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Biomedical subjects

H A Jacobs

Publications and source records attributed to H A Jacobs.

15 recordsLinked to original sources

Effect of fibronectin on the binding of antithrombin III to immobilized heparin.

An objective of this research is to verify the mechanism of anticoagulant activity of surface-immobilized heparin in the presence of plasma proteins. The competition and binding interaction between immobilized heparin and antithrombin III (ATIII)/thrombin have been described in vitro. However, the strong ionic character of heparin leads to its specific and nonspecific binding with many other plasma proteins. Most notably, fibronectin contains six active binding sites for heparin which may interfere with the subsequent binding of heparin with ATIII or thrombin. Heparin was covalently immobilized through polyethylene oxide (PEO) hydrophilic spacer groups onto a model surface synthesized by random copolymerization of styrene and p-aminostyrene. The binding interaction of immobilized heparin with ATIII was then determined in the presence of different fibronectin concentrations. The binding interaction was studied by first binding immobilized heparin with ATIII, followed by the introduction of fibronectin; heparin binding with fibronectin, followed by incubation with ATIII, and simultaneous incubation of surface immobilized heparin with ATIII and fibronectin. The extent of ATIII binding to heparin in each experiment was assayed using a chromogenic substrate for ATIII, S-2238. The results of this study demonstrate that the displacement of ATIII from immobilized heparin was proportional to the fibronectin concentration, and was reversible. Furthermore, the binding sequence did not play a role in the final concentration of ATIII bound to immobilized heparin.

Anticoagulants↗

Surface adsorption and fibrinogen interactions with hirudin-thrombin complex.

This study describes the protein interaction properties of hirudin-thrombin complex adsorbed onto a surface. Hirudin-thrombin complex, preadsorbed thrombin bound with hirudin, and thrombin were coated onto the surfaces of glass beads. The activity of the thrombin component adsorbed onto the surface, and hence the ability of hirudin to bind and inactivate thrombin, was determined by measuring the activity of thrombin to cleave fibrinogen to generate fibrin and to cleave a chromogenic substrate, S-2238. Pure thrombin adsorbed on the surface (without hirudin) retained its activity to cleave fibrinogen and cleave S-2238. Hirudin-thrombin complex adsorbed on the surface did not stimulate the activation of fibrinogen, nor did it cleave S-2238.

Biocompatible Materials↗

Mechanism of thrombin inactivation by immobilized heparin.

The ability of heparin to interact with plasma proteins, in particular antithrombin III (ATIII) and thrombin, is its primary mechanism as an anticoagulant drug. Research efforts have focused on the biological activity of heparin under three conditions: in solution as a free molecule, chemically coupled directly onto a polymer surface, and coupled onto a polymer surface using hydrophilic spacer groups. Each of these conditions yields altered biological activity, presumably a result of differing binding interactions with ATIII and thrombin. In this report, insights into binding interaction of direct versus polyethylene oxide space immobilized heparin with ATIII, thrombin, and the generation of the thrombin-antithrombin complex will be presented.

Anticoagulants↗

Heparin surface immobilization through hydrophilic spacers: thrombin and antithrombin III binding kinetics.

The immobilization of heparin onto polymeric surfaces using hydrophilic spacer groups has been effective in curtailing surface induced thrombus formation. In this study, the effect of hydrophilic spacers (PEO) on the binding kinetics of immobilized heparin with antithrombin III (ATIII) and thrombin was investigated. Monodispersed, low molecular weight heparin was fractionated on an ATIII affinity column to isolate high-ATIII affinity heparin. This high-ATIII affinity fraction was immobilized onto a styrene/p-amino styrene random copolymer surface using hydrophilic poly(ethylene oxide) (PEO) spacer groups. Styrene/p-amino styrene random copolymer was chosen as the model surface to provide quantitative and reproducible surface concentrations of available amine groups, grafted PEO spacers, and immobilized heparin. The polymer substrate was coated onto glass beads, tolylene diisocyanate modified PEO was covalently coupled to the surface, followed by heparin immobilization. The bioactivity of immobilized heparin was 16.2%, relative to free heparin, and a 1:1 binding ratio between heparin and PEO was achieved. The binding of ATIII and thrombin to control surfaces (no heparin), soluble heparin, heparin immobilized directly onto the surface, and heparin immobilized via spacer groups, were compared. Soluble heparin bound both thrombin and ATIII, while heparin immobilized directly onto the surface bound only thrombin. Spacer-immobilized heparin bound both ATIII and thrombin, although to a lesser extent than soluble heparin. Thus, the enhanced bioactivity of spacer-immobilized heparin, compared to direct-immobilization, may be attributed to the retention of ATIII binding.

Amino Acid Sequence↗

Blood compatibility of PEO grafted polyurethane and HEMA/styrene block copolymer surfaces.

HEMA/styrene (HEMA/STY) block copolymers and poly(ethylene oxide) 4,000 M.W. (PEO4K) grafted Biomer (B-PEO4K) surfaces have been synthesized, characterized, and evaluated as blood-contacting materials. These surfaces have demonstrated improved blood compatibility, compared to Biomer, in in vitro and ex vivo experiments. Biomer vascular grafts (6 mm I.D. 7 cm in length) were fabricated by a dip coating process. The luminal surface was modified either with PEO grafting, HEMA/STY coating, or Biomer coating (control). These surface-modified grafts were implanted in the abdominal aortas of dogs and evaluated for graft patency and protein adsorption. Surface protein layer thickness was measured by transmission electron microscopy (TEM). B-PEO4K and Biomer showed thick multilayers of adsorbed proteins (1000-2000 A) after 3 weeks to 1 month implantation. In contrast, HEMA/STY only showed a monolayer protein thickness (less than 200 A), even after 3 months. Visualization of adsorbed plasma proteins (albumin, IgG, and fibrinogen) was performed with scanning electron microscopy (SEM)/TEM using an immunogold double antibody technique. The pattern of protein distribution showed high concentrations of fibrinogen and IgG, and less albumin adsorbed onto Biomer and B-PEO4K. In contrast, HEMA/STY showed a patchy protein distribution pattern with high concentrations of albumin and IgG, and relatively less fibrinogen. Adsorbed monolayer patterns showed improved compatibility over multilayered proteins. The Biomer and B-PEO4K grafts occluded within 1 month, while HEMA/STY grafts were patent for over 3 months. The thin and stable adsorbed protein layer on HEMA/STY surfaces may be associated with the microdomain structures of the surface, and will play an important role in long-term in vivo blood compatibility. This manuscript will evaluate the long-term in vivo performance of these polymers, analyze the extent of protein adsorption onto the surfaces, and correlate protein layer thickness to the thrombogenicity of the polymer surfaces.

Adsorption↗

Antithrombogenic surfaces: characterization and bioactivity of surface immobilized PGE1-heparin conjugate.

A covalently bonded conjugate of commercial grade heparin and prostaglandin E1 (PGE1) was synthesized to prevent both fibrin formation and platelet aggregation during thrombus formation. The PGE1-heparin conjugate was immobilized on an imidazole carbamate derivatized sepharose bead surface through hydrophilic spacer groups (diamino-terminated polyethylene oxides). One end of the spacer group was coupled to the derivatized surface through a urethane bond between the amine group of the spacer and the derivatized surface. The free amine group of the immobilized spacers was coupled to a carboxylic group of the PGE1-heparin conjugate through an amide bond. Bioactivity of the immobilized conjugate (heparin activity) was measured in terms of increased clotting times (thrombin time assay) and for the inactivation of Factor Xa. Bioactivity of the immobilized compound (PGE1 activity) was analyzed by platelet adhesion and platelet release reactions using C14-5-hydroxytryptamine (5-HT). The conjugate immobilized via the C2 spacer showed the highest incidence of platelet adhesion, 5-HT released and the lowest activity for coagulation factors. In contrast, the 1000 and 4000 immobilized systems showed a significant reduction in platelet activation, while having the greatest effect on coagulation factors. The results of these experiments imply that the immobilized conjugate is active in preventing both pathways of thrombus formation, and the efficacy is improved through the use of long-chain hydrophilic spacer groups.

Alprostadil↗

A new multiple sclerosis epidemic? A pilot survey.

There may be an increasing incidence of multiple sclerosis in South Africa. All newly-diagnosed white Afrikaans-speaking patients from the Pretoria area were examined over a 12-month period and 5 new cases were diagnosed. This is a highly significant rise over the expected 0,2/100 000/year (P less than 0,001).

Humans↗

Binding of antithrombin III and thrombin to immobilized heparin under flow conditions.

The chemical immobilization of heparin onto polymeric materials through hydrophilic spacer groups was performed to improve the hemocompatibility of blood-contacting devices. Significant data have been gathered attesting to the biological activity of immobilized heparin in static in vitro studies (clotting times) and dynamic in vivo studies (thrombus formation). However, few studies have been performed to investigate the binding kinetics of spacer-immobilized heparin under flow (shear stress) with antithrombin III (ATIII) and thrombin. To help elucidate this binding mechanism, a mathematical model was developed which parallels experiments to measure protein binding and dissociation at the heparin immobilized surface under flow conditions. Heparinized tubing was prepared by chemically immobilizing a high-ATIII-affinity fraction of heparin onto the surface of poly(ethylene)-oxide grafted, poly(styrene-co-p-aminostyrene)-coated polyethylene tubing. ATIII was first bound onto the immobilized heparin, followed by the introduction of thrombin to interact with ATIII. The concentration of thrombin-ATIII complex (TAT) flowing from the tubing was determined, and the dissociation rate constants (kD) of TAT from immobilized heparin were calculated as a function of flow rate. The results indicate that the dissociation rate constant of TAT varied with flow rate, especially low flow rates, high flow rates, and turbulent flow. As the TAT complex dissociates from immobilized heparin, this "recovered" heparin is available for subsequent binding of more ATIII and thrombin. These in vitro mathematical results may help support mechanisms and hypotheses generated for the biological activity of spacer-immobilized heparin observed during long-term in vivo and ex vivo experiments.

Anticoagulants↗

Scanning and transmission electron microscopic evaluation of the U-100 total artificial heart blood contacting surface.

Thrombus formation, cell adhesion, mineralization, and the adsorbed protein layer have been investigated on blood contacting surfaces of the Utah-100 total artificial heart (TAH). Retrieval analysis was performed on two calves (at 7 and 97 days) and a sheep (at 21 days). Six locations on each ventricle were systematically evaluated by scanning electron microscopy. Transmission electron microscopy was used to measure the thickness and distribution of proteins (albumin, IgG, and fibrinogen) on the surface. Gross thrombus was detected only on the left atrial cuff in the 97 day calf. SEM demonstrated fairly clear surface morphology, with minimal platelet adhesion and activation, and little thrombus formation. At 97 days, calcium deposits were detected along the diaphragm-housing junction. Protein layer thickness on the diaphragm increased with implant time; dominant proteins detected on the surface were fibrinogen and IgG, rather than albumin. Improvements in design and fabrication techniques have demonstrated decreased intradevice thrombosis with the U-100 TAH. However, systemic thromboembolism still remains a problem, and further improvements in the blood contacting surface of the U-100 TAH are necessary to achieve a thrombus free TAH.

Animals↗

Heparin immobilization by surface amplification.

A method to increase the amount and improve the bioactivity of heparin (HEP) immobilized on a polymer surface was developed. The surface of polyurethane-urea (PU) coated glass beads was first modified with diisocyanates, followed by surface grafting of polyfunctional polymers (PFP), including: poly(vinyl alcohol), poly(ethyleneimine), and poly(allylamine). The functional groups of the surface grafted PFP (-OH, -NH, or -NH2) were modified with diisocyanates (TDI) to amplify the surface concentration of isocyanate groups, alpha, omega-diamino-terminated polyethylene oxide (PEO; molecular weight, 4,000 daltons) was then coupled to the surface grafted PFP, and the free amino groups were derivatized with TDI. Finally, HEP was coupled to the amplified surface through free -NCO groups of PU-PFP-PEO. The surfaces were quantified during each step of the procedures for -NCO groups and HEP. All grafted surfaces showed a four to eightfold increase in -NCO content and a twofold increase in immobilized HEP content compared with HEP immobilized directly onto the PU surface. The HEP bioactivity tests (including activated partial thromboplastin time, thrombin times, and factor Xa) demonstrated an increased bioactivity of HEP when immobilized through PFP-PEO compared with PFP and PU alone.

Biocompatible Materials↗

Binding kinetics of thrombin and antithrombin III with immobilized heparin using a spacer.

The immobilization of heparin onto polymeric surfaces using a hydrophilic spacer was effective in curtailing surface induced thrombus formation. In this study, the binding kinetics of immobilized heparin with antithrombin III (ATIII) and thrombin were investigated. Low molecular weight heparin (molecular weight, 6,000 daltons) was fractionated on an ATIII affinity column, and it was immobilized onto a styrene/p-amino styrene random co-polymer surface via hydrophilic spacer groups. This polymer substrate was coated onto glass beads (diameter range, 0.088-0.105 mm). PEO (molecular weight 3,400), modified by tolylene diisocyanate, was covalently coupled as a spacer group, followed by heparin. The bioactivity of immobilized heparin was approximately 16.2%, relative to free heparin, and nearly 1:1 binding between heparin and PEO was calculated. The binding constants of immobilized heparin and ATIII, and immobilized heparin and thrombin, were 0.958 x 10(7) M-1 and 1.76 x 10(8) M-1, respectively. The immobilized heparin bound with both ATIII and thrombin, and the binding mechanism was similar to that of free heparin.

Amino Acid Sequence↗

In vivo nonthrombogenicity of heparin immobilized polymer surfaces.

The authors developed two different methods to immobilize heparin on polymer surfaces. One method involves in situ heparin immobilization on a segmented polyurethane urea (Biomer) surface via hydrophilic poly(ethylene oxide) (PEO, Mn = 4,000) spacers. The other method uses PEO/poly(dimethylsiloxane) (PDMS) block co-polymer and heparin covalently linked in a block co-polymer system (PEO-PDMS-Hep). These surfaces have demonstrated high heparin bioactivity in vitro and excellent blood compatibility in in vitro-ex vivo experiments. This report evaluates the long-term in vivo blood compatibility of these heparin immobilized surfaces. Vascular grafts (6 mm ID, 7 cm in length) were fabricated with Biomer, and heparin was immobilized in situ with PEO spacers (B-PEO4K) and coated on their luminal surfaces with PEO-PDMS-Hep. Biomer and PEO (Mn = 4,000) grafted Biomer (B-PEO4K) were used as controls. The grafts were implanted in the abdominal aorta of dogs and retrieved at 3 months or when graft occlusion was suspected. Retrieved grafts were evaluated with scanning electron microscopy (SEM) and transmission electron microscopy (TEM). TEM measured the thickness of the adsorbed protein layer on the surface and the protein distribution (albumin, fibrinogen, and IgG) visualized by an immunogold method. All heparin immobilized grafts were patent at 3 months, whereas Biomer and B-PEO4K grafts occluded within 1 month. SEM pictures of heparin immobilized surfaces after 3 months demonstrated minimal platelet adhesion and activation without detectable fibrin formation. Heparin immobilized surfaces showed a thin protein layer (300-600 A) even after 3 months, with high concentrations of albumin and IgG and less fibrinogen.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗