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S Heptinstall

Publications and source records attributed to S Heptinstall.

At least 19 recordsLinked to original sources

Adenine nucleotide metabolism in human blood--important roles for leukocytes and erythrocytes.

Adenosine diphosphate (ADP) released into blood induces platelet aggregation and contributes to hemostasis and thrombosis. Released ATP can also induce platelet aggregation and there is evidence that blood leukocytes and also erythrocytes play important roles in this. Rapid metabolism of ADP and ATP by endothelial cells is important in protecting platelets from their effects. Here we have performed a systematic investigation of adenine nucleotide metabolism in human blood and the involvement of blood cells. Conversion of ATP to ADP in blood was due almost exclusively to the presence of leukocytes; plasma, platelets and erythrocytes made little or no contribution. Mononuclear leukocytes (MNLs) and polymorphonuclear leukocytes (PMNLs) were equally effective. Conversion of ADP to AMP was also promoted by leukocytes, with no involvement of platelets or erythrocytes. Some ADP was also converted to ATP in blood, apparently via an enzyme present in plasma, but ATP was then rapidly removed by the leukocytes. Conversion of AMP to adenosine occurred via a plasma enzyme with little or no contribution from any cellular element. As expected, in blood the adenosine produced was removed very rapidly by erythrocytes and then converted to inosine and then hypoxanthine. In the absence of erythrocytes plasma supported only a slow conversion of adenosine to inosine and hypoxanthine, which was not influenced by platelets or leukocytes. This study has demonstrated that leukocytes and erythrocytes play a major role in adenine nucleotide metabolism in blood and that these cells, as well as endothelial cells, may be important determinants of the effects of ATP and ADP on platelets.

Adenosine Diphosphate↗

Inhibition of ADP-induced intracellular Ca2+ responses and platelet aggregation by the P2Y12 receptor antagonists AR-C69931MX and clopidogrel is enhanced by prostaglandin E1.

P2Y(12) antagonists such as clopidogrel and AR-C69931MX inhibit aggregation by antagonizing the effects of ADP at P2Y(12) receptors on platelets. Agents such as PGE(1) also inhibit aggregation by stimulating adenylate cyclase to produce cAMP, which interferes with Ca(2+) mobilization within the cell. Since one facet of P2Y(12) receptors is that they mediate inhibition of adenylate cyclase by ADP, it might be expected that P2Y(12) antagonists would interact with PGE(1). We have explored the effects of PGE(1) and AR-C69931MX singly and in combination on ADP-induced intracellular Ca(2+) ([Ca(2+)](i)) responses and aggregation. PGE(1) alone caused parallel dose-dependent inhibition of [Ca(2+)](i) and aggregation responses. AR-C66931MX alone caused only partial inhibition of [Ca(2+)](i) despite a marked inhibitory effect on aggregation. Combinations of PGE(1) with AR-C66931MX were found to act in synergy to reduce both [Ca(2+)](i) and aggregation. This effect was confirmed in patients with acute coronary syndromes by studying the inhibitory effects of PGE(1) on [Ca(2+)](i) and aggregation before and after clopidogrel. In summary, we have shown that P2Y(12) antagonists interact with natural agents such as PGE(1) to provide more effective inhibition of [Ca(2+)](i) and platelet aggregation. This would contribute to the effectiveness of P2Y(12) antagonists as antithrombotic agents in man.

Adenosine Diphosphate↗

Quantitation of platelet aggregation and microaggregate formation in whole blood by flow cytometry.

Platelet aggregation and microaggregate formation were measured in samples of stirred whole blood by flow cytometry. Blood samples were stirred in a multi-sample agitator with ADP, fixed and labelled with a platelet-specific CD42a-FITC fluorescent antibody. The blood was then diluted and applied directly to a flow cytometer. Platelets were identified using a gating procedure based on their expression of CD42a and then quantified. Aggregation was monitored as a fall in the number of single platelets. Both reversible and irreversible aggregation responses to ADP were determined and these were found to correlate directly with aggregation responses determined using a well-established single platelet counting technique using the Ultra-Flo 100 Whole Blood Platelet Counter. We found from flow cytometry that ADP-induced aggregation was coupled with a transient formation of platelet microaggregates over the initial 60 s following ADP addition. Assessment of single platelet loss by flow cytometry was found to be a reliable way of monitoring aggregation responses and provided new information on rapid microaggregate formation in ADP-stimulated blood.

Adenosine Diphosphate↗

Prospective double-blind randomized study of the effects of four intravenous fluids on platelet function and hemostasis in elective hip surgery.

A prospective randomized double-blind study was performed to determine the effects of three colloids, Haemaccel, Gelofusine and albumin, and also saline on platelet activation, platelet aggregation (induced by adenosine diphosphate (ADP), epinephrine, collagen) platelet agglutination by ristocetin and other hemostatic variables in 55 patients undergoing primary unilateral total hip replacement. The fluids were administered according to normal clinical practice and assessments were made immediately before, at the end, and 2 h after the end of surgery. Surgery was accompanied by thrombin generation (increases in thrombin/antithrombin III complex, prothrombin F1 +2 fragment) platelet activation (betaTG) and compromised coagulation. Generally, the platelet activation appeared to result in platelet desensitization and brought about a persistent reduction in platelet aggregation to ADP and epinephrine, irrespective of the fluid used. Additionally, Haemaccel and Gelofusine inhibited ristocetin-induced platelet agglutination and albumin inhibited collagen-induced platelet aggregation. Gross inhibitory effects of Haemaccel that had been predicted from an earlier in vitro study did not occur. Particular fluids had selective additional effects on the hemostatic system. Albumin infusion served to maintain plasma albumin at normal concentrations postsurgery. The two gelatin preparations, Haemaccel and Gelofusine, maintained plasma viscosity. All three colloids led to a transient increase in activated partial thromboplastin time postsurgery and also a transient fall in the concentration of factor VIII, which were accompanied by a transient increase in bleeding time, but there was no measurable increase in blood loss. Inhibition of platelet aggregation by certain colloids may provide additional protection against the increased thrombotic risk in patients following major surgery.

Adenosine Diphosphate↗

Can the effects of clinical reperfusion fluids on platelet aggregation in vitro predict the effects of administration of such fluids in a clinical study ex vivo?

Reperfusion fluids are administered routinely during surgical operations and following trauma. Studies performed wholly in vitro have indicated effects of some fluids on haemostasis through inhibition of platelet aggregation. Recently we performed a study to further evaluate the effects of reperfusion studies in vitro and also a study in a clinical setting to determine the extent to which the results of in vitro experiments can be extrapolated to the clinical situation. The results indicate that a combination of homeostatic and trauma response mechanisms complicate the ability to extrapolate from the findings in vitro.

Hemostasis↗

Interactions of platelets with Synthocytes, a novel platelet substitute.

A platelet substitute, Synthocytes, is being developed for the prevention and treatment of thrombocytopenia. Synthocytes are composed of fibrinogen adsorbed on heat stabilised albumin microcapsules of defined size. The purpose of this study was to perform experiments in vitro to investigate the capacity of Synthocytes to interact with platelets, one of the means through which Synthocytes may contribute to haemostatic plug formation in vivo. Synthocytes were found to interact with platelets as shown by platelet aggregation assays and measurements of [(14)C]5HT release from platelets in whole blood and platelet-rich plasma. Platelet-Synthocytes co-aggregate formation was demonstrated directly using flow cytometry and the presence of activated platelets in these co-aggregates was demonstrated using an antibody to P-selectin. Synthocytes enhanced platelet responsiveness to conventional aggregating agents such as ADP. Indeed, antagonists of the action of ADP on platelets inhibited the direct effects of Synthocytes on platelets in whole blood, as did a GPIIb/IIIa antagonist. Enhancement of annexin V binding was also observed, indicative of increased pro-coagulant activity. Experiments performed with control microcapsules (lacking fibrinogen) confirmed the importance of fibrinogen in the interactions that occurred. The results suggest that fibrinogen on the surface of Synthocytes can interact with GPIIb/IIIa on platelets to induce platelet activation, secretory activity and aggregation, and that ADP contributes to this process. This initial interaction renders platelets more susceptible to the stimulatory effects of other platelet-activating agents. It is considered likely that in the clinical setting of thrombocytopenia any interaction between Synthocytes and residual platelets that are present may contribute to primary haemostasis.

Adenosine Diphosphate↗

Effects of combining three different antiplatelet agents on platelets and leukocytes in whole blood in vitro.

1. Antiplatelet drugs have been demonstrated to reduce the incidence of recurrent events in patients with symptomatic vascular disease. However, there is no experimental data indicating the effects of these agents when given together on platelets and leukocytes. We investigated the ability of aspirin (an inhibitor of cyclo-oxygenase), dipyridamole (an inhibitor of phospodiesterases and adenosine uptake) and AR-C69931 (a direct acting P(2T) antagonist with effects similar to those of clopidogrel which can be used in vitro) when used alone or in combination to inhibit platelet and leukocyte function. 2. Measurements of platelet and leukocyte function were performed in blood taken from normal volunteers, and the inhibitory effects of aspirin (100 micromol l(-1)), dipyridamole (10 micromol l(-1)) and AR-C66931 (100 nmol l(-1)) were determined. Platelet aggregation was induced by stirring blood with and without adenosine diphosphate (ADP) or platelet activating factor (PAF) and measured by platelet counting. Platelet P-selectin expression, platelet-leukocyte conjugate formation, and leukocyte activation were determined by flow cytometry. 3. Dipyridamole, AR-C69931, dipyridamole and AR-C69931, dipyridamole and aspirin, AR-C69931 and aspirin, and all three agents together inhibited platelet aggregation induced by stirring, ADP and PAF (P<0.01). However, it was only the combination of all three agents inhibited P-selectin expression (P<0.01). Similarly, it was the combination of all three antiplatelet agents that most consistently inhibited platelet-monocyte and platelet-neutrophil conjugate formation and monocyte and neutrophil activation. 4. Since both platelets and leukocytes are thought to contribute to arterial thrombosis and atherosclerosis, it is possible that combinations of different antiplatelet agents with different mechanisms of action may afford better protection than individual or pairs of agents used on their own.

Adenosine Diphosphate↗

Effects of P2Y(1) and P2Y(12) receptor antagonists on platelet aggregation induced by different agonists in human whole blood.

ADP plays a major role in the amplification of platelet aggregation induced by other platelet agonists. ADP initiates platelet activation via the P2Y(1) receptor and amplifies platelet activation via the P2Y(12) receptor. Using the selective P2Y(1) receptor antagonist A2P5P and the selective P2Y(12) receptor antagonist AR-C69931MX, we assessed the relative contributions of P2Y(1) receptor and P2Y(12) receptor activation to platelet aggregation in hirudin-anticoagulated whole blood induced by PAF, 5HT, epinephrine, TRAP, streptokinase, U46619 and collagen. The effects of aspirin were assessed concurrently. A2P5P and AR-C69931MX variably inhibited aggregation induced by most of the agonists studied, whereas aspirin only inhibited aggregation induced by streptokinase and collagen. In some experiments, A2P5P and AR-C69931MX yielded additive inhibition of aggregation. All three antagonists interacted synergistically to inhibit collagen-induced aggregation. These studies demonstrate that P2Y(1) receptor activation plays a significant role in amplifying aggregation induced by agonists other than ADP, in addition to the established roles of P2Y(12) receptor activation and thromboxane A(2) synthesis.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

The central role of the P(2T) receptor in amplification of human platelet activation, aggregation, secretion and procoagulant activity.

Adenosine diphosphate (ADP) is an important platelet agonist and ADP released from platelet dense granules amplifies responses to other agonists. There are three known subtypes of ADP receptor on platelets: P2X(1), P2Y(1) and P(2T) receptors. Sustained ADP-induced aggregation requires co-activation of P2Y(1) and P(2T) receptors. AR-C69931MX, a selective P(2T) receptor antagonist and novel antithrombotic agent, was studied to characterize further the function of the P(2T) receptor. The roles of the P2Y(1) receptor and thromboxane A(2) were assessed using the selective P2Y(1) antagonist A2P5P and aspirin respectively. Aggregation was measured by whole blood single-platelet counting and platelet-rich plasma turbidimetry, using hirudin anticoagulation. Dense granule release was estimated using ([14)C]-5-hydroxytryptamine (HT)-labelled platelets. Ca(2+) mobilization, P-selectin expression, Annexin V binding and microparticle formation were determined by flow cytometry. P(2T) receptor activation amplified ADP-induced aggregation initiated by the P2Y(1) receptor, as well as amplifying aggregation, secretion and procoagulant responses induced by other agonists, including U46619, thrombin receptor-activating peptide (TRAP) and collagen, independent of thromboxane A(2) synthesis, which played a more peripheral role. P(2T) receptor activation sustained elevated cytosolic Ca(2+) induced by other pathways. These studies indicate that the P(2T) receptor plays a central role in amplifying platelet responses and demonstrate the clinical potential of P(2T) receptor antagonists.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Effects of cytochalasin H, a potent inhibitor of cytoskeletal reorganisation, on platelet function.

Platelets contain a well-developed and dynamic cytoskeleton composed mainly of actin and actin-associated proteins. Upon platelet activation there is rapid polymerisation of actin and a marked reorganisation of the platelet cytoskeleton. Cytochalasins are agents that interfere with the polymerisation of actin, and it has recently been discovered that cytochalasin H (CyH) is particularly effective as an inhibitor of the cytoskeletal reorganisation that occurs in platelets following activation by adenosine diphosphate (ADP). Here we have used CyH to inhibit platelet cytoskeletal reorganisation and to determine its effects on various aspects of platelet function. Experiments were performed in hirudinized platelet-rich plasma (PRP) or whole blood obtained from human volunteers. PRP was treated with 10 microM CyH or vehicle, then activated by ADP. The effect of CyH on cytoskeletal reorganisation was determined by SDS-PAGE of the Triton X-100 insoluble cytoskeletons and quantitated by densitometry. Platelet aggregation and aggregate stability in PRP were measured by monitoring changes in light absorbance; aggregation was measured in whole blood via platelet counting. Shape change, P-selectin expression and changes in intracellular calcium were measured using flow cytometry. CyH prevented the normal incorporation of actin, alpha-actinin and actin-binding protein into the cytoskeleton that occurred following ADP activation, and incorporation of myosin was markedly reduced. Aggregation was only partially inhibited but, more dramatically, the rate of disaggregation following addition of certain agents that interfere with fibrinogen binding to glycoprotein IIb/IIIa on the surface of platelets was markedly increased. The ADP-induced shape change was also inhibited. CyH had no effect on calcium mobilisation. Curiously, expression of P-selectin was potentiated by CyH, suggesting a modulatory role of the cytoskeleton in platelet secretory activity. The results suggest that cytoskeletal reorganisation plays an important role in platelet shape change and aggregation and contributes in a major way to the stability of the aggregates that form.

Adenosine Diphosphate↗

Protection of human gastric mucosa against aspirin-enteric coating or dose reduction?

BACKGROUND: Aspirin is widely used for cardiovascular prophylaxis. AIM: To compare the effectiveness of two widely-used strategies-dose reduction and enteric coating-for the minimization of gastric mucosal injury or toxicity. METHODS: Twelve healthy volunteers were studied. On four separate occasions each received, under blinded conditions, five daily doses of plain aspirin 300 mg, plain aspirin 75 mg, enteric-coated aspirin 300 mg or placebo. Ex vivo prostaglandin E2 synthesis was stimulated by the vortex mixing of gastric mucosal biopsies in Tris saline and measured by radioimmunoassay. Mucosal injury was quantified both by counting erosions and with a visual analogue scale. RESULTS: All three preparations reduced prostaglandin E2 synthesis by day five, by (median) 84% for plain aspirin 300 mg, by 80% for enteric coated aspirin 300 mg and by 63% for plain aspirin 75 mg. There was little mucosal injury prior to the start of each dose and period and no significant change with placebo. Plain aspirin caused a dose-dependent mucosal injury, with two (median, IQR 0-7) gastric erosions after five days of plain aspirin 75 mg, and 18 (2-26) after five days of plain aspirin 300 mg. With enteric-coated aspirin 300 mg there were 0 (0-1) gastric erosions (P = 0.003 compared to plain aspirin 300 mg P = 0.11, compared to plain aspirin 75 mg). CONCLUSION: Enteric coated aspirin reduces acute gastric mucosal injury to placebo levels, despite its inhibition of prostaglandin synthesis. Enteric coating is an appropriate strategy for the prevention of gastric mucosal damage induced by low-dose aspirin, which warrants systematic clinical evaluation.

Adult↗

Comparison of antiplatelet activity of microencapsulated aspirin 162.5 Mg (Caspac XL), with enteric coated aspirin 75 mg and 150 mg in patients with atherosclerosis.

AIMS: A new formulation, low dose microencapsulated aspirin, permits slow absorption of aspirin and presystemic acetylation of platelet cyclo-oxygenase within the portal circulation, potentially avoiding deleterious effects on gastric and systemic prostaglandin synthesis. The objective of this study was to determine whether the administration of microencapsulated aspirin was as effective as enteric coated (EC) aspirin as an inhibitor of platelet function in patients with atherosclerosis. METHODS: One hundred and four patients were enrolled and randomised after a run in period of at least 14 days on aspirin EC 75 mg (day 0), to receive either microencapsulated aspirin 162.5 mg (n=34), aspirin EC 150 mg (n=36) or continue on aspirin EC 75 mg (n=34) for 28 days. Serum thromboxane B2 and collagen-induced platelet aggregation and release of 5-hydroxytryptamine (EC50 values) were measured on days 0 and 28. Aggregation/release EC50s were then repeated in the presence of a large dose of aspirin added in vitro to determine the EC50 at the maximum level of platelet inhibition. RESULTS: Median thromboxane B2 levels were low after 14 days run-in therapy with aspirin EC 75 mg, but significant further reductions were seen on day 28 in patients randomised to microencapsulated aspirin 162.5 mg (P=0.0368) and aspirin EC 150 mg (P=0.0004) compared with those remaining on aspirin EC 75 mg. Median EC50 s on day 28 showed small but significant increases from baseline (day 0) in aggregation in patients randomised to microencapsulated aspirin 162.5 mg (0.62-0.85, P=0.0482) and in both aggregation and release in patients randomised to aspirin EC 150 mg (0.95-1.20, P=0.0002, 8.4-11.7, P<0. 0001, respectively) signifying enhanced antiplatelet activity. No changes were seen in patients continuing on aspirin EC 75 mg. Results following addition of high dose aspirin in vitro suggest that mechanisms other than thromboxane synthesis may be operative in the long term effects of microencapsulated aspirin 162.5 mg and aspirin EC 150 mg over aspirin EC 75 mg. CONCLUSIONS: The results show good inhibition of thromboxane B2 synthesis and subsequent platelet activity by all preparations of aspirin, although both microencapsulated aspirin 162.5 mg and aspirin EC 150 mg are slightly more effective than aspirin EC 75 mg. A randomised trial is now required to determine whether microencapsulated aspirin is associated with fewer gastric side-effects.

Arteriosclerosis↗

Laboratory investigation of platelet function.

Advancement in the understanding of the mechanisms of platelet activation and the development of new techniques for studying platelet function have created the challenge of a wide range of options for investigating patients with suspected platelet disorders and for studying the effects of anti-platelet drugs. Novel classes of anti-platelet drug, such as adenosine diphosphate (ADP) receptor and glycoprotein IIb/IIIa receptor antagonists, are being developed and introduced into routine clinical practice. This review presents an overview of current techniques for laboratory investigation of platelet function in the light of these recent advances.

Blood Coagulation Disorders↗

Unexpected changes in the catecholamine content of platelets and plasma during exercise.

Catecholamines are retained within platelets for several hours after plasma catecholamine concentrations have returned to baseline. To determine whether platelet catecholamine concentrations may provide an index of short-term elevations in plasma adrenaline (A) and noradrenaline (NA), the response of plasma and platelet catecholamines to an interval supramaximal, Max (107% VO(2) Max), and submaximal, Submax (37% VO(2) Max), cycling protocol was examined in seven healthy male volunteers, 22-34 years. Despite large rises in plasma NA and A in the Max study (12- and 8-fold increases above baseline, respectively) and smaller rises in the Submax study, the baseline platelet concentrations of A and NA fell significantly in the first 15 min of exercise in both groups. This fall was greater in the SubMax protocol. Catecholamine concentrations then increased slowly in the second half of exercise, but never returned to baseline. The circulating platelet count almost doubled during the exercise period, increasing from 308 to 569 X 10(3) platelets/ml plasma in both studies, returning close to baseline in recovery. These results indicate that at the beginning of exercise there is large rise in plasma catecholamines and the circulating platelet count, with a fall in the platelet catecholamine concentrations. This suggests that a sequestered platelet population, free of catecholamines, is released at the beginning of exercise. This release most probably occurs from the spleen. If this is the case, the reason for a propagation of platelets in the spleen, free of catecholamines, requires further investigation.

Journal Article↗

Increased platelet activation in renal transplant patients.

BACKGROUND: Patients with functioning renal transplants are at risk of graft thrombosis in the postoperative period, and of fistula thrombosis and other thrombotic events thereafter. Investigation and therapeutic manipulation of haemostasis in these patients offers a means to counter this thrombotic tendency. METHODS: Platelet aggregation in whole blood, plasma von Willebrand factor and plasma fibrinogen levels were measured in 32 stable renal transplant patients (creatinine <200 micromol/litre, age of graft >4 months) and in 32 age, sex and smoking-habit matched normal controls. RESULTS: In both patient and control groups, seven patients were smokers and the remaining 25 were non-smokers. There was no significant difference in age between patients and controls [patients, median: 39 (20-64) years; controls: 38 (24-60) years]. Spontaneous platelet aggregation was significantly higher in the patients at all time points studied [30s-6 min; at 4 min: patients median (interquartile range) 19.4 (11.3-27.3)%; controls, 8.0 (5.1-15.0)%, P < 0.0005]. ADP-induced aggregation was also increased at a concentration range of 0.1-3 microM (at 1 microM, 1 min, patients median (interquartile range) was 52.4 (30.5-70.0)%; controls was 16.5 (1.4-31.4)%, P < 0.0001). Transplant patients had significantly higher von Willebrand factor and fibrinogen levels compared with the controls (von Willebrand factor, patients median (range): 158 (13-269)%; controls: 85 (43-223)%, P < 0.00001; fibrinogen, patients: 3.29 (2.12-7.39) g/litre; controls: 2.81 (1.84-4.65) g/litre, P < 0.0002). CONCLUSION: Patients with stable renal transplants have in vitro evidence of enhanced platelet activation, and increased plasma von Willebrand factor and fibrinogen levels.

Journal Article↗

A whole blood assay of inhibition of platelet aggregation by glycoprotein IIb/IIIa antagonists: comparison with other aggregation methodologies.

We have used a whole blood single-platelet counting assay (WB-SPC) that is sensitive to microaggregation for monitoring GPIIb/IIIa antagonists and have compared this with other methodologies. In vitro effects of the GPIIb/IIIa antagonist fradafiban on ADP-induced platelet aggregation were determined using WBSPC and PRP turbidimetry, comparing citrate and hirudin anticoagulation. Fradafiban was a more potent inhibitor of aggregation assessed by PRP turbidimetry compared to WBSPC. Citrate showed only a trend towards enhancing fradafiban potency (p = 0.087). Citrated blood from 8 patients with unstable angina, randomised to receive oral lefradafiban (the oral prodrug of fradafiban) or placebo, was studied before and during treatment using WBSPC, PRP turbidimetry, impedance aggregometry and Rapid Platelet Function Assay (RPFA, Accumetrics). RPFA, PRP turbidimetry and WBSPC measurements correlated well. Impedance aggregometry responses were oversensitive to GPIIb/IIIa blockade. WBSPC was most discriminating at high levels of inhibition and offered a rapid means of monitoring GPIIb/IIIa antagonist effect within the therapeutic range of inhibition.

Adolescent↗

Differential effects of glycoprotein IIb/IIIa antagonists on platelet microaggregate and macroaggregate formation and effect of anticoagulant on antagonist potency. Implications for assay methodology and comparison of different antagonists.

BACKGROUND: Citrated platelet-rich plasma (PRP) turbidimetry is used for assessing pharmacodynamic effects of glycoprotein (GP) IIb/IIIa antagonists in clinical trials. However, citrate can enhance the potency of at least eptifibatide (Integrilin), and turbidimetry is insensitive to microaggregate formation. We compared PRP turbidimetry, as a measure of macroaggregate formation, with single-platelet counting in both whole blood and PRP as a measure of microaggregate formation, using both citrate and hirudin anticoagulation. METHODS AND RESULTS: Three GP IIb/IIIa antagonists, eptifibatide, MK-0852, and GR144053, were compared in PRP (turbidimetry) and whole blood (platelet counting with an Ultra-Flo 100 Platelet Counter), with ADP and collagen used as agonists. Compared with hirudin, citrate enhanced the potency of eptifibatide by up to 4-fold in both PRP and whole blood (P<0.0005), modestly enhanced MK-0852 potency (P=0.001), and had no effect on GR144053. Potency measured in PRP was 2- to 3-fold greater compared with whole blood for MK-0852 and GR144053 but 3- to 4-fold greater for eptifibatide. Simultaneous turbidimetry and platelet counting performed in PRP indicated that this is because GP IIb/IIIa antagonists are more potent inhibitors of in vitro macroaggregation than microaggregation, this effect being greater for eptifibatide in hirudinized PRP compared with GR144053 (P=0.032). CONCLUSIONS: GP IIb/IIIa antagonist potency is variably enhanced by citrate. Macroaggregation is inhibited more effectively than microaggregation, most markedly in the case of eptifibatide in hirudinized blood. These observations have implications for the interpretation and comparison of pharmacodynamic assays and possibly for the risk/benefit ratio of different agents.

Adenosine Diphosphate↗