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AT2-antagonist sensitive potentiation of angiotensin II-induced vasoconstrictions by blockade of nitric oxide synthesis in rat renal vasculature.

1. Although the actions of angiotensin II (Ang II) on renal haemodynamics appear to be mediated by activation of the AT1 receptor subtype, AT2 binding sites have also been evidenced in the adult kidney vasculature. As NO is known to mask part of the renal effects of vasoconstrictor drugs, we queried whether the Ang II-induced vasoconstrictions could occur via multiple receptor subtypes during inhibition of NO synthesis. We explored the effect of AT1 and AT2 receptor (AT-R) antagonists on Ang II-induced pressure increases during NO synthase or soluble guanylyl cyclase inhibition in rat isolated kidneys perfused in the presence of indomethacin at constant flow in a single-pass circuit. 2. In the absence of NO blockade, the AT1-R antagonist L-158809 (500 nM) antagonized the Ang II-induced vasoconstrictions, while the AT2-R antagonist PD-123319 (500 nM) had no effect. 3. Perfusing kidneys in the presence of either NO synthase inhibitors, L-NAME (100 microM) or L-NOARG (1 mM), or soluble guanylyl cyclase inhibitor, LY-83583 (10 microM), significantly increased both molar pD2 (from 9.40+/-0.25 to 10.36+/-0.11) and Emax values (from 24.9+/-3.1 to 79.9+/-4.9 mmHg) of the concentration-response curve for Ang II-induced vasoconstriction. 4. In the presence of L-NAME, 500 nM L158809 abolished the Ang II-induced vasoconstrictions whatever the concentration tested. On the other hand, 500 nM PD-123319 reversed the left shift of the concentration-response curve for Ang II (molar pD2 value 9.72+/-0.13) leaving Emax value unaffected (91.3+/-7.6 mmHg). 5. In the presence of L-NAME, the potentiated vasoconstriction induced by 0.1 nM and the augmented vasoconstriction induced by 10 nM Ang II were fully inhibited in a concentration-dependent manner by L-158809 (0.05-500 nM). By contrast, PD-123319 (0.5-500 nM) did not affect the 10 nM Ang II-induced vasoconstriction and concentration-dependently decreased the 0.1 nM Ang II-induced vasoconstriction plateauing at 65% inhibition above 5 nM antagonist. 6. Similar to PD-123319, during NO blockade the AT2-R antagonist CGP-42112A at 5 nM decreased by 50% the 0.1 nM Ang II-induced vasoconstriction and at 500 nM had no effect on 10 nM Ang II-induced vasoconstriction. 7. In conclusion, the renal Ang II-induced vasoconstriction, which is antagonized only by AT1-R antagonist in the presence of endogenous NO, becomes sensitive to both AT1- and AT2-R antagonists during NO synthesis inhibition. While AT1-R antagonist inhibited both L-NAME-potentiated and -augmented components of Ang II-induced vasoconstriction, AT2-R antagonists inhibited only the L-NAME-potentiated component.

Angiotensin II↗

Coronary vasoconstriction after percutaneous transluminal coronary angioplasty is attenuated by antiadrenergic agents.

BACKGROUND: Vasoconstriction occurs after percutaneous transluminal coronary angioplasty (PTCA) along the dilated vessel. The vasomotor changes, initiated by the mechanical stretch of the stenotic region, are thought to be due to various mechanisms but whether the sympathetic nervous system plays a role in this phenomenon remains unknown. METHODS AND RESULTS: Quantitative angiography (ARTREK) was performed in 45 patients undergoing an epicardial vessel PTCA for a stenosis of 76 +/- 1% (1) in basal conditions, (2) after PTCA, and (3) 30 minutes after PTCA (vasoconstriction). In 14 control patients, the same measurements were obtained up to 60 minutes after PTCA. Coronary diameters were measured along the PTCA vessel at the narrowest stenosis level and at a level peripheral to stenosis. In 36 patients two diameters were also measured at a proximal segment and at a distal segment along a nonmanipulated vessel. Thirty minutes after PTCA the dilated segment underwent a -31 +/- 2% (mean +/- SEM, ANOVA, P < .05) reduction in diameter when compared with PTCA values, and the segment peripheral to stenosis showed a reduction of -17 +/- 2% (P < .05). In all patients a significant vasoconstriction also was observed along the control vessel (proximal segment, -14 +/- 3%; P < .05 versus basal; and distal segment, -17 +/- 2%). At the time of maximal vasoconstriction (30 minutes after PTCA), the patients (treatment groups) received (1) 18 micrograms/kg IC phentolamine (Phe, n = 7), (2) 14 micrograms/kg IC yohimbine (YO, n = 7), (3) 16 micrograms/kg IC propranolol (Pro) followed by 18 micrograms/kg IC phentolamine (Pro+Phe, n = 7), and (4) 0.2 mg/kg IC bretylium (Bre, n = 10). In 14 patients (control groups) an intracoronary injection of warm saline was given. After drug injections, angiograms were repeated at 5-minute intervals for 20 minutes and ended after a 300-micrograms intracoronary trinitroglycerin injection. At stenosis level, Phe and Bre counteracted vasoconstriction, inducing a dilatation of +19 +/- 3% and +22 +/- 6%, respectively, while Pro+Phe caused a dilatation of +16 +/- 9% above the PTCA values (P < .05 versus PTCA). YO only partially reversed vasoconstriction (from -33 +/- 4% to -12 +/- 4%, P = NS versus PTCA). At peripheral-to-stenosis level, vasoconstriction was abolished by Phe (+26 +/- 7%, P < .05 versus basal), while it was still present after Pro+Phe (-23 +/- 2%) and Bre (-18 +/- 4%). In addition, Phe and Bre dilated the control vessel at the proximal segment (+17 +/- 6% and +8 +/- 4%, respectively, P < .05 versus basal), while YO and Pro+Phe only counteracted vasoconstriction (from -15 +/- 3% to +7.6 +/- 1% and from -16 +/- 3% to +4 +/- 5%, respectively, P = NS versus basal). At the distal segment only Phe produced a vasodilatation of +23 +/- 1%; YO counteracted constriction (from -16 +/- 2% to +9 +/- 6%, P < .05 versus basal), whereas after Pro+Phe and Bre, the vasoconstriction persisted. CONCLUSIONS: The mechanical stretch and ischemia caused by balloon inflation induced vasoconstriction mediated by alpha-adrenergic receptors (mainly alpha 1), overcoming a beta-mediated dilatation. The use of different antiadrenergic drugs showed that Phe counteracts post-PTCA vasoconstriction, and the simultaneous use of alpha- and beta-receptor blocking agents (Pro+Phe and Bre) reveals the presence of a peripheral, predominant beta-mediated dilatation. The presence of vasoconstriction also along the control vessels not branching from the stretched ramus provides evidence for the existence of neural sympathetic vasoconstrictor reflexes.

Angioplasty, Balloon, Coronary↗

Inhibitory effects of TAK-044 on endothelin induced vasoconstriction in various canine arteries and porcine coronary arteries: a comparison with selective ETA and ETB receptor antagonists.

1. The inhibitory effects of the endothelin (ET) receptor antagonist, TAK-044, on ET-induced vasoconstriction in various canine arteries and porcine coronary arteries were studied and were compared to those of selective ETA and ETB receptor antagonists. 2. ET-1 (0.1 nM-0.3 microM) caused vasoconstriction in canine coronary, femoral, renal, mesenteric and basilar arteries, and the strongest responses were obtained in coronary and basilar arteries. TAK-044 (10 nM, 100 nM) inhibited this ET-1-induced vasoconstriction except in the case of mesenteric arteries. The strongest inhibitory effects were obtained in coronary arteries; an EC50 value for ET-1 was 5.2 +/- 0.77 nM (n = 12) in the control and 24 +/- 3.8 nM (n = 4) in the presence of TAK-044 at 10 nM. BQ-123 (1 microM) inhibited the vasoconstriction in coronary and femoral arteries but did not in renal, mesenteric or basilar arteries. 3. TAK-044 (10-100 nM) inhibited the ET-1-induced vasoconstriction in porcine coronary arteries to a degree similar to that in canine coronary arteries. In contrast, BQ-123 (10 microM) did not inhibit the contraction completely, and a BQ-123-insensitive component was identified. Although BQ-788 (1 microM) did not modify the concentration-response curve at all, it abolished the BQ-123-insensitive component when applied together with BQ-123 (10 microM). 4. Sarafotoxin S6c (10 pM-30 nM) caused vasoconstriction in porcine coronary arteries with the maximum amplitude of the contraction being 39% of that with ET-1. Both TAK-044 (10 nM, 100 nM) and BQ-788 (1 microM) inhibited this vasoconstriction, while BQ-123 (3 microM, 10 microM) did not. 5. Vasoconstriction induced by ET-3 (0.1 nM-0.3 microM) in porcine coronary arteries showed a concentration-response curve with two distinct phases in contrast to that seen with sarafotoxin S6c. TAK-044 (0.3 nM-10 nM) inhibited both phases in a concentration-dependent manner. BQ-123 (1 microM, 3 microM) inhibited only the second phase, while BQ-788 (1 microM) inhibited the first phase. 6. We concluded that the inhibitory effects of TAK-044 on ET-1-induced vasoconstriction were the strongest in coronary arteries among the canine arteries examined. In addition, we showed that both ETA and ETB receptors mediate vasoconstriction in porcine coronary arteries and TAK-044 inhibits the vasoconstriction mediated by both of these receptors.

Animals↗

The threshold and gain of thermoregulatory vasoconstriction differs during anesthesia in the dependent and upper arms in the lateral position.

UNLABELLED: Increased intraluminal pressure may help maintain vasodilation in a dependent arm even after hypothermia triggers centrally mediated thermoregulatory vasoconstriction. We therefore tested the hypotheses that the threshold (triggering core temperature) and gain (increase in vasoconstriction per degree centigrade) of cold-induced vasoconstriction is reduced in the dependent arm during anesthesia. Anesthesia was maintained with 0.4 minimum alveolar anesthetic concentration of desflurane in 10 volunteers in the left-lateral position. Mean skin temperature was reduced to 31 degrees C to decrease core body temperature. Fingertip blood flow in both arms was measured, as was core body temperature. The vasoconstriction threshold was slightly, but significantly, less in the dependent arm (36.2 degrees C +/- 0.3 degrees C, mean +/- SD) than in the upper arm (36.5 degrees C +/- 0.3 degrees C). However, the gain of vasoconstriction in the dependent arm was 2.3-fold greater than in the upper arm. Consequently, intense vasoconstriction (i.e., a fingertip blood flow of 0.15 mL/min) occurred at similar core temperatures. In the lateral position, the vasoconstriction threshold was reduced in the dependent arm; however, gain was also increased in the dependent arm. The thermoregulatory system may thus recognize that hydrostatic forces reduce the vasoconstriction threshold and may compensate by sufficiently augmenting gain. IMPLICATIONS: The threshold for cold-induced vasoconstriction is reduced in the dependent arm, but the gain of vasoconstriction is increased. Consequently, the core temperature triggering intense vasoconstriction was similar in each arm, suggesting that the thermoregulatory system compensates for the hydrostatic effects of the lateral position.

Adult↗

Thermoregulatory vasoconstriction does not impede core warming during cutaneous heating.

BACKGROUND: Although forced-air warming rapidly increases intraoperative core temperatures, it is reportedly ineffective postoperatively. A major difference between these two periods is that arteriovenous shunts are usually dilated during surgery, whereas vasoconstriction is uniform in hypothermic postoperative patients. Vasoconstriction may decrease efficacy of warming because its major physiologic purposes are to reduce cutaneous heat transfer and restrict heat transfer between the two thermal compartments. Accordingly, we tested the hypothesis that thermoregulatory vasoconstriction decreases cutaneous transfer of applied heat and restricts peripheral-to-core flow of heat, thereby delaying and reducing the increase in core temperature. METHODS: Eight healthy male volunteers anesthetized with propofol and isoflurane were studied. Volunteers were allowed to cool passively until core temperature reached 33 degrees C. On one randomly assigned day, the isoflurane concentration was reduced, to provoke thermoregulatory arteriovenous shunt vasoconstriction; on the other study day, a sufficient amount of isoflurane was administered to prevent vasoconstriction. On each day, forced-air warming was then applied for 2 h. Peripheral (arm and leg) tissue heat contents were determined from 19 intramuscular needle thermocouples, 10 skin temperatures, and "deep" foot temperature. Core (trunk and head) heat content was determined from core temperature, assuming a uniform compartmental distribution. Time-dependent changes in peripheral and core tissue heat contents were evaluated using linear regression. Differences between the vasoconstriction and vasodilation study days, and between the peripheral and core compartments, were evaluated using two-tailed, paired t tests. Data are presented as means +/-SD; P < 0.01 was considered statistically significant. RESULTS: Cutaneous heat transfer was similar during vasoconstriction and vasodilation. Forced-air warming increased peripheral tissue heat content comparably when the volunteers were vasodilated and vasoconstricted: 48 +/- 7 versus 53 +/- 10 kcal/h. Core compartment tissue heat content increased similarly when the volunteers were vasodilated and vasoconstricted: 51 +/- 8 versus 44 +/- 11 kcal/h. Combining the two study days, the increase in peripheral and core heat contents did not differ significantly: 51 +/- 8 versus 48 +/- 10 kcal/h, respectively. Core temperature increased at essentially the same rate when the volunteers remained vasodilated (1.3 degrees C/h) as when they were vasoconstricted (1.2 degrees C/h). CONCLUSIONS: The authors failed to confirm their hypothesis that thermoregulatory vasoconstriction decreases cutaneous transfer of applied heat and restricts peripheral-to-core flow of heat in anesthetized subjects. The reported difference between intraoperative and postoperative rewarming efficacy may result from nonthermoregulatory anesthetic-induced vasodilation.

Adult↗

An anesthesiologist's guide to hypoxic pulmonary vasoconstriction: implications for managing single-lung anesthesia and atelectasis.

PURPOSE OF THE REVIEW: Hypoxic pulmonary vasoconstriction is the pulmonary circulation's homeostatic mechanism for matching regional perfusion to ventilation and optimizing systemic PaO2. The role of hypoxic pulmonary vasoconstriction in anesthesiology is reviewed. RECENT FINDINGS: In hypoxic pulmonary vasoconstriction, airway hypoxia causes resistance pulmonary arteries to constrict, diverting blood to better-oxygenated alveoli. Hypoxic pulmonary vasoconstriction optimizes O2 uptake in atelectasis, pneumonia, asthma, and adult respiratory distress syndrome. During single-lung anesthesia, hypoxic pulmonary vasoconstriction helps maintain systemic oxygenation. When hypoxic pulmonary vasoconstriction is weak, systemic hypoxemia is exacerbated. Although not widely used, the peripheral chemoreceptor agonist almitrine enhances hypoxic pulmonary vasoconstriction and improves PaO2 during single-lung anesthesia. The mechanism of hypoxic pulmonary vasoconstriction involves a redox-based O2 sensor within pulmonary artery smooth muscle cells. Pulmonary artery smooth muscle cells mitochondria vary production of reactive O2 species in proportion to PaO2. Hypoxic withdrawal of these redox second messengers inhibits voltage-gated potassium channels, depolarizing the pulmonary artery smooth muscle cells. Depolarization activates L-type calcium channels, increasing cytosolic calcium and triggering hypoxic pulmonary vasoconstriction. SUMMARY: An understanding of hypoxic pulmonary vasoconstriction is clinically relevant for anesthesiologists. Randomized clinical trials with robust endpoints are required to assess strategies for enhancing hypoxic pulmonary vasoconstriction in thoracic surgery patients.

Anesthesia, Inhalation↗

In vitro evidence that myocardial ischemia resulting from 5-fluorouracil chemotherapy is due to protein kinase C-mediated vasoconstriction of vascular smooth muscle.

5-Fluorouracil (5-FU) is a commonly employed chemotherapeutic agent. Among the various toxicities associated with 5-FU, cardiovascular toxicity, consisting principally of acute myocardial ischemia and/or myocardial infarction, has been reported in up to 8.5% of patients treated with this drug. While 5-FU-induced coronary vasospasm has been considered as a potential basis for such clinical toxicity, this hypothesis remains unsubstantiated by laboratory investigation. Accordingly, the present study was designed to investigate the hypothesis that 5-FU induces reversible vasoconstriction of vascular smooth muscle and to study the cellular mechanisms of such vasomotor alterations. To investigate the effects of 5-FU on the vasoreactivity of vascular smooth muscle, 479 exposures were performed in 105 rings of aorta freshly isolated from 23 New Zealand white rabbits. Vasoconstriction was documented in 20 of 86 (23%) rings exposed to 5-FU at 7 x 10(-5) M, 45 of 83 (54%) rings exposed to 5-FU at 7 x 10(-4) M, and 41 of 49 (84%) rings exposed to 5-FU at 7 x 10(-3) M. In each case, 5-FU-induced vasoconstriction was endothelium independent. Pretreatment of rings with 10(-9) M staurosporine, a protein kinase C (PK-C) inhibitor, reduced 5-FU-induced vasoconstriction from 25.0 +/- 6.5 to 2.5 +/- 1.7 mg; staurosporine at a concentration of 10(-8) M abolished 5-FU-induced vasoconstriction. Pretreatment of rings with 10(-7) M phorbol-12,13-dibutyrate, an activator of PK-C, increased the magnitude of 5-FU-induced vasoconstriction 23-fold, from 49.7 +/- 11.1 mg before to 1163.6 +/- 276.4 mg after phorbol-12,13-dibutyrate (P = 0.0002). Neomycin, an inhibitor of phosphoinositide turnover, did not alter the magnitude of 5-FU-induced vasoconstriction. Membrane receptor blockers, including the alpha-adrenergic receptor blocker phentolamine, the beta-adrenergic receptor blocker propranolol, the H1 receptor inhibitor diphenhydramine, the H2 receptor inhibitor cimetidine, the Ca2+ channel blockers verapamil and diltiazem, and the cyclooxygenase inhibitor indomethacin all failed to alter the magnitude of 5-FU-induced vasoconstriction. Furthermore, the 5-FU-related compounds uracil and floxuridine did not produce vasoconstriction. Finally, 5-FU-induced vasoconstriction was abolished by nitroglycerin. These results indicate that (a) 5-FU causes direct, endothelium-independent vasoconstriction of vascular smooth muscle in vitro, (b) this vasomotor response involves activation of PK-C, and (c) this response is independent of vasoactive cell membrane receptors, phosphoinositide turnover, or activation of the cyclooxygenase pathway.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Effects of the irreversible alpha-adrenoceptor antagonists phenoxybenzamine and benextramine on the effectiveness of nifedipine in inhibiting alpha 1- and alpha 2-adrenoceptor mediated vasoconstriction in pithed rats.

In pithed normotensive rats, i.v. injection of the selective alpha 1-adrenoceptor agonist cirazoline produced vasoconstriction which was largely resistant to inhibition by nifedipine. On the other hand, the pressor effects of the selective alpha 1-adrenoceptor agonists St 587 and Sgd 101/75 were much more effectively blocked by nifedipine, although not as effectively as the pressor effects to the selective alpha 2-adrenoceptor agonist B-HT 920. The sensitivity to inhibition of vasoconstriction in pithed rats to the different agonists increased in the order cirazoline much less than St 587 less than Sgd 101/75 less than B-HT 920. Phenoxybenzamine (3-300 micrograms/kg, i.v., -60 min) irreversibly antagonized the vasoconstriction to cirazoline, St 587, Sgd 101/75 and B-HT 920. After treatment of the rats with phenoxybenzamine the potency and efficacy of nifedipine in antagonizing vasoconstriction to alpha 1-, but not to alpha 2-adrenoceptor activation was dose-dependently enhanced. The potency of nifedipine to inhibit alpha 1-adrenoceptor-mediated vasoconstriction by cirazoline, St 587 and Sgd 101/75 was increased maximally to the level of efficacy at which nifedipine antagonized B-HT 920-induced vasoconstriction. The dose of phenoxybenzamine required to maximally increase the potency and efficacy of nifedipine to antagonize vasoconstriction of the alpha 1-adrenoceptor agonists was inversely related to the level of sensitivity to blockade by nifedipine of the vasoconstriction they produced. In contrast, pretreatment of rats with the irreversible antagonist, benextramine (10 mg/kg, i.v., -100 to -60 min) did not increase the potency or efficacy of nifedipine to antagonize vasoconstriction to cirazoline, St 587, Sgd 101/75 or B-HT 920, despite irreversible blockade of alpha 1- and alpha 2-adrenoceptors. These data suggest that phenoxybenzamine, but not benextramine, selectively inhibits the alpha 1-adrenoceptor mediated vasoconstrictor mechanism that is independent of influx of extracellular calcium. Moreover, the results show that the existence of receptor reserve or the number of alpha 1-adrenoceptors activated does not determine the relative contribution of calcium influx-independent mechanisms in alpha 1-adrenoceptor-mediated vasoconstriction.

Animals↗

Exogenous prostacyclin decreases vasoconstriction but not platelet thrombus deposition after arterial injury.

OBJECTIVES: The aim of this study was to examine the in vivo effects of increasing doses of prostacyclin (PGI2) on arterial vasoconstriction, platelet deposition and their interrelation after balloon injury of porcine carotid arteries. BACKGROUND: Extensive platelet deposition and localized vasoconstriction occur acutely after arterial injury in vivo. The platelet deposition and vasoconstriction are directly correlated, and previous studies suggest that platelets may mediate the vasoconstrictive response. However, it is unclear whether vasoconstriction contributes to platelet deposition. METHODS: Seven pigs received an intravenous infusion of PGI2 at 10 ng/kg per min (PGI2 10), 8 pigs at 50 ng/kg per min (PGI2 50) and 4 pigs at 500 ng/kg per min (PGI2 500); 24 pigs with saline infusion served as a control group. RESULTS: Vasoconstriction immediately proximal and distal to the balloon-dilated carotid arterial segment where selective endothelial injury occurred was directly related to indium-111-labeled platelet deposition within the dilated segment in both control pigs and PGI2-treated pigs. However, this relation was such that for any given level of platelet deposition relative to control, PGI2 decreased vasoconstriction in a dose-related manner. None of the treatments (PGI2 10, 50 or 500) decreased quantitative 111In-labeled platelet deposition or the proportion of deeply injured arteries with mural thrombus (91%, 70% or 75%, respectively, p = NS) compared with values in control pigs (81%). Thus, vasoconstriction was directly related to platelet deposition in control and PGI2-treated animals, but vasodilation alone did not decrease platelet deposition. CONCLUSIONS: Intravenous infusion of PGI2 significantly decreases vasoconstriction but not platelet deposition or mural thrombosis after arterial injury by balloon dilation. It is therefore unlikely that vasoconstriction mediates platelet deposition in this model. At hemodynamically tolerated doses, PGI2 infusion probably will not prevent the thrombotic complications associated with angioplasty.

Animals↗

Increasing mean skin temperature linearly reduces the core-temperature thresholds for vasoconstriction and shivering in humans.

BACKGROUND: The contribution of mean skin temperature to the thresholds for sweating and active precapillary vasodilation has been evaluated in numerous human studies. In contrast, the contribution of skin temperature to the control of cold responses such as arteriovenous shunt vasoconstriction and shivering is less well established. Accordingly, the authors tested the hypothesis that mean skin and core temperatures are linearly related at the vasoconstriction and shivering thresholds in men. Because the relation between skin and core temperatures might vary by gender, the cutaneous contribution to thermoregulatory control also was determined in women. METHODS: In the first portion of the study, six men participated on 5 randomly ordered days, during which mean skin temperatures were maintained near 31, 34, 35, 36, and 37 degrees C. Core hypothermia was induced by central venous infusion of cold lactated Ringer's solution sufficient to induce peripheral vasoconstriction and shivering. The core-temperature thresholds were then plotted against skin temperature and a linear regression fit to the values. The relative skin and core contributions to the control of each response were calculated from the slopes of the regression equations. In the second portion of the study, six women participated on three randomly ordered days, during which mean skin temperatures were maintained near 31, 35, and 37 degrees C. At each designated skin temperature, core hypothermia sufficient to induce peripheral vasoconstriction and/or shivering was again induced by central venous infusion of cold lactated Ringer's solution. The cutaneous contributions to control of each response were then calculated from the skin- and core-temperature pairs at the vasoconstriction and shivering thresholds. RESULTS: There was a linear relation between mean skin and core temperatures at the response thresholds in the men: r = 0.90 +/- 0.06 for vasoconstriction and r = 0.94 +/- 0.07 for shivering. Skin temperature contributed 20 +/- 6% to vasoconstriction and 19 +/- 8% to shivering. Skin temperature in the women contributed to 18 +/- 4% to vasoconstriction and 18 +/- 7% to shivering, values not differing significantly from those in men. There was no apparent correlation between the cutaneous contributions to vasoconstriction and shivering in individual volunteers. CONCLUSIONS: These data indicate that skin and core temperatures contribute linearly to the control of vasoconstriction and shivering in men and that the cutaneous contributions average approximately 20% in both men and women. The same coefficients thus can be used to compensate for experimental skin temperature manipulations in men and women. However, the cutaneous contributions to each response vary among volunteers; furthermore, the contributions to the two responses vary within volunteers.

Adult↗

Determinants of renal actions of atrial natriuretic peptide. Lack of effect of atrial natriuretic peptide on pressure-induced vasoconstriction.

We have previously demonstrated that atrial natriuretic peptide (ANP) completely reverses norepinephrine-induced afferent arteriolar (AA) vasoconstriction. In the present study we characterized the effects of ANP on pressure-induced vasoconstriction of AA. Chronic unilateral hydronephrosis was induced to facilitate direct visualization of the renal microcirculation. Hydronephrotic kidneys were perfused in vitro, and AA diameters were measured during stepwise alterations in renal arterial pressure. Increasing renal arterial pressure from 80 to 180 mm Hg decreased AA diameter by 22 +/- 2% (from 18.5 +/- 1.0 to 14.4 +/- 1.0 microns, p less than 0.005). In the presence of 100 nM ANP [human ANP-(4-28)], AA vasoconstricted by 23 +/- 4%, indicating that ANP failed to modify the pressure-induced AA vasoconstriction. Furthermore, both nitroprusside (10 microM) and 8-bromoguanosine 3':5'-cyclic monophosphate (30 microM) only partially inhibited pressure-induced AA vasoconstriction (31 +/- 5% and 47 +/- 7%, respectively), whereas these vasodilators completely abolished norepinephrine-induced AA vasoconstriction. In contrast, nifedipine completely inhibited pressure-induced AA vasoconstriction. In summary, pressure-induced AA vasoconstriction is insensitive to the action of ANP, is relatively refractory to cyclic GMP-mediated vasorelaxation, but is completely inhibited by calcium channel blockade. Furthermore, since ANP completely abolishes norepinephrine-induced vasoconstriction but fails to affect pressure-induced vasoconstriction, it is apparent that the type of underlying vasoconstrictor stimuli constitutes a major determinant of the renal microvascular response to ANP.

Animals↗

Ropivacaine attenuates pulmonary vasoconstriction induced by thromboxane A2 analogue in the isolated perfused rat lung.

BACKGROUND AND OBJECTIVES: Thromboxane A2 (TXA2) activation is involved in several pathophysiological states in producing pulmonary hypertension. Local anesthetics (LA) inhibit signaling of TXA2 receptors expressed in cell models. Therefore, we hypothesized that LA may inhibit pulmonary vasoconstriction induced by the TXA2 analogue U 46619 in an isolated lung model. METHODS: Isolated rat lungs were perfused with physiological saline solution and autologous blood with or without the LA lidocaine, bupivacaine, ropivacaine, or the permanently charged lidocaine analogue QX 314 (all 1 microg/mL) as a pretreatment. Subsequently, pulmonary vasoconstriction was induced by 3 concentrations of U 46619 (25, 50, and 100 ng/mL) and the change in pulmonary artery pressure (Pa) was compared with each LA. In a second experiment, Pa responses to angiotensin II (0.1 microg), hypoxic pulmonary vasoconstriction (HPV, 3% O2 for 10 minutes), or phenylephrine (0.1 microg) were assessed to determine the specificity of ropivacaine effects on TXA2 receptors. Finally, reversibility of pulmonary vasoconstriction was determined by adding ropivacaine to the perfusate after pulmonary vasoconstriction was established with U 46619. RESULTS: Ropivacaine, but not bupivacaine, lidocaine, or QX 314 significantly attenuated pulmonary vasoconstriction induced by 50 ng/mL U 46619 (35.9%, P<.003) or 100 ng/mL U 46619 (45.2%, P<.001). This effect of ropivacaine was likely to be specific for the thromboxane receptor because pulmonary vasoconstriction induced by angiotensin II, HPV, or phenylephrine was not altered. Ropivacaine did not reverse vasoconstriction when it was administered after U 46619. CONCLUSIONS: Ropivacaine, but not lidocaine, bupivacaine, or QX 314 at 1 microg/mL, attenuates U 46619-induced pulmonary vasoconstriction in an isolated perfused rat lung model. These results support evidence that the clinically used enantiomer S(-)-ropivacaine may inhibit TXA2 signaling.

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

Propofol linearly reduces the vasoconstriction and shivering thresholds.

BACKGROUND: Skin temperature is best kept constant when determining response thresholds because both skin and core temperatures contribute to thermoregulatory control. In practice, however, it is difficult to evaluate both warm and cold thresholds while maintaining constant cutaneous temperature. A recent study shows that vasoconstriction and shivering thresholds are a linear function of skin and core temperatures, with skin contributing 20 +/- 6% and 19 +/- 8%, respectively. (Skin temperature has long been known to contribute approximately 10% to the control of sweating). Using these relations, we were able to experimentally manipulate both skin and core temperatures, subsequently compensate for the changes in skin temperature, and finally report the results in terms of calculated core-temperature thresholds at a single-designated skin temperature. METHODS: Five volunteers were each studied on 4 days: (1) control; (2) a target blood propofol concentration of 2 micrograms/ml; (3) a target concentration of 4 micrograms/ml; and (4) a target concentration of 8 micrograms/ml. On each day, we increased skin and core temperatures sufficiently to provoke sweating. Skin and core temperatures were subsequently reduced to elicit peripheral vasoconstriction and shivering. We mathematically compensated for changes in skin temperature by using the established linear cutaneous contributions to the control of sweating (10%) and to vasoconstriction and shivering (20%). From these calculated core-temperature thresholds (at a designated skin temperature of 35.7 degrees C), the propofol concentration-response curves for the sweating, vasoconstriction, and shivering thresholds were analyzed using linear regression. We validated this new method by comparing the concentration-dependent effects of propofol with those obtained previously with an established model. RESULTS: The concentration-response slopes for sweating and vasoconstriction were virtually identical to those reported previously. Propofol significantly decreased the core temperature triggering vasoconstriction (slope = -0.6 +/- 0.1 degrees C.micrograms-1.ml-1; r2 = 0.98 +/- 0.02) and shivering (slope = -0.7 +/- 0.1 degrees C.micrograms -1.ml-1; r2 = 0.95 +/- 0.05). In contrast, increasing the blood propofol concentration increased the sweating threshold only slightly (slope = 0.1 +/- 0.1 degrees C.micrograms -1.ml-1; r2 = 0.46 +/- 0.39). CONCLUSIONS: Advantages of this new model include its being nearly noninvasive and requiring relatively little core-temperature manipulation. Propofol only slightly alters the sweating threshold, but markedly reduces the vasoconstriction and shivering thresholds. Reductions in the shivering and vasoconstriction thresholds are similar; that is, the vasoconstriction-to-shivering range increases only slightly during anesthesia.

Adult↗

Desflurane slightly increases the sweating threshold but produces marked, nonlinear decreases in the vasoconstriction and shivering thresholds.

BACKGROUND: Shivering is rare during general anesthesia. This observation suggests that anesthetics profoundly impair shivering. However, the effects of surgical doses of volatile anesthetics on control of shivering have yet to be evaluated. Furthermore, the effects of desflurane on sweating and thermoregulatory vasoconstriction remain unknown. Accordingly, the authors determined the concentration-dependent effects of desflurane on sweating, vasoconstriction, and shivering. METHODS: Nine volunteers each were studied on three randomly ordered days: (1) control (no anesthesia); (2) a target end-tidal desflurane concentration of 0.5 minimum alveolar concentration (MAC; 3.5%); and (3) a target concentration of 0.8 MAC (5.6%). Each day, volunteers were warmed until sweating was induced and subsequently cooled until peripheral vasoconstriction and shivering was observed. Changes in skin temperature were arithmetically compensated using the established linear cutaneous contributions to control of each response. From the calculated thresholds (core temperatures triggering responses at a designated skin temperature of 34 degrees C), the concentration-response relationship was determined. RESULTS: Desflurane significantly and linearly increased the sweating threshold from 37.1 +/- 0.3 degrees C on the control day (mean +/- SD), to 37.6 +/- 0.4 degrees C at 0.5 MAC, and to 38.1 +/- 0.3 degrees C at 0.8 MAC. Desflurane significantly, but nonlinearly, reduced the vasoconstriction and shivering thresholds. The sweating-to-vasoconstriction (interthreshold) range thus increased from 0.5 +/- 0.3 degrees C to 2.3 +/- 0.7 degrees C at 0.5 MAC and further to 4.6 +/- 2.0 degrees C at 0.8 MAC. The vasoconstriction-to-shivering range (difference between the respective thresholds) remained between 1.1 and 1.5 degrees C on the three study days. CONCLUSIONS: The observed linear increase in the sweating threshold was similar in pattern and magnitude to that produced by most general anesthetics. The approximately 3 degrees C reduction in the vasoconstriction threshold by 0.8 MAC desflurane was similar to that observed previously during isoflurane and propofol anesthesia. However, the threshold was reduced less than expected at 0.5 MAC, suggesting that the dose-response relationship for vasoconstriction is nonlinear. Shivering was induced without difficulty in this study although the response is rare in surgical patients. It is likely that shivering during general anesthesia is rare because thermoregulatory vasoconstriction usually prevents body temperature from decreasing the required additional 1-1.5 degrees C.

Adult↗

Isoflurane produces marked and nonlinear decreases in the vasoconstriction and shivering thresholds.

BACKGROUND: Desflurane decreases the vasoconstriction and shivering thresholds disproportionately at high anesthetic concentrations. This result contrasts with the authors' previous report that isoflurane decreases the vasoconstriction threshold linearly. It is surprising that the basic shape of the concentration-response curve should differ with these two otherwise similar anesthetics. Therefore, the hypothesis that isoflurane produces a nonlinear reduction in the vasoconstriction threshold was tested. Because the effect of isoflurane on shivering remains unknown, the extent to which isoflurane reduces the shivering threshold also was determined. METHODS: Eight men volunteered to be studied on four randomly ordered days: (1) a target end-tidal isoflurane concentration of 0.55%, (2) a target concentration of 0.7%, (3) control (no anesthesia) and a target end-tidal concentration of 0.85%, and (4) a target end-tidal concentration of 1.0%. Volunteers were surface-cooled until peripheral vasoconstriction and shivering were observed. We arithmetically compensated for changes in skin temperature using the established linear cutaneous contributions to control for each response. From the calculated thresholds (core temperatures triggering responses at a designated skin temperature of 34 degrees C), the concentration-response relation was determined. RESULTS: Isoflurane administration produced a dose-dependent reduction in the vasoconstriction and shivering thresholds, decreasing each approximately 4.6 degrees C at an end-tidal concentration of 1%. Residual analysis indicated that the vasoconstriction and shivering thresholds were decreased in a nonlinear fashion during isoflurane administration. The vasoconstriction-to-shivering range was 1.5 +/- 0.8 degree C without isoflurane, and did not change significantly during isoflurane administration. CONCLUSIONS: The vasoconstriction-to-shivering range remained unchanged by isoflurane administration. In this regard, the effects of isoflurane are similar to those of desflurane, propofol, and alfentanil. The current data differ from the authors' previous report, in that the dose-dependence for vasoconstriction was nonlinear, with isoflurane reducing the threshold disproportionately at higher anesthetic concentrations. Differing dose-dependence in the two studies may result either because the current study's volunteers were not exposed to surgical stimulation and were given less isoflurane, or because of design limitations in the previous protocol.

Adult↗

Almitrine mimics hypoxic vasoconstriction in isolated rat lungs.

The effect of almitrine bimesylate or the solvent malic acid on pulmonary vascular perfusion pressure was assessed in isolated rat lungs and on the contractile behavior of rat aorta and main pulmonary artery rings. Addition of almitrine to the lung perfusate during normoxia caused a dose-dependent, transient increase in pulmonary artery pressure with no change of the lung microvascular pressure. In systemic or pulmonary conduit arteries, the contractile tension was unaffected by almitrine. This indicates a precapillary locus of drug action. We also examined almitrine's effect on hypoxic pulmonary vasoconstriction (HPVC) in isolated lungs perfused with blood or with physiological salt solution (PSS). Low-dose almitrine potentiated hypoxic vasoconstriction in blood- but not in PSS-perfused lungs. However, a high dose of almitrine reduced hypoxic vasoconstriction dose dependently. When almitrine was added to the lung perfusate during hypoxia- or cyanide-induced (NaCN, 5 x 10(-5) M) pulmonary vasoconstriction, almitrine caused no further vasoconstriction. However, when the pulmonary perfusion pressure was elevated by KCl (20 mM) to the same magnitude as by alveolar hypoxia or cyanide, almitrine elicited a pressor response comparable to that observed during normoxia. Almitrine-induced pulmonary vasoconstriction resembled hypoxic vasoconstriction in that agents known to enhance hypoxic vasoconstriction (phorbol myristate acetate, vanadate, and 4-aminopyridine) enhanced, and known inhibitors of HPVC (the Ca2+ entry blocker nifedipine and hypothermia) inhibited, the almitrine-induced vasoconstriction. These findings lead us to speculate that almitrine also affects the oxygen-sensing limb of the hypoxic pressor response, not simply the effector (contractile apparatus of the vascular muscle cell).

Almitrine↗

Exaggerated renal vasoconstriction during exercise in heart failure patients.

BACKGROUND: During static exercise in normal healthy humans, reflex renal cortical vasoconstriction occurs. Muscle metaboreceptors contribute importantly to this reflex renal vasoconstriction. In patients with heart failure, in whom renal vascular tone is already increased at rest, it is unknown whether there is further reflex renal vasoconstriction during exercise. METHODS AND RESULTS: Thirty-nine heart failure patients (NYHA functional class III and IV) and 38 age-matched control subjects (controls) were studied. Renal blood flow was measured by dynamic positron emission tomography. Graded handgrip exercise and post-handgrip ischemic arrest were used to clarify the reflex mechanisms involved. During sustained handgrip (30% maximum voluntary contraction), peak renal vasoconstriction was significantly increased in heart failure patients compared with controls (70+/-13 versus 42+/-1 U, P=0.02). Renal vasoconstriction returned to baseline in normal humans by 2 to 5 minutes but remained significantly increased in heart failure patients at 2 to 5 minutes and had returned to baseline at 20 minutes. In contrast, during post-handgrip circulatory arrest, which isolates muscle metaboreceptors, peak renal vasoconstriction was not greater in heart failure patients than in normal controls. In fact, the increase in renal vasoconstriction was blunted in heart failure patients compared with controls (20+/-5 versus 30+/-2 U, P=0.05). CONCLUSIONS: During sustained handgrip exercise in heart failure, both the magnitude and duration of reflex renal vasoconstriction are exaggerated in heart failure patients compared with normal healthy humans. The contribution of the muscle metaboreceptors to reflex renal vasoconstriction is blunted in heart failure patients compared with normal controls.

Adult↗

Release of vasodilator prostaglandin, PGI2, from isolated rat lung during vasoconstriction.

Prostaglandins are generated by the lungs and released into the circulation. Since inhibitors of prostaglandin synthesis enhance hypoxic pulmonary vasoconstriction, we wondered whether vasodilator prostacyclin was synthesized by the lungs in response to vasoconstriction. To test this hypothesis, we measured vasoconstriction induced by angiotensin II in isolated rat lungs before and after inhibition of prostaglandin synthetase. We found that sodium meclofenamate enhanced and prostacyclin and its precursor arachidonate abolished pulmonary vasoconstriction. In lungs labeled with 14C-arachidonate, effluent radioactivity increased after angiotensin II-induced vasoconstriction. Hypoxic vasoconstriction, but not hypoxia per se, caused an increase in lung effluent radioactivity. Chromatographic analysis of lung effluent showed that 6-keto-prostaglandin F1 alpha was the major arachidonic acid metabolite released during pulmonary vasoconstriction. We concluded that prostacyclin is produced by the lungs in response to vasoconstriction. Hypoxia per se seems not to be the adequate stimulus for enhanced lung prostacyclin formation. Lung prostacyclin may protect the pulmonary circulation against excessive vasoconstriction.

Angiotensin II↗