OBJECTIVES The aim of this research was to evaluate the potential for myocardial contrast echocardiography (MCE) to provoke microscale bioeffects in a canine model.BACKGROUND Myocardial contrast echocardiography induces bioeffects in rat hearts, but translation of such results to larger animal models is uncertain.METHODS Dogs were anesthetized and prepared for open- (n = 22) or closed- (n = 6) chest MCE. Evans blue dye was injected intravenously as an indicator of microvascular leakage, and propidium iodide was used to stain for irreversibly injured myocytes in frozen sections. The contrast agent (Definity, Bristol-Myers Squibb Medical Imaging Inc., North Billerica, Massachusetts) was diluted in saline and infused intravenously at 2 mu l/kg/min. Myocardial contrast echocardiography in a short-axis (open-chest) or modified four-chamber view (dosed-chest) with 1:4 end systolic electrocardiogram triggering was performed at 1.5 MHz for 10 min in a single imaging plane.RESULTS Petechiae and leakage of Evans blue were observed in the ultrasound scan plane within the anterior left ventricle. For 1.2 MPa and 2.2 MPa, open- or dosed-chest MCE, Evans blue content in tissue within the scan plane was significantly greater than in tissue outside this plane. Counts of propidium-iodide-stained nuclei for 2.2 MPa open-chest NICE were also significantly greater inside than outside the scan plane.CONCLUSIONS In a canine model, MCE induces myocardial injury comparable to that seen in the rodent model.
This study examines the cardioprotective effects of Na+/H+ exchange inhibition with BIIB-722 or ischemic preconditioning after occlusive thrombus formation and subsequent thrombolysis for reperfusion. Coronary artery thrombosis was induced by vessel wall electrolytic injury. Thrombotic occlusion was maintained for 60 or 90 min in 4 different groups: (1) control; (2) Na+/H+ exchange inhibitor, BIIB-722 (3 mg/kg) before occlusion; (3) BIIB-722 (0.75 mg/kg) before reperfusion; (4) ischemic preconditioning (4 × 5 min). Thrombolysis with intracoronary recombinant tissue plasminogen activator produced reperfusion in 6.3 ± 1.4 min (average for 68 dogs). After restoration of blood flow, vessel patency was maintained for 4 h with the glycoprotein IIb/IIIa receptor antagonist, BIBU 52ZW. BIIB-722, administered before (26.9 ± 3.6%) or after (22.0 ± 2.3%) 60-min ischemia or preconditioning (18.4 ± 2.8%), produced comparable and significant reductions in infarct size (percent of area at risk) compared to controls (47.2 ± 2.0%). After 90 min of ischemia, BIIB-722 administered before occlusion (37.3 ± 1.1%) and ischemic preconditioning (35.0 ± 4.8%) provided significant cardioprotection compared to control (45.9 ± 1.8%). BIIB-722 was not cardioprotective when administered during occlusion (48.0 ± 2.4%). The results indicate that Na+/H+ exchange inhibition and preconditioning provide a comparable degree of cardioprotection against 60 min of regional ischemia. However, when the regional ischemic period is extended to 90 min, the degree of cardioprotection is markedly reduced. Further studies incorporating clinically relevant events such as thrombosis and thrombolysis are required before one can conclude that Na+/H+ exchange inhibition is effective against more prolonged myocardial ischemia.
The antithrombotic effect of the glycoprotein IIb/IIIa (GPIIb/IIIa) antagonist (2S)-2-[(2-naphthyl-sulfonyl)amino]-3-{[2-({4-(4-piperidinyl)-2-[2-(4-piperidinyl)ethyl] butanoyl}amino)acetyl]amino} propanoic acid dihydrochloride (CRL42796), administered alone, or in combination with aspirin, and/or enoxaparin, was examined in a canine left circumflex (LCX) coronary artery rethrombosis model. The electrolytic induction of arterial thrombosis was followed by intracoronary recombinant tissue plasminogen activator administration to achieve thrombolysis, and the adjunctive therapy was initiated 15 min earlier and maintained for 4 h. Thirty-five purpose-bred beagle dogs were randomized to receive one of the following treatments: group 0 (n = 6, placebo); group 1 (n = 6, CRL42796 15 μg/kg i.v. loading dose followed by 0.31 μg/kg/min i.v. infusion), group 2 (n = 6, aspirin 7 mg/kg, administered orally, at –47, –23, –17 h before entry into the experimental protocol); group 3 (n = 6, aspirin + CRL42796); group 4 (n = 6, aspirin + enoxaparin 0.6 μg/kg i.v. loading dose followed by 6.0 μg/kg/min i.v. infusion); and group 5 (n = 5, aspirin + CRL42796 + enoxaparin). The incidence of LCX reocclusion was as follows: group 0, 6/6; group 1, 3/6; group 2, 5/6; group 3, 2/6; group 4, 2/6; and group 5, 0/5. Aspirin pretreatment increased the tongue-bleeding time, whereas the addition of CRL42796 or enoxaparin did not prolong bleeding time to a further degree. However, the combination of the three drugs did increase bleeding time significantly, from 173.9 ± 19.8 to 620.0 ± 98.7 s. In conclusion, low-dose CRL42796 together with aspirin and enoxaparin prevented coronary artery rethrombosis, although bleeding time was prolonged. The latter may be of concern in the clinical use of combination therapy.
This study investigates the effect of the glycoprotein IIb/IIIa receptor antagonist CRL42796 in a canine model of carotid artery thrombosis. Both carotid arteries developed occlusive thrombosis in each of the five control animals (time to occlusion: right carotid artery, 92.6 minutes; left carotid artery, 89.0 minutes). A single oral dose of CRL42796 (3 mg/kg) prevented occlusive thrombosis in 4 of 6 vessels and increased time to thrombosis, albeit not significantly (right carotid artery, 134.1 minutes; left carotid artery, 145.0 minutes). When the initial dose of CRL42796 was followed by a second oral dose (3 mg/kg) 2 hours later, 10 of 10 carotid arteries remained patent throughout the period of electrolytic injury. CRL42796 reduced thrombus weight in both treatment protocols. Ex vivo platelet aggregation with arachidonic acid (AA) or adenosine diphosphate (ADP) was reduced at 120, 240, and 360 minutes after two doses of CRL42796. A single oral dose reduced ADP-induced responses at 240 and 360 minutes, but significant effects were not observed with AA. Bleeding time increased 360 minutes after two oral doses of CRL42796, but not at 120 minutes. Bleeding time was unchanged with the single dose of CRL42796. The results demonstrate that oral administration of CRL42796 prevents carotid artery thrombosis in response to deep vessel wall injury and may have potential value to be characterized in extended preclinical and clinical study.
The antithrombotic effect of the glycoprotein IIb/IIIa receptor antagonist, CRL42796, was examined in canine models of carotid and coronary artery thrombosis. In the carotid artery thrombosis model, occlusion occurred in all control vessels (time to thrombosis 47.6±8.9 min). After treatment with low dose CRL42796 (15 μg kg−1 loading dose +0.31 μg kg−1 min−1 i.v.), two of five vessels occluded. Time to thrombosis increased significantly to 155.2±23.1 min. When the drug infusion was increased (0.69 μg kg−1 min−1), each of five vessels remained patent. Ex vivo platelet aggregation in response to arachidonic acid (AA) and ADP was examined in platelet rich plasma (PRP) prepared from citrate or heparin anticoagulated blood. CRL42796 reduced platelet reactivity at low and high doses in PRP from citrate anticoagulated blood. However, in PRP from heparin anticoagulated blood, only the higher infusion dose produced a significant reduction in ex vivo platelet responses. A combination of oral aspirin (4.6 mg kg−1 −41, −17 h) and the low infusion dose of CRL42796 did not produce an additional benefit beyond that provided by CRL42796 alone. Coronary artery thrombosis was inhibited in four of five vessels treated with the lower infusion dose of CRL42796 and in five of five vessels treated with the higher infusion. Time to thrombosis increased with both doses (Control, 90.8±10.4 min; low dose, 165.8±14.2 min; high dose, >180.0±0 min). The results indicate that CRL42796 is an effective in vivo antithrombotic agent against experimentally‐induced carotid and coronary artery thrombosis. British Journal of Pharmacology (2002) 136, 927–937. doi:10.1038/sj.bjp.0704744
Resistance of fibrin-bound thrombin to inactivation by the heparin/antithrombin III complex is considered a limitation in the use of heparin as an antithrombotic agent. Intimatan (dermatan 4,6-di-O-sulfate) is a heparin cofactor II agonist that inhibits both free and bound forms of thrombin. The present study examines the hypothesis that Intimatan prevents thrombotic occlusion in response to vascular wall injury in a canine model of carotid artery/jugular vein thrombosis. The left carotid artery and right jugular vein served as vehicle-treated control vessels, whereas the right carotid artery and left jugular vein were subjected to electrolytic injury after administration of Intimatan (9 mg/kg bolus + 300 microg/kg/min infusion, i.v.) or dalteparin (Fragmin) (400 IU/kg, s.c.). Intimatan significantly increased time to carotid artery (226.0 +/- 14.0 min) and jugular vein (240.0 +/- 0.0 min) thrombosis, compared with control vessels (carotid artery, 87.1 +/- 7.9 min; jugular vein, 60.6 +/- 7.4 min). Vessel patency was maintained in eight of eight jugular veins and seven of eight carotid arteries during treatment with Intimatan. Dalteparin significantly increased time to carotid artery thrombosis (122.1 +/- 17.5 min) compared with control (64.3 +/- 8.2 min), but did not change the time to thrombosis in the jugular vein. Only one carotid artery remained patent at the end of the dalteparin protocol. The two drugs produced minimal increases in bleeding times, and Intimatan increased the activated partial thromboplastin time above that observed with dalteparin. The results demonstrate that Intimatan is effective in preventing occlusive arterial and venous thrombosis in an experimental model of deep vascular wall injury.
Tedisamil is a bradycardiac agent that prolongs the QT interval of the ECG and prevents cardiac arrhythmias. Given this profile, tedisamil might be expected to have proarrhythmic actions similar to Class III antiarrhythmic drugs. To address this question, the actions of dofetilide and tedisamil were examined in rabbit isolated hearts in which bradycardia was induced by AV ablation. The QT interval was prolonged in a reverse rate‐dependent fashion by dofetilide (3 and 30 n M ) and tedisamil (0.3 and 3 μ M ). Torsades de pointes was observed in 1/7 hearts treated with 3 n M dofetilide and 0/7 hearts treated with 0.3 μ M tedisamil. The incidence of torsades de pointes was increased to 5/7 in hearts treated with 30 n M dofetilide and to 7/7 in hearts treated with 3 μ M tedisamil (both P <0.05 vs control). The actions of 30 n M dofetilide and 3 μ M tedisamil were also examined in hearts paced at 50, 100, 200 and 50 beats min −1 successively. Both drugs caused torsades de pointes in 5/5 hearts paced at 50 beats min −1 ; however, the incidence was reduced to 0/5 during pacing at 200 beats min −1 . Thus, drug‐induced proarrhythmia was bradycardia‐dependent. Drug‐induced prolongation of the interval between the peak and end of the T‐wave (QTa‐e) was reverse rate‐dependent and was associated with the occurrence of torsades de pointes ( r =0.91, P <0.01). The results suggest that tedisamil, like dofetilide, presents a risk for development of torsades de pointes. British Journal of Pharmacology (2001) 132 , 1493–1500; doi: 10.1038/sj.bjp.0703967
Background-Prostanoid synthesis via the action of cyclooxygenase-2 (COX-2) is a component of the inflammatory response. Prostacyclin, a product of COX-2 in vascular endothelium, has important physiological roles, such as increasing blood flow to injured tissues, reducing leukocyte adherence, and inhibiting platelet aggregation. We examined the possibility that selective COX-2 inhibition could suppress the protective effects of prostacyclin, resulting in an alteration of the hemostatic balance and vascular tone.Methods and Results-Circumflex coronary artery thrombosis was induced in dogs by vascular electrolytic injury. Orally administered celecoxib (COX-2 inhibition) or high-dose aspirin (HDA) (COX-1 and COX-2 inhibition) did not alter time to occlusive thrombus formation compared with controls (celecoxib 77.7 +/-7.2 minutes, HDA 72.0 +/- 18.5 minutes, control 93.0 +/- 21.8 minutes). Oral HDA with an endothelial recovery period (HDA-ER) (COX-1 inhibition) produced a significant increase in time to vessel occlusion (257.0 +/- 41.6 minutes). The observed increase in time to occlusion was abolished when celecoxib was administered to animals dosed with HDA-ER (80.7 +/- 20.6 minutes). The vasomotor effect of endothelium-derived prostacyclin was examined by monitoring coronary flow during intracoronary administration of arachidonic acid or acetylcholine. In celecoxib -treated animals, vasodilation in response to arachidonic acid was reduced significantly compared with controls.Conclusions-The results indicate important physiological roles for COX-2-derived prostacyclin and raise concerns regarding an increased risk of acute vascular events in patients receiving COX-2 inhibitors. The risk may be increased in individuals with underlying inflammatory disorders, including coronary artery disease.
P2Y1, P2X1, and P2T receptors mediate ADP-induced platelet aggregation. The antithrombotic effects of AR-C69931MX (N6-[2-methylthio)ethyl]-2-[3,3,3-trifluoropropylthio]-5'-adenylic acid, monoanhydride with dichloromethylenebiphosphonic acid), a selective P2T platelet receptor antagonist, was assessed in a canine model of arterial thrombosis. Placebo or AR-C69931MX (4.0 microg/kg/min for 6 h) pretreatment was administered as an intravenous infusion beginning 15 min before inducing vessel wall injury. A 300-microA anodal current was applied to the intima of the carotid artery for 180 min or discontinued 30 min after cessation of blood flow due to thrombus formation. Each of five control animals developed occlusive thrombi within 3 h after induction of vessel wall injury. In contrast, carotid artery blood flow in five of six AR-C69931MX-treated animals was maintained for the duration of the protocol. Ex vivo platelet aggregation in response to adenosine diphosphate was inhibited at the first measurement time point of 75 min after the start of drug infusion and remained inhibited during drug administration. Bleeding time values were increased in the drug-treated group. Values for both the ex vivo platelet aggregation and the bleeding times returned to control values shortly after discontinuation of AR-C69931MX. The results indicate that AR-C69931MX antagonizes the ex vivo and in vivo aggregatory actions of ADP, and displays a rapid onset and offset of action with the ability to prevent occlusive arterial thrombus formation. AR-C69931MX may be suitable for the management of patients who require short-term modulation of platelet function.
The electrophysiologic and antifibrillatory properties of tedisamil (KC-8857) were studied in vivo in a conscious canine model of sudden cardiac death. Male mongrel dogs were anesthetized, and surgical anterior myocardial infarction was induced by a 2-h occlusion, with reperfusion of the left anterior descending coronary artery. Three to five days after infarction, dogs were subjected to programmed electrical stimulation (PES) to identify those at risk for ischemia-induced ventricular fibrillation. Previous studies documented that dogs with a significant anterior-wall infarction develop ventricular tachycardia in response to PES and are at an increased risk for sudden cardiac death on imposition of a transient ischemic event in a region remote from the infarct-related artery. PES-inducible animals were randomized to either oral placebo or oral tedisamil treatment (3 mg/kg, b.i.d for 4 days, Group 1, n = 8). Control animals received empty gelatin capsules (Group 2, n = 8). The effective refractory period and QTc interval were unchanged after 3 days of oral placebo or tedisamil dosing. Arrhythmic activity after drug administration was not observed in dogs treated with tedisamil. PES induction of ventricular tachycardia was reduced significantly in the tedisamil-treated group (100% inducible before drug vs. 9% inducible after drug; p < 0.05). In the sudden-cardiac-death protocol, tedisamil reduced the incidence of lethal ischemic arrhythmias developing in response to acute posterolateral myocardial ischemia. Tedisamil-treated animals exhibited a 100% compared with a 25% survival rate in the control group (p < 0.05). Anterior-wall infarct size, expressed as a percentage of the left ventricle, did not differ between groups: Group 1 = 20 +/- 1%; Group 2 = 22 +/- 1%. Our findings suggest that tedisamil might be useful in the prevention of malignant ventricular arrhythmias in myocardial ischemic injury.
Cardioprotective effects of the angiotensin-converting enzyme inhibitors captopril and ramiprilat were studied in two in vivo canine models of myocardial ischemic injury: 90 min of regional ischemia with 18 h reperfusion (protocol I) and 6 h of continuous ischemia without reperfusion (protocol II). In protocol I, neither ramiprilat (50 µg/kg) nor captopril (5 mg/kg + 0.25 mg/kg/h) reduced infarct size after 18 h of reperfusion (vs. controls). In protocol II, drugs were administered directly into both left anterior descending coronary artery and left circumflex branch. Compared to controls, continuous intracoronary administration of ramiprilat (40 ng/kg/min) or captopril (400 ng/kg/min) did not reduce infarct size. Thus neither captopril nor ramiprilat protected the heart from injury under conditions of ischemia with reperfusion or ischemia without reperfusion.
Objective: The aim was to determine if either heparin or N-acetylheparin could reduce the extent of myocardial injury resulting from 90 min of coronary artery occlusion and 6 h of reperfusion in the anaesthetised dog. Methods: Heparin or N-acetylheparin was given in three repeated intravenous doses of 2 mg . kg(-1). Drug or vehicle (0.9% saline) was given 75 min after onset of ischaemia and 90 and 180 min after reperfusion. To ensure an equal degree of myocardial ischaemia induced by left circumflex coronary artery occlusion among the three groups of animals studied, only animals with ischaemic zone blood flow of less than or equal to 0.16 ml . min(-1). g(-1) were included in the final analysis. Results: Ischaemic zone blood flow was 0.068 (SEM 0.016) ml . min(-1). g(-1) in control animals (n=13), 0.083 (0.017) ml . min(-1). g(-1) in heparin treated animals (n=10), and 0.094 (0.010) ml . min(-1). g(-1) in N-acetylheparin treated animals (n=10). Baseline haemodynamic variables did not differ among the three groups studied. Heparin treatment alone significantly increased bleeding time and activated partial thromboplastin time. Electrocardiographic ST segment elevation, an indicator of regional ischaemia at the onset of coronary occlusion, was not different among control, heparin, or N-acetylheparin groups. The area of the left ventricle at risk of infarct was 39.8 (1.5)%, 38.6 (0.7)%, and 37.3 (2.0)% in control, heparin, and N-acetylheparin treated groups, respectively. Myocardial infarct size, as a percentage of area at risk, was 43.0 (3.7)%, 30.7 (3.9)%, and 24.5 (3.7)% in control, heparin, and N-acetylheparin treated animals, respectively (P < 0.05, control v heparin and N-acetylheparin). Conclusions: The glycosaminoglycans, heparin or N-acetylheparin, can reduce the extent of myocardial injury associated with regional ischaemia and reperfusion in the canine heart. The mechanism of cytoprotection is unrelated to alterations in the coagulation cascade and may involve inhibition of complement activation in response to tissue injury.
This study was performed to assess the effect of BMY21190, an inhibitor of cAMP phosphodiesterase, on infarct size using a canine ischemic model that underwent a 90-min occlusion and a 6-hour reperfusion of the left coronary artery. The infarct zone/area at risk of the BMY21190 group was significantly smaller than that of the vehicle group (36.1 +/- 7.8%; 62.4 +/- 4.3%, respectively; p < 0.05). Myeloperoxidase activity, an indicator of neutrophil infiltration, was significantly correlated to infarct size (r = 0.6893, p < 0.02). Myeloperoxidase activity (0.14 +/- 0.07 U/100 mg tissues) measured in the area at risk from hearts of the BMY21190-treated group was significantly lower than that of the vehicle-treated tissue (0.40 +/- 0.08 U/100 mg tissue, p < 0.05). It is suggested that BMY21190 reduces infarct size through the inhibition of neutrophil infiltration in the canine model.
1. We studied DMP728, a non-peptide glycoprotein (GP) IIb/IIIa receptor antagonist, for prevention of coronary artery thrombosis or rethrombosis in a chronic canine model subjected to arterial injury. 2. In protocol I, DMP728 (1.0 mg kg-1, i.v., n = 8) or saline (n = 8) was administered and a 150 microA anodal current was applied to the intimal surface of the left circumflex coronary artery (LCX). Dogs were monitored for 6 h and again on each of 5 subsequent days. 3. Ex vivo platelet aggregation was inhibited but returned to baseline 1 day after drug administration. Thrombus weight was reduced (saline, 20.7 +/- 5.0 mg; DMP728 1.7 +/- 0.4 mg; P < 0.05), as was infarct size [saline, 27.5 +/- 4.3; DMP728, 1.6 +/- 0.7 (per cent left ventricle); P < 0.05]. All control animals died by day 3, while all but one of the treated dogs survived the entire protocol (P < 0.05). 4. In protocol II, an LCX thrombus was induced and thrombolytic therapy was initiated 30 min later. DMP728 (1.0 mg kg-1, i.v., n = 8) or saline (n = 8) was administered 5 min after recombinant tissue-type plasminogen activator infusion had begun. The incidence of reocclusion was reduced by DMP728 (saline, 4/8; DMP728, 1/8). One day after thrombolysis, 7/8 DMP728-treated animals were alive compared with 1/8 in the control group (P = 0.01). 5. DMP728 inhibited ex vivo platelet aggregation, prevented primary and secondary occlusive thrombus formation, reduced thrombus weight and infarct size and increased survival in a chronic canine model of coronary artery thrombus formation. DMP728 is an effective anti-platelet intervention when used as the singular adjunctive agent in association with thrombolytic therapy.
We assessed ranolazine's potential to reduce myocardial injury resulting from 90-min occlusion and 18-h reperfusion of left circumflex coronary artery (LCX) in anesthetized dogs. Ranolazine, a putative antianginal agent, has exhibited positive results in a variety of experimental models associated with the ischemic myocardium. Previous studies demonstrated that ranolazine possesses a mechanism of action involving increases in the amount of active pyruvate dehydrogenase during ischemia, suggesting that the compound may act to promote glucose utilization. Ranolazine was administered as a bolus of 3.3 mg/kg, followed by a constant infusion of 7.2 mg/kg/h for 20 h. The loading dose was administered 30 min before LCX occlusion. Control animals received appropriate volumes of vehicles (loading and infusion). Hemodynamics were unchanged between ranolazine and vehicle groups. Three animals in each group were excluded because of ventricular fibrillation (VF). There was no difference in degree of ST segment change between control and ranolazine-treated groups at any time during LCX occlusion. The area at risk (AAR) of infarct was 40.1 +/- 1.7 and 38.9 +/- 1.3% in control-treated (n = 13) and randolazine-treated (n = 8) animals, respectively (p = 0.631). Myocardial infarct size (IS) was 31.7 +/- 5.2 and 36.6 +/- 8.5% in control and ranolazine-treated animals, respectively (p = 0.603). No significant changes were observed in plasma content of enzymatic markers at 0.5, 2.0, and 18.0 h of reperfusion. The results of this in vivo study indicate that ranolazine did not provide protection from injury to regionally ischemic and reperfused myocardium despite its reported antiischemic activity.
We determined whether an organic superoxide dismutase mimetic could reduce myocardial injury resulting from a 90-min occlusion of the left circumflex coronary artery, followed by 18 hr of reperfusion in an anesthetized canine. The superoxide dismutase-mimetic studied (SC-52608) was a synthetic Mn-based macrocyclic compound. SC-52608 or the inactive analog SC-54385 was administered as four doses of 4 mg/kg i.v. Drug, inactive analog or vehicle was administered 30 and 15 min before ischemia and 15 min and immediately before reperfusion. To ensure parity of left circumflex coronary artery occlusion-induced ischemia, only animals with ischemic zone blood flow of less than 0.15 ml/min/g were included in the final analysis. Ischemic zone blood flow was 0.069 +/- 0.016 ml/min/g in control animals (n = 10), 0.072 +/- 0.010 ml/min/g in SC-52608-treated animals (n = 11) and 0.053 +/- 0.011 ml/min/g in SC-54385-treated (n = 9) animals. A transient hypotensive effect was observed upon SC-52608 administration. Hemodynamic parameters were otherwise unaffected by SC-52608 or SC-54385. The areas at risk of infarct were 39.6 +/- 1.9%, 38.7 +/- 1.1% and 39.4 +/- 1.1% in control, SC-52608-treated and SC-54385-treated animals, respectively. Myocardial infarct sizes (% of area at risk of infarct) were 44.2 +/- 5.6%, 25.7 +/- 4.3% and 35.1 +/- 4.9% in control, SC-52608-treated and SC-54385-treated animals, respectively (P < .05 control vs. SC-52608-treated). Therefore, the synthetic superoxide dismutase mimetic protected the regionally ischemic and reperfused myocardium from injury, implicating oxygen-derived radicals in the tissue-injury process.