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Cardiac, thoracic, and abdominal pump mechanisms in cardiopulmonary resuscitation: studies in an electrical model of the circulation.

To investigate alternative mechanisms generating artificial circulation during cardiopulmonary resuscitation (CPR), an electrical model of the circulation was developed. Heart and blood vessels were modeled as resistive-capacitive networks; pressures in the chest, abdomen, and vascular compartments as voltages; blood flow as electric current; blood inertia as inductance; and the cardiac and venous valves as diodes. External pressurization of thoracic and abdominal vessels, as would occur in CPR, was simulated by application of half-sinusoidal voltage pulses. Three modes of creating artificial circulation were studied: cardiac pump (CP), in which the atria and ventricles of the model were pressurized simultaneously; thoracic pump (TP), in which all intrathoracic elements of the model were pressurized simultaneously; and abdominal pump (AP), in which the abdominal aorta and inferior vena cava of the model were pressurized simultaneously. Flow was greatest with the CP, less with the TP, and least with the AP mechanism. However, the AP could be practically combined with either the CP or TP by interposition of abdominal compressions between chest compressions (IAC-CPR). Our model predicts that this combined method can substantially improve artificial circulation, especially when cardiac compression does not occur and chest compression invokes only the thoracic pump mechanism.

Abdomen↗

Sustained Ca2+ transfer across mitochondria is Essential for mitochondrial Ca2+ buffering, sore-operated Ca2+ entry, and Ca2+ store refilling.

Mitochondria have been found to sequester and release Ca2+ during cell stimulation with inositol 1,4,5-triphosphate-generating agonists, thereby generating subplasmalemmal microdomains of low Ca2+ that sustain activity of capacitative Ca2+ entry (CCE). Procedures that prevent mitochondrial Ca2+ uptake inhibit local Ca2+ buffering and CCE, but it is not clear whether Ca2+ has to transit through or remains trapped in the mitochondria. Thus, we analyzed the contribution of mitochondrial Ca2+ efflux on the ability of mitochondria to buffer subplasmalemmal Ca2+, to maintain CCE, and to facilitate endoplasmic reticulum (ER) refilling in endothelial cells. Upon the addition of histamine, the initial mitochondrial Ca2+ transient, monitored with ratio-metric-pericam-mitochondria, was largely independent of extracellular Ca2+. However, subsequent removal of extracellular Ca2+ produced a reversible decrease in [Ca2+]mito, indicating that Ca2+ was continuously taken up and released by mitochondria, although [Ca2+]mito had returned to basal levels. Accordingly, inhibition of the mitochondrial Na+/Ca2+ exchanger with CGP 37157 increased [Ca2+]mito and abolished the ability of mitochondria to buffer subplasmalemmal Ca2+, resulting in an increased activity of BKCa channels and a decrease in CCE. Hence, CGP 37157 also reversibly inhibited ER refilling during cell stimulation. These effects of CGP 37157 were mimicked if mitochondrial Ca2+ uptake was prevented with oligomycin/antimycin A. Thus, during cell stimulation a continuous Ca2+ flux through mitochondria underlies the ability of mitochondria to generate subplasmalemmal microdomains of low Ca2+, to facilitate CCE, and to relay Ca2+ from the plasma membrane to the ER.

Biological Transport↗

Hemodynamic profile of a new antihypertensive agent D,L-3-[2-(3-t-butylamino-2-hydroxypropoxy)phenyl]-6-hydrazinopyridazine (SK&F 92657).

The properties of a new antihypertensive agent, SK&F 92657, D,L-3-[2-(3-t-butylamino-2-hydroxypropoxy)phenyl]-6-hydrazinopyridazine, have been studied. The compound, given intravenously, subcutaneously, or orally, caused a sustained fall in systemic blood pressure of conscious genetically hypertensive rats, normotensive cats, and renal hypertensive dogs. The fall in blood pressure of genetically hypertensive rats was maintained during 52 days of chronic dosing with no development of tolerance. The hemodynamic effects and mechanism of action of SK&F 92657 were investigated in anesthetized cats and dogs using a variety of techniques. Blood pressure was lowered by a direct vasodilator effect on precapillary blood vessels (arteries, arterioles), particularly in the renal, coronary, and skeletal muscle vasculatures, giving an overall decrease in total peripheral resistance with no significant change in cardiac output. In contrast, SK&F 92657 had no significant effect on capacitance blood vessel (veins, venules) tone or on vascular reactivity to vasoconstrictors and consequently did not cause postural hypotension. The beta-adrenoceptor-blocking actions of the drug prevented reflex increases in heart rate and cardiac output, except in the conscious dog, where vagal control of heart rate was predominant. It was also concluded that SK&F 92657 was not acting by alpha-adrenoceptor blockade, ganglion blockade, or inhibition of angiotensin II responses. A "central" action was unlikely, as SK&F 92657 caused vasodilatation in denervated autoperfused vascular beds.

Animals↗

Modeling error and stability of endothelial cytoskeletal membrane parameters based on modeling transendothelial impedance as resistor and capacitor in series.

Transendothelial impedance across an endothelial monolayer grown on a microelectrode has previously been modeled as a repeating pattern of disks in which the electrical circuit consists of a resistor and capacitor in series. Although this numerical model breaks down barrier function into measurements of cell-cell adhesion, cell-matrix adhesion, and membrane capacitance, such solution parameters can be inaccurate without understanding model stability and error. In this study, we have evaluated modeling stability and error by using a chi(2) evaluation and Levenberg-Marquardt nonlinear least-squares (LM-NLS) method of the real and/or imaginary data in which the experimental measurement is compared with the calculated measurement derived by the model. Modeling stability and error were dependent on current frequency and the type of experimental data modeled. Solution parameters of cell-matrix adhesion were most susceptible to modeling instability. Furthermore, the LM-NLS method displayed frequency-dependent instability of the solution parameters, regardless of whether the real or imaginary data were analyzed. However, the LM-NLS method identified stable and reproducible solution parameters between all types of experimental data when a defined frequency spectrum of the entire data set was selected on the basis of a criterion of minimizing error. The frequency bandwidth that produced stable solution parameters varied greatly among different data types. Thus a numerical model based on characterizing transendothelial impedance as a resistor and capacitor in series and as a repeating pattern of disks is not sufficient to characterize the entire frequency spectrum of experimental transendothelial impedance.

Cells, Cultured↗

[Redistribution of the regional blood flow and blood volume caused by bile duct obstruction].

The main characteristics of systemic hemodynamics and relative changes in the blood content, blood flow and uptake of intravenous 86Rb in several tens of organs, tissues and parts of the body were examined in rat experiments 6 days after ligation of the common bile duct. This made it possible to appraise the resistive, capacitance and capillary constituents of the general peripheral vascular resistance. In this case the fractions of cardiac discharge diminished in a number of the internal organs of the abdomen and increased in muscle and bone tissues of the chest. The signs of extensive venodilation were defined, with these signs being the least remarkable in the liver and lungs. Transcapillary permeability for 86Rb substantially increased in the organs of the splanchic area and in the lungs.

Animals↗

Regulation of Ca2+ entry pathways by both limbs of the phosphoinositide pathway.

All inositol 1,4,5-trisphosphate (InsP3) receptors are biphasically regulated by cytosolic Ca2+. For type 2 InsP3 receptors, InsP3 binding controls whether a stimulatory Ca2+-binding site (exposed after InsP3 binding) or an inhibitory Ca2+-binding site (exposed only in the absence of InsP3) is accessible. Ca2+ therefore inhibits these InsP3 receptors only after InsP3 has dissociated. The capacitative Ca2+ entry (CCE) pathway is activated by depletion of Ca2+ stores, but the local increase in cytosolic [Ca2+] as Ca2+ flows through these channels could cause long-lasting inhibition of InsP3 receptors and so termination of the signal that activates CCE. However, the duration of the openings of CCE channels is matched to the behaviour of InsP3 receptors such that during the brief openings of CCE channels, active InsP3 receptors are unlikely to lose enough InsP3 for them to become inhibited. In A7r5 vascular smooth muscle cells, CCE and a non-capacitative Ca2+ entry (NCCE) pathway, which is activated by arachidonic acid released from diacylglycerol by diacylglycerol lipase, can be distinguished by their different permeation properties and sensitivity to selective blockers. Arachidonic acid also inhibits CCE and so ensures that during receptor activation only the NCCE pathway mediates Ca2+ entry, while CCE contributes only after removal of the agonist.

Animals↗

High and low volume resistance training and vascular function.

The aim was to examine the influence of high and low volume whole-body circuit weight training on forearm reactive hyperemic blood flow, venous capacitance and outflow in young individuals. Thirty-five individuals (age: 22 +/- 1.89 years) participated in an 8 station circuit performed 3 days/week for 5 weeks. The high volume group (n = 15) was encouraged to complete 3 sets/station, whereas the low volume group (n = 20) performed 1 set/station. Before and after training, muscle strength (hand grip, knee extension and bench press) and vascular function (reactive hyperemia, venous capacitance and outflow) were measured. Before training, there were no significant group differences. Training resulted in significant but similar strength gains in both groups (hand grip: 3.89 +/- 4.57 kg (+ 15.59 %), knee extension: 30.62+/- 12.52 kg (+ 35.31 %), bench press: 12.4 +/- 8.81 kg (+ 21.03 %); p < 0.05). Group averages for vascular function did not change following the circuit training. However, individuals with the lowest pretraining vascular measures did have significant increases in reactive hyperemic blood flow (17 %, p = 0.006) and venous outflow (18 %, p = 0.013), independent of group assignment. In conclusion, high and low volume circuit weight training results in significant and similar strength gains. Individuals with evidence of lower pretraining vascular function appear to respond favorably to short-term circuit weight training.

Adult↗

The effects of propranolol and digoxin on the acute vascular responses to frusemide in normal man.

To examine the importance of acute frusemide-induced renin release in the production of the acute peripheral venous and arterial responses to frusemide in man, the effects of two drugs, previously described as inhibitors of acute frusemide-induced renin release, propranolol and digoxin, were examined. Propranolol abolished the acute increases in venous capacitance and blood pressure and attenuated the increases in forearm vascular resistance produced by frusemide. The acute increases in plasma renin activity and plasma aldosterone concentrations were also abolished. Pre-treatment with digoxin had no effect on the acute peripheral vascular responses to frusemide and failed to inhibit the acute increases in plasma renin activity and plasma aldosterone produced by frusemide. The study provides further evidence of a relationship between acute frusemide-induced renin release and the acute peripheral vascular effects of frusemide in man.

Adolescent↗

[Relationship between central and peripheral mechanisms in regulating capacitance vessels].

In acute experiments on cats, responses of the resistance and capacitance vessels of the spleen and hindlimbs to local electric stimulation of the medulla oblongata, of the sympathetic nerves, and pressor reflexes during different pressure of the venous outflow, were studied. No structures were revealed which could selectively affect the capacitance vessels. The bulbar structures affected both the resistance and the capacitance vessels. The reflex responses aof the pre- and post-capillary portions of the vascular bed could be different, the transmural pressure being one of the factors for dilatory responses of the capacitance vessels. The different responses of the capacitance vessels could occur on account of both local and central mechanisms, their participation, however, being unequal.

Animals↗

Haemodynamic dose-response effects of a transdermal nitrate delivery system in acute myocardial infarction with and without left heart failure.

The haemodynamic effects of a transdermal nitroglycerin delivery system (NTG-TTS) were investigated in 67 patients with a recent myocardial infarction. The study objectives were to define the dose-response effects of NTG-TTS and to examine the influence of baseline haemodynamic status on subsequent response. Therefore, patients with normal cardiac function [pulmonary artery occluded pressure (PAOP) less than 18 mm Hg, n = 40] and those with acute heart failure (PAOP greater than 18 mm Hg, n = 27) were studied after one of three regimens (TTS-10, TTS-20, or TTS-40) with the intention of securing 10 evaluable patients in each group. In patients with acute heart failure, all three doses reduced the left ventricular filling pressure with a modest decrease in systemic arterial pressure; cardiac index and heart rate were unaltered. The systemic vascular resistance was significantly reduced from 120 min. In patients with normal left ventricular function, there were small but significant reductions in systemic arterial pressure and vascular resistance with limited increases in heart rate; the cardiac stroke work index was reduced. These results are compatible with actions of NTG-TTS mainly on capacitance vessels; PAOP fell with limited impact on systemic arterial pressure and vascular resistance index. This mode of nitrate delivery resulted in a low incidence of hypotension and side-effects; comparison with other delivery methods in myocardial infarction seems indicated.

Administration, Cutaneous↗

Total vascular pressure-volume relationship in conscious rats with chronic heart failure.

To define the changes in the venous circulation in chronic left ventricular (LV) failure, we measured the mean circulatory filling pressure (MCFP), blood volume, and effective vascular compliance in conscious rats with heart failure, 3 wk after coronary ligation. Rats with myocardial infarction and LV end-diastolic pressure (EDP) greater than 15 mmHg were considered to have chronic heart failure. Rats with chronic heart failure (n = 11) showed an increase (P less than 0.001) in LV EDP to 24 +/- 2 mmHg compared with 6 +/- 1 mmHg in sham-operated (n = 9) and 7 +/- 1 mmHg in normal (n = 6) rats. In the rats with chronic heart failure the MCFP was increased to 9.9 +/- 0.2 mmHg (P less than 0.001) compared with 7.6 +/- 0.2 mmHg in the sham-operated and 7.7 +/- 0.2 mmHg in the normal rats. Effective vascular compliance was determined from MCFP-blood volume curves. In rats with chronic heart failure, the effective vascular compliance was decreased to 2.40 +/- 0.08 ml X mmHg-1 X kg-1 from 3.34 +/- 0.16 in sham-operated rats and 3.35 +/- 0.22 ml X mmHg-1 X kg-1 in normal rats. The blood volume and the unstressed vascular volume of the rats with chronic heart failure were not statistically different from the sham-operated rats. These results suggest that venous capacitance is decreased in chronic heart failure, due to a decrease in effective vascular compliance with no significant change in unstressed vascular volume. Hexamethonium chloride did not alter the effective vascular compliance of the rats with heart failure.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Nitroglycerin therapy in the management of pulmonary hypertensive disorders.

Vasodilator therapy has not been effective in patients with pulmonary hypertension because most of the drugs that have been utilized in treating this disorder do not exert selective effects on the pulmonary circulation. Nonselective agents may cause predominant systemic vasodilation and lead to severe hypotension; they may elicit reflex activation of the sympathetic nervous system and further elevate pulmonary artery pressures; or they may exert depressant effects on right ventricular function and aggravate right-sided heart failure. Nitroglycerin has theoretic appeal as a vasodilator drug in patients with pulmonary hypertension because it exerts a direct effect on the pulmonary circulation in doses that do not affect systemic resistance vessels or the myocardium and do not activate neurohumoral reflexes. Furthermore, the drug uniquely reduces pulmonary artery pressures in addition to pulmonary vascular resistance due to its ability to dilate venous capacitance vessels. Preliminary studies with sublingual and intravenous nitroglycerin in patients with pulmonary hypertension have shown that the drug produces marked hemodynamic improvement and that clinical benefits follow long-term therapy with transcutaneous or oral nitrates. However, treatment may provoke hypotensive events in some patients and systemic hypoxemia in others; still others may fail to benefit because the pulmonary vasculature is unresponsive to any vasodilator stimulus. Further work is needed to define the benefits and risks of nitroglycerin therapy in patients with pulmonary hypertension.

Humans↗

Reflex vascular responses to changes in left ventricular pressure in anaesthetized dogs.

In dogs anaesthetized with chloralose, changes in left ventricular systolic pressure were induced using a preparation in which the pressure changes did not distend the aortic arch and in which left atrial and carotid sinus pressures were held constant. The systemic circulation was perfused at constant flow and drained from the venae cavae at constant pressure. An increase in left ventricular systolic pressure caused reflex dilatation of systemic resistance and capacitance vessels as indicated by decreases in arterial perfusion pressure and venous outflow. Responses were obtained when ventricular systolic pressure changed between 16 and 28 kPa (120-210 mHg). Responses to changes in ventricular pressure were reduced when the carotid sinuses were perfused at high pressures. These results indicate that changes in pressure in the left ventricle result in reflex changes in vascular resistance and capacitance and that responses are obtained to changes in ventricular pressure over a physiological range.

Animals↗

Effect of renin-angiotensin system on limb circulation in normal subjects.

It is not known whether the renin-angiotensin-aldosterone (RAA) system contributes to the regulation of the limb circulation in normal human beings. Accordingly, the effect of the angiotensin converting-enzyme inhibitor, captopril, on forearm vascular resistance (FVR) and forearm venous volume (FVV) was studied in nine normal subjects during states of both sodium loading and sodium depletion. All subjects were studied in the supine position and during 60 degrees head-up tilt. By analysis of variance, the combined intervention of sodium depletion and converting-enzyme inhibition was responsible for a decrease in both FVR and mean blood pressure (BP). In sodium-depleted subjects, converting-enzyme inhibition decreased supine mean BP 7.0% and supine FVR 22.8% but did not change FVV. Neither the fall in BP nor the fall in FVR, however, was significantly augmented by tilting from a supine to upright posture. In sodium-loaded subjects, captopril did not alter BP, FVR, or FVV in recumbent or upright positions. Therefore, the RAA system contributes to the maintenance of blood pressure and limb vascular resistance only in sodium-depleted subjects. Limb venous capacitance in normal subjects is not regulated by the RAA system.

Adult↗

Coronary pressure-flow relationships. Controversial issues and probable implications.

On the basis of the material discussed, our current assessments of the controversial points mentioned at the beginning of this article may be summarized as follows: Pf = 0, the minimum back pressure to coronary flow associated with a measurable conductance, is indeed greater than coronary outflow pressure (and usually left ventricular diastolic pressure, as well). Pf = 0 needs to be taken into account in attempts to determine coronary driving pressure. In maximally vasodilated beds, Pf = 0 derived from diastolic pressure-flow relationships exceeds coronary outflow pressure by at least a few mm Hg. Pf = 0 varies with coronary outflow and/or diastolic ventricular cavity pressure. When left ventricular preload is elevated, Pf = 0 exceeds outflow pressure by increasing amounts. Pf = 0 appears to be systematically higher and pressure-dependent in beds in which vasomotor tone is operative. An improved understanding of the nature of, and basis for, time-dependent changes in resistance and/or Pf = 0 during long diastoles in nonvasodilated beds is needed. The contour of pressure-flow relationships which are free of reactive effects is curvilinear rather than linear. The degree of curvilinearity is substantial and can change with interventions. Curvilinearity is accentuated at lower pressures and may reflect changes in the number of perfused vascular channels as well as the caliber of individual channels. Capacitive effects need to be dealt with quantitatively in studies of pressure-flow relationships. Values of the capacitance which is involved in these effects vary with both pressure and tone. Capacitive flow also depends upon the instantaneous rate of change of pressure, which has not usually been defined in published studies. Although intramyocardial capacitance is large and plays an important role in systolic-diastolic flow interactions, a controlling role in diastolic coronary arterial pressure-flow relationships has not been established experimentally. In vasodilated beds, in-flow remains remarkably constant for several seconds after the brief transient associated with a step-change in the level of constant pressure perfusion during a long diastole. Calculations of coronary vascular resistance (by whatever method) remain of limited value, particularly when changes in response to an intervention are modest. Because of the curvilinear diastolic pressure-flow relationship, resistance is pressure-dependent and, at any given pressure, is probably best defined by establishing the slope of a diastolic pressure-flow curve which is free of reactive effects.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Hyperhomocysteinemia-induced vascular damage in the minipig. Captopril-hydrochlorothiazide combination prevents elastic alterations.

BACKGROUND: Previous attempts in animals failed to reproduce the metabolic, pathological, and clinical situations encountered in homocystinuric patients. Minipigs on a methionine-rich caseinate-based diet, however, have a special long-lasting postprandial plasma accumulation of methionine, the metabolic precursor of homocysteine. We hypothesized that these minipigs develop hyperhomocysteinemia in the long term. Angiotensin-converting enzyme (ACE) inhibition prevents atherogenic alteration of viscoelastic functions of arterial pulsatility and compliance and reduces fragmentation of vascular elastic laminae in the minipigs. We consequently analyzed the therapeutic effects of the captopril-hydrochlorothiazide combination against the typical hyperhomocysteinemia-induced alterations of vascular elastic features. METHODS AND RESULTS: Thirty-two Götingen minipigs were randomized as control diet-fed (C), captopril (25 mg/d)/hydrochlorothiazide (12.5 mg/d)-treated C (C+Cp), caseinate-based diet-fed (M), and M+Cp minipigs. After 4 months, M and M+Cp animals had hyperhomocysteinemia (9.64 +/- 4.10 mumol/L, n = 16) compared with C and C+Cp minipigs (5.67 +/- 1.14 mumol/L, n = 16) (P < .05). In the M group, one minipig died from thromboembolic syndrome, and one had pulmonary infarction. M minipigs presented with systolic-diastolic hypertension and extended reactive hyperemia, as well as a mega-artery syndrome in hyperpulsatile arteries due to expanded volumetric compliance, curtailed stiffness, strengthened vascular tension, and prevalence of the viscous wall component. In their arterial tree, hypertrophic endothelial cells covered a thickened subendothelial space. Major elastic lamina dislocations were observed, as well as hypertrophy and reorientation of smooth muscle cells, resulting in the settlement of spreading pathways for medial cells between muscular laminae. In C+Cp and M+Cp animals, serum and lung ACE activity were inhibited by 74% and 40%, respectively. Although the treatment with captopril-hydrochlorothiazide did not modify the hyperhomocysteinemia per se, the therapeutic effects of the drug combination are made evident by the absence of death and ischemic diseases in the M+Cp group. Specifically, the drug combination prevented diastolic hypertension and improved aortic blood flow by normalizing peripheral resistances, abolished the vascular hyperpulsatile characters, and restrained the fragmentation and the splitting of elastic fibers in capacitance arteries. In contrast, the drugs slightly prevented systolic and mean hypertension. In addition, the aortic stiffness and stress response remained altered and vascular smooth muscle cell hypertrophy was still observed in the M+Cp group. CONCLUSIONS: In minipigs, the present methionine-rich caseinate-based diet induced hyperhomocysteinemia, which reproduces the metabolic and histopathological situation found in homocysteic patients. Our results show that hyperhomocysteinemia-induced vascular alterations favor the viscous component of the wall rheology to the detriment of the elastic component. Furthermore, they extend to hyperhomocysteinemia the therapeutic effects characteristically shared by ACE inhibitors in association with hydrochlorothiazide against the atherogenic activation of elastinolytic processes.

Animals↗

Why does pulmonary venous pressure rise after onset of LV dysfunction: a theoretical analysis.

One of the most important consequences of acute left ventricular dysfunction (LVD) is pulmonary edema resulting from a rise in pulmonary venous pressure (PVP). It is generally believed that the PVP rise is a direct hemodynamic consequence of LVD. While this paradigm seems plausible, especially if the LV is viewed as a sump pump, there is no specific evidence to support this simple explanation. A theoretical analysis was performed to assess the hemodynamic mechanisms responsible for the dramatic rise in PVP after acute LVD. The ventricles were modeled as time-varying elastances; pulmonary and systemic vascular systems were modeled as series of resistive and capacitive elements. In response to a 50% decrease in LV contractile strength [end-systolic elastance (Ees)], cardiac output (CO) and mean arterial pressure (MAP) dropped substantially, while PVP increased minimally from its baseline of 12 to approximately 15 mmHg. With LV Ees set at 50% of normal, the effects of sympathetic activation were tested. When heart rate and total peripheral resistance were increased, CO and MAP improved, yet PVP still did not rise. The only intervention that caused a substantial increase in PVP was to simulate the decrease in unstressed volume (VU) of the venous system known to occur with sympathetic activation. When VU was decreased by about 15-20% (comparable to experimentally observed shifts with acute heart failure), PVP increased above 25 mmHg. The effects of pericardial constraints were investigated, and the results suggest a major role of this organ in determining the overall hemodynamic response to acute LVD, sympathetic activation, and explaining the responses to therapy. Thus this analysis suggests that elevations of PVP do not occur simply as a direct hemodynamic consequence of acute LVD. Rather, changes in PVP may be dictated more by sympathetic control on venous capacity. If confirmed, recognition of this as a primary mechanism may prove important in directing development of new therapies and in understanding the mechanisms of disease progression in heart failure.

Animals↗

Effect of isoflurane on in situ vascular smooth muscle transmembrane potential in spontaneous hypertension.

BACKGROUND: Administration of general anesthetics to patients with chronic hypertension often causes hemodynamic instability that has been attributed in part to a poorly understood increased loss of control of peripheral vascular smooth muscle tone. The purpose of the current study was to determine if such an increased loss occurs in the spontaneously hypertensive (SH) rat neurogenic model of chronic hypertension, as reflected by a greater volatile anesthetic-induced in situ vascular smooth muscle hyperpolarization compared with normotensive Wistar-Kyoto (WKY) rat controls. METHODS: Vascular smooth muscle transmembrane potentials (E(m)s) were measured in situ using glass microelectrodes in externalized small mesenteric resistance- and capacitance-regulating blood vessels in 10- to 12-week-old SH and WKY rats before, during and after administration of 1 minimum alveolar concentration levels (1.5%) of inhaled or 0.60 mM superfused isoflurane. Vascular smooth muscle E(m)s were also measured in vessels after local sympathetic denervation with superfused 6-hydroxydopamine. RESULTS: Local sympathetic denervation caused a significant hyperpolarization of arterial and venous vascular smooth muscle in SH but not WKY rats. Hyperpolarization induced by either inhaled or superfused isoflurane was significantly greater in innervated than in denervated arterial and venous vascular smooth muscle, particularly in SH rats. In addition, for innervated (but not denervated) arterial and venous vascular smooth muscle, hyperpolarization induced by inhaled (but not superfused) isoflurane was significantly greater in SH than in WKY rats. CONCLUSIONS: In the neurogenic SH rat model of human hypertension, a primary mechanism underlying elevated isoflurane-induced vascular smooth muscle hyperpolarization (and reduced vascular smooth muscle tone) in both resistance- and capacitance-regulating blood vessels is a central neural inhibition of excitatory sympathetic input. Peripheral neural and nonneurally mediated hyperpolarization by isoflurane is similar in SH and WKY rat vascular smooth muscles.

Anesthetics, Inhalation↗