PubMed Health⌕ Search

Biomedical subjects

F A Bashour

Publications and source records attributed to F A Bashour.

At least 19 recordsLinked to original sources

Effect of controlled ventilation on renal and splanchnic blood flows during nicotine.

The present study was undertaken to evaluate the influence of respiratory condition [free breathing (FB) vs. controlled ventilation (CV)] and of anesthetic [pentobarbital (PA) vs. chloralose (CA)] on nicotine-induced vasomotor responses in the renal cortex and splanchnic beds. Nicotine (36 micrograms . kg-1 . min-1 iv) was infused in four groups of dogs: group I, PA and CV; group II, PA and FB; group III, CA and CV; group IV, CA and FB. Regional vascular conductances (VC) were calculated from regional blood flows measured with 15-microns radioactive microspheres. In group I, VC fell in renal cortex (-22%) and pancreas (-52%), increased in liver (hepatic arterial bed +130%), and did not change significantly in duodenum and spleen. In group III, VC fell to a greater extent in renal cortex, pancreas, duodenum, and spleen than in group I; VC in hepatic arterial bed did not change. In FB dogs (groups II and IV), nicotine caused marked hyperventilation, but decreases in VC in renal cortex, pancreas, and duodenum were similar to those in CV dogs. Results indicate that during intravenous infusion of nicotine 1) hyperventilation does not attenuate or reverse vasoconstriction in renal cortex, pancreas, or duodenum under either PA or CA, although it does in spleen under CA; 2) vasodilator mechanisms predominate over vasoconstrictor mechanisms in the hepatic arterial bed; and 3) vasoconstrictor responses in renal cortex, pancreas, duodenum, spleen, and liver are more pronounced under CA than under PA.

Anesthesia, General↗

Persistent coronary vasodilation during long-term, supramaximal doses of adenosine.

Active and reactive hyperemias have been observed in the skeletal muscle circulation tachyphylactic to exogenous adenosine following 3-h supramaximal doses of the vasodilator. These findings failed to support a need for adenosine in metabolic control of skeletal muscle blood flow. The present study was conducted to determine if the coronary circulation also develops tachyphylaxis to adenosine while remaining sensitive to other metabolically linked vasodilator mechanisms. Experiments were conducted in eight pentobarbital-anesthetized, open-chest dogs whose blood flow in the left anterior descending coronary artery (LAD) was measured electromagnetically during 3-h infusion of adenosine into the LAD. Measurements of regional myocardial blood flow (radioactive microspheres), myocardial O2 consumption (Fick principle), and percent segment shortening (ultrasonic crystals) were also obtained. Adenosine was infused into the LAD at a rate of 27.0-72.0 mumol/min, depending on blood flow rate. Calculated concentration of adenosine in LAD blood averaged 0.484 +/- 0.111 mumol/ml, which was well in excess of that required for maximal coronary vasodilation. LAD blood flow averaged 21.5 +/- 2.2 ml/min during the preadenosine control condition. LAD blood flow after 3 h adenosine (123.3 +/- 23.0 ml/min) was not significantly different from that after 1-3 min adenosine (105.8 +/- 17.9 ml/min). There was no significant transmural variation in LAD blood flow during adenosine infusion. Adenosine had no significant effect on myocardial O2 consumption or percent segment shortening. Our results demonstrate persistent transmural vasodilation in the canine coronary circulation during long-term, supramaximal doses of adenosine and are consistent with a role for endogenous adenosine in maintenance of coronary vasodilation during sustained elevations in myocardial energy demands.

Adenosine↗

Asynchronous transmural perfusion during coronary reactive hyperaemia.

Dynamic variation in the transmural distribution of myocardial blood flow was studied in 36 anaesthetised open-chest dogs during the course of the reactive hyperaemia following a 90 s occlusion of the left anterior descending coronary artery. Myocardial blood flow was estimated from tissue uptake of radioactive microspheres, 9 to 10 micrometers in diameter. Endo/epi flow ratios indicated asynchronous reactive hyperaemic responses across the free wall of the left ventricle; flow was preferentially to subepicardium during the initial (pre-peak) phase, whereas flow was preferentially to subendocardium during the prolonged recovery phase. The mean of endo/epi flow ratios obtained during the peak plateau of coronary artery reactive hyperaemia indicated essentially uniform transmural distribution. However, further analysis indicated that this was result of ratios less than 1 early in the peak plateau and ratios greater than 1 late in the peak plateau. Reversal of the endo/epi flow ratios due to regionally asynchronous maximum flows is responsible for the prolonged plateau at peak flow observed in measurements of coronary artery reactive hyperaemia. Transmural asynchrony of peak reactive hyperaemic flow may also account for underestimates in vasodilator capability of ischaemia based on measurements of either coronary artery or myocardial blood flow.

Animals↗

Nonischemic myocardial hypoxia: coronary dilation without increased tissue adenosine.

Experiments were performed in 23 open-chest, anesthetized dogs to evaluate 1) the extent of coronary vasodilation during nonischemic hypoxia and 2) whether this dilation is associated with changes in cardiac concentrations of adenosine, inosine, and hypoxanthine. Three minutes of nonischemic myocardial hypoxia caused by selective perfusion of the left anterior descending coronary artery (LAD) with hypoxic blood (PO2 = 11.7 Torr) increased coronary flow 623%, an increase that was not significantly different from that at the peak hyperemic response following 3 min of ischemic hypoxia secondary to LAD occlusion (+534%). Concentrations for adenosine and inosine (nmol/g) in myocardium sampled during nonischemic hypoxia [0.8 +/- 0.2 (SE) and 0.8 +/- 0.2, respectively] were significantly less than values during control conditions (1.7 +/- 0.3 and 1.4 +/- 0.2). Hypoxanthine concentrations did not differ for nonischemic hypoxia and control conditions. During ischemic hypoxia concentrations for adenosine (31.2 +/- 4.9), inosine (91.0 +/- 13.6), and hypoxanthine (44.0 +/- 15.3) were considerably greater than values during nonischemic hypoxia and during control conditions. The results indicate that nonischemic hypoxia induced pronounced coronary vasodilation similar to that during ischemic hypoxia, with reduced rather than with increased tissue concentrations of adenosine and inosine. These findings suggest that reduced myocardial oxygen tension may cause dilation of coronary resistance vessels by a direct relaxant effect on arteriolar vascular smooth muscle.

Adenosine↗

Regional renal and splanchnic blood flows during nicotine infusion: effects of alpha and of combined alpha and beta adrenergic blockade.

Renal (cortex and medulla) and splanchnic (duodenum, liver, pancreas and spleen) blood flows were measured with 25-mu radioactive microspheres in anesthetized, open-chest dogs. The effects of nicotine (36 micrograms/kg/min i.v.) before and after selective alpha adrenergic blockade (phenoxybenzamine, 1 mg/kg i.v.) and before and after combined alpha and beta adrenergic blockade (phenoxybenzamine, 1 mg/kg i.v. and propranolol, 1 mg/kg i.v.) were evaluated. Before adrenergic blockade, nicotine increased arterial pressure (+82%) but had heterogeneous directional effects on regional blood flows: pancreas (-64%), duodenum (-33%), kidney cortex (-31%), kidney medulla (-17%), liver (+5%) and spleen (+71%). Vascular conductance was reduced in kidney cortex (-61%), kidney medulla (-57%), duodenum (-59%), liver (-46%) and pancreas (-79%) and was not altered in spleen. Selective alpha adrenergic blockade prevented the hypertensive response to nicotine, but heterogeneous changes in regional flows persisted: pancreas (-40%), spleen (-40%), kidney medulla (-35%), kidney cortex (-31%), liver (+50%) and duodenum (+74%). After combined alpha and beta adrenergic blockade, nicotine increased systemic arterial pressure (+75%) and decreased vascular conductance in all tissues. Results indicate: 1) a heterogeneous influence of nicotine in renal and splanchnic circulations associated with regional differences in activities of alpha and beta adrenergic receptors and 2) a potent nonadrenergic vasoconstrictor response in these circulations to nicotine after blockade of alpha and beta adrenergic receptors.

Adrenergic alpha-Antagonists↗

Evaluation of noncoronary sources of left ventricular perfusion to intercoronary collateral-dependent myocardium due to chronic major vessel occlusion: absent contribution of luminal and extracardiac channels.

Liminal contribution to perfusion of collateral-dependent left ventricular (LV) myocardium was evaluated in six dogs. A portion of LV free wall was rendered collateral-dependent by gradual occlusion of left circumflex artery with Ameroid constrictor. Eight to 10 weeks after implantation of constrictor, measurements of LV myocardial flow were made by left atrial injections of 9-10 micro radioactive microspheres. To measure total collateral flow, microspheres were injected under control conditions, and to measure luminal contribution to collateral flow, microspheres were injected after ligation of right coronary artery during extracorporeal perfusion of left common coronary artery (LCCA) with microsphere-free arterial blood, and during stoppage of flow through LCCA. Under control conditions, myocardial blood flow in collateral-dependent region, 1.01 +/- 0.31 ml/min/gm, was not significantly different from that in normal region, 1.06 +/- 0.32 ml/min/gm. Flow from luminal collateral vessels was negligible (less than 0.005 ml/min/gm) in both collateral-dependent and normal myocardium, and was not affected by stoppage of flow through LCCA. These results indicate that luminal collateral vessels, as well as collateral vessels originating from other noncoronary sources, do not contribute significantly to perfusion of normal or collateral-dependent LV myocardium.

Animals↗

Small vessel and total coronary blood volume during intracoronary adenosine.

The effect of a maximally dilating dose of intracoronary adenosine on total (CBV) and small-vessel blood volume (MSVBV, an index of open-capillary density), hematocrit (MSVHct), and related parameters of O2 supply-demand ratio was examined in left ventricular myocardium of anesthetized open-chest dogs. CBV was measured from washout of 51Cr-labeled red blood cells (RBC) and MSVBV and MSVHct from contents of 51Cr-RBC and plasma label, either 131I-serum albumin or 59Fe-siderophilin, in samples of myocardium and blood. Coronary blood flow (CBF) was measured by electromagnetic flowmeter. Myocardial oxygen consumption (MVO2) was computed with the Fick equation. Myocardial oxygen tension (MPO2) was measured with bare-tipped platinum electrodes. Adenosine raised CBV 75%, CBF, 574%, and MPO2 122%, but did not affect significantly MSVBV, MSVHct, or MVO2. These results indicate that infusion of adenosine into a coronary artery perfused at constant pressure causes relaxation of smooth muscle of arteriolar resistance vessels and of other vessels larger than 100 micrometers diam, but not that of the precapillary sphincters. This may be explained by the opposing action of increased MPO2 on the sphincters when flow increases. MSVHct was consistently much less than large-vessel Hct. This warrants combined use of red blood cell and plasma labels for accurate measurements of MSVBV.

Adenosine↗

Shunting of microspheres across the canine coronary circulation.

Coronary shunting of 9 +/-1 micrometer and 25 +/- 5 micrometer radiolabeled microspheres was examined in anesthetized, open-chest dogs, whose left common coronary arteries were perfused at controlled pressures. Shunting was estimated from the difference in radioactivity between perfusion line and coronary sinus blood samples during selective elevations of coronary perfusion pressure (CPP), left ventricular afterload, and inspired oxygen. A linear relationship was found between coronary shunting of 9-micrometer microspheres and CPP over the range 100-200 mmHg. According to regression analysis, percent shunt flow was 4.0% at control CPP (100 mmHg) and 10.0% at CPP of 200 mmHg. No shunting of 25-micrometer microspheres occurred at any CPP. Raising afterload did not affect shunting at control CPP but attenuated the increase in shunting at elevated CPP. Changing inspired gas from room air to 100% oxygen did not influence shunting at control or elevated CPP. Raising CPP to 150 and 200 mmHg also released 2.5% and 5.9% of pretrapped 9-micrometer microspheres, respectively. This study demonstrates that vessels permitting passage of microspheres across coronary circulation are sensitive to elevated perfusion pressure.

Animals↗

Binding of (3H)dihydroalprenolol to beta adrenoceptors of cells isolated from adult rat heart.

Myocardial cells isolated from adult rat heart bind (3H)dihydroalprenolol. Sixty-one percent of this binding appeared to be at the beta adrenoceptors since it was inhibited by saturating quantities of the beta antagonist propranolol or by the beta agonist isoprenaline. The binding is stereoselective as the l-isomer of isoprenaline caused greater inhibition than the d-isomer. The binding of (3H)dihydroalprenolol to beta adrenoceptors was saturable; half maximum binding occurred at about 8 nM and full saturation at 30--40nM.

Alprenolol↗

Coronary reperfusion: effects of vasodilators (papaverine and adenosine).

Reperfusion of a coronary artery is followed by a decline of the myocardial blood flow to both the ischemic (reperfused) and border regions, and the appearance of a transmural flow gradient favoring the epicardium. These findings were ascribed to vascular changes in the reperfused coronary bed. The behavior of the myocardial blood flow was investigated (1) after 4 hours of reperfusion following the intracoronary infusion of vasodilators (papaverine and adenosine) and (2) following the intravenous administration of papaverine during the total period of reperfusion. Intracoronary infusion of vasodilators increased flow (147 per cent) to all the layers of the reperfused myocardium but failed to alter the transmural distribution of flow. The flow response to these vasodilators in the normal vascular bed consisted of a marked increase in flow (385 per cent) and a normal, uniform distribution, suggesting that the development of anatomical vascular changes reduced the capacity of the reperfused vasculature to increase flow, and that these changes were more marked in the endocardial layer. The intravenous papaverine infusion during reperfusion normalized the total flow and its distribution in the zone bordering the reperfused myocardium but not to the ischemic, suggesting perhaps that papaverine may be useful in protecting potentially salvageable myocardium.

Adenosine↗

Coronary hemodynamics during reperfusion following acute coronary ligation in dogs.

The coronary hemodynamic effects of re-establishing blood flow to ischemic myocardium and the regional distribution of myocardial flow during reperfusion were studied in anesthetized open-chest dogs. A large portion of the left ventricular wall was rendered ischemic by occlusion of the left anterior descending coronary artery for 2 hours. During reperfusion of the LAD, coronary resistance in the reperfused vasculature increased progressively for the first 3 hours, while resistance in the intact LC vasculature was unchanged. Minimal resistances in the reperfused vascular bed, calculated from mean aortic pressure and peak coronary reactive hyperemic blood flow following a 90 sec. LAD occlusion, were elevated significantly during reperfusion. The increased minimal resistance values, which reflect the passive physical component of resistance, indicate structural changes in the reperfused vascular bed which were evident shortly after the initiation of reperfusion and persisted throughout the experimental period. Coronary resistances (RH) in the reperfused (LAD) and intact (LC) vasculatures during the reactive hyperemia following 10 sec. coronary occlusions were evaluated. During reperfusion, RH in the reperfused vasculature increased progressively while RH in the intact bed was unchanged. The marked increase in RH in the LAD indicates that the reactive hyperemic flow response to a consistent period of coronary occlusion progressively diminished, and reflects a gradual reduction in the vasodilatory potential of the reperfused coronary circulation. The regional distribution of myocardial blood flow following 5 minutes, 2 hours, and 4 hours of reperfusion was measured with multiple injections of radioactive microspheres. These measurements demonstrated a progressive reduction of blood flow to the reperfused myocardium with no significant change in flow to the control myocardium. In contrast to the uniform transmural distribution of flow in the normal myocardium, the reperfused region showed a distinctly nonuniform distribution of flow after 2 hours and 4 hours of reperfusion, with more severe reduction of flow to the endocardial layer. These studies would suggest that rechannelling blood flow distal to an acute coronary occlusion in human subjects might not in itself be capable of reversing the myocardial injury. It is hoped that additional therapeutic measures might be applied to salvage the injured myocardium.

Animals↗

Dynamics of tissue distribution of radiopotassium as affected by simulated differences in regional extraction.

Simulation of tissue uptake and release of radiopotassium with a digital computer shows that tissue distribution of this diffusible indicator of regional blood flow will be essentially static during recirculation of the isotope despite large differences in regional extractions. Thus, the widely accepted view that static distribution results from homogeneous extractions may be invalid.

Computers↗