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Biomedical subjects

J F Fessler

Publications and source records attributed to J F Fessler.

At least 37 records · Page 2Linked to original sources

Equine endotoxemia: cardiovascular, eicosanoid, hematologic, blood chemical, and plasma enzyme alterations.

Ponies with electromagnetic blood flow transducers implanted around the main pulmonary and left main coronary arteries, were used to evaluate effects of chronic sublethal endotoxin on cardiac output (CO), stroke volume, and left coronary blood flow (LCBF). Plasma thromboxane (TX), as indicated by TXB2, prostacyclin as indicated by 6-keto-prostaglandin (PG) F1 alpha, and hematologic and blood chemical values also were evaluated. Over 24 hours, 2 groups of ponies were given progressively increasing IV and intraperitoneal doses of Escherichia coli lipopolysaccharide (LPS) at 0, 6, 12, and 18 hours. Group 1 was not treated and group 2 was treated with flunixin meglumine, before each LPS insult. Initial LPS inoculation in group 1 led to 10-fold increases in TXB2 and 6-keto-PGF1 alpha values by 30 and 90 minutes, respectively. These eicosanoid values returned to base line by 6 hours after each insult. Although repeated LPS injections stimulated recurring high plasma concentrations of 6-keto-PGF1 alpha, TXB2 production became less with each successive LPS insult. Cardiac output decreased to 55% to 60% of base-line values in association with increased 6-keto-PGF1 alpha values. Left coronary blood flow could not be evaluated accurately. Severe lactic acidosis developed in group 1. Group-2 ponies remained clinically normal, indicating protection of cardiovascular function and peripheral perfusion with flunixin meglumine. Seemingly, flunixin meglumine helped to maintain acceptable cardiovascular function and tissue perfusion during endotoxemia. Flunixin meglumine given to healthy ponies had no effect on cardiovascular function.(ABSTRACT TRUNCATED AT 250 WORDS)

6-Ketoprostaglandin F1 alpha↗

Ultrastructure of equine endothelial cells exposed to endotoxin and flunixin meglumine and equine neutrophils.

An in vitro system of cultured equine endothelial cells was evaluated as a model for endotoxin (ET) exposure in the horse. Primary cell lines from pulmonary vessels and aortas were cultured from tissues of 6 horses. Effects of ET alone with and without serum and in combination with the cyclo-oxygenase inhibitor flunixin meglumine and isolated equine neutrophils were evaluated by transmission electron microscopy. Cells plus serum were incubated with 10, 25, 50, or 100 micrograms of ET/ml of incubation medium for 1, 3, 8, or 24 hours. Cells without serum were cultured for 1 and 3 hours. Flunixin meglumine was used at a concentration of 20 micrograms/ml. Cells also were incubated in the presence of 1,000, 5,000, or 20,000 neutrophils/ml plus ET and in the presence of a combination of ET and flunixin meglumine for 1 or 3 hours. Endotoxin alone did not cause cell damage, and the only evidence of an effect was an increased number of secondary lysosomes at incubation hour 8. At incubation hour 24, cells appeared normal. Endotoxin plus neutrophils caused cells to become round and detach from the growth substrate. Cell pathologic changes included swollen and distorted mitochondria and cytoplasmic vacuolization. Response to the ET plus neutrophil combination was variable and ranged from 5% to 50% of the cells being affected. The variability appeared to have some correlation with cell age, as well as individual preparation of neutrophils.

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Endotoxin-induced hemodynamic and prostaglandin changes in ponies: effects of flunixin meglumine, dexamethasone, and prednisolone.

Shock was induced in four groups of anesthetized ponies with an intravenous injection of Escherichia coli endotoxin [125 micrograms/kg]. Five minutes after endotoxin injection, the ponies were given no treatment (group A), flunixin meglumine (FM:1.1 mg/kg) (group B), dexamethasone (2 mg/kg) (group C), or prednisolone (10 mg/kg) (group D). Additionally, FM was given every 3 hours, and the steroids were given at 3, 9, and 24 hours following endotoxin. Hemodynamic measurements were made during the 4-hour anesthetic period. Blood samples were collected for the analysis of prostaglandins, blood chemicals, and enzymes until death. Microspheres labeled with one of four radionuclides were used to determine regional blood flow at 0, 0.1, 1, and 2 hours after endotoxin was given. Plasma levels of both thromboxane and prostaglandin I2 increased from less than 1 ng/ml to between 3 and 5 ng/ml following the injection of endotoxin. The elevated thromboxane corresponded with high pulmonary arterial pressure [between 35 and 55 mm Hg] and low mean systemic arterial pressure (between 40 and 65 mm Hg) during the first 5-10 minutes following endotoxin. Increased concentrations of prostaglandin I2 were temporally related to systemic arterial hypotension, which occurred 1-2 hours following endotoxin in all groups except group B. The rise of prostaglandin I2 and hypotension were not observed in the flunixin meglumine-treated ponies. Dexamethasone was less effective, and prednisolone was ineffective in preventing the synthesis of prostaglandin I2 and the accompanying hemodynamic changes that occurred during the first 2 hours following endotoxin. This is probably due to the fact that steroids require a longer period of time before prostaglandin synthesis is reduced. Although not statistically significant, increased survival trends were observed in ponies treated with flunixin meglumine.

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In vitro calibration and surgical implantation of electromagnetic blood flow transducers for measurement of left coronary blood flow and cardiac output in the pony.

Electromagnetic flow transducers were implanted via left thoracotomy in 8 ponies (122.7 to 263.6 kg) around the main pulmonary and left main coronary arteries for continuous measurement of mean and pulsatile blood flow. Flow transducers were calibrated in vitro with a gravity flow system. The mean +/- SE pulmonary flow was 73.1 +/- 5.1 ml/kg of body weight/min. Left coronary flow was 0.95 +/- 0.07 ml/kg/min (1.3% of cardiac output) and was not believed to be an accurate measurement. This was caused by the inability to implant a zero-flow occluder, requiring the use of minimum flow during systole as zero-flow base line. However, relative changes in left coronary flow were measured. Ponies were maintained up to 5 weeks with no adverse effects. Measurement of mean pulmonary flow with chronically implanted electromagnetic flow transducers provided an accurate continuous measurement of cardiac output with a minimum of restraint.

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Equine endothelial cells in vitro.

Certain in vitro culture conditions were determined for equine endothelial cells obtained from the aorta and pulmonary arteries. Cells were enzymatically isolated from the vessel lumen, using clostridial collagenase (2.5 mg/ml of Hanks's balanced salt solution) incubated at 37 C for 30 minutes. Cells were cultured in alpha minimum essential medium supplemented with plasma-derived and nonplasma-derived bovine fetal sera, endothelial cell-growth supplement, heparin, and antibiotics. Smooth muscle cell growth was not inhibited with nonplasma-derived animal sera, plasma-derived equine serum, or heparin. Heparin and a serum replacement were toxic to the cells used in the present study. Statistically significant differences were not found between the various media supplements.

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Effects of repeated endotoxin injections on prostanoids, hemodynamics, endothelial cells, and survival in ponies.

The objectives of this study were to determine the pathophysiological effects of increasing amounts of endotoxin administered intraperitoneally (IP) for 24 hr at which time an intravenous (IV) injection of endotoxin was given. The ability of flunixin meglumine (FM), a nonsteroidal antiinflammatory drug with antiprostaglandin activity, to provide protective effects was also determined. Eight ponies were divided into two groups of four ponies each; one group (untreated) received endotoxin only and the other group (treated) received endotoxin while being treated with flunixin. Hemodynamic and serum prostanoid changes were recorded for 26 hr during which time five IP and one IV endotoxin injections were given. Both groups behaved similarly until the intravenous endotoxin injection at 24 hr. At that time, the protective effects of flunixin became apparent by preventing increases in thromboxane and prostacyclin concentrations and by maintaining cardiac output, systemic arterial blood pressure, and blood flow to critical organs. Electron microscopic examination of pulmonary arteries of untreated animals revealed extensive endothelial cell damage while treatment with FM reduced this damage. A parallel study involving survival time in two groups of eight ponies each was also conducted using the same endotoxin and treatment protocol. At the end of 7 days, two of eight untreated ponies survived while six of eight treated ponies survived. It was concluded that FM prevented the release of prostanoids, maintained hemodynamics and blood flow nearer pre-endotoxin values, reduced vascular endothelial cell damage, and improved survival.

6-Ketoprostaglandin F1 alpha↗

Endotoxin-induced hematologic and blood chemical changes in ponies: effects of flunixin meglumine, dexamethasone, and prednisolone.

To evaluate the effect of certain drugs on hematologic changes, blood chemical values, and survival in endotoxin shock, anesthetized ponies were given (IV) endotoxin (Escherichia coli O55:B5) and then treated as follows: Group A ponies--given a saline infusion at 5 minutes and at 3 hours after they were given endotoxin; group B ponies--given flunixin meglumine at 5 minutes and at 3, 6, 9, and 24 hours after they were given endotoxin; group C ponies--treated with dexamethasone; and group D ponies--treated with prednisolone at 5 minutes and at 3, 9, and 24 hours after they were given endotoxin. Anesthesia was maintained for 4 hours, after which time the ponies were allowed to recover. Throughout the experiment, samples of blood were collected for blood gas, hematologic, and blood chemical values. The endotoxin effects were seen in the 4 groups: lactic acidosis, prolonged coagulation times, leukopenia, hemoconcentration, and elevated blood chemical values. Although none of the treatments prevented the effects of endotoxin, changes were less severe and survival times were longer in ponies treated with flunixin meglumine.

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Flunixin meglumine attenuation of endotoxin-induced damage to the cardiopulmonary vascular endothelium of the pony.

Endotoxic shock was induced in 5 ponies by intraperitoneal injections of 20, 40, 60, 80, and 80 micrograms of Escherichia coli endotoxin (LPS)/kg of body weight at 0, 6, 12, 18, and 24 hours, respectively. At 24 hours, the ponies also were given 20 micrograms of LPS/kg via catheter in the left ventricle of the heart. A 2nd group of 4 ponies was given 1.1 mg of flunixin meglumine (FM)/kg, IV, at 6, 12, 18, and 24 hours just before the corresponding LPS injection. Two hours after the 24-hour LPS injection, the ponies in both groups were anesthetized, the lungs were perfused with fixative, and portions of the pulmonary arteries and veins and right and left ventricles were prepared for scanning and transmission electron microscopy. In ponies that were given only LPS, some areas of pulmonary vascular endothelium appeared normal when compared with untreated controls, but other areas had disoriented endothelial cells or had varying amounts of sloughing, which ranged from focal areas of a few cells to large areas of denuded endothelium. Ponies treated with FM before LPS had less severe and less extensive endothelial cell damage. In both groups, leukocytes were attached to areas of the vessel wall; endothelial cell damage was greater in these regions. Administration of FM before LPS administration attenuated the LPS-induced endothelial cell damage.

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Effects of flunixin meglumine on blood pressure and fluid compartment volume changes in ponies given endotoxin.

A study was conducted to determine whether body fluids undergo a net shift from one compartment to another during endotoxin-induced shock in the pony, and whether flunixin meglumine alters these endotoxin-induced changes in the volumes of body fluid compartments. Total blood, RBC, and plasma volumes were determined, using 51Cr-labeled RBC and PCV that were corrected for trapped plasma. Total body water was measured by distribution of 3HOH. Arterial blood pressure was measured directly, using a blood pressure transducer. Treatment (flunixin meglumine, 1.1 mg/kg of body weight) was given to 6 of the 12 ponies 1 minute before an IV injection of Escherichia coli endotoxin (100 micrograms/kg of body weight, LD100). The PCV and RBC volume increased in both groups; however, the hemoconcentration was less in flunixin meglumine-treated ponies. In nontreated ponies, total blood volume and plasma volume decreased significantly during the first hour after endotoxin administration. In treated ponies, total blood volume did not vary significantly, and plasma volume decreased only slightly. In both groups, the increase in PCV was apparently due to splenic contraction, which increased the number of circulating RBC. Hemoconcentration was further increased in nontreated ponies by the loss of plasma into the interstitial space. Flunixin meglumine reduced plasma loss, minimized hemoconcentration, and maintained normal blood volume. Total body water remained constant in treated and nontreated ponies.

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Endotoxin-induced eicosanoid production by equine vascular endothelial cells and neutrophils.

Dispersed equine vascular endothelial cells grown in tissue culture, and freshly isolated neutrophils were used to determine direct effects of endotoxin on cyclooxygenase and lipoxygenase products. Endothelial cells (10(7)/ml) or neutrophils (2 X 10(6)/ml) were incubated with (a) buffer, (b) endotoxin (10 micrograms/ml), (c) endotoxin + flunixin meglumine (10 micrograms/ml), or (d) calcium ionophore, A23187 (10 micrograms/ml). Thromboxane (TxB2), prostacyclin (6-keto-PGF1 alpha), and leukotriene C4 (LTC4) were determined in the incubation fluid by radioimmunoassay. Thromboxane and prostacyclin levels increased in endothelial cells incubated with endotoxin. Treatment with flunixin meglumine prevented the endotoxin-induced release of these cyclooxygenase products to levels below those observed in control cells. Leukotriene production was increased in endothelial cells incubated with endotoxin plus flunixin meglumine. Endotoxin as well as endotoxin plus flunixin meglumine increased the production of prostacyclin and LTC4 by freshly isolated neutrophils. Cells exposed to endotoxin plus flunixin meglumine produced more LTC4 than cells exposed to endotoxin. The data revealed that endotoxin has a direct effect on arachidonic acid metabolism in endothelial cells and neutrophils. Flunixin meglumine reduced the level of cyclooxygenase products but increased the level of lipoxygenase products. Therefore, the well-established beneficial effects of cyclooxygenase inhibitors during endotoxemia may be improved even more if they are used in conjunction with lipoxygenase inhibitors or a combined cyclooxygenase-lipoxygenase inhibitor.

6-Ketoprostaglandin F1 alpha↗

Treatment of radial-ulnar and tibial fractures in cattle, using a modified Thomas splint-cast combination.

In a retrospective study involving 15 cattle, radial-ulnar or tibial fractures were repaired with a modified Thomas splint combined with plaster cast. The cattle ranged in age from 1 day to 5 years and weighed from 46 to 775 kg. Eight cattle had radial-ulnar fractures and 7 had tibial fractures. The fractures healed in 14 cattle. The most frequent long-term complication was deviation of the involved long bones after healing. The degree of deviation decreased over several months' time in most cases. Thirteen of the 14 cattle with healed fractures were used for breeding or milking and their capacity for those functions was not diminished.

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Effects of naloxone on endotoxin-induced changes in ponies.

The value of naloxone (1 mg/kg of body weight/hr for 4 hrs), a beta-endorphin antagonist, was assessed in the management of endotoxin-induced shock in ponies. Three groups of 5 ponies each were used: controls, ponies given Escherichia coli endotoxin put untreated, and ponies given endotoxin and then treated with naloxone. Endotoxin-induced changes in hemodynamics, blood chemical values, regional blood flow, plasma enzymes, and energy supplies were measured at selected times during the first 6 hours after endotoxin was given. There was no evidence that beta-endorphins released during shock were responsible for the hemodynamic changes, blood flow changes, plasma enzyme changes, or energy deficits, because naloxone, at this dosage level, did not prevent these endotoxin-induced changes.

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Thermographic evaluation of horses with podotrochlosis.

The distal forelimbs of 10 clinically normal horses with hair clipped on 1 limb were thermographically scanned before and after exercise. The thermal patterns, temperature distribution, and temperature changes after exercise were determined and compared with those of 8 horses with podotrochlosis. Clipping the hair did not cause changes in the thermal patterns, but the clipped limbs were warmer than the unclipped limbs. The temperature of the limbs of horses with podotrochlosis did not increase as much after exercise as did the limbs of normal horses. The failure of skin temperature increase correlated with the radiographic evidence of enlarged vascular foramina in the navicular bone. Because the failure to increase skin temperature after exercise is the result of low blood flow, the enlarged vascular foramen can be related to a state of low blood flow.

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Endotoxin-induced change in hemograms, plasma enzymes, and blood chemical values in anesthetized ponies: effects of flunixin meglumine.

A study was made of flunixin meglumine (FM), an analgesic agent with antiprostaglandin activity, in the management of endotoxin-induced changes in ponies. Three groups of 5 ponies each were used: A--controls, B--nontreated ponies with endotoxin-induced shock, and C--ponies with endotoxin-induced shock treated with FM. Shock was induced in anesthetized ponies with IV injections of Escherichia coli endotoxin. Disruption of glucose homeostasis, insulin levels, hemograms, aerobic metabolism, and cell damage as indicated by plasma enzymes were observed. Treatment with FM (5 minutes) after shock was induced did not prevent general tissue damage as indicated by plasma enzymes, but separation of creatine phosphokinase into its 3 isoenzymes revealed a significant increase in the amount of the creatine phosphokinase isoenzyme bb in group B ponies, but not in FM-treated ponies (group C). The source of this isoenzyme is believed to be brain tissue. Acidosis as indicated by lactic acid and venous pH was less in FM-treated ponies than in nontreated (group B) ponies. Blood glucose and insulin concentrations changed in both groups B and C (endotoxin-induced shock), but the patterns of change were different. The only effect of FM on hematologic values was a significant decrease in blood platelet counts. The results of these experiments indicate that FM improved cellular metabolism and reduced brain damage. These effects were believed to be the result of the maintenance of mean arterial blood pressure and enhanced perfusion of vital organs by preventing extensive vasodilation in the gastrointestinal tract.

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Thromboxane, prostaglandin I2 (epoprostenol), and the hemodynamic changes in equine endotoxin shock.

This study had 2 objectives: (i) to correlate plasma thromboxane and prostaglandin I2 (epoprostenol) concentrations with hemodynamic changes occurring in equine endotoxin shock, and (ii) to determine the effects of flunixin meglumine on plasma concentrations of these prostaglandins relative to hemodynamic changes. Shock was induced in 2 groups, each of 4 anesthetized ponies, and in a 3rd group of 2 ponies. Group A ponies were given endotoxin only (and were not treated), and group B ponies were given endotoxin and then treated with flunixin meglumine. Group C ponies were treated with flunixin meglumine 5 minutes before they were fiven endotoxin. Arterial, pulmonary arterial, and central venous pressures were measured and blood samples were collected at 0, 0.1, 0.25, 0.5, 1, 1, 3, and 4 hours after ponies were given the endotoxin. The plasma thromboxane and prostaglandin I2 concentrations were increased in equine endotoxic shock. Increased thromboxane concentration was associated with the high pulmonary arterial and central venous pressures and low arterial blood pressure in the minutes immediately after the ponies were given endotoxin. The increased prostaglandin I2 concentration was associated with systemic hypotension at 1 to 2 hours after endotoxin. Treatment of ponies with flunixin meglumine after endotoxin was given (group B) prevented the prostaglandin I2 rise and the associated hypotension. Treatment with fluixin meglumine before endotoxin was given prevented the increase of the plasma thromboxane and prostaglandin I2 values, along with the associated hemodynamic changes.

6-Ketoprostaglandin F1 alpha↗