in the kinetics of solid-phase immunoassays. The analysis is concerned with systems where one reactant is immobilized at the surface of a sphere of arbitrary radius. The solution for a plane surface is found as a limiting case. The factors determining whether the reaction is diffusion or reaction controlled are found to be sphere radius, surface concentration of binding sites, forward reaction rate and diffusion constant of reacting species. Means of determining whether the reaction is diffusion or reaction controlled from observable quantities are described. When applied to heterogeneous antibody-antigen binding it is found that normally the binding to cell-size spheres is not limited by external diffusion. However, when applied to solid-phase assays with high surface concentrations of binding sites immobilized at plane surfaces or macroscopic spheres the binding is found to be diffusion limited. The importance of a mass transfer analysis in this case is also discussed.

Antigen-Antibody Complex

Calibration by ellipsometry of the enzyme-linked immunosorbent assay.

The enzyme-linked immunosorbent assay (ELISA) was analyzed with regard to possible diffusion limitations of the binding reaction. The absorbance values of the assay were found to follow the time and concentration relations that would occur when diffusion of antibody to the surface is the rate limiting step. This relationship was used in order to calibrate the absorbance values of the ELISA with antibody concentration by ellipsometry, which itself allows direct measurement of the amount of antibody bound to the solid phase.

Animals

The isoelectric point of thrombin and its behaviour compared to prothrombin at some solid surfaces.

We have shown that the isoelectric point of thrombin is high and that thrombin is a cation at the pH of blood. On the other hand, prothrombin has a low isoelectric point, being more anionic at the pH of blood. It was also found that thrombin adsorbs readily to surfaces, especially negatively charged surfaces, like behenic acid surfaces at pH 8.2. Furthermore, thrombin adsorbed onto behenic acid was active in the sense that it coagulated fibrinogen. The significance of the electric charge of the thrombin molecule in the mechanism of atherosclerosis is discussed.

Adsorption