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K R Walley

Publications and source records attributed to K R Walley.

At least 19 recordsLinked to original sources

Platelet-activating factor antagonism improves ventricular contractility in endotoxemia.

OBJECTIVES: Endotoxin stimulates platelet-activating factor production and also causes a decrease in myocardial contractility within a few hours in animal models of sepsis. Platelet-activating factor by itself decreases left ventricular contractility. We investigated whether platelet-activating factor contributes substantially to the decrease in left ventricular contractility seen in sepsis. DESIGN: Prospective, randomized, controlled animal study. SETTING: University research laboratory. SUBJECTS: Twenty-two juvenile, cross-bred pigs. INTERVENTIONS: Anesthetized pigs were pretreated with a platelet-activating factor receptor antagonist (L-659,989) or vehicle (control), and then treated with endotoxin or saline (control). Hemodynamics and left ventricular pressures (Millar catheter) and volumes (conductance catheter) were measured. Left ventricular contractility was assessed using the slope, or maximum elastance (Emax), of the end-systolic pressure-volume relationship. MEASUREMENTS AND MAIN RESULTS: In the control/endotoxin group, 4 hrs after endotoxin administration, Emax had decreased by 41 +/- 4% (p < .05) and mean arterial pressure had decreased by 32 +/- 3% (p < .05). In the L-659,989/endotoxin group, the decreases in Emax (26 +/- 2%, p < .05) and mean arterial pressure (16 +/- 7%) were significantly attenuated compared with the control/endotoxin group (p < .05). CONCLUSIONS: We conclude that platelet-activating factor plays a modest but statistically significant role in the early decrease in left ventricular contractility after endotoxin administration. Inhibition of platelet-activating factor during sepsis might be beneficial for left ventricular mechanics and hemodynamics.

Animals

Small hemodynamic effect of typical rapid volume infusions in critically ill patients.

OBJECTIVES: To determine what volumes are commonly used for rapid volume infusions in critically ill patients admitted to the intensive care unit (ICU) for > 12 hrs; and to determine the effectiveness of a typical rapid volume infusion in producing hemodynamic change and increasing left ventricular end-diastolic volume. DESIGN: A prospective survey of clinical practice (part 1) and a prospective clinical investigation (part 2). SETTING: Two hospital ICUs (11 and six beds) of which one is university affiliated. PATIENTS: Critically ill patients admitted to the ICU for > 12 hrs. INTERVENTIONS: Infusion of 500 mL of normal saline over 5 to 10 mins. MEASUREMENTS AND MAIN RESULTS: For 1 month, we recorded the volume and composition of all volume infusions given as a rapid bolus in patients admitted to the ICU for > 12 hrs. We then measured the effected the median rapid volume infusion in a subset of 13 patients by measuring hemodynamics (using arterial and pulmonary artery flotation catheters) and left ventricular end-diastolic area (using transgastric short-axis views from transesophageal echocardiograms). During 470 patient days, 159 rapid volume infusions were administered. The average rapid volume infusion administered was 390 +/- 160 mL (median 500; interquartile range 250 to 500). Crystalloid solutions were used for two thirds of the rapid volume infusions and colloid solutions were used for one third of the rapid volume infusions. The rapid volume infusion of 500 mL of saline did not significantly increase mean arterial pressure (78.0 +/- 11.9 to 79.3 +/- 14.6 mm Hg), cardiac index (4.3 +/- 1.7 to 4.6 +/- 1.8 L/min/m2), right atrial pressure (11.1 +/- 3.8 to 12.4 +/- 3.3 mm Hg), left ventricular end-diastolic area (8.6 +/- 1.7 to 9.1 +/- 1.8 cm2/m2), or left ventricular end-systolic area (3.5 +/- 1.5 to 3.6 +/- 1.5 cm2/m2). Pulmonary artery occlusion pressure increased slightly but significantly from 12.9 +/- 3.4 to 14.7 +/- 3.3 mm Hg (p < .05). CONCLUSIONS: After patients are admitted to the ICU for > 12 hrs, rapid volume infusions are common therapeutic interventions but the rapid volume infusions are typically small. The effect of a typical rapid volume infusion on hemodynamics and left ventricular areas in these patients is surprisingly small.

Adult

Myocardial anaerobic metabolism occurs at a critical coronary venous PO2 in pigs.

We tested the hypothesis that the onset of myocardial anaerobic metabolism is fundamentally different from the whole body and other organs, where the onset of anaerobic metabolism occurs at a critical oxygen extraction ratio--not at a critical venous PO2. We measured oxygen saturation and PO2 of arterial and coronary venous blood at the onset of global myocardial anaerobic metabolism during progressive hypoxic hypoxia (n = 7) compared with carbon monoxide hypoxia (n = 7), which left-shifted the oxygen-hemoglobin dissociation curve. The onset of global myocardial anaerobic metabolism was defined by decreased myocardial lactate consumption and left ventricular contractility. Coronary venous PO2 was no different during hypoxic hypoxia and carbon monoxide hypoxia at equivalent arterial oxygen saturations, particularly at the onset of myocardial anaerobic metabolism (PO2 17.0 +/- 1.7 torr versus 15.9 +/- 2.2 torr, p = NS). However, the myocardial oxygen extraction ratio was significantly greater during hypoxic hypoxia than during carbon monoxide hypoxia at the onset of myocardial anaerobic metabolism (0.88 +/- 0.02 versus 0.65 +/- 0.04, p < 0.01). Thus, in contrast to the whole body where the onset of anaerobic metabolism occurs at a critical oxygen extraction ratio, the onset of myocardial anaerobic metabolism occurs at a critical coronary venous PO2.

Anaerobiosis

Leukocytes and decreased left-ventricular contractility during endotoxemia in rabbits.

We hypothesized that leukocytes contribute to decreased myocardial contractility following endotoxin infusion. To test this hypothesis, we administered endotoxin (1 mg/kg intravenously) to intact, anesthetized rabbits whose arterial blood perfused two isolated hearts at a constant pressure (75 mm Hg). One heart was perfused with blood passed through a leukocyte filter, whereas the other received unfiltered blood. Contractility of both hearts was measured every 30 min for 6 h, using the slope of the end-systolic pressure-volume relationship (Emax) and the maximum rate of change of intraventricular pressure (dP/dt(max)). In the unfiltered hearts at 6 h, Emax decreased to 81 +/- 6% (mean +/- SEM) of baseline (p < 0.05). In the hearts perfused with leukocyte-filtered blood there was no change in Emax. Similarly, dP/dt(max) decreased 74 +/- 9% of baseline in the hearts receiving unfiltered blood (p < 0.05) but did not decrease in the hearts receiving leukocyte-filtered blood. The leukocyte filter significantly reduced the number of neutrophils in perfusing blood (p < 0.01), decreased the number of neutrophils in the heart by 77% (p < 0.01), and decreased myocardial morphometric changes (p < 0.05). A 55 +/- 18% reduction in neutrophil L-selectin expression after endotoxin infusion (p < 0.01) suggests that the neutrophils were significantly activated. We conclude that leukocytes, notably activated neutrophils, may contribute to decreased myocardial contractility during septic shock.

Animals

Comparison of transesophageal echocardiographic, fick, and thermodilution cardiac output in critically ill patients.

PURPOSE: Recent observations have highlighted errors in the thermodilution technique of measuring cardiac output. Thus, cardiac output measurements using transesophageal echocardiography and the Fick method were compared with simultaneous thermodilution measurements. METHODS: In 13 mechanically ventilated critically ill patients, cardiac output was determined simultaneously using (1) transesophageal echocardiography (COTEE, (2) the Fick method (COFICK, and (3) thermodilution (COTD immediately before and after a rapid infusion of 500 mL of saline. Left ventricular end-diastolic and end-systolic areas were measured using the transesophageal echocardiographic transgastric short axis view, and COTEE was calculated from the corresponding volumes. Absolute cardiac output values and the changes from before to after saline infusion (delta CO) were compared using analysis of variance, linear regression, and the Bland and Altman method. RESULTS: There were no significant differences between COTEE (8.0 +/- 3.4), COFICK (8.4 +/- 3.3), and COTD (8.3 +/- 3.0) or between delta COTEE, delta COFICK, and delta COTD using analysis of variance. However, correlations between COTEE and COTD (r2 = 0.46; P < .00001), COFICK and COTD (r2 = 0.46; P < .0001), and COTEE and COFICK (r2 = 0.42; P < .0001) were only moderately good. Using the method of Bland and Altman, the mean difference (+/-2 standard deviations) between COTEE and COTD was 0.3 +/- 4.3 L/min, between COFICK and COTD was -1.0 +/- 3.8 L/min, and between COTEE and COFICK was 0.6 +/- 5.6 L/min, whereas the difference between delta COTEE and delta COTD was 0% +/- 26%, between delta COFICK and delta COTD was 9% +/- 46%, and between delta COTEE and delta COFICK was 8% +/- 39%. CONCLUSIONS: There are substantial differences in cardiac output as measured by these three methods, best demonstrated using the method of Bland and Altman. The variability of cardiac output and its derivatives (eg, oxygen delivery) should be borne in mind when making clinical decisions on individual patients.

Analysis of Variance

Decreased left ventricular contractility during porcine endotoxemia is not prevented by ibuprofen.

OBJECTIVE: We investigated whether ibuprofen could prevent early decrease in left ventricular contractility that occurs during porcine endotoxemia. DESIGN: Prospective, randomized, controlled animal study. SETTING: University research laboratory. SUBJECTS: Adolescent crossbred pigs (n = 28). INTERVENTIONS: Anesthetized pigs were instrumented to measure hemodynamics and left ventricular pressures (using a Millar catheter) and volumes (using a conductance catheter). Pigs were then treated in four groups, according to pretreatment using ibuprofen (15 mg/kg) or saline and subsequent treatment using endotoxin (0111:B4, 50 microg/kg) or saline. MEASUREMENTS AND MAIN RESULTS: Measurements of hemodynamics and left ventricular pressures and volumes were repeated after pretreatment with ibuprofen (or saline in controls), and at hourly intervals for 4 hrs after the start of endotoxin or control saline infusions. Left ventricular contractility was primarily assessed using the slope of the end-systolic pressure-volume relationship. Data were analyzed, using a repeated-measures analysis of variance. The slope of the end-systolic pressure-volume relationship was decreased at 4 hrs by 41 +/- 9% in the saline/endotoxin group (p < .05) and by 36 +/- 14% in the ibuprofen/endotoxin group (p < .05), so that ibuprofen pretreatment had no significant effect on the decrease in left ventricular contractility. Mean arterial pressure decreased in the saline/endotoxin group by 23 +/- 12% at 1 hr (p < .05) and by 35 +/- 12% (p < .05) at 4 hrs. Ibuprofen significantly reduced the decrease in mean arterial pressure (2 +/- 6% increased at 1 hr, and 17 +/- 12% decreased at 4 hrs, both p<.05 compared with saline/endotoxin). Cardiac output increased by 25% (p < .05) in the first hour, but then decreased to be slightly (NS) below baseline at 4 hrs in both endotoxin groups. Mean pulmonary arterial pressure was increased in the saline/endotoxin group by 154 +/- 52% (p < .05) at 30 mins and by 118 +/- 40% (p < .05) at 4 hrs. Ibuprofen prevented the very acute increase in pulmonary arterial pressure (increased by 11 +/- 33% at 30 mins, p < .05 compared with saline/endotoxin) and significantly reduced the pulmonary hypertension at 4 hrs (increased by 70 +/- 25%, p < .05 compared with both baseline and saline/endotoxin). CONCLUSIONS: We conclude that products of the cyclooxygenase pathway do not play a major role in the early decrease in left ventricular contractility after endotoxin. However, ibuprofen may have a role in reducing the other cardiovascular effects of sepsis.

Analysis of Variance

Balance of inflammatory cytokines related to severity and mortality of murine sepsis.

We tested the hypothesis that, during sepsis, the balance of pro- and anti-inflammatory cytokines is related to severity and survival. Cecal ligation and puncture (CLP) with a large (18-gauge)-, intermediate (21-gauge)-, or small (26-gauge)-diameter needle, or sham laparotomy, was performed on outbred CD-1 mice. Concentrations of tumor necrosis factor alpha (TNF-alpha), interleukin-6 (IL-6), and the anti-inflammatory cytokine IL-10 were measured (by enzyme-linked immunosorbent assay) in serum, peritoneal lavage fluid, and liver and lung samples at 4, 8, 24, 48, and 96 h. As the diameter of the CLP needle decreased, the mortality rate decreased (at 48 h: large, 80%; intermediate, 40%; small, 20%; P < 0.05), the TNF-alpha and IL-6 concentrations decreased, and the time-to-peak TNF-alpha expression increased. In contrast, IL-10 concentration increased compared with baseline (serum at 24 h: large, 2.3-fold +/- 1.6-fold; intermediate, 2.0-fold +/- 0.5-fold; small, 49.9-fold +/- 8.3-fold; P < 0.05). Administration of IL-10 (5 microg, intraperitoneal) prior to CLP decreased mortality (P < 0.001). Administration of polyclonal anti-IL-10 serum prior to CLP (0.5 ml intraperitoneal) had the opposite effect and increased mortality (P < 0.001) and TNF-alpha, IL-6, and TNF-alpha mRNA expression compared with controls. Thus, severe sepsis is associated with a largely unopposed inflammatory response, and a largely unopposed inflammatory response (with anti-IL-10) results in severe sepsis and death. Less severe sepsis is associated with greater anti-inflammatory mediator expression, and greater anti-inflammatory mediator expression (with IL-10) results in less severe sepsis. Thus, the balance of inflammatory mediators is related to the severity and mortality of murine sepsis.

Animals

Myocardial morphometric changes related to decreased contractility after endotoxin.

Decreased ventricular contractility during sepsis lasts much longer than the half-lives of inflammatory mediators that have been suggested to be myocardial depressant factors. Our hypothesis is that blood-borne factors may also cause myocardial structural changes, including damage and death of myocytes, associated with decreased ventricular contractility. We tested this hypothesis in an isolated rabbit heart perfused by a support rabbit. Support rabbits received 1 mg/kg endotoxin i.v. over 30 min (endotoxin group, n = 7) or vehicle (control group, n = 6). The slope of the end-systolic pressure-volume relationship, Emax, was used to measure contractility of the isolated heart. Five hours after endotoxin infusion, Emax decreased by 17 +/- 7% (P < 0.03) compared with 0 +/- 2% in the control group. Quantitative morphometric analysis of isolated hearts from the endotoxin group demonstrated an increased volume fraction of myocardial capillaries occupied by leukocytes (15.7 +/- 3.5 vs. 3.0 +/- 0.7% in the control group, P < 0.05), structurally abnormal myocytes (7.6 +/- 3.6 vs. 0.8 +/- 0.4%, P < 0.05), and interstitial edema (23.2 +/- 5.2 vs. 14.3 +/- 2.1%, P < 0.05). We conclude that blood-borne factors cause myocardial structural changes that may contribute to decreased ventricular contractility and may explain the prolonged decrease in ventricular contractility during sepsis.

Animals

Nitric oxide synthase inhibition partially prevents decreased LV contractility during endotoxemia.

Decreased contractility of myocytes after cytokine exposure can be prevented by nitric oxide synthase inhibition. Whether this is true in an intact animal model of sepsis is unknown. Anesthetized pigs were pretreated with saline or a nitric oxide synthase inhibitor, N omega-nitro-L-arginine, and then treated with saline or endotoxin. We measured hemodynamics and left ventricular pressures (Millar catheter) and volumes (conductance catheter). Left ventricular contractility was assessed using the slope (E(max)) of the end-systolic pressure-volume relationship. Four hours after endotoxin infusion, E(max) had decreased by 44 +/- 5% (P < 0.05) and mean arterial pressure had decreased by 30 +/- 10% (P < 0.05). Pretreatment with N omega-nitro-L-arginine significantly reduced the decrease in E(max) to 28 +/- 3% (P < 0.05) and prevented the decrease in mean arterial pressure. However, it also raised pulmonary arterial pressure. We conclude that nitric oxide contributes to the early decrease in left ventricular contractility after endotoxin in the intact animal. However, the vascular effects of nitric oxide synthase inhibition increase right and left ventricular afterloads, which were detrimental to cardiac function.

Animals

Heterogeneity of oxygen delivery impairs oxygen extraction by peripheral tissues: theory.

The hypothesis that the distribution of oxygen demand in relation to oxygen supply (dO2/qO2) effects oxygen extraction in peripheral tissues was tested. By using a simple theoretical model, realistic biphasic oxygen consumption-delivery relationships were predicted from dO2/qO2 distributions. Increasing width (relative dispersion) of the dO2/qO2 distribution, indicating mismatch between oxygen demand and supply, nonlinearly decreased the critical oxygen extraction ratio (calculated by using dual-line regression). Skewed dO2/qO2 distributions had a lesser effect. Incomplete oxygen uptake, due to diffusion limitation or other causes of physiological arteriovenous shunt, linearly decreased the critical oxygen extraction ratio. Approximate dO2/qO2 distributions were then estimated from previously reported capillary transit-time distributions. Critical oxygen extraction ratios predicted from these estimated dO2/qO2 distributions match reported values. This theoretical approach also predicts the decrease in the critical oxygen extraction ratio in porcine gut after endotoxin infusion in the companion paper (M. F. Humer, P. T. Phang, B. P. Friesen, M. F. Allard, C. M. Goddard, and K. R. Walley. J. Appl. Physiol. 81: 895-904, 1996). Much as pulmonary ventilation-perfusion relationships account for pulmonary gas exchange, dO2/qO2 distributions quantitatively account for measured tissue oxygen extraction and predict novel features of the relationship between heterogeneity and oxygen extraction.

Animals

Heterogeneity of gut capillary transit times and impaired gut oxygen extraction in endotoxemic pigs.

We tested the hypothesis that endotoxin increases the heterogeneity of gut capillary transit times and impairs oxygen extraction. The gut critical oxygen extraction ratio was determined by measuring multiple oxygen delivery-consumption points during progressive phlebotomy in eight control and eight endotoxin-infused anesthetized pigs. In multiple 1- to 2-g samples of small bowel, we measured blood volume (radiolabeled red blood cells) and flow (radiolabeled 15-microns microspheres) before and after critical oxygen extraction. Red blood cell transit time (= volume/flow) multiplied by morphologically determined capillary/total blood volume gave capillary transit time. During hemorrhage, capillary/total blood volume did not change in the endotoxin group (0.5 +/- 4.5%) but increased in the control group (17.6 +/- 2.5%; P < 0.05) due to a decrease in total gut blood volume. Flow decreased significantly in the endotoxin group (36 +/- 10%; P < 0.05) but not in the control group (12 +/- 10%). Capillary transit-time heterogeneity increased in the endotoxin group (12.3 +/- 4.9%) compared with the control group (-5.8 +/- 7.4%; P < 0.05), predicting a critical oxygen extraction ratio 0.14 lower in the endotoxin group than in the control group (K. R. Walley. J. Appl. Physiol. 81: 885-894, 1996). This matches the measured difference (endotoxin group, 0.60 +/- 0.04; control group, 0.74 +/- 0.03; P < 0.05). Increased heterogeneity of capillary transit times may be an important cause of impaired oxygen extraction.

Animals

Different effects of histamine H1 and H2 stimulation on left ventricular contractility in pigs.

Histamine decreases ventricular contractility in some settings but increases it in others. To better understand these apparently discrepant results, we measured hemodynamics and left ventricular pressure (Millar catheter) and volume (ultrasonic crystals) in atrially paced, alpha- and beta-antagonist-treated pigs. Histamine was infused (0.5-10 micrograms.kg-1.min-1) before and after H2-antagonist (ranitidine) pretreatment. Changes in left ventricular contractile function were measured as shift of the end-systolic pressure-volume relationship (delta ESPVR) at a pressure of 100 mmHg. We found that at low doses (0.5 and 1 micrograms.kg-1.min-1), histamine significantly decreased delta ESPVR (-1.1 +/- 1.4 ml, P < 0.05) after H2-antagonist pretreatment. At doses above 1 micrograms.kg-1.min-1, histamine increased contractility in a dose-response fashion [maximum effect: 5.1 +/- 3.3 ml, dose resulting in 50% effect (ED50): 0.75 +/- 1.79 micrograms.kg-1.min-1] that was best described using a Hill coefficient of 2. Ranitidine increased the ED50 by approximately one order of magnitude (0.75 +/- 1.79 to 9.50 +/- 2.60 micrograms.kg-1.min-1, P < 0.05). We conclude that in vivo, at higher doses, histamine increases left ventricular contractility via H2-receptor stimulation, whereas at low doses histamine decreases left ventricular contractility, probably via H1-receptor stimulation.

Animals

Prolonged leukocyte transit time in coronary microcirculation of endotoxemic pigs.

We quantified the timing and extent of leukocyte retention by the coronary microcirculation in a pig model of hyperdynamic sepsis in three ways. First, the transmyocardial leukocyte gradient was determined as coronary blood flow (calibrated ultrasonic flow probe) multiplied by the difference between leukocyte counts in the aorta and coronary sinus. Measurements were taken at 1-min intervals for 30 min and then at 3-min intervals for 45 min in anesthetized pigs exposed to either endotoxin (50 micrograms/kg iv over 30 min) (n = 7) or vehicle (n = 7). Second, postmortem morphometric analysis was used to quantitate the number and location of retained myocardial leukocytes. Finally, myocardial capillary transit time of leukocytes was calculated from the above measures. In the endotoxin group 2.1 +/- 0.8 x 10(9) leukocytes/100 g wet wt were retained in the coronary circulation, primarily in capillaries. This resulted in 111 +/- 37 (P < 0.05) times as many leukocytes in the coronary microcirculation than predicted from the arterial leukocyte concentration. Myocardial capillary transit time of leukocytes was prolonged to 39.1 +/- 20.6 s (P < 0.05) in the endotoxin group versus 5.0 +/- 1.4 s in the control group. We conclude that, after endotoxin infusion in a pig model of hyperdynamic sepsis, myocardial leukocyte transit is slowed, leading to the retention of large numbers of leukocytes in the coronary microcirculation.

Animals

Myocardial oxygen extraction ratio is decreased during endotoxemia in pigs.

Why the myocardial oxygen extraction ratio (ERm) is decreased during septic shock in humans is unknown. Therefore, we calculated ERm in 15 anesthetized pigs by measuring arterial and coronary venous oxygen content. We measured myocardial lactate flux, myocardial contractility, and global myocardial blood flow and its distribution. After baseline measurements, animals received either saline (n = 6) or 50 micrograms/kg of endotoxin (n = 9). Measurements were repeated for 4 h. After endotoxin, ERm decreased from 67 +/- 12% at baseline to 36 +/- 10% (P < 0.01) at 1 h and 54 +/- 10% (P < 0.05) at 4 h, associated with an increased myocardial blood flow that was heterogeneous. Neither myocardial oxygen nor lactate consumption decreased in the endotoxin group, and changes in left ventricular contractility were not correlated with changes in ERm. We conclude that the decrease in ERm after endotoxin infusion is due to both increased blood flow and mismatching between myocardial oxygen delivery and demand. Impaired myocardial oxygen extraction capacity during sepsis did not cause global myocardial tissue hypoxia.

Animals

Anti-tumor necrosis factor-alpha prevents decreased ventricular contractility in endotoxemic pigs.

It is not known how the decrease in left ventricular contractility following endotoxin exposure is mediated, or whether this decrease is preventable by antibodies to tumor necrosis factor-alpha (TNF alpha). Four groups of six anesthetized and instrumented pigs were pretreated with ovine polyclonal antibody to human TNF alpha (anti-TNF alpha), nonspecific IgG, or saline, and then treated with either endotoxin or saline. We measured hemodynamics and left ventricular pressures (Millar catheter) and volumes (conductance catheter). Left ventricular contractility was assessed using the slope (Emax) of the end-systolic pressure-volume relationship. Four hours after the start of endotoxin infusion in the nonspecific IgG pretreated group, Emax had decreased by 44 +/- 6% (p < 0.05), mean arterial pressure had decreased from 115 +/- 7 mm Hg to 70 +/- 10 mm Hg (p < 0.05), and cardiac output was rapidly decreasing after an initial increase (p < 0.05). Anti-TNF alpha significantly reduced the decrease in Emax (11 +/- 9%, p < 0.05), and the systemic hypotension (108 +/- 15 mm Hg to 99 +/- 6 mm Hg, p < 0.05), at 4 h, and prevented the late decrease in cardiac output. This suggests that TNF alpha is an important early mediator in sepsis leading to decreased left ventricular contractility.

Animals

Amrinone increases ventricular contractility and diastolic compliance in endotoxemia.

Systolic and diastolic dysfunction occur during human septic shock, and sensitivity to beta-adrenergic agents is reduced. We sought to determine whether amrinone, an inotropic agent independent of beta-receptors, increases left-ventricular contractility or diastolic compliance after endotoxin infusion. We measured left-ventricular volume (using a conductance catheter) and pressure (using a Millar catheter) before and after administering amrinone (4.5 mg/kg i.v., then 10 micrograms/kg/min) to six endotoxemic and seven control pigs. The slope of the end-systolic pressure-volume relationship, Ees, was used as the primary measure of contractility. Diastolic stiffness was characterized using stiffness parameters taken from pressure-volume relationships (k) and from pressure-volume strain relationships. Amrinone increased Ees from a median of 10.4 mm Hg/ml (interquartile range, 7.2 to 12.3) to 16.4 (13.7 to 18.6) (p < 0.05) in the endotoxin group (p < 0.05). Amrinone decreased diastolic stiffness (k) in the endotoxin group by 35 +/- 18% (p < 0.05). Amrinone did not significantly change Ees or k in the control group. Mean arterial pressure decreased after endotoxin infusion from 117 +/- 23 mm Hg to 76.5 +/- 14.9 mm Hg (p < 0.05), and decreased further after amrinone to 62.0 +/- 14.8 mm Hg (p < 0.05). We conclude that in this model of sepsis, amrinone may beneficially increase systolic contractility and diastolic compliance, but may dangerously decrease an already low mean arterial pressure.

Amrinone

Carbon dioxide absorption is not linearly related to intraperitoneal carbon dioxide insufflation pressure in pigs.

BACKGROUND: Carbon dioxide absorption into the blood during laparoscopic surgery using intraperitoneal carbon dioxide insufflation may lead to respiratory acidosis, increased ventilation requirements, and possible serious cardiovascular compromise. The relationship between increased carbon dioxide excretion (VCO2) and intraperitoneal carbon dioxide insufflation pressure has not been well defined. METHODS: In 12 anesthesized pigs instrumented for laparoscopic surgery, intraperitoneal carbon dioxide (n = 6) or helium (n = 6) insufflation pressure was increased in steps, and VCO2 (metabolic cart), dead space, and hemodynamics were measured during constant minute ventilation. RESULTS: VCO2 increases rapidly as intraperitoneal insufflation pressure increases from 0 to 10 mmHg; but from 10 to 25 mmHg, VCO2 does not increase much further. PaCO2 increases continuously as intraperitoneal insufflation pressure increases from 0 to 25 mmHg. Hemodynamic parameters remained stable. CONCLUSIONS: By considering Fick's law of diffusion, the initial increase in VCO2 is likely accounted for by increasing peritoneal surface area exposed during insufflation. The continued increase in PaCO2 without a corresponding increase in VCO2 is accounted for by increasing respiratory dead space.

Absorption

No differences in hemodynamics, ventricular function, and oxygen delivery in septic and nonseptic patients with the adult respiratory distress syndrome.

OBJECTIVE: To determine whether there are differences in hemodynamics, ventricular function, oxygen delivery, and oxygen consumption between septic and nonseptic patients who have the adult respiratory distress syndrome (ARDS). DESIGN: Cohort analytic study. SETTING: Tertiary care medical and surgical intensive care unit, university hospital. PATIENTS: Eighteen septic (survivors, n = 8; nonsurvivors, n = 10) and 14 nonseptic (survivors, n = 7; nonsurvivors, n = 7) patients studied within 24 hrs of the diagnosis of ARDS. INTERVENTIONS: Simultaneous hemodynamic, radionuclide cineangiographic, and oxygen delivery and consumption measurements. MEASUREMENTS AND MAIN RESULTS: Cardiac index, right and left ventricular ejection fractions, end-diastolic volume indices, oxygen delivery, and oxygen consumption were measured. There were no differences in mean systemic and pulmonary arterial pressures, cardiac index, systemic vascular resistance, right and left ventricular ejection fractions, end-diastolic volumes, and oxygen delivery and consumption between septic and nonseptic patients. CONCLUSIONS: Early in the course of ARDS, there were no differences in hemodynamics, ventricular function, and oxygen delivery and consumption between septic and nonseptic patients. Sepsis does not account for the previously reported differences in hemodynamics, ventricular function, and oxygen delivery and oxygen consumption between survivors and non-survivors of ARDS. We speculate that both ARDS and sepsis cause release of mediators which cause similar changes in hemodynamics, ventricular function, and oxygen delivery and consumption.

Adult