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Biomedical subjects

W H Loomis

Publications and source records attributed to W H Loomis.

11 recordsLinked to original sources

Hypertonic saline resuscitation restores hemorrhage-induced immunosuppression by decreasing prostaglandin E2 and interleukin-4 production.

It was previously shown that hypertonic saline (HTS) enhances in vivo and in vitro cellular immune function of normal mice and reverses in vitro prostaglandin E2 (PGE2)-induced immunosuppression of normal peripheral blood mononuclear cells. Hemorrhage induces immunosuppression despite adequate isotonic fluid resuscitation. The effects of HTS resuscitation on immunosuppression following hemorrhage were studied. A mouse model of hemorrhagic shock was used. Bleeding was performed through a catheter placed in the femoral artery. Phytohemagglutinin-induced splenocyte proliferation and interleukin (IL)-1, IL-2,IL-4, IL-6, IL-10, transforming growth factor beta, and PGE2 plasma levels were measured 2 and 24 hr following hemorrhage and resuscitation with lactated Ringer's and HTS. In vivo cellular immune function was measured using a contact hypersensitivity test. Suppression of splenocyte proliferation (40%) 24 hr following hemorrhage occurred after lactated Ringer's resuscitation. HTS prevented immunosuppression. In vivo cell-mediated immune function 24 hr after hemorrhage was improved by HTS. HTS-resuscitated animals showed significantly lower levels of IL-4 and PGE2, and slightly elevated levels of proinflammatory cytokines (IL-1, IL-2, and IL-6). HTS reverses hemorrhage-induced T-cell suppression by reducing the production and/or release of IL-4 and PGE2.

Animals

Immunosuppression after endotoxin shock: the result of multiple anti-inflammatory factors.

OBJECTIVES: Endotoxin induced suppression of cellular immune function is thought to contribute to septic complications in trauma patients. A rabbit model of endotoxemia was used to determine the relative roles of the anti-inflammatory factors interleukin-4 (IL-4), interleukin-10 (IL-10), transforming growth factor beta1 (TGFbeta1), and prostaglandin E2 (PGE2) in addition to other factors, in inducing immunosuppression. DESIGN: T-cell suppressive factors (TSF) in serum ultrafiltrates were separated and tested for the presence of the known suppressive factors PGE2, IL-4, IL-10, and TGFbeta1. MATERIAL AND METHODS: New Zealand rabbits were injected with 50 microg/kg of purified Escherichia coli lipopolysaccharide. Animals were exsanguinated after 48 hours and serum was separated by ultrafiltration (cutoff 50 kd), TSK HW-40 size exclusion chromatography, and Q-Sepharose anion exchange chromatography. TSF activities of chromatographic fractions and serum samples were measured with a mitogen induced in vitro T-cell proliferation assay. Levels of PGE2, IL-4, IL-10, and TGFbeta1 were measured with enzyme immunoassays. MEASUREMENTS AND MAIN RESULTS: Serum TSF activity, and levels of PGE2, IL-4, IL-10, and TGFbeta1 were increased after endotoxemia. Size exclusion chromatography revealed three major fractions (TSF1-3) with up to 600 times more TSF activity compared with controls. IL-4 and IL-10 were found in TSF1 and TSF3. Further separation of TSF1 by anion exchange chromatography revealed a total of eight different T-cell suppressive factors. TGFbeta1 probably remained in the retentate after ultrafiltration, while PGE2 eluted at a higher retention time. The known anti-inflammatory factors TGFbeta1, IL-10, IL-4, and PGE2 only accounted for 13% of the total serum TSF activity of 614 U/mL. CONCLUSIONS: Lipopolysaccharide shock results in the release of multiple T-cell suppressive factors in addition to known immunosuppressive factors, all of which contribute to the anti-inflammatory response.

Animals

Acute lung injury in endotoxemic rats is associated with sustained circulating IL-6 levels and intrapulmonary CINC activity and neutrophil recruitment--role of circulating TNF-alpha and IL-beta?

Endotoxemia initiates a cytokine response that is thought to mediate the syndromes of sepsis and multiple organ failure. This study measured cytokine levels in the blood and airways of rats at critical time points during the development of lung injury induced by chronic endotoxin (LPS) infusion in the rat. Tumor necrosis factor-alpha (TNF), interleukin-1-beta (IL-1), and interleukin-6 (IL-6) were measured in the blood and bronchoalveolar lavage fluid (BALF) of endotoxemic and control animals. BALF was also studied for the percentage of neutrophil (PMN) count and chemotactic activity. Lung histology was determined at 72 h following infusion of LPS. Chronic endotoxemia of > or = 48 h but not < or = 24 h resulted in severe acute lung injury (ALI). Circulating levels of TNF and IL-1 were only transiently elevated, whereas IL-6 remained elevated in the endotoxemic rats. TNF, IL-1, and IL-6 levels in BALF were only transiently elevated. Chemotactic activity, levels of cytokine-induced neutrophil chemoattractant (CINC), and the percentage of PMN counts in BALF all increased significantly by 36 h. Other potential chemoattractants; leukotriene B4 and transforming growth factor-beta were not elevated in BALF. In conclusion, severe ALI requires a minimum of 48 h LPS infusion in this model and is associated with high levels of circulating IL-6, increased CINC activity, and an increased percentage of PMN count in BALF. Local inflammatory events may be as important as the systemic cytokine milieu in mediating ALI. The signal for these local events does not appear to depend solely on the transient elevations of circulating TNF and IL-1 at the onset of endotoxemia, although sustained high levels of IL-6 may be important.

Animals

Tumor necrosis factor antibody treatment of septic baboons reduces the production of sustained T-cell suppressive factors.

Post-traumatic septic complications result from impaired cell-mediated immune function, which is caused in part by circulating T-cell suppressive factors (TSFs). We examined whether tumor necrosis factor alpha (TNF-alpha) antibody treatment in a baboon sepsis model influences the production of TSFs, including interleukin-10 (IL-10) and transforming growth factor-beta (TGF-beta). Sepsis was induced in anesthetized baboons by Escherichia coli infusion, and caused an increase in plasma levels of TNF, TSF activity, IL-10, and active TGF-beta, as well as a decrease in latent TGF-beta. TNF antibody pretreatment reduced TNF levels by 98%. Transient TSF activity (0-4 h) was only marginally influenced, while sustained TSF activity (8-24 h) was markedly reduced. TSF activity at 24 h correlated with peak TNF levels. IL-10 levels, coinciding with early TSF activity, remained unchanged by anti-TNF treatment. Levels of active TGF-beta and the drop in latent TGF-beta were decreased. We conclude that anti-TNF treatment reduces sustained TSF activity and may partially restore impaired cell-mediated immune function.

Animals

Hypertonic/hyperoncotic fluids reverse prostaglandin E2 (PGE2)-induced T-cell suppression.

In recent years, hypertonic, and hyperoncotic fluids have been examined for their potential to replace conventional isotonic fluids. This study describes the effects of commonly used intravenous fluids on immune function. The action of increased concentrations of hypertonic saline (HTS), hypertonic saline-dextran (HSD), dextran (Dx), albumin (ALB), and hydroxyethylstarch (HET) on in vitro proliferation of phytohemagglutinin-stimulated normal and prostaglandin E2-suppressed human peripheral blood mononuclear cells was tested. At clinically relevant levels, HTS, HSD (20-40 mM hypertonicity), and ALB (2.5 mg/mL) enhanced T-cell proliferation by 65, 75, and 70%, respectively. Dx and HET had little effect. HTS also reversed prostaglandin E2-suppressed (10 ng/mL) T-cell proliferation to normal levels, and HSD enhanced T-cell proliferation by 40%, in contrast to Dx, ALB, and HET which had minimal effects. The results suggest that hypertonic/hyperoncotic solutions might improve prostaglandin-mediated suppression of T-cell function in patients and may be a useful adjunct to reduce the risk of infection.

Adult

Effects of trauma on immune cell function: impairment of intracellular calcium signaling.

Immunosuppression following injury influences infectious morbidity and mortality. Impaired T-cell activation conceding to inadequate antigen recognition contributes to this immunosuppression. Successful activation and proliferation of T-cells requires precisely specified levels of intracellular calcium thresholds and peak signals. The purpose of this study was to evaluate intracellular calcium signaling following injury. Hospitalized blunt and penetrating trauma patients in a Level 1 Trauma Center following injury and sepsis were tested for immune cell calcium signaling. Peripheral blood mononuclear cells (PBMC) were isolated and calcium signaling tested with Fura-2 AM. PBMC from trauma patients had significantly depressed values of baseline, peak and sustained levels of intracellular calcium prior to and following phytohemagglutinin stimulation when compared to normal controls. This deficit in intracellular calcium signaling is more severe in septic trauma patients (60% reduction). Suppression of calcium signaling appears to be mediated by at least, in part, circulating serum factors. Prostaglandin E2 seems to have a limited contribution to this effect as it is suppressive only when in direct contact with PBMC. Immune cell activation failure can in part be explained by the inadequacy of calcium signaling; restoration of immunocompetence following trauma will have to be addressed by strategies to restore calcium signaling, a vital step necessary for T-cell proliferation following antigen recognition.

Calcium

Hypertonic saline enhances cellular immune function.

Hypertonic saline (HTS) resuscitation improves outcome after trauma. We studied the effect of HTS on immune function. In vitro T-cell proliferation of human and rabbit peripheral blood mononuclear cells (PBMC) was doubled at 25 mM increased extracellular Na+ concentrations. Further increased hypertonicity (more than 40 mM with human cells, and 80 mM with rabbit cells) caused progressive suppression of proliferation. Human and rabbit monocyte functions (tumor necrosis factor production) were augmented by 300% at 30 mM hypertonicity, indicating that HTS-enhanced accessory cell function of monocytes may cause increased T-cell proliferation. Substitution of HTS with KCl also enhanced T-cell proliferation, suggesting an involvement of osmotic effects. HTS (up to 30 mM) increased Ca2+i of nonstimulated human PBMC. HTS injection in rabbits increased cell-mediated immune function (delayed-type hypersensitivity reaction). Our findings suggest that increased plasma osmolality may up-regulate cellular immune function. HTS resuscitation of trauma patients may thus reverse posttraumatic immunosuppression and reduce the risk of sepsis.

Animals

Alteration in Ca2+ homeostasis by a trauma peptide.

Postinjury tissue inflammation with PMN elastase proteolysis generates immunosuppressive fibronectin peptides (FNDP) impairing chemotaxis, T-cell activation, and proliferation. Excess intracellular Ca2+ ([Ca2+]i) impairs T-cell activation. This study quantifies the changes in [Ca2+]i following exposure to a degradation peptide of fibronectin to determine the mechanism of action of these peptides on calcium homeostasis. Isolated human PBLs were exposed to immunosuppressive concentrations of FNDP after loading with the [Ca2+]i probe FURA-2AM. Resting and sustained [Ca2+]i concentrations were calculated and compared to buffer control. The mechanism of action was determined by pretreatment with: (1) EDTA binding extra cellular Ca2+: [Ca2+]e, (2) the Ca2+ channel blockers verapamil and nifedipine, and (3) inhibition of [Ca2+]i released by dantrolene. Inositol triphosphate (IP3) essential for [Ca2+]i release was measured following T-cell stimulation as well. FNDP caused 200-400% increases in [Ca2+]i concentration relative to buffer control at known suppressive doses. Verapamil and nifedipine partially block [Ca2+]i influx by as much as 50% suggesting the slow Ca2+ (voltage independent) channels are partially responsible for the increased [Ca2+]i seen following FNDP. EDTA completely suppressed [Ca2+]e influx but did not completely inhibit the release of [Ca2+]i although IP3 was 80% suppressed. The increase in [Ca2+]i following FNDP stimulation is due to release of intracellular stores.

Calcium

Mechanisms of interaction between oxygen and granulocytes in hyperoxic lung injury.

Hyperoxia and infused granulocytes act synergistically in producing a nonhydrostatic high-permeability lung edema in the isolated perfused rabbit lung within 4 h, which is substantially greater than that seen with hyperoxia alone. We hypothesized that the interaction between hyperoxia and granulocytes was principally due to a direct effect of hyperoxia on the lung itself. Isolated perfused rabbit lungs that were preexposed to 2 h of hyperoxia (95% O2-5% CO2) prior to the infusion of unstimulated granulocytes (under normoxic conditions) developed significant nonhydrostatic lung edema (P = 0.008) within 2 h when compared with lungs that were preexposed to normoxia (15% O2-5% CO2) prior to granulocyte perfusion. The edema in the hyperoxic-preexposed lungs was accompanied by significant increases in bronchoalveolar lavage (BAL) protein, BAL granulocytes, BAL thromboxane and prostacyclin levels, perfusate chemotactic activity, and lung lipid peroxidation. These findings suggest that the synergistic interaction between hyperoxia and granulocytes in producing acute lung injury involves a primary effect of hyperoxia on the lung itself.

6-Ketoprostaglandin F1 alpha

Granulocytes and hyperoxia act synergistically in causing acute lung injury.

Various indirect methods have implicated the polymorphonuclear leukocyte (PMN) as being an important, but not an absolutely necessary, factor in hyperoxia-associated pulmonary edema. By utilizing the cell free isolated perfused rabbit lung model, we demonstrated that the addition of purified, unstimulated granulocytes into the pulmonary artery of hyperoxia exposed lungs resulted in a synergistic edematogenic effect which was statistically significant (p less than 0.05) within only four hours. In addition, significant nonhydrostatic pulmonary edema was produced by both hyperoxia (p less than 0.02) and the addition of PMNs (p = 0.001) when these variables were independently analyzed. These findings help to establish a direct interaction between the role of the PMN and hyperoxia in high permeability lung edema.

Acute Disease