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J W Horton

Publications and source records attributed to J W Horton.

At least 19 recordsLinked to original sources

Aspiration pneumonia-induced sepsis increases cardiac dysfunction after burn trauma.

Pneumonia occurs in approximately 50% of incubated patients in burn intensive care units and carries a mortality as high as 40%. A model was developed to study altered cardiopulmonary function in burn complicated by pneumococcal pneumonia. Sprague-Dawley rats were given a 43% total body surface area scald burn or sham burn; 24 h later they were transtracheally inoculated with either 10(7) Streptococcus pneumoniae in 0.5 ml phosphate buffer solution (PBS) or 0.5 ml PBS alone. The four groups were: Sham (N = 7), Burn alone (N = 10), Pneumonia alone (N = 11), and Burn and Pneumonia ( N = 12). A fifth group of burned rats (N = 10), given an identical fluid resuscitation regimen, was sacrificed 24 h postburn to examine the early cardiac responses to burn injury alone. Shams and burned animals had normal lung histology, negative bronchoalveolar lavage (BAL) cultures, and negative blood cultures. Pneumonia and burn plus pneumonia animals had abnormal lung histology, positive BAL cultures, and positive blood cultures. Cardiac function was assessed 24 h after S.pneumoniae challenge (48 h after burn) (Langendorff preparation). Compared to the Sham group, Pneumonia group, and Burn group, the Burn plus Pneumonia group had the lowest left ventricular pressure (LVP: 94 +/- 4, 71 +/- 3, and 87 +/- 3 mm Hg vs 63 +/- 4 mm Hg, P < 0.05), the lowest maximal rate of LVP rise (+dP/dt[max]:1932 +/- 115, 1419 +/- 71, and 1772 +/- 96 mm Hg vs 1309 +/- 59 mm Hg/s, P < 0.05), and the lowest maximal rate of LVP fall (-dP/dt[max]:1704 +/- 120, 1263 +/- 73, and 1591 +/- 83 mm Hg vs 1025 +/- 98 mm Hg/s, P < 0.05). Cardiac contraction and relaxation deficits were confirmed in animals 24 h postburn (group 5), as indicated by a significantly lower LVP and +/-dP/dt(max) (62 +/- 3 mm Hg 1210 +/- 60, and 909 +/- 50 mm Hg/s, respectively, P < 0.05 compared to Sham group). Tumor necrosis factor-alpha (TNF-alpha) concentrations in serum, but not bronchoalveolar lavage, were greater in burned animals with aspiration pneumonia-induced sepsis than in animals with either burn alone or aspiration pneumonia-induced sepsis alone. While our data suggest that elevated circulating TNF-alpha levels may contribute, in part, to depressed cardiac function, further studies are needed to fully define the mechanisms underlying cardiac contractile deficits in this model. We speculate that depressed cardiopulmonary function due to burn complicated by pneumonia and sepsis contributes to the high mortality of this patient population.

Animals

Protein kinase C inhibition improves ventricular function after thermal trauma.

OBJECTIVE: To examine the effect of protein kinase C (PKC) inhibition on cardiac performance and intracellular Ca2+ homeostasis. DESIGN: Previous studies have shown that trauma impairs cardiac mechanical function, and recent studies suggest that PKC activation and subsequent perturbations in Ca2+ sequestration/release contribute to this cardiac dysfunction. In this study, anesthetized guinea pigs were given third-degree scald burns over 43 +/- 1% of the total body surface area and resuscitated with lactated Ringer's solution (LR) 4 mL/kg per percent of burn, Parkland formula. Animals with sham burns served as controls (n = 18). Burns were randomly divided into two groups: LR alone (N = 18) or LR + PKC inhibitor, calphostin C (0.1 mg/kg, intravenous bolus), given 30 minutes and 3, 6, and 21 hours after burn (n = 18). MATERIALS AND METHODS: Cardiac function was assessed by Langendorff preparation 24 hours after burn in 8 to 12 animals per group. Intracellular calcium concentration ([Ca2+]i) was measured in cardiac myocytes (collagenase digestion) from additional animals in each experimental group (n = 5-9 per group) after Fura-2 AM loading of myocytes; fluorescence ratios were measured with a Hitachi spectrofluorometer. RESULTS: Cardiac dysfunction occurred 24 hours after burn in LR burns as indicated by lower left ventricular pressure and a reduced rate of left ventricular pressure rise and fall, +/-dP/dt (61 +/- 3 mm Hg, 1,109 +/- 44 mm Hg/s, and 880 +/- 40 mm Hg/s, respectively) compared with values measured in sham-burned animals (86 +/- 2 mm Hg, 1365 +/- 43 mm Hg/s, and 1183 +/- 30 mm Hg/s, respectively; p < 0.05). Ventricular function curves confirmed significant postburn contractile depression despite aggressive fluid resuscitation. Cardiac injury in burned animals was indicated by an increase in perfusate creatine kinase and lactate dehydrogenase, and Ca2+ dyshomeostasis was confirmed by increased myocyte [Ca2+]i (sham 151 +/- 6 vs. burn 307 +/- 20 nmol/L, p < 0.05). PKC inhibition improved all indices of cardiac performance, producing left ventricular pressure (82 +/- 3 mm Hg), +/-dP/dt (1,441 +/- 48 and 1,294 +/- 32 mm Hg/s), and left ventricular function curves that were comparable with those of sham-burned animals. In addition, [Ca2+]i in calphostin-treated burned animals (154 +/- 11 nmol/L) was identical to values in sham-burned animals. CONCLUSION: Our data suggest that PKC may serve as a final common pathway in signal transduction events mediating postburn cardiac dysfunction.

Animals

Resuscitation with hypertonic saline dextran improves cardiac function in vivo and ex vivo after burn injury in sheep.

In a 24 h, double-blind, prospective trial, we tested the hypothesis that two 4 mL/kg doses of hypertonic saline dextran (HSD; 7.5% NaCl/6% dextran 70) given in addition to isotonic fluid treatment would produce both immediate and sustained benefit for the heart after large burn injury. 12 instrumented sheep were subjected to a 40% total body surface area full-thickness flame burn under halothane anesthesia. 1 h after burn, when the animals had recovered from anesthesia, the first dose of either HSD (n=6) or normal saline (NaCl .9%; n=6) was infused over 30 min. The test solution was immediately followed by lactated Ringer's solution infused to maintain a urine output of 1-2 mL/kg x h throughout the study. The second dose of test solution was started at 12 h and was infused over 5 h. The initial dose of HSD corrected the burn-induced reduction in cardiac output, cardiac work, an index of myocardial contractility, and restored myocardial blood flow, as measured by the colored microsphere technique, to preburn values. Plasma concentrations of troponin I, creatine kinase (CK), and CK isoenzyme CKMB were increased 1 h after burn, but were not altered after HSD treatment. After euthanasia at 24 h, myocardial glutathione concentrations were higher in HSD-treated animals, whereas other markers of oxidative injury in heart or in plasma did not show systematic differences. The maximum contraction force measured in isolated right papillary muscles ex vivo was significantly greater in HSD-treated than normal saline-treated animals. In conclusion, the first dose of 4 mL/kg HSD infused 1 h after burn improved cardiac function, whereas the second dose of HSD infused at 12 h was without apparent effect on dynamic variables. An overall effect of the HSD treatments was a lasting increase in papillary muscle contraction force.

Animals

Arginine in burn injury improves cardiac performance and prevents bacterial translocation.

This study examined the effects of arginine supplement of fluid resuscitation from burn injury on cardiac contractile performance and bacterial translocation after a third-degree burn comprising 43% of the total body surface area in adult rats. Before burn injury, rats were instrumented to measure blood pressure; after burn (or sham injury), paired groups of sham-burned and burned rats were given vehicle (saline), L-arginine, D-arginine, or N-methyl-L-arginine (300 mg/kg in 0.3 ml of saline 30 min, 6 h, and 23 h postburn) plus fluid resuscitation; sham-burned rats received drug only. Twenty-four hours after burn trauma, hemodynamics were measured; the animals were then killed and randomly assigned to Langendorff heart studies or to studies examining translocation of gut bacteria. Burn rats treated with vehicle, D-arginine, or N-methyl-L-arginine had well-defined cardiocirculatory responses that included hypotension, tachycardia, respiratory compensation for metabolic acidosis, hypocalcemia, cardiac contractile depression, and significant bacterial translocation. Compared with values measured in vehicle-treated burn rats, L-arginine given after burn improved blood pressure, prevented tachycardia, reduced serum lactate levels, improved cardiac performance, and significantly reduced bacteria translocation, confirming that L-arginine administration after burn injury provided significant cardiac and gastrointestinal protection. Circulating neutrophil counts fell after burn trauma and serum glucagon levels rose, but these changes were not altered by pharmacological intervention. Our finding of significantly higher coronary perfusate guanosine 3',5'-cyclic monophosphate concentration in L-arginine-treated burn rats suggests that the beneficial effects of L-arginine were mediated by nitric oxide production.

Animals

Relationship between energetic, ionic, and functional status in the perfused rat heart following thermal injury: a 31P and 23Na NMR study.

To test the hypothesis that energy deficits and intracellular ion derangements may be the cellular basis for intrinsic myocardial dysfunction in rats after burn trauma, we examined ATP metabolism, intracellular pH, sodium, and mechanical performance simultaneously in perfused beating hearts from sham burn or burned rats (43% TBSA, 3 degrees scald burn, resuscitated for 24 hr with lactated Ringer's solution, Parkland formula). Intracellular calcium was also measured in myocytes harvested from parallel groups of sham burn and burn resuscitated rats. Burn trauma caused a 46% decrease in left ventricular developed pressure, a 69% decrease in +dP/dtmax, and a 72% decrease in -dP/dtmax. Intracellular to external standard sodium ratio increased (+58%) from 0.318 +/- 0.027 to 0.500 +/- 0.048 (P < 0.05), and intracellular calcium increased (+67%) from 206 +/- 13 to 445 +/- 37 nM (P < 0.01). Burn hearts exhibited decreased functional response to isoproterenol challenge compared to sham burn controls, but energy metabolism was similar in all hearts, regardless of burn injury. Our data suggest that burn trauma alters intracellular cardiomyocyte calcium and sodium homeostasis, and ionic derangements are not related to either altered intracellular pH or high energy phosphate deficits.

Adrenergic beta-Agonists

Altered ionic calcium and cell motion in ventricular myocytes after cutaneous thermal injury.

Cutaneous thermal injury resulting in burns covering approximately 45% of the total body surface area initiates metabolic alterations which contribute to subsequent myocardial dysfunction. Alterations in calcium homeostasis have been proposed as one mechanism by which burn injury alters organ function. This study used fura-2 and time-resolved single cell fluorescence microscopy to examine stress-related alterations in intracellular calcium in isolated adult rat cardiac myocytes. Ventricular myocytes were isolated from rats given a full-thickness scald burn comprising 43% of the total body surface area and fluid resuscitated with lactated Ringer's by the Parkland formula; control animals were included for comparison. Burn trauma caused a significant increase in cardiac myocyte maximal (peak systolic) and minimal (diastolic) mean cytosolic free calcium concentration ([Ca2+]i) transient ratios when compared to [Ca2+]i transient ratios measured in control rats. Isoproterenol application altered the time course of the [Ca2+]i transients of normal myocytes but this response was not observed in myocytes from the thermally injured rats. In addition, isoproterenol application to normal myocytes produced a significant increase in the amplitude of cell edge motion (+50%) compared to the cell edge motion measured in myocytes without isoproterenol stimulation; however, this cell motion response did not occur after isoproterenol application to myocytes from thermally injured rats. Caffeine application increased the maximal and minimal [Ca2+]i transient ratios of all myocytes, regardless of a burn injury, and the time course of the [Ca2+]i transients from the two groups appeared similar in the presence of caffeine as the myocytes progressed to contracture. Our data suggest that burn-mediated alterations in calcium homeostasis contribute, in part, to the cardiac contractile dysfunction which occurs after burn injury.

Animals

Monoclonal antibody to intercellular adhesion molecule-1 reduces cardiac contractile dysfunction after burn injury in rabbits.

Cardiac dysfunction occurs after thermal injury but the pathogenesis is nuclear; leukocytes have been implicated in the pathogenesis of multiorgan dysfunction after burn injury. White blood cell activation and entry into tissue involve the use of a number of adhesion molecules, including intercellular adhesion molecule (ICAM)-1, CD54. We asked the question: will administration of the monoclonal antibody (R6.5) directed against ICAM-1 alter the cardiac dysfunction which we have previously shown to occur after thermal injury? Previously instrumented New Zealand White rabbits were anesthetized and given a full-thickness burn over 30% of the total body surface area by applying brass probes heated to 100 degrees C to the animals' backs for 15 sec. Animals were monitored for 24 hr and given lactated Ringer's (LR) solution (4 cc/kg/% burn, Parkland formula) with additional LR given to maintain cardiac output and urine output. Three experimental groups were studied: sham burn controls had catheters placed and were monitored for 24 hr (N = 8); burn rabbits were divided into vehicle treated (saline, 1 ml/kg, N = 6) or R6.5 treated (2 mg/kg, N = 6). Vehicle or antibody was administered 30 min postburn and every 8 hr until 24 hr postburn; at this time, rabbits were sacrificed and hearts were harvested for in vitro assessment of contractile performance (Langendorff). Compared to values measured in sham burn controls, burn injury caused cardiac contractile depression as indicated by a fall in left ventricular pressure (LVP) (77 +/- 2 vs 56 +/- 3 mm Hg, P = 0.01), +dP/dt (1223 +/- 64 vs 842 +/- 64 mm Hg/sec, P = 0.001), and -dP/dt (973 +/- 63 vs 666 +/- 42 mm Hg/sec, P = 0.01). Administration of R6.5 significantly improved cardiac contractile function compared to the vehicle-treated burns as indicated by higher LVP (67 +/- 2 mm Hg, P > 0.05), +dP/dt (1017 +/- 33 mm Hg/sec, P > 0.05), and -dP/dt (858 +/- 40 mm Hg/ sec, P > 0.05) than values measured in vehicle-treated burns. These results suggest that ICAM-1-mediated WBC activation and/or tissue entry are involved in the pathogenesis of cardiac dysfunction following thermal injury.

Animals

Oxygen free radicals contribute to postburn cardiac cell membrane dysfunction.

This study evaluated the contribution of O2 free radicals to changes in cardiac function after burn injury. Full-thickness scald burns comprising 42% of the total body surface area were produced in rats. Mean arterial pressure, heart rate, pH, cardiac transmembrane potential (Ling Gerard electrode, Em), myocardial ATP, creatine phosphate (CP), glucose 6-phosphate, and lactate were measured enzymatically 24 hr postburn in four groups: Group 1, sham burn controls, N = 12; Group 2, untreated burn injury, N = 14; Group 3, N = 10, burn injury resuscitated with Ringer's lactate (Parkland formula); Group 4, burns pretreated with oral allopurinol (10 mg/kg) for 5 days before burn injury, N = 11. In vitro cardiac contractile function was assessed 24 hr after burn injury in additional animals (N = 8) from each of the four experimental groups. Untreated burn injury caused hypotension, bradycardia, depolarization of the cardiac cell membrane (Em fell from 78.5 +/- 0.4 to 66.8 +/- 0.4, P < 0.05), and left ventricular contractile depression despite no significant fall in cardiac ATP content. In contrast, cardiac tissue CP fell and myocardial tissue lactate rose. Allopurinol pretreatment oblated burn-induced hypotension, bradycardia, and cardiac cell membrane depolarization and improved cardiac contractile function despite no fluid resuscitation from burn injury. In contrast, aggressive fluid resuscitation from burn injury (Group 3) repolarized cardiac cell membrane but did not reverse burn-induced cardiac contractile deficits. These data suggest that xanthine oxidase-mediated free radical production contributes, in part, to postburn alterations in cardiac function.

Animals

Burn injury alters coronary endothelial function.

This study examined the effects of burn injury on coronary endothelial function and coronary vascular reactivity. Adult rabbits were given a scald burn over 30% of the total body surface area (or sham burn for controls) and resuscitated with Ringer's lactate solution (4 ml/kg/% burn). Subgroups of burned (n = 6) and sham-burned (n = 6) animals were sacrificed at 2, 6, and 24 hr after injury; hearts were harvested and perfused. Changes in coronary perfusion pressure (CPP, mmHg) and coronary vascular resistance (CVR, mmHg/min) were determined at a constant preload and constant coronary flow rate. Changes in coronary endothelial function were determined by the ability of the endothelium to release cGMP as an indicator of nitric oxide production. Compared to values measured in sham burns, CPP and CVR progressively fell during the early postburn period but increased toward values measured in the sham burn group by 24 hr. Cyclic GMP, fmole/ml of coronary perfusate, was significantly lower in burned hearts (27 +/- 1) compared to values measured in effluents from sham burn hearts (310 +/- 40, P < 0.05). Alterations in coronary effluent cGMP levels after burn injury suggest that thermal injury disrupts coronary endothelial function, likely contributing to postburn changes in cardiac performance.

Acetylcholine

Cardiac contractile and sarcoplasmic reticulum function after acute ethanol consumption.

Since the contractile status of the myocardium depends on tight regulation of calcium concentrations by the sarcoplasmic reticulum (SR), we investigated the possibility that acute ethanol-induced alterations in the calcium pump function of the SR could contribute to the myocardial depression seen after acute ethanol exposure. In this study, LV function (Langendorff preparation) was significantly reduced after ethanol (ETOH, 2.0 ml/kg, iv) in adult guinea pigs. Compared to control hearts (N = 10), hearts from ethanol-treated animals (N = 10) had significantly lower peak systolic LVP (84 +/- 2 vs 67 +/- 4 mmHg, P < 0.005), +dP/dt max (1175 +/- 54 vs 967 +/- 54 mmHg/sec, P < 0.02), and -dP/dt max (1087 +/- 42 vs 892 +/-52 mmHg/sec, P < 0.02) and at a maximal isoproterenol dose of 30 ng/ml, had lower LVP (150 +/- 5 vs 90 +/- 6 mmHg, P < 0.02), +dP/dt max (3400 +/- 120 vs 180 +/- 40 mmHg/sec, P = 0.001), and - dP/dtmax (2500 +/- 50 vs 1520 +/- 40 mmHg/sec, P < 0.002) than control hearts. SR calcium ATPase activity was not altered by ethanol (control: 70.6 +/- 2.6 micromol/mg protein/hr, N = 10; ETOH: 81.3 +/- 6.9, N = 8). Maximal calcium uptake, however, was decreased by 25% in SR vesicles isolated from ethanol-treated (3.8 +/- 0.27 micromol/mg, N = 10) compared to control hearts (5.1 +/- 0.20, N = 10, P < 0.01). Our data confirm that moderate doses of ethanol depress cardiac contractile function, and our finding that acute ethanol exposure decreased calcium uptake by the SR in the face of no change in calcium ATPase activity suggests that ethanol uncoupled ATP hydrolysis and calcium transport.

Acid-Base Equilibrium

Cellular basis for burn-mediated cardiac dysfunction in adult rabbits.

We have shown that cutaneous burn injury impairs cardiac contractile performance; however, the mechanisms remain unclear. In this study, New Zealand White rabbits were anesthetized with isoflurane, given a full-thickness scald burn over 30% of total body surface area, and resuscitated with lactated Ringer solution (4 ml.kg-1.%burn-1 for 24 h); rabbits handled in an identical fashion were given a sham burn. Serum obtained from burned and control (sham-burned) rabbits was aliquoted and frozen at -70 degrees C until assay. Polymorphonuclear neutrophils (PMN) were isolated 24 h postburn from both sham and burned rabbits to yield preparations with > 95% PMN with > 95% viability. Cardiac myocytes were isolated by retrograde perfusion of hearts with Ca(2+)-free collagenase-Tyrode buffer, suspended in Krebs-Henseleit buffer containing 10% fetal bovine serum and 1.8 mM Ca2+, and incubated (1 x 10(5) cells/well) in a CO2 incubator under several experimental conditions, including buffer alone, buffer plus 10% burn serum, buffer plus 10% sham serum, or buffer plus either burn or sham PMN (25 x 10(5) cells/well). Myocyte viability (%) and creatine kinase (CK; units.ml-1.10(5) cells-1) were unchanged after incubation with sham plasma or sham PMN. Incubation of sham myocytes with burn plasma caused viability to fall (from 79 +/- 3 to 54 +/- 4%, P < 0.002), whereas CK rose (from 1,639 +/- 115 to 2,803 +/- 132 units.ml-1.10(5) cells-1, P < 0.01). Similarly, incubation of sham myocytes with burn PMN reduced viability (from 83 +/- 2 to 50 +/- 3%, P < 0.01), whereas CK remained unchanged (1,880 +/- 168 units.ml-1.10(5) cells-1). Our data indicate that circulating myocardial depressant factors after burn injury contribute to cardiac myocyte injury.

Animals

Effects of ischemia on intracellular sodium and phosphates in the in vivo rat liver.

Metabolic factors that influence the transition form reversible to irreversible ischemic injury were studied in the rat liver in vivo with 31P-nuclear magnetic resonance (NMR) spectroscopy. Hepatic ischemia for 15, 35, or 65 min was produced by occlusion of the hepatic artery and portal vein in rats. Ischemia caused a rapid decrease in the ATP concentration ([ATP])-to-P(i) concentration ratio and pH within 5 min, but there was little change in these variables detectable by 31P-NMR with longer periods of ischemia. After reperfusion, the [ATP] and P(i) concentration returned toward normal values in livers exposed to 15 or 35 min of ischemia, but 65 min of ischemia were associated with only modest recovery in [ATP], and the [ATP] later decreased. Because the 31P-NMR spectrum was similar after brief compared with prolonged ischemia, it appears that neither ATP depletion, P(i) accumulation, nor acidosis predicts metabolic recovery. Hepatic intracellular NA+ was also measured in separate groups of animals by 23Na-NMR in the presence of a shift agent, thulium (III) 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrakis (methylene-phosphonate) (TmDOTP5-), and by atomic absorption spectroscopy. Under baseline conditions, the concentration of intracellular Na+ was 15.2 mM by atomic absorption spectroscopy and 16.5 mM by 23Na-NMR. Although the 31P-NMR spectrum responded very rapidly to the onset of ischemia, intracellular Na+ concentration measured by 23Na-NMR increased gradually but steadily at approximately 1.0 mM/min during early (up to 15 min) ischemia. These observations demonstrate that a rise in intracellular Na+ does occur early ischemia, that TmDOTP5- can be applied in vivo for analysis of intracellular Na+ in the ischemic liver, and that 31P-NMR spectroscopy is very sensitive to early ischemic injury.

Adenosine Triphosphate

Evaluation of a new hemostatic agent in experimental splenic laceration.

OBJECTIVES: To compare the effectiveness of several hemostatic agents and to evaluate a new hemostatic agent (ReClot) in controlling splenic hemorrhage. DESIGN: Rabbits were anesthetized and catheters placed. A celiotomy was performed and a splenic injury produced; hemostatic agent and compression were applied. EXPERIMENTAL GROUPS: In group 1 (n = 8), the splenic laceration was compressed with a dry sponge and 75 g of pressure until hemorrhage ceased. In groups 2, 3, and 4 (n = 10 each), splenic injury was treated with Avitene, Collastat, and ReClot, respectively. Hemostatic agent was applied to the splenic laceration and a dry sponge and pressure were applied as described for group 1. In group 5 (n = 9), a splenic laceration was produced, ReClot applied, and aggressive fluid resuscitation was initiated; the volume of crystalloid was adjusted to maintain mean arterial pressure. RESULTS: Application of a hemostatic agent reduced total blood loss compared with that measured in the control group, but there was no difference in blood loss among experimental groups treated with a hemostatic agent. The time required to achieve control of blood loss was less in the ReClot-treated group compared with the Avitene- and Collastat-treated groups. CONCLUSIONS: The hemostatic agent ReClot had a significant advantage over other hemostatic agents for the time required to achieve control of splenic bleeding. Aggressive fluid resuscitation did not limit the ability of ReClot to produce hemostasis.

Acidosis

Acute mesenteric ischemia/reperfusion down regulates renal PGE2 synthesis.

This study examines the hypothesis that pentoxifylline protects renal PGE2 synthesis during mesenteric ischemia/reperfusion injury. Anesthetized Sprague-Dawley rats (300 g) were subjected to sham or superior mesenteric artery occlusion for 20 min followed by 30 min of reperfusion. The ischemia/reperfusion groups received either enteral allopurinol (10 mg/kg) daily for 5 d prior to ischemia, pentoxifylline (50 mg/kg) 10 min prior to ischemia or carrier. The kidney was removed and perfused in vitro with oxygenated Krebs buffer and the effluent was assayed for release of 6-keto-PGF1 alpha, PGE2 and thromboxane B2 (TXB2) by enzyme immunoassay. Mesenteric ischemia/reperfusion decreased renal PGE2 release by 50% (compared to sham) but did not alter release of TXB2 or 6-keto-PGF1 alpha. Pentoxifylline pretreatment (not allopurinol) preserved renal PGE2 release at the sham level. These data showed pentoxifylline exerted a protective effect against severe mesenteric ischemia/reperfusion injury by maintaining release of renal PGE2, a potent endogenous renal vasodilator.

6-Ketoprostaglandin F1 alpha

Acute burn down regulates rabbit splanchnic and renal prostanoid release.

This study examines the hypothesis that acute thermal injury decreases renal and splanchnic vasodilator eicosanoids. Anesthetized rabbits were subjected to sham or a 25% total body surface area burn and fluid resuscitated. At 2, 4, 6, 12, and 24 h postburn the superior mesenteric and renal arteries were cannulated and perfused in vitro with their end organs with Krebs buffer (pH 7.4, 37 degrees C). Renal and splanchnic prostaglandins (PGs) 6-keto-PGF1 alpha (PGI2), and PGE2, and thromboxane B2 (TxB2) release were measured by EIA at 15 min of perfusion. The major eicosanoids released were PGI2 from the splanchnic bed and PGI2 and PGE2 from the kidney. Renal PGE2 and PGI2 and splanchnic PGI2 release were decreased by 50% or more 12 h postburn (p < 0.01) but were restored to sham burn levels 24 h postburn. Loss of these endogenous renal and splanchnic vasodilators 12 h postburn may contribute to ischemia of both vascular beds at this critical time period following acute burn injury.

6-Ketoprostaglandin F1 alpha

Delayed hypertonic saline dextran administration after burn injury.

OBJECTIVE AND DESIGN: Experimental studies in our laboratory showed that hypertonic saline dextran (HSD; 7.5 NaCl in 6% dextran 70) given as a small bolus (4 mL/kg) immediately after burn injury in guinea pigs improved cardiac contractile performance and reduced the total fluids requirements. Although these data confirm the cardioprotective effects of HSD given immediately postburn, prehospital and early inhospital management of severely burned patients consists of aggressive crystalloid fluid resuscitation to correct intravascular volume deficits. The question arose as to whether delaying HSD for several hours after initiating crystalloid resuscitation would provide cardioprotection. MATERIALS AND METHODS: Third-degree scald burns comprising 45 +/- 1% of the total body surface area (burn groups, n = 40) or 0% for controls (group 1, n = 12) were produced; in groups 2 to 5, lactated Ringer's (LR) resuscitation was initiated immediately postburn according to the Parkland formula, 4 mL/kg/% burn. In group 2, (n = 12), LR was continued for 24 hours. HSD was administered as an i.v. bolus at either 1 hour (group 3, n = 10), 4 hours (group 4, n = 9), or 8 hours postburn (group 5, n = 9); immediately after HSD administration, LR was continued (1 mL/kg/% burn) until 24 hours postburn. RESULTS: Compared to sham burn controls, hearts from burned animals treated with LR alone had significant cardiac dysfunction, as indicated by a lower left ventricular pressure and +/- dP/dt. Compared with hearts from LR-treated animals, hearts from burned animals treated with HSD 1 hour (HSD-1) and 4 hours (HSD-4) after burn injury had significantly higher LVP and +/- dP/dt. Ventricular function curves calculated for HSD-1 and HSD-4 groups were comparable to those calculated for hearts from sham burns. Delaying HSD administration until 8 hours after burn provided little cardioprotection. CONCLUSIONS: Our data indicate that HSD effectively maintains cardiac function and reduces overall total fluid requirements if administered within 4 hours after burn injury.

Animals

The role of toxic oxygen metabolites in a young model of thermal injury.

Production of oxygen-free radicals has been proposed as one pathophysiologic mechanism for postburn cardiac contractile dysfunction in adults. To examine this hypothesis in young subjects, we studied the cardiac effects of polyethylene glycol-superoxide dismutase (PEG-SOD) and PEG-catalase (PEG-CAT), each given as 20 U/g of body weight with fluid resuscitation (Parkland formula), after a third-degree burn constituting 33% of the total body surface area in young (6- to 7-day old) guinea pigs (group 3, n = 12). Fluid-treated burns without scavenger therapy (group 2, n = 15) and sham burn controls (group 1, n = 15) were included. Animals were killed 24 hours postburn, and hearts were studied in vitro (Langendorff). Compared with sham burn controls, fluid-treated burns (group 2) had significant cardiac dysfunction as indicated by a lower peak systolic left ventricular (LV) pressure (LVP: 67 +/- 2 vs. 57 +/- 4 mm Hg, p = 0.01, mean +/- SEM), maximal rate of LV pressure development (+dP/dt max: 1169 +/- 45 vs. 988 +/- 45 mm Hg/second, p = 0.01), and fall (-dP/dt max: 1109 +/- 45 vs. 919 +/- 49 mm Hg/second, p = 0.01). In addition, LV function curves calculated for group 2 were shifted downward and to the right of those calculated for sham burn controls in the direction of contractile depression, p = 0.01. PEG-SOD/PEG-CAT treatment in burns did not significantly improve LVP (60 +/- 5 mm Hg), but scavenger therapy improved +/-dP/dt max values (1112 +/- 74 and 988 +/- 98 mm Hg/second, respectively).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Postburn cardiac contractile function and biochemical markers of postburn cardiac injury.

BACKGROUND: In vivo assessment of cardiac injury and contractile deficits after thermal injury remain difficult as neurohumoral compensatory mechanisms maintain cardiac output. While measurement of creatine kinase (CK) and the isoenzyme of creatine kinase (CKMB) have been used as clinical indicators of cardiac injury, these biochemical markers are not completely specific for cardiac muscle. Cardiac protein troponin I (cTnI) is unique to the myocardium but can be detected in the systemic circulation within three to four hours after cardiac injury. The purpose of this study was to examine cardiac contractile function at several postburn intervals and to correlate the appearance of cardiac dysfunction with biochemical measures of cardiac injury (serum concentration of CK, CKMB, and cTnI). STUDY DESIGN: New Zealand white rabbits were deeply anesthetized and a scald burn comprising 34 percent of the total body surface area (n = 36) or sham burn (n = 36) was accomplished using a template device. All burn rabbits were given lactated Ringer's solution (4 mL/kg/percent burn, Parkland formula). Blood samples were collected immediately prior to sacrifice in six animals from both burn and control groups, and animals were sacrificed either two, four, six or 24 hours after burn. Cardiac function was assessed in left ventricular preparations (Langendorff) and serum CK, CKMB, and cTnI levels were determined. RESULTS: Cardiac dysfunction occurred at all times after burn as indicated by a lower peak systolic left ventricular pressure and +/- dP/dt maximum compared with time-matched shams and the shift of left ventricular function curves plotted for burn groups downward and to the right of those calculated for shams, p < 0.05. Left ventricular systolic dysfunction after burn correlated with a progressive rise in cTnI and CK but not CKMB. CONCLUSIONS: The cardiospecificity of the cTnI eliminates concerns about tissue source associated with CK and CKMB and provides a biochemical measure of cardiac injury that is consistent with in vitro assessment of cardiac dysfunction.

Animals