PubMed Health⌕ Search

Biomedical subjects

S D Carson

Publications and source records attributed to S D Carson.

At least 55 records · Page 3Linked to original sources

Effects of lipid-binding proteins apo A-I, apo A-IL, beta 2-glycoprotein I, and C-reactive protein on activation of factor X by tissue factor--factor VIIa.

Tissue factor is the membrane-associated protein which mediates activation of factors IX and X by factor VII. In a purified, reconstituted bovine system, factor X activation by the tissue factor-factor VIIa complex is inhibited by the mixed apoproteins from human high density lipoprotein (HDL) and by isolated apolipo-protein A-II (apo A-II). Other proteins found associated with plasma lipoproteins, apolipoprotein A-I (apo A-I), C-reactive protein (CRP), and beta 2-glycoprotein I (beta 2 GPI), have been examined for effects on the activation of factor X by tissue factor-factor VIIa. In these experiments, bovine tissue factor, reconstituted into phosphatidylserine-phosphatidylcholine (PS/PC; 30/70) vesicles, was used at a single concentration while factor X (the substrate), factor VIIa (the enzyme), and the potentially inhibitory proteins were varied in a continuous chromogenic assay. Apo A-II and CRP clearly inhibit tissue factor-factor VIIa activation of factor X, while apo A-I and beta 2 GPI have little or no effect. These results demonstrate that different lipid binding proteins vary in their effects on tissue factor activity.

Apolipoprotein A-I↗

Regional assignment of human tissue factor gene (F3) to chromosome 1p21-p22.

Tissue factor, or coagulation factor III, is a membrane-bound glycoprotein and acts as a cofactor for factor VII-dependent initiation of blood coagulation. The tissue factor gene (F3) was previously assigned to human chromosome 1, region p21-pter. The present report has further refined the mapping position to 1p21-p22 using a cDNA probe for the tissue factor gene and in situ hybridization to metaphase chromosomes.

Chromosome Mapping↗

Monocyte-associated tissue factor is suppressed by phorbol myristate acetate.

The monocyte is the only normal circulating cell type capable of initiating blood coagulation through the expression of tissue factor. Recently isolated peripheral blood monocytes that contain no demonstrable tissue factor activity can be induced to express tissue factor activity by a number of stimulatory agents. Monocyte-associated tissue factor activity transiently increases in response to adherence to tissue culture plates and, consistent with other reports, markedly increases after the isolated monocytes are treated with endotoxin. Phorbol myristate acetate (PMA) induced an increase in tissue factor activity at low doses (10(-11) to 10(-12) mol/L). Conversely, concentrations of PMA that stimulate release of oxygen metabolites or that cause the cytosol-to-membrane translocation of protein kinase C (PKC) (10(-9) to 10(-7) mol/L) resulted in a rapid decrease in both adherence-induced and endotoxin-induced monocyte tissue factor activity. The effects of PMA on monocytes were time- and dose-dependent with respect to PKC translocation, release of oxygen metabolites, and changes in tissue factor activity. Immunofluorescent staining of monocytes with monoclonal antibody (MoAb) HTF1-7B8, directed against human tissue factor, revealed that tissue factor antigen was induced concurrently with tissue factor activity by adherence and endotoxin and that tissue factor antigen decreased after PMA stimulation.

Cells, Cultured↗

Protein co-isolated with human tissue factor impairs recovery of activity.

Preparations of human tissue factor isolated by immunoaffinity chromatography contain variable amounts of 47,000 mol wt, 55,000 mol wt, and multimeric tissue factor when analyzed without reduction on polyacrylamide gels in sodium dodecyl sulfate (SDS). When analyzed after reduction, the 47,000 mol wt tissue factor apoprotein and a protein of about 12,000 mol wt are observed. Elution of tissue factor from polyacrylamide gel slices, followed by reassociation with lipids, restored proportionately much greater tissue factor activity with the 47,000-mol wt protein than with the 55,000-mol wt form. Cyanogen bromide cleavage at the single tissue factor methionine revealed that the 12,000-mol wt protein is associated with the carboxyl-terminal peptide derived from the 47,000-mol wt protein. These results reveal that association of the 12,000-mol wt protein with the cytoplasmic domain of tissue factor can modulate its activity in vitro.

Disulfides↗

Continuous chromogenic tissue factor assay: comparison to clot-based assays and sensitivity established using pure tissue factor.

The continuous chromogenic tissue factor assay has been compared to one-stage and two-stage coagulation assays, and its sensitivity has been established using purified human placental tissue factor. Log-log plots of the clot-times versus A405/min2 are linear over the mutually useful ranges of tissue factor concentration. Using human placental tissue factor reconstituted into phosphatidylserine-phosphatidylcholine (30:70) vesicles, the chromogenic assay quantitatively detected tissue factor in dilutions containing from 3 femtomoles to less than 10 attomoles of protein.

Animals↗

Interspecies variations in the transient heme species generated subsequent to CO photolysis from hemoglobins.

The structure, ligand binding kinetics, and thermodynamics of hemoglobin have been the subject of a great deal of investigation. However, the exact pathway(s) by which cooperative energetics are communicated within the protein remain undefined. The effects of interspecies variations in quaternary and tertiary structure, oxygen affinity, cooperativity, and ligand binding kinetics upon the overall ligand binding process are, therefore, of great importance in understanding and solving these problems. The demonstrated sensitivity of resonance Raman spectroscopy to heme structure and environment make it an ideal probe of ligand binding dynamics. It is possible to examine how specific vibrational modes change with time and correlate this with solution conditions and protein structural and conformational differences. Those modes which exhibit the greatest change with ligand photolysis are also indicative of possible paths of cooperative energy dissipation within the protein. The changes which occur in the vibrational modes of the heme within 10 ns of CO photolysis have been determined for a wide variety of mammalian and reptilian hemoglobins. The modes most affected by this process are, without exception, nu(Fe-His), nu4, and the substituent bending modes, delta(cb - s) and delta(cb - c alpha - c beta). Furthermore, a direct correlation exists between the shift in porphyrin pi electron density upon CO photolysis (as indicated by the transient changes in nu 4) and the Hill coefficient of cooperativity. The implications of those results concerning ligand binding cooperativity in hemoglobins are discussed.

Amphibians↗

Tissue factor (coagulation factor III) inhibition by apolipoprotein A-II.

Apolipoprotein A-II (apoA-II) has been shown to inhibit tissue factor participation in the activation of coagulation factor X by factor VIIa. The magnitude of inhibition was dependent on the concentration of the enzyme (factor VIIa) and substrate (factor X) present in the reaction. With factor VIIa at 0.86 nM, 0.41 microM apoA-II inhibited factor X activation as much as 50% at 200 nM factor X, with inhibition decreasing to 39% at 3 nM factor X. When factor X was held constant at 100 nM, 0.41 microM apoA-II inhibited its activation by 80% when factor VIIa was present at 26.7 pM, but the inhibition decreased to 47% when factor VIIa was increased to 1.75 nM. Kinetically, increasing apoA-II decreased the reaction Vmax. ApoA-II produced little effect on the apparent Km, but the apparent K1/2 for factor VIIa in the reaction increased as apoA-II concentration increased. In the presence of 0.75 pM bovine tissue factor, reconstituted with 4.31 microM phosphatidylserine-phosphatidylcholine (30:70, w/w) vesicles, and in the absence of apoA-II, the apparent Km was near 7 nM factor X when factor VIIa was present at 0.86 nM. Under the same conditions with factor X at 100 nM, the apparent K1/2 was near 56 pM factor VIIa. As apoA-II was added to 0.41 microM, the apparent K1/2 increased to about 200 pM factor VIIa. The aggregate results support a model in which apoA-II inhibits tissue factor potentiation of factor VIIa activity. Because the apparent K1/2 increases when apoA-II is added, the factor VIIa can apparently protect tissue factor from the effects of apoA-II. Thus, apoA-II appears to inhibit factor X activation by preventing the appropriate association of tissue factor with factor VIIa.

Animals↗

An inhibitory monoclonal antibody against human tissue factor.

We obtained a hybridoma using immune spleen cells from a mouse injected with human brain tissue factor that had been purified on a factor VII-agarose affinity column. This monoclonal IgG1, HTF1-7B8, inhibits tissue factor procoagulant activity. The concentration of HTF1-7B8 producing half-maximal inhibition is influenced by the concentration of factor VIIa, suggesting that the antibody and enzyme compete for the cofactor. The antibody was successfully used to detect both human and bovine tissue factor on nitrocellulose dot blots, indicating that the epitope recognized by this antibody is conserved in both species. This antibody clearly reveals tissue factor on a Western blot. An HTF1-7B8 affinity column was used to purify tissue factor from both human brain and placenta. The electrophoretic mobilities in polyacrylamide gels in the presence of sodium dodecyl sulfate (SDS) and the amino acid compositions of the purified tissue factor from brain and placenta are indistinguishable, as are their specific procoagulant activities in reconstituted systems. This antibody will be useful for immunopurification and characterization of tissue factor structure and mechanism.

Amino Acids↗

Variations in the oxidation-reduction behavior of liganded species of Pseudomonas cytochrome oxidase.

In an effort to determine the steady-state redox properties of Pseudomonas aeruginosa cytochrome cd1, changes in absorption spectra after the addition of excess reductant (ascorbate, ferrous ethylenediaminetetraacetic acid) were monitored for degassed unliganded enzyme and samples in the presence of CO and CN- at pH 6.0, 8.0, or 10.0. Plots of [c2+]/[c3+] vs. [d2+]/[d3+] indicate that a "pseudoequilibrium" was reached for all samples at pH 8.0. Calculated values of delta Ed-c, the difference in reduction potential between the heme c and heme d moieties, at pH 8.0 were -25 +/- 5 (unliganded), -10 +/- 5 (enzyme-CO), and -25 +/- 5 mV (enzyme-CN). Relative rates of heme c and heme d reduction were found to be dependent upon type of ligand, reductant, and pH. Evidence for a cooperative heme c-heme d interaction is discussed.

Anaerobiosis↗

The structural bases for the unique ligand binding properties of Glycera dibranchiata hemoglobins. A resonance Raman study.

The hemoglobin of the marine annelid Glycera dibranchiata possesses several unique features: the hemoglobin consists of multiple monomeric and polymeric components, quaternary structure is lacking, the distal histidine is replaced by leucine in at least one monomeric constituent, and 4) the protein exhibits extremely rapid ligand binding kinetics. The effect of these structural modifications on the ligand binding process has been evaluated using resonance Raman spectroscopy to examine the vibrational modes of the porphyrin macrocycle in deoxy and carbonmonoxy equilibrium species of hemoglobin G. dibranchiata in both the unseparated monomeric and polymeric forms and in a single monomeric component designated Fraction II. Significant differences relative to hemoglobin were found in porphyrin pi electron density, vinyl environment, low frequency vibrational modes, and, in particular, the Fe-proximal histidine stretching mode. Spectra of the deoxy heme transients generated within 10 ns of ligand photolysis have also been examined. These clearly indicate large differences in the heme pocket dynamics subsequent to CO photolysis in G. dibranchiata hemoglobins relative to other hemoglobins. The significance of these results in terms of the kinetics and thermodynamics of ligand binding is discussed.

Animals↗

Tissue factor activity in HeLa cells measured with a continuous chromogenic assay and ELISA reader.

Tissue factor activity expressed by Hela cells cultured in 96-well plates has been quantitated in situ using a continuous spectrophotometric assay. Following the assay, cells assayed without physical disruption remained as viable as cells not subjected to the assay. Very little (or no) tissue factor was expressed in nondisrupted cells relative to that available in cells disrupted by freeze-thawing and sonication. Total tissue factor activity (that available in disrupted cells) decreased not as a simple function of time after subculturing, but was inversely related to cell density.

Animals↗

Regulation of melanoma by the embryonic skin.

This report focuses on the regulation of murine melanoma by the embryonic skin. A surgical technique was developed to allow injection of B16 melanoma cells into the embryo in utero. A significant decrease in incidence of tumors was noted, which correlated with the time of arrival of normally migrating premelanocytes into the skin. Media were conditioned from skin explanted at the time premelanocytes arrive in it; these media inhibited the growth of melanoma cells in vitro. Under optimal conditions the growth of melanoma cells ceased; the cells had altered morphology and failed to proliferate when placed in fresh growth media.

Animals↗

Tissue factor gene localized to human chromosome 1 (1pter----1p21).

Tissue factor (tissue thromboplastin, coagulation factor III), a protein component of cell membranes, is an essential cofactor for factor VII-dependent initiation of blood coagulation. Since no tissue factor-deficient condition has been described, it is one of only a few proteins of the coagulation system for which the pattern of inheritance has not been ascertained. Because of the species-specificity of tissue factor activity and the availability of a very sensitive chromogenic assay, it was possible in the present study to use somatic cell hybrids to assign the chromosomal location of the tissue factor structural gene (F3) to human chromosome 1 (1pter----1p21).

Animals↗

Rapid chromatographic purification of apolipoproteins A-I and A-II from human plasma.

Rapid, large-scale isolation of human apolipoproteins A-I and A-II has been accomplished using two chromatographic procedures. The apolipoproteins adsorbed from plasma onto a column of phenyl-Sepharose are eluted with increasing propylene glycol concentrations. Apolipoproteins A-I and A-II can be resolved by elution with a linear 0 to 80% propylene glycol gradient. Homogeneous preparations of apo A-I and A-II are obtained following gel filtration in 3M guanidinium chloride.

Apolipoprotein A-I↗

Characterization of the siroheme active site in spinach nitrite reductase by resonance Raman spectroscopy.

The resonance Raman spectra of various species of spinach nitrite reductase (ferredoxin: nitrite oxidoreductase, EC 1.7.7.1) have been obtained with Soret excitation. These spectra allow for the vibrational properties of the unique siroheme chromophore at the enzyme's active site. The wholesale reordering of siroheme vibrational properties relative to those of protoporphyrins can be rationalized as resulting from a combination of symmetry lowering and bond order reductions within the siroheme macrocyle.

Binding Sites↗

A resonance Raman study of ligand binding geometry in Glycera dibranchiata carbonmonoxyhemoglobin.

Using 12CO and 13CO liganded protein and 406 nm laser excitation, multiple stretching (upsilon(Fe-CO), upsilon(C-O)) and bending (delta(Fe-C-O)) modes have been identified in the resonance Raman spectra of monomeric and polymeric Glycera hemoglobins. While the monomer fraction Glycera dibranchiata hemoglobin has upsilon(Fe-CO) = 496 cm-1, two distinct upsilon(Fe-CO) modes are found at 498 cm-1 and 520 cm-1 for the polymeric protein fraction. Data for upsilon(Fe-CO) and upsilon(C-O) were employed in an isolated three-body oscillator calculation to obtain approximate values for the Fe-C-O bond angle of 175 +/- 5 degrees for one polymeric component and 160 +/- 5 degrees for both the monomer and the second identifiable polymeric component. The differences in ligand binding geometry between the Glycera hemoglobins and other hemeproteins can be used to rationalize the relatively high values of on and off rates exhibited by the Glycera hemoglobins.

Animals↗

Selective immunoprecipitate identification using monoclonal anti-rabbit IgG.

A monoclonal mouse antibody directed against rabbit IgG has been conjugated with horseradish peroxidase and used to identify immunoprecipitates which contain rabbit antibodies. By combining a specific rabbit antisera with a general antiserum from another species (e.g., goat antiserum against human serum), immunoprecipitates containing the antigen(s) recognized by the rabbit antibodies have been selectively identified by colorimetric development of peroxidase activity. Since the monoclonal antibody is specific for rabbit IgG and nonprecipitating, the peroxidase conjugate can be included in the agarose with the primary antisera.

Animals↗

Computerized analysis of enzyme cascade reactions using continuous rate data obtained with an ELISA reader.

Two programs have been written which permit analysis of multiple continuous-rate enzyme-cascade assays conducted with the use of an ELISA spectrophotometer and a synthetic chromogenic substrate. Because the product of the first reaction functions as the enzyme in the second reaction, production of chromophore continuously accelerates and it is the rate of acceleration which serves to measure the rate of the initial reaction in the system. The first program determines the rate of acceleration using linear regression to analyze the reaction curves as a function of the square of time. The second program, using a Simplex algorithm, determines the parameters which establish the assay standard curve by fitting the rate data to the Hill equation. Used together, these programs facilitate the analysis of many kinetic experiments conducted simultaneously.

Chromogenic Compounds↗