Search PubMedSearch

SEARCH · Search PubMed

Results for “Clot Retraction”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Effects of prostaglandins, derivatives of cyclic 3':5'-AMP, theophylline, cholinergic agents and colchicine on clot retraction in dilute platelet-rich plasma and gel-separated platelet test systems.

In dilute suspensions of platelet-rich plasma (PRP) or gel-separated platelets (GSP), dibutyryl-cAMP (DBcAMP) and monobutyryl-cAMP inhibited platelet-mediated fibrin clot retraction in concentrations of 2--3 X 10(-6) M, with complete inhibition at 1--3 X 10(-4) M. Prostaglandin E1 (PGE1), which inhibited fibrin clot retraction in concentrations greater than 1.5--3 X 10(-8) M, was a more effective inhibitor than either PGE2 or PGF2 alpha. In the presence of theophylline (10-4 M), concentrations of DBcAMP, PGE1, PGE2 and PGF2 alpha necessary to inhibit fibrin clot retraction were reduced 50-fold for DBcAMP and 2.5 to 20-fold for the prostaglandins. In dilute PRP or GSP, inhibition of fibrin clot retraction does not result from inhibition of thrombin-induced platelet aggregation. Thus, compounds which increase platelet cAMP levels result in the inhibition of platelet-mediated fibrin clot retraction, and this inhibitory effect may be mediated, at least in part, through suppression of platelet contractility. Cyclic GMP, dibutyryl-cGMP and carbamylcholine-Cl (which stimulate guanylate cyclase) did not influence fibrin clot retraction, and did not prevent inhibition of fibrin clot retraction by DBcAMP and PGE1. Colchicine, in concentrations known to disrupt platelet microtubules (2.5 X 10(-6) M to 2.5 X 10(-3) M), had little inhibitory effect on either fibrin clot retraction or platelet (3H)-serotonin release.

Blood Coagulation

Tanshinone IIA impairs platelet function and thrombus formation.

BACKGROUND: Tanshinone IIA (T-IIA) is a fat-soluble active ingredient derived from the traditional Chinese medicine Danshen and possesses cardioprotective property. However, its exact role in platelet function is unknown. OBJECTIVES: This study investigated T-IIA's role in platelet aggregation, granules release, spreading, clot retraction, as well as in vivo hemostasis and thrombus formation. METHODS: Human platelets were treated with different doses of T-IIA (10, 50, and 100 μM) to measure platelet function and activation. In addition, T-IIA was administrated into wild-type mice to evaluate hemostasis and thrombus formation. RESULTS: T-IIA significantly impaired platelet aggregation, adenosine triphosphate secretion, P-selectin expression, and spreading and clot retraction dose dependently without affecting the expression profiles of αIIbβ3 and glycoprotein VI or Ibα. Administration of T-IIA significantly prolonged mice tail bleeding time and inhibited arterial and venous thrombosis. Further analysis showed that T-IIA dose dependently reduced platelet reactive oxygen species generation. Quantitative proteomic and phosphoproteimic assays analyzing T-IIA-treated vs vehicle-treated platelets after stimulation identified dysregulated phosphorylation of several proteins, which were enriched in platelet activation. Among the downregulated phosphoproteins, Rho-associated protein kinase (ROCK)1, integrin β3, and talin1 exhibited the lower fold change of phosphorylation in T-IIA-treated platelets compared with those in vehicle-treated platelets. Consistently, T-IIA treatment inhibited the phosphorylation of ROCK1, p47phox, integrin β3, and talin1 in activated platelets. CONCLUSION: T-IIA impairs platelet function and thrombosis via inhibition of several signaling pathways including ROCK1/p47phox, β3, and talin1, implying that T-IIA may represent a promising therapeutic candidate for treating thrombotic diseases.

Animals

Ditazole and platelets. I. Effect of ditazole on human platelet function in vitro.

Ditazole (4,5-diphenyl-2-bis-(2-hydroxyethyl)-aminoxazol) has been shown to be a strong in vitro inhibitor of human platelet aggregation brought about by release reaction inducers; in contrast, it did not significantly affect primary ADP-induced aggregation. Ditazole strongly inhibited the release of platelet-bound 14C-serotonin under the influence of Thrombofax, whereas it did not interfere with the transport and storage of serotonin in nonstimulated platelets. The effect of ditazole was not potentiated by acetylsalicylic acid. Ditazole also inhibited ADP-reptilase clot retraction and modified thrombin-induced clot formation. The inhibition of platelet aggregation exerted by ditazole in plasma could be removed following gel filtration of platelets on Sepharose 2-B gel. This would indicate that ditazole does not act on platelets by a 'hit and run' mechanism.

Adenosine Diphosphate

Effect of vitamin E on platelet aggregation in diabetic retinopathy.

The effect of vitamin E on platelet aggregation was investigated in a group of 10 patients with diabetic retinopathy. Adenosine diphosphate induced platelet aggregation was inhibited in the patients' group as well as in the controls in the presence of vitamin E. An increased platelet aggregation was obtained with arachidonic acid in both groups when platelet-rich plasma was incubated prior with vitamin E. The clot retraction inhibition test parallels the findings of aggregation obtained with the platelet aggregation meter.

Adenosine Diphosphate

Biochemical mechanism of platelet activation. Involvement of contractile proteins.

The present state of knowledge of the biochemical mechanism of platelet activation (adhesion, shape change, microspike formation, aggregation, release reaction, clot retraction) is presented under involvement of contractile proteins. The working hypothesis on the contractile mechanism of platelet activation is explained.

Actomyosin

[Effect of phosphatidylserine on formation and lysis of fibrin].

Phosphatidyl serine inhibited non-enzymatic step of fibrin formation (selfassociation of monomeric fibrin). But phosphatidyl serine did not affect the factor XIII activity, the rate of fibrin clot retraction and its tolerance to plasmin. Activity of plasmin was not altered in presence of phosphatidyl serine but influence of slowly acting antiplasmin on plasmin was slightly limited by the lipoid. Due to this phenomenon phosphatidyl serine caused the activation of fibrinolysis in native system (blood plasma). The data obtained support the earlier advanced assumptions on inhibition of thrombin-fibrinogene reaction by phosphatidyl serine.

Antifibrinolytic Agents

Inhibition of collagen-induced platelet aggregation by antibodies to distinct types of collagens.

Aggregation of platelets by fibrils formed from collagens type I, II and III could be inhibited by coating the fibrils with anti-collagen antibodies or Fab fragments. Similar results were obtained in a clot-retraction assay. Inhibition was achieved with stoichiometric amounts of antibodies and was specific for each type of collagen. Aggregation caused by a mixture of type-I and -III collagens could only be inhibited by a mixture of antibodies against both collagens. The data show that each interstitial collagen is capable of interacting with platelets and do not support the concept of an outstanding activity of type-III collagen.

Antibodies

Specificity of the effects of cytochalasin B on transport and motile processes.

The effects of cytochalasin B (CB) and dihydrocytochalasin B (H2CB) on a variety of transport and motile processes have been compared. CB inhibited transport of D-glucose and L-glucose but not transport of thymidine in human erythrocytes. In contrast, H2CB, which differs from CB by the absence of a single double bond, had little or no effect on any of these processes. Both cytochalasins, however, affected the morphology of cultured fibroblasts and inhibited motile processes such as membrane ruffling, axon growth cone activity, blood clot retraction, cytoplasmic streaming, photodinesis, and cytokinesis. Determination of the partition coefficient of the two cytochalasins in several organic solvent/phosphate-buffered saline systems showed that H2CB has a higher affinity for the hydrophobic phase than CB. These results indicate that the inhibitory effects of CB on sugar transport and on cell motility and morphology are separable and independent events, mediated by the binding of the drug to specific cellular receptors.

Axons

Effect of propranolol on platelet function.

Excessive reactivity of blood platelets may contribute to atherosclerotic vascular disease. Hence drugs which alter platelet function may be protective. Prompted by findings that propranolol therapy normalized hyperactive platelet aggregation in patients with coronary artery disease, we studied propranolol in vitro to assess its action on platelets. At concentrations similar to those achieved in vivo (0.1-1 muM), propranolol raised the thresholds for aggregation of some normal paltelets by adenosine diphosphate (ADP). At higher concentrations (10-50 muM), propranolol abolished the second wave of platelet aggregation induced by ADP and epinephrine, and inhibited aggregation induced by collagen, thrombin, and the ionophore A23187. Propanolol blocked the release of 14C-serotonin from platelets, inhibited platelet adhesion to collagen, and interfered with clot retraction. Propranolol blocked ionophore-induced uptake of 45Ca by platelets. Inhibition appeared unrelated to beta-adrenergic blockage, as d(+) propranolol (which lacks beta-blocking activity) was equipotent with 1(-) propranolol. Moreover, practolol, a beta-blockading drug which is nonlipophilic, did not inhibit platelet function. These studies suggested that propranolol, like local anesthetics, decreased platelet responsiveness by a direct action on the platelet membrane, possibly by interfering with calcium availability. Modulation of platelet function by propranolol may occur at concentrations achieved at usual clinical doses of the drug.

Blood Coagulation Tests

The use of fresh blood in the treatment of critically injured patients.

Initial transfusion needs aremet by type-specific rather than low titer O-negative blood. When the patient's problem approaches the magnitude of exchange transfusion (5 to 10 units) in less than 4 hours, platelet transfusion to treat dilutional thrombocytopenia is administered. Fresh frozen plasma is administered to provide clotting factors. When five units have been exceeded, platelet, pro-thrombin, and partial thromboplastin are measured. A blood clot is checked for clotting, retraction, and lysis. These tests screen platelet quantity and the intrinsic and extrinsic clotting system. Administered blood is warmed in a water bath or heating coil. Blood gas analysis (pH, pO2, and pCO2) is performed every five units to allow for precise administration of bicarbonate. The electrocardiogram is used to monitor potassium and calcium abnormalities. Hyperkalemia is seldom a problem. Hypocalcemia may be present transiently and is treated with calcium choride. Component therapy is the standard recommended practice. Fresh blood is recommended for the patient who has had an acute exchange transfusion and continues to require large quantities of blood. Fresh blood obviates the need for combining components and allows one transfusion unit to address itself to the multiple needs of the patient.

Acid-Base Equilibrium

Congenital deficiency of alpha 2-plasmin inhibitor associated with severe hemorrhagic tendency.

alpha(2)-Plasmin inhibitor (alpha(2)PI) is a recently characterized, fast-reacting plasmin inhibitor in human plasma that appears to play an important role in regulation of in vivo fibrinolysis. We report here a case of complete deficiency of alpha(2)PI in man. The patient, a 25-yr-old Japanese man, had a life-long severe bleeding tendency (hemarthrosis and excessive bleeding after trauma). The following tests were within normal limits: platelet count, bleeding time, thrombin time, prothrombin time, partial thromboplastin time, titers of known clotting factors, platelet glass bead retention, Factor VIII-related antigen, platelet aggregation by ADP, collagen and ristocetin, and clot retraction. Routine liver function tests were also normal. The only abnormal finding was that whole blood clot lysis was extemely rapid and was complete in 4-8 h. The concentration of plasma protease inhibitors, including alpha(2)-macro-globulin, antithrombin III, alpha(1)-antitrypsin, and C1INH, were all normal. The concentration of alpha(2)-PI in the patient's plasma, assayed by immunological methods, was <0.1 mg/100 ml (normal concentration, 6.1+/-0.88 mg/100 ml [mean+/-SE]) and functional assays showed a complete deficiency of alpha(2)PI. Addition of purified alpha(2)PI to the patient's whole blood completely corrected the accelerated fibrinolysis. The patient's parents, four siblings, and four other members of this family were asymptomatic, but the titers of alpha(2)PI in their plasmas were congruent with50% of normal pooled plasma. There were three consanguineous marriages in this family, and the alpha(2)PI deficiency appears to have been inherited as an autosomal recessive trait. We speculate that alpha(2)PI deficiency in this patient has led to uninhibited in vivo fibrinolysis that probably causes the severe hemorrhagic tendency. Thus, this study indicates the important role of alpha(2)PI in hemostasis.

Adult

Platelet dysfunction in vincristine treated patients.

Recent revival of interest in the use of vincristine (VCR) for the treatment of idiopathic thrombocytopenic purpura prompted us to evaluate the platelet function of our patients on VCR. Eighteen patients with acute lymphoblastic leukaemia (ALL) in remission, and nine children with solid tumours were studied on 80 occasions at different time intervals after their last VCR dose. A mildly elevated threshold for epinephrine-induced second phase aggregation and a delay in the onset of collagen-induced aggregation was found in patients with ALL not on VCR. Vincristine induced unobtainable second phase aggregation to epinephrine in 67%, 38%, 30% and to ADP in 53%, 13%, 33% of the patients 1 week, 2-3 weeks and 4 weeks respectively after administration. The thrombocytopathy was relative, not absolute, since collagen induced aggregation at all times. Platelet counts, uptake and release of serotonin, bleeding times, clot retractions and release of platelet factor 3 were normal. Platelet adhesion was abnormal in five of 12 patients tested. In vitro platelets are a hundred-fold less sensitive to VCR than in vivo. Cyclic adenosine monophosphate, cyclic guanosine monophosphate and dimethylsulfoxide do not protect platelets from VCR. The exact mechanism by which VCR abolishes second phase aggregation in patients is uncertain. Because of VCR's narrow therapeutic index between thrombocytopenia and thrombocythaemia, the use of VCR should be reserved for life-threatening haematologic disorders when treating non-malignant conditions.

Adenosine Diphosphate

In vivo and in vitro activation of T-antigen receptors on leukocytes and platelets.

Serological studies on a patient whose red cells are polyagglutinable due to T activation have demonstrated concomitant T activity of the separated leukocytes and platelets. Normal leukocytes and platelets are not T active, but activation can be induced in vitro by treatment with neuraminidase or with pneumococcus type III filtrate. Such T-active cells absorb anti-T from Arachis hypogea lectin. Tests on idfferent types of separated leukocytes show that both neutrophils and lymphocytes have latent T antigen receptors. Neuraminidase treatment of platelets does not change their ability to promote clot retraction, to aggregate with ADP, or to take up serotonin.

Absorption

In vitro effects of bencyclan on coagulation, fibrinolysis and platelet function.

The in vitro effects of N-3-(1-benzyl-cycloheptyloxy)-propyl-N,N-dimethylammonium-hydrogenfumarate (bencyclan) on clotting, fibrinolytic and platelet function test were investigated by adding the drug to normal human plasma. An anticoagulant activity, mainly of an antithromboplastin nature (directed against later stages of intrinsic thromboplastin formation and against tissue thromboplastin), was observed, while thrombin phase was unaffected. No effect was found in the fibrinolytic system tested (euglobulin lysis, UK-activated fibrinolysis, "hanging clot" method). The drug, although capable of aggregating platelets by itself at very high concentrations, showed a striking inhibitory effect, over a wide range of concentrations, both on platelet aggregation induced by ADP, epinephrine or collagen and on platelet adhesiveness to glass or collagen. Clot retraction was also clearly inhibited. PF3 availability was influenced with a peculiar two-phase behaviour dose-dependently. High concentrations showed a promoting action, while the lower were obviously inhibitory. It is suggested that the effects on platelet function may be due to an influence of the drug on cell membrane.

Bencyclane

Adenylate cyclase and phosphodiesterase activity in the platelet release abnormality.

11 patients with histories of clinical bleeding were selected as examples of platelet release abnormality. Mean bleeding time was 18 +/- 2.6 min (normal +/- SEM; 6 +/- 0.44); mean platelet adhesiveness was 9.9 +/- 4.3% (normal +/- SEM; 30 +/- 2.2). Clot retraction and platelet factor 3 were normal. Platelet aggregation with adenosine diphosphate (ADP), epinephrine and collagen was decreased, as was 14C-serotonin release. Electron microscopic studies of platelets exposed to epinephrine showed 2 subgroups: one which failed to aggregate or have centralization of organelles and a second which developed pseudopodia and centralization of organelles, but rarely aggregated or degranulated. Measurements of activity of adenylate cyclase and phosphodiesterase under basal conditions were performed on platelets from patients and control subjects. Adenylate cyclase activity was significantly lower and phosphodiesterase activity significantly higher in the patient group. Prostaglandin E1 was a potent stimulator of adenylate cyclase in both groups, as was NaF. It was concluded that the causative defects with "platelt release abnormality" do not reside in either the activity of adenylate cyclase or of phosphodiesterase. Changes in formation and destruction of cyclic adenosinemonophosphate (AMP) may instead be regarded as a compensatory response to a defect in another effector system.

Adenylyl Cyclases

A new abnormality of platelet functions. Association of storage pool disease (thrombocytopathia A) with impaired reactivity of platelets to collagen.

Multiple platelet abnormalities were found in a patient with bleeding symptoms. The platelet content of ADP and PF 4 was decreased and the uptake of 14C-serotonin was impaired. The content of acid phosphatase, beta-glucuronidase and beta-N-acetylglucosaminidase was, however, normal and these enzymes were normally released or made available by bovine fibrinogen or ADP. There was no adhesion of platelet to collagen, which also failed to induce reptilase clot retraction, platelet aggregation and release of any of the platelet constituents. The platelets therefore exhibited signs of thrombocytopathy of a combined type with a decreased storage pool as well as a qualitative dysfunction with impaired reactivity to collagen.

Adenosine Diphosphate

Effects of C-reactive protein on platelet function. III. The role of cAMP, contractile elements, and prostaglandin metabolism in CRP-induced inhibition of platelet aggregation and secretion.

It was previously demonstrated that C-reactive protein (CRP) inhibits platelet aggregation and release reactions, activation of platelet factor 3, and platelet-dependent clot retraction. Multiple considerations including selective inhibition of secondary wave aggregation suggested that CRP exerted its inhibitory effects by interfering with the release of endogenous ADP. In the present investigation, CRP was found by direct assay to inhibit the release of endogenous ADP and/or serotonin concomitant with inhibition of platelet aggregation stimulated by ADP, epinephrine, thrombin, and AHGG. CRP did not induce an increase in the basal level of platelet cAMP, suggesting independence of a direct effect upon this mediator system. Furthermore, CRP did not inhibit the aggregation and secretion induced by the antibiotic ionophore A23187, suggesting the absence of a direct effect upon the activation of platelet contractile elements. By contrast, CRP did inhibit both thrombin-induced release of malondialdehyde, a prostaglandin endoperoxide nonprostanoate endproduct, and platelet aggregation induced by the prostaglandin endoperoxide precursor arachidonic acid. These data, therefore, raise the possibility that CRP inhibits platelet reactivities by interfering with an aspect of porstaglandin metabolism, and that this occurs subsequent to the hydrolytic accumulation of arachidonic acid and prior to the movement of calcium from the platelet dense tubules. These studies support the concept that CRP serves to modulate platelet reactivities during acute inflammatory reactions.

Adenosine Diphosphate