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Biomedical subjects

M Booke

Publications and source records attributed to M Booke.

At least 55 records · Page 3Linked to original sources

Endogenous nitric oxide and the pulmonary microvasculature in healthy sheep and during systemic inflammation.

Nitric oxide (NO) influences microvascular integrity. NO synthase inhibitors are regarded as therapeutic options, but their impact on the pulmonary microvasculature is not well defined. We studied the microvascular effects of the nonselective NO synthase inhibitor N(omega)-nitro L-arginine methylester (L-NAME) in healthy sheep and during systemic inflammation. Permeability analysis was performed in 30 adult ewes with chronic lung lymph fistulas and pulmonary venous occluders. Experiment 1: 20 sheep received Escherichia coli endotoxin (lipopolysaccharide, 10 ng/kg/min) for 32 h. After 24 h of endotoxemia, 10 sheep were given L-NAME (25 mg/kg), and 10 sheep received NaCl 0.9%. Experiment 2: six sheep were treated with L-NAME (25 mg/kg), and four animals received NaCl 0.9%. Endotoxin induced a phasic pulmonary microvascular response with early transiently increased endothelial permeability at 4 h and late normalization of microvascular integrity to large molecules after 24 h. At that time systemic vasodilation had occurred. L-NAME raised pulmonary artery pressure and pulmonary vascular resistance index without signs of increased permeability in either experiment. NO is involved in vascular tone in healthy sheep and during systemic inflammation, but it does not seem to play a role in the integrity of the pulmonary microvascular barrier function to large molecules.

Animals↗

Haemodynamic effects of dopexamine and nitric oxide synthase inhibition in healthy and endotoxaemic sheep.

Chronically instrumented awake healthy sheep (n = 6) received the synthetic catecholamine, dopexamine, during or without a background infusion of the nitric oxide synthase inhibitor. L-nitro-arginine-methylester (L-NAME). Three days later, hypotensive-hyperdynamic circulation was induced and maintained by continuous infusion of Salmonella typhosa endotoxin (10 ng/kg per min). After 24 h of continuous endotoxin infusion, the dopexamine L-NAME protocol was repeated. In healthy and endotoxaemic animals with and without nitric oxide synthase inhibition dopexamine caused the same haemodynamic changes: heart rate and cardiac output increased, mean arterial pressure and systemic vascular resistance decreased. L-NAME infusion induced normalisation of the hypotonic-hyperdynamic circulation in endotoxaemic animals. Dopexamine reduced some adverse effects of L-NAME treatment, like increased pulmonary vascular resistance and decreased oxygen delivery. In conclusion the haemodynamic effects of dopexamine are independent of the amount of nitric oxide production. Dopexamine may attenuate some of the adverse effects of nitric oxide synthase inhibition.

Adrenergic beta-Agonists↗

Effects of sympathetic nerve blockade on vasoconstrictive properties of nitric oxide synthase inhibition in sheep.

OBJECTIVE: Inhibition of nitric oxide synthase causes intense vasoconstriction. This effect is thought to be dependent on sympathetic nerve activity. Thus, we investigated the vasoconstrictive effects of the nitric oxide synthase inhibitor NG-nitro-L-arginine methyl ester (L-NAME) in sheep, in which a reversible sympathetic block was established by thoracic epidural anesthesia. METHODS: Sheep (n = 11) were surgically prepared for chronic study. After at least 5 days of recovery, L-NAME was continuously administered and hemodynamics were monitored. This was done in sheep with and without sympathetic blockade in randomized order. RESULTS: The vasoconstrictive effects of L-NAME were similar in sheep with and without sympathetic blockade. CONCLUSION: The obtained results suggest that the vasoconstrictive properties of nitric oxide synthase inhibitors are independent of sympathetic tone.

Anesthesia, Epidural↗

Fat elimination during intraoperative autotransfusion: an in vitro investigation.

UNLABELLED: Intraoperative autotransfusion of scavenged blood is an established method to reduce the need for perioperative homologous blood transfusion. However, if fat particles contaminate blood suctioned from the wound site, no reliable method is available to remove them during the washing and concentration of the recycled blood. A new generation of autotransfusion devices (e.g., continuous autotransfusion system [CATS]), based on separation chambers used in cell separators or plasmapheresis devices, allows continuous procession of the collected blood, in contrast with the discontinuous process used in conventional autotransfusion devices such as the Cell Saver 5. Theoretically, the continuous system should be more efficient than the discontinuous system in eliminating fat. Outdated, 36-day-old packed red blood cells, 600 mL, were mixed with 500 mL of lactated Ringer's solution and 200 mL of soya oil. Soya oil was used because it has a fatty acid composition similar to that of fat found in bone marrow. The blood mixture was then washed and concentrated by using either the CATS or the Cell Saver 5. Six samples were processed by each device. The CATS eliminated the soya oil (200 mL) completely, whereas the Cell Saver 5 delivered 30.3 +/- 7.8 mL soya oil into the retransfusion bag. The new generation of autotransfusion devices allows complete removal of fat particles. IMPLICATIONS: Autotransfusion devices serve to wash and retransfuse blood scavenged from the wound site. However, they cannot completely remove fat particles. This in vitro investigation showed that a new device completely removes fat particles and thus prevents retransfusion of fat.

Blood Transfusion, Autologous↗

The atrial natriuretic peptide receptor antagonist HS 142-1 improves cardiovascular filling and mean arterial pressure in a hyperdynamic ovine model of sepsis.

OBJECTIVE: To test whether systemic vascular resistance and mean arterial pressure increase during the administration of the atrial natriuretic peptide antagonist, HS 142-1, in ovine experimental hyperdynamic sepsis. DESIGN: Prospective trial. SETTING: Research laboratory at a large university medical center. SUBJECTS: Chronically instrumented Merino breed ewes (n = 14). INTERVENTIONS: Continuous infusion of Pseudomonas aeruginosa (2.5 x 10(6) colony-forming units/min) for the experimental period of 48 hrs. One group (HS 142-1) received a continuous infusion of HS 142-1 (3 mg/kg/hr) from 40 to 48 hrs; the remaining sheep ("control") were given the vehicle sodium chloride 0.9%. MEASUREMENTS AND MAIN RESULTS: All sheep developed a hyperdynamic cardiovascular response by 40 hrs that was characterized by low values of systemic vascular resistance index (p < .05) and mean arterial pressure (p < .05), and an increased cardiac index (p < .05). HS 142-1 increased cardiac filling pressures (p < .05) without apparent effects on fluid balance, and was associated with a significantly (p < .05) higher mean arterial pressure than was found in the control group at 44 and 48 hrs. HS 142-1 did not change systemic vascular resistance index. At 44 and 48 hrs, cardiac index values were found to have significantly (p < .05) increased in the animals receiving HS 142-1, when these data were compared with cardiac output values at 40 hrs. CONCLUSION: HS 142-1 increases cardiac filling pressures and maintains mean arterial pressure in hyperdynamic sepsis without reversal of sepsis-induced vasodilation.

Animals↗

Oxalated pyridoxalated hemoglobin polyoxyethylene conjugate normalizes the hyperdynamic circulation in septic sheep.

OBJECTIVE: Excessive production of nitric oxide significantly contributes to the hyperdynamic state associated with sepsis. The ability of hemoglobin to scavenge nitric oxide may therefore be beneficial in the treatment of sepsis. In this study, we determined the effects of different doses of the modified human pyridoxalated hemoglobin polyoxyethylene conjugate in an ovine model of hyperdynamic sepsis. DESIGN: Prospective, experimental study. SETTING: Large animal research laboratory at a university medical center. INTERVENTIONS: Sheep (n = 23) were surgically prepared for chronic study. After a 5-day recovery period, all animals received a continuous infusion of live Pseudomonas aeruginosa (2.5 x 10(6) colony-forming units/min) for the next 48 hrs. After 24 hrs of sepsis, the animals were divided into four groups: a) six sheep were used as controls and received a bolus of 200-mL vehicle; b) three sheep received a bolus of 50 mg/kg hemoglobin; c) six sheep received 100 mg/kg of hemoglobin; d) six sheep received 200 mg/kg of hemoglobin. MEASUREMENTS AND MAIN RESULTS: All animals that survived the first 24 hrs of sepsis (n = 21) developed a hyperdynamic circulation. All three doses of hemoglobin reversed this hyperdynamic state by increasing mean arterial pressure and systemic vascular resistance while decreasing cardiac index. Pulmonary arterial pressure increased after hemoglobin infusion. Increased pulmonary arterial pressure did not affect arterial oxygen saturation nor result in the development of pulmonary edema. Infusion of hemoglobin also caused a 30-fold increase in endothelin-1 plasma concentrations and significantly decreased nitrate and nitrite plasma concentrations. CONCLUSIONS: The infusion of low doses of pyridoxalated hemoglobin polyoxyethylene conjugate in septic sheep reverses the hyperdynamic circulatory state. An increase in pulmonary arterial pressure was the only observed hemodynamic side effect; changes in the structure or function of other organ systems, or their biochemical correlates were not investigated in this study. In addition to a possible nitric oxide scavenging effect, pyridoxalated hemoglobin polyoxyethylene may affect the nitric oxide synthase and endothelin systems.

Animals↗

Strategies to reduce the need for peri-operative blood transfusion.

Therapeutic regimens involving the transfusion of blood components are a matter of debate, not only with regard to patients' safety, but also with regard to cost-effectiveness. The following different measures to reduce the use of blood components and their efficacy are discussed: autologous transfusion, including predonation, isovolaemic haemodilution and peri-operative retransfusion; toleration of a lower haematocrit; and measures to reduce blood loss. In particular, a combination of these methods may be most effective at reducing transfusion needs.

Blood Loss, Surgical↗

Inhalation injury increases the anastomotic bronchial blood flow in the pouch model of the left ovine lung.

Pulmonary parenchymal damage often occurs after airway injury. Bronchial venous drainage empties into the pulmonary microvasculature. We developed an in vivo model to study the bronchopulmonary portal system after smoke inhalation injury. Eight ewes were instrumented with hydraulic occluders on the left pulmonary artery (LPA), the left pulmonary vein, and the bronchoesophageal artery (BEA); a catheter in the LPA; and Swan-Ganz and femoral artery catheters. The vasculature between the occluders was defined as pouch. At stable mean arterial and right pulmonary arterial pressures, LPA occlusion reduced the left pulmonary artery pressure (LPAP) from 17 +/- 1 mmHg to 8 +/- 1 mmHg (p < .05). After left pulmonary vein occlusion, LPAP rose to 28 +/- 4 mmHg (p < .05 vs. baseline), indicating that systemic blood had entered the pouch. Opening the pouch to atmospheric pressure revealed an anastomotic bronchial blood flow (anastomotic Qbr) of .76 +/- .11% of cardiac output (CO). BEA occlusion reduced the anastomotic Qbr to .32 +/- .06% of CO (p < .05). Smoke inhalation injury resulted in a further increase in the maximal LPAP to 38 +/- 5 mmHg (p < .05 vs. right pulmonary artery pressure). The anastomotic Qbr rose to 1.29 +/- .13% of CO (p < .05) and was reduced to .40 +/- .09% of CO (p < .05) by BEA occlusion. Inhalation injury increased the anastomotic Qbr mainly due to BEA vasodilatation. Because the BEA supplies the injured airway, it may deliver deleterious material to the lung parenchyma.

Anastomosis, Surgical↗

Effects of alpha-trinositol on systemic inflammation and renal function in ovine bacterial sepsis.

Neuronally secreted peptides are important mediators of hemodynamic changes in the systemic inflammatory response. The inositol derivative D-myo-inositol[1,2,6]triphosphate (alpha-trinositol) has been demonstrated to be a specific nonpeptide antagonist of vasoconstriction induced by neuropeptide Y. We induced sepsis by a 48 h continuous infusion of Pseudomonas aeruginosa (10(6) colony-forming unit/min intravenously [i.v.]) in 12 chronically instrumented, conscious sheep. After 24 h, the animals were randomized to receive either alpha-trinositol (i.v. bolus of 2 mg/kg, followed by a continuous infusion of 3.5 mg/kg/h) or the saline carrier. alpha-Trinositol increased the heart rate (108 +/- 4 to 152 +/- 9 beats per minute) and reduced the stroke volume index (65 +/- 5 to 49 +/- 2 mL/beat/m2) but did not change cardiac index. Left ventricular stroke work decreased significantly (80 +/- 9 to 58 +/- 7 g.m/m2). All blood flows except the infrarenal aortic flow were increased after 24 h, but treatment decreased only the flow to the hind limb region. Urine output and fractional sodium excretion significantly increased without osmotic diuretic effects after alpha-trinositol. In treated animals, we found significantly lower leukocyte counts in all organ tissues. We conclude that alpha-trinositol modulates the cardiac performance and the local inflammatory response in tissues, and improves the fluid balance in septic sheep.

Animals↗

Nitric oxide and endothelial permeability.

Nitric oxide synthase inhibition reverses systemic vasodilation during sepsis but may increase endothelial permeability. To assess adverse effects on the pulmonary vasculature, 12 sheep were chronically instrumented with lung lymph fistulas and hydraulic pulmonary venous occluders. Escherichia coli endotoxin (lipopolysaccharide; 10 ng . kg-1 . min-1) was continuously infused for 32 h. After 24 h, six animals received 25 mg/kg of Nomega-nitro-L-arginine methyl ester (L-NAME), and six received saline. All sheep developed a hyperdynamic circulatory response and elevated lymph flows by 24 h of lipopolysaccharide infusion. L-NAME reversed systemic vasodilation, increased pre- and postcapillary pulmonary vascular resistance index, pulmonary arterial pressure, and, transiently, effective pulmonary capillary pressure. Lung lymph flows were not different between groups at 24 h or thereafter. Calculated as changes from baseline, however, lung lymph flow was higher in the L-NAME group than in the control animals, with a trend toward lower lymph-to-plasma protein concentration ratio at 25 h. Permeability analysis at 32 h by the venous occlusion technique showed normal reflection coefficients and elevated filtration coefficients without differences between groups. Reversal by L-NAME of the systemic vasodilation during endotoxemia was associated with high pulmonary vascular resistance without evidence of impaired pulmonary endothelial barrier function.

Animals↗

[Limitations of inhaled vasodilators].

Treatment of pulmonary hypertension is an important issue in intensive care. One therapeutic regimen involves the intravenous administration of prostacyclin (PGI2). This, however, is accompanied by diminished hypoxic pulmonary vasoconstriction, reduced arterial oxygenation, and systemic vasodilation. Thus, its clinical usefulness is limited. However, the inhalation of vasodilators such as nitric oxide (NO) or nebulized PGI2 causes a selective pulmonary vasodilation in ventilated alveoli and improved gas exchange, without any systemic vasodilation. It has therefore gained importance for the treatment of pulmonary failure associated with high shunt fractions. However, the inhalation of vasodilators may have adverse effects: in the case of NO, toxic side effects are predominant (MetHb, NOx), whereas in the case of PGI2, technical problems in terms of dosing and administration safety are of major interest. Furthermore, some patients do not respond to the treatment. In some individuals a reduction in pulmonary hypertension can be seen, while others lack even pulmonary vasodilation. The exact pathophysiological mechanisms remain to be investigated.

Administration, Inhalation↗

The effects of propofol on hemodynamics and renal blood flow in healthy and in septic sheep, and combined with fentanyl in septic sheep.

Sepsis is characterized by myocardial depression and systemic vasodilation, both of which are most likely mediated by nitric oxide. Propofol inhibits nitric oxide synthase and may therefore be beneficial in sepsis. On the other hand, renal blood flow, known to be only minimally affected by propofol in healthy subjects, may be drastically reduced in septic individuals, because the renal microvasculature is known to be very sensitive to nitric oxide. In this study, the effects of propofol in healthy and in septic sheep, and in combination with fentanyl, were analyzed and compared with nonanesthetized septic sheep. In healthy sheep, propofol caused only minor hemodynamic changes. In septic sheep, however, hemodynamics deteriorated. Renal blood flow was reduced to 60% +/- 10% of the preseptic baseline and to 39% +/- 4% of the septic value. This reduction was selective, since the cardiac output decreased significantly less. These adverse effects of propofol on hemodynamics and renal blood flow were reduced when propofol was combined with fentanyl.

Adjuvants, Anesthesia↗

Nitric oxide synthase inhibition restores vasopressor effects of norepinephrine in ovine hyperdynamic sepsis.

To investigate the hypothesis that nitric oxide synthase (NOS) inhibition restores the vasopressor response to norepinephrine (NE) in ovine hyperdynamic sepsis, eight sheep were chronically instrumented. In the non-septic portion of the study, NE was titrated to achieve an increase in mean arterial pressure (MAP) by 15 mm Hg ("small dose"). Small-dose NE was repeated 1 h after administration of the NOS inhibitor NG-nitro-L-arginine methyl ester (L-NAME; bolus 5 mg/kg, followed by 1 mg.kg-1.h-1). After 3 days of recovery, sepsis was induced by a continuous endotoxin infusion (Salmonella typhosa, 10 ng.kg-1.h-1). Three animals died during this period (data excluded). After 24 h, small-dose NE was given. If MAP increased less than 15 mm Hg, the NE dose was increased to achieve the targeted MAP change ("large dose"). Finally, both doses of NE were given after L-NAME administration. To increase MAP by 15 mm Hg in nonseptic animals, the rate of NE infusion was 0.18 +/- 0.03 microgram.kg-1.min-1 (small dose). During L-NAME infusion, this NE dose increased MAP by 32 +/- 8 mm Hg. In septic animals, small-dose NE increased MAP by only 9 +/- 2 mm Hg (P < 0.05 versus nonseptic state). To increase MAP by 15 mm Hg, the NE dose had to be increased to 0.34 +/- 0.06 microgram.kg-1.min-1 (large dose). During L-NAME infusion, NE administration increased MAP by 16 +/- 2 mm Hg and 28 +/- 4 mm Hg (small and large dose, respectively). Thus, L-NAME restored the vasopressor response to NE in sepsis, and increased the vasopressor response to NE in a similar fashion in healthy and septic sheep.

Animals↗

Nitric oxide synthase inhibition during experimental sepsis improves renal excretory function in the presence of chronically increased atrial natriuretic peptide.

OBJECTIVE: To test whether renal excretory function decreases after nitric oxide synthase inhibition during experimental hyperdynamic sepsis. DESIGN: Prospective, randomized, controlled animal trial. SETTING: Research laboratory at a large university medical center. SUBJECTS: Chronically instrumented Merino breed ewes (n = 18). INTERVENTIONS: Continuous infusion of Escherichia coli endotoxin (10 ng/kg/min) for the experimental period of 32 hrs. One group received a bolus of the nitric oxide synthase inhibitor, N omega-nitro-L-arginine methyl ester (25 mg/kg), after 24 hrs, and the remaining sheep were given the carrier, sodium chloride 0.9%. MEASUREMENTS AND MAIN RESULTS: The sheep developed a hyperdynamic cardiovascular response characterized by a decrease in systemic vascular resistance index (p < .05), and an increased cardiac index (p < .05) by 24 hrs. The sheep retained fluid, with creatinine clearance decreasing in the presence of chronically increased atrial natriuretic peptide. After the administration of N omega-nitro-L-arginine methyl ester, systemic vascular resistance index and cardiac index returned to baseline values, fluid balance normalized, and glomerular filtration rate increased (p < .05), while the control animals continued to retain fluid and their creatinine clearance continued to decrease. The concentrations of atrial natriuretic peptide did not differ significantly between groups after N omega-nitro-L-arginine methyl ester administration. CONCLUSIONS: In this ovine model of experimental hyperdynamic sepsis, renal excretory function decreases in the presence of chronically increased concentrations of atrial natriuretic peptide. Administration of the nitric oxide synthase inhibitor, N omega-nitro-L-arginine methyl ester, reverses the vasodilatory state, thereby improving fluid balance and glomerular filtration.

Animals↗

Nitric oxide synthase inhibition versus norepinephrine for the treatment of hyperdynamic sepsis in sheep.

OBJECTIVES: To investigate the effects of Nomega-mono-methyl-L-arginine (L-NMMA), an inhibitor of nitric oxide synthesis, on hemodynamics, oxygen transport, and regional blood flow in an ovine model of hyperdynamic sepsis and to compare these effects with the responses to norepinephrine. DESIGN: Prospective, nonrandomized, controlled experimental study with repeated measures. SETTING: Investigational intensive care unit at a university medical center. SUBJECTS: Twenty-five female, healthy, adult sheep of the Merino breed, divided into three groups: nine control sheep; eight sheep treated with L-NMMA; and eight sheep treated with norepinephrine. INTERVENTIONS: All sheep were chronically instrumented. After a 5-day recovery period, a continuous infusion of live Pseudomonas aeruginosa (2.5 x 10(6) colony-forming units/min) was started and maintained for the remainder of the experiment. After 24 hrs of sepsis, eight sheep received L-NMMA (7 mg/kg/hr), eight sheep received norepinephrine, and nine sheep received the vehicle alone (0.9% saline). The norepinephrine dosage was continuously and individually adjusted to achieve the same increase in blood pressure as was observed in a matched sheep of the L-NMMA group. MEASUREMENTS AND MAIN RESULTS: After 24 hrs of sepsis, all sheep developed a hyperdynamic circulatory state with increased cardiac indices and reduced arterial pressures, and systemic vascular resistances. L-NMMA reversed the hyperdynamic circulation, causing an increase in arterial pressure by peripheral vasoconstriction. Norepinephrine led to an increase in blood pressure by augmenting cardiac indices, leaving the systemic vascular resistance unaffected. The norepinephrine dose needed to keep the blood pressure high had to be continuously increased, reflecting the reduced vascular responsiveness to catecholamines during sepsis. Renal blood flow remained unaffected by all treatment forms. Norepinephrine and L-NMMA led to a dramatic increase in urine production. Blocking the nitric oxide synthase with L-NMMA did not interfere with the host's pulmonary ability to clear bacteria, nor did treatment with norepinephrine. CONCLUSIONS: Blocking nitric oxide synthase had a marked vasoconstrictive effect. Both norepinephrine and L-NMMA increased arterial pressure without reducing renal blood flow, leading to an improved renal function.

Animals↗

Effects of inhaled nitric oxide and nebulized prostacyclin on hypoxic pulmonary vasoconstriction in anesthetized sheep.

OBJECTIVES: Inhaled nitric oxide has been shown to be a selective pulmonary vasodilator, leading to reduced pulmonary arterial pressure and improved ventilation/perfusion ratio in the acute respiratory distress syndrome. This local pulmonary vasodilation theoretically can be achieved by the airway application of a short-acting vasodilator, such as prostacyclin. We hypothesized that nebulized prostacyclin has the same properties for selective pulmonary vasodilation as inhaled nitric oxide. DESIGN: Prospective, experimental study in sheep. SETTING: Investigational intensive care unit in a university hospital. SUBJECTS: Six adult ewes of the Merino breed. INTERVENTIONS: Sheep (n = 6) were surgically prepared for chronic study. After 5 days of recovery, the sheep had tracheostomies performed under anesthesia. Intubation with a modified Robert-Shaw tube allowed side-separated ventilation. The entire left lung was ventilated with pure nitrogen, whereas the right lung was ventilated with pure oxygen. Nitric oxide and prostacyclin were added in different concentrations to the nitrogen, with which the left lung was ventilated. MEASUREMENTS AND MAIN RESULTS: The blood flows to the left and right lungs were measured with ultrasonic flow probes on the common and left pulmonary artery. Measurements were taken after each compound had been administered for 10 mins at a predefined dose. Both inhaled nitric oxide and nebulized prostacyclin caused effective, selective, dose-dependent pulmonary vasodilation. Inhaled nitric oxide was able to abolish hypoxic pulmonary vasoconstriction when insufflated into the animals at a concentration of 50 ppm of nitrogen, but 100 ppm of nitric oxide had no further effect. Prostacyclin, at a dosage of 10 micrograms/min, showed maximum pulmonary vasodilation, which could not be further increased by doubling the dosage. However, prostacyclin produced less dilation than high doses of nitric oxide, and its maximum pulmonary vasodilation was comparable with that effect obtained under ventilation with 20 ppm of nitric oxide. CONCLUSIONS: Both drugs selectively dilated the pulmonary vasculature in ventilated alveoli. Prostacyclin nebulization is an excellent tool to reduce pulmonary hypertension and to improve the ventilation/perfusion ratio. Prostacyclin nebulization can be used without the highly sophisticated technical equipment that is needed for controlled nitric oxide inhalation, and may therefore become a new, noninvasive therapeutic approach for treatment of adult respiratory distress syndrome in hospitals that cannot provide nitric oxide inhalation.

Administration, Inhalation↗