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Biomedical subjects

A A Fowler

Publications and source records attributed to A A Fowler.

At least 55 records · Page 3Linked to original sources

The neutrophil respiratory burst and tissue injury in septic acute lung injury: the effect of cyclooxygenase inhibition in swine.

Cyclooxygenase inhibition has been proposed as treatment for sepsis-induced acute lung injury. However, the mechanism of protection offered by the cyclooxygenase inhibitor ibuprofen is not well understood. To elucidate this mechanism, the effects of ibuprofen on the neutrophil respiratory burst and alveolar-capillary membrane leak were studied. Anesthetized swine (15 to 25 kg) were intubated and mechanically ventilated (fraction of inspired oxygen, 0.5). Control animals (n = 5) received a sham infusion of 0.9% NaCl, animals with sepsis (n = 10) received a 1-hour infusion of live Pseudomonas aeruginosa (5 x 10(8) colony-forming units/ml at 0.3 ml/20 kg/hr), and treated animals (ibuprofen-treated control animals [n = 4] or ibuprofen-treated animals with sepsis [n = 9]) received ibuprofen (12.5 mg/kg at 0 and 120 minutes). All animals were studied for 300 minutes. Neutrophils were isolated at 0, 60, and 300 minutes. Neutrophil superoxide anion production (O2-) was assessed in a kinetic fashion (in nanomoles per minute) by superoxide dismutase-inhibitable cytochrome C reduction (phorbol myristate acetate stimulation). Bronchoalveolar lavage protein estimation (0 and 300 minutes) and extravascular lung water (double indicator dilution) were performed to assess alveolar-capillary membrane leak. Ibuprofen significantly attenuated sepsis-enhanced maximum neutrophil generation of O2- (6.0 +/- 0.5 nmol/min for animals with sepsis, 300 minutes, vs 4.1 +/- 0.5 nmol/min for ibuprofen-treated animals, with sepsis, 300 minutes; p less than 0.05), indicating an in vivo down-regulatory effect on neutrophil oxidant generation. Ibuprofen also prevented increased airspace bronchoalveolar lavage protein and extravascular lung water accumulation, suggesting a protective effect on the alveolar-capillary membrane. This protective effect of ibuprofen in acute lung injury may be through a decreased neutrophil respiratory burst.

Acute Disease↗

Neutrophil short-lived oxidant production: enhancement following onset of sepsis-induced lung injury.

Generation of superoxide anion (O2-) by activated neutrophils (PMN) is implicated in the pathogenesis of endothelial cell injury in sepsis. To quantitate this phenomenon we studied the kinetics of O2- production by PMN following in vivo and in vitro exposure to Pseudomonas aeruginosa. PMN were isolated from young swine before and after a 1-hr infusion with 5 x 10(8) organisms/ml at 0.3 ml/20 kg/min. Baseline PMN were studied in an in vitro system where 1 x 10(6) porcine PMN were incubated with live Pseudomonas for 1 hr at 37 degrees C. Neutrophils from septic pigs exhibited a significantly increased (P less than 0.05) initial rate of O2 production, which was 125% greater at 2 min following initial stimulation than saline controls (P less than 0.001). Neutrophils exposed in vitro displayed a similar enhancement of the rate of O2- production; however, the rate was 3.6 times greater than that noted in vivo. The in vivo change in PMN oxidant generation was associated with a rise in both extravascular lung water (EVLW) and increased bronchoalveolar lavage protein (BAL-P) content. These data suggest that sepsis-induced acute lung injury is accompanied by "priming" of circulating PMN; however, important factors are present in the circulation in sepsis that serve to attenuate the damaging potential of PMN oxidant species.

Animals↗

CD18 adhesion receptors, tumor necrosis factor, and neutropenia during septic lung injury.

Sequestration of neutrophils (PMNs) in the pulmonary microvasculature and associated neutropenia are characteristic features of experimental models of septic lung injury. The etiology of altered PMN kinetics during septic lung injury is uncertain, but may be partially due to increased adhesiveness of activated PMNs to pulmonary endothelium. This study examines the relationship between the expression of PMN CD18 adhesion receptors, the evolving neutropenia, and plasma tumor necrosis factor (TNF) activity in a porcine model of septic lung injury. Acute lung injury was induced by infusion of live Pseudomonas aeruginosa (5 x 10(8) CFU/ml at 0.3 ml/20 kg/min) for 60 min (Group Ps, n = 6). Control animals (Group C, n = 3) received a 60-min infusion of sterile 0.9% saline. CD18 expression of circulating PMNs was measured by quantitative immunofluorescent flow cytometry. Plasma TNF activity was measured by L929 fibroblast cytolytic assay. Group Ps developed a significant neutropenia by 30 min (14.9 +/- 2.5 vs 23.4 +/- 3.3 x 10(3) cells/microliter at baseline, P less than 0.05, ANOVA) with circulating neutrophils exhibiting significantly increased CD18 expression by 60 min (6.34 +/- 0.72 vs 5.01 +/- 0.52 equivalent soluble fluorescence molecules (ESFM) x 10(3) at baseline, P less than 0.05, ANOVA). Group Ps demonstrated a significant increase in plasma TNF activity by 30 min (2.5 +/- 0.9 vs 0.7 +/- 0.3 U/ml at baseline). There was no significant change in PMN count, PMN CD18 expression, or plasma TNF activity in Group C. In complimentary in vitro studies, porcine PMNs stimulated with recombinant human TNF-alpha (n = 5) demonstrated a time- and dose-dependent increase in CD18 expression.(ABSTRACT TRUNCATED AT 250 WORDS)

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In situ pulmonary vascular perfusion for improved recovery of pulmonary intravascular macrophages.

The microcirculation contains mononuclear phagocytes, with features characteristic of macrophages, adhered to luminal capillary surfaces by intercellular adhesion plaques. These pulmonary intravascular macrophages may play an important role in regulating lung vascular tone and capillary permeability, and may modulate capillary endothelial cell growth and replication by the secretion of soluble mediators (i.e., arachidonate metabolites, cytokines). This study describes a technique which utilizes in situ lung perfusion to remove intravascular macrophages in large numbers from the microcirculation of porcine lung (n = 26). This technique yielded 3.8 +/- 0.5 x 10(8) (mean +/- SEM) mononuclear cells which were highly phagocytic toward particulate carbon (phagocytic index, 80 +/- 6%). Harvested mononuclear phagocytes reestablished intercellular adhesion plaques when placed on small vessel porcine pulmonary artery endothelial cell monolayers and exhibited histochemical characteristics typical of monocyte/macrophage lineage cells. Mononuclear cells obtained from lung microcirculation displayed size heterogeneity varying from 10.4 to 16.5 microns in diameter. Both large and small cell populations phagocytosed particulate carbon. Morphometric studies performed on collagenase-treated lung demonstrated that in situ perfusion removed significant numbers of intravascular macrophages in lung capillaries. The technique described permits the rapid removal of anchored mononuclear phagocytes from lung capillaries with minimal postmortem delay.

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Delayed cyclo-oxygenase blockade reduces the neutrophil respiratory burst and plasma tumor necrosis factor levels in sepsis-induced acute lung injury.

Ibuprofen pretreatment attenuates the enhanced neutrophil (PMN) respiratory burst and reduces increased plasma tumor necrosis factor (TNF) activity in porcine sepsis-induced acute lung injury (ALI). These septic responses have been linked to increased alveolar-capillary membrane (ACM) permeability. This study was designed to establish whether delayed ibuprofen treatment would have the same effect and to examine the relationship between PMN oxidant generation and TNF. Three groups of anesthetized, ventilated pigs (15-25 kg) were used. Group Ps received Pseudomonas aeruginosa (5 x 10(8) CFU/mL at 0.3 mL/20 kg/min) for one hour IV; The control group (Con) received 0.9% NaCl. Group D-Ibu received ibuprofen 12.5 mg/kg as a delayed bolus at 30 minutes and again at 120 minutes after Ps. Protein (BAL-P, microgram/mL) in harvested bronchoalveolar lavage fluid and extravascular lung water (EVLW, mL/kg) were used to estimate the integrity of the ACM. Superoxide anion (O2-) generation (ferricytochrome c reduction) from circulating PMNs and plasma TNF activity (L929 fibroblast bioassay) were measured. The EVLW increased significantly (p less than 0.05), as did BAL-P (p less than 0.01), in the P. aeruginosa-treated animals at 300 minutes. These increases were abolished in Group D-Ibu: EVLW, 6.6 +/- 1.0 baseline vs. 14.6 +/- 2.6 Ps 300 vs. 6.8 +/- 0.9 D-Ibu 300; BAL-P, 175 +/- 28 baseline vs. 984 +/- 186 Ps 300 vs. 284 +/- 42.8 D-Ibu 300. Both enhanced PMN oxidant activity and increased plasma TNF activity were significantly attenuated by delayed ibuprofen treatment. These data support the efficacy of the nonsteroidal anti-inflammatory drug, ibuprofen, when used after the onset of a septic stimulus.

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Ibuprofen attenuates plasma tumor necrosis factor activity during sepsis-induced acute lung injury.

Plasma tumor necrosis factor (TNF) activity, cardiac index, extravascular lung water, systemic and pulmonary arterial pressures, pulmonary vascular resistance index, and arterial PO2 were monitored for 300 min in four groups of anesthetized pigs: saline-infused animals (n = 5), saline-infused animals given ibuprofen (12.5 mg/kg iv) at 0 and 120 min (n = 4), animals infused for 60 min with live Pseudomonas aeruginosa (Ps, 5 x 10(8) organisms/ml at 0.3 ml.20 kg-1.min-1, n = 6), and animals infused for 60 min with Ps plus ibuprofen administered at 0 and 120 min (n = 4). Infusion of Ps induced significant elevations (greater than 4-fold increase in units/ml of TNF by 60 min, P less than 0.05) in plasma TNF activity (L929 cytolysis assay) and alterations (P less than 0.05) in all hemodynamic and pulmonary parameters within 30-60 min. Ibuprofen administration in sepsis significantly decreased peak TNF activity by 2 units/ml and attenuated many of the physiological alterations due to sepsis. These results show that ibuprofen attenuates sepsis-induced injury and that alterations of acute septic insult are correlated with reduced plasma TNF activity in septic animals given ibuprofen.

Acute Disease↗

Sepsis-induced lung injury and the effects of ibuprofen pretreatment. Analysis of early alveolar events via repetitive bronchoalveolar lavage.

Current knowledge of alveolar pathophysiology during early sepsis-induced acute lung injury (ALI) and the role of resident alveolar macrophages (AM) in mediating alveolar inflammatory events during sepsis is limited. Further, the effects of ibuprofen pretreatment upon alveolar pathophysiology and AM function during early sepsis-induced ALI is unclear. Utilizing repetitive bronchoalveolar lavage (BAL) in a porcine model of sepsis-induced ALI, we studied changes in alveolar cellular constituents, BAL protein content and molecular composition, and AM superoxide anion (O2-.) generation during early sepsis. The neutrophil percentage of recovered alveolar cells (17 +/- 8%, t = 300 min versus 2 +/- 1%, t = 0; p = 0.06) and the bronchoalveolar lavage total protein content (493 +/- 110 micrograms/ml, t = 300 min versus 109 +/- 18 micrograms/ml, t = 0; p less than 0.05) increased in septic animals. Increases in BAL fluid total protein were primarily due to low-molecular-weight plasma protein, indicating relative preservation of alveolar-capillary membrane size selectivity. Alveolar macrophages harvested following 300 min of sepsis generated significantly less O2-. following phorbol myristate acetate (PMA) stimulation compared to AM harvested at baseline. Ibuprofen pretreatment of septic animals completely blocked leakage of plasma proteins into the alveoli and attenuated neutrophil migration but did not prevent downregulation of AM O2-. generation. Increased alveolar-capillary membrane permeability, neutrophil migration into the alveoli, and downregulation of AM oxidant generation occur within hours of the onset of sepsis. Ibuprofen pretreatment significantly attenuates early sepsis-induced ALI without altering sepsis-induced AM dysfunction.

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Tumor necrosis factor. Alpha and beta subtypes appear in circulation during onset of sepsis-induced lung injury.

Tumor necrosis factor (TNF) may be involved in the pathogenesis of acute lung injury (ALI) associated with septicemia. Therefore, we measured plasma TNF activity during sepsis and development of lung injury in a porcine model of ALI. Plasma samples were obtained from anesthetized saline-infused control pigs (n = 10) and those infused for 1 h with live Pseudomonas aeruginosa (10(8) organisms/ml, 0.3 ml/20 kg/min) (n = 16). TNF activity was measured in plasma using the L929 fibroblast cytolytic assay. L929 cytotoxicity caused by TNF-alpha or TNF-beta was determined in plasma by measuring the cytotoxicity neutralized by TNF antisera. No significant TNF activity was detected in control pig plasma. In septic pigs, TNF activity appeared in plasma 15 min after onset of septicemia and remained elevated throughout the experiment (6.1 +/- 10.2% to 80.0 +/- 5.0%, 15 and 300 min, respectively). The appearance of pulmonary arterial hypertension, increased lung water, decreased lung compliance, and deteriorating gas exchange was correlated with the rise in plasma TNF activity, which reached a peak at 90 to 120 min in septic pigs. Our results provide evidence that both TNF subtypes are present in plasma during septicemia. Anti-TNF-alpha and anti-TNF-beta neutralized TNF activity in whole septic plasma at 15, 30, and 45 min after onset of septicemia, and the antibodies blocked TNF activity in serially diluted septic plasma at all time points up to 210 min of sepsis. TNF activity in septic plasma at 210 to 300 min was not neutralized entirely by TNF antisera.(ABSTRACT TRUNCATED AT 250 WORDS)

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Tumor necrosis factor levels in serum and bronchoalveolar lavage fluid of patients with the adult respiratory distress syndrome.

Tumor necrosis factor (TNF) was measured antigenically and functionally in serum and bronchoalveolar lavage fluid (BAL) of patients with ARDS and those at high risk for ARDS. Of 22 patients with ARDS, 14 had sepsis or serious infection as the major clinical predisposition, and 10 of 20 high-risk patients had sepsis or serious infection. Mean levels of TNF in serum of patients with ARDS and high risk showed a trend toward elevation but were not significantly higher than mean serum levels in normal subjects. Mean levels of TNF in BAL of ARDS patients (242 +/- 126 pg/ml) were significantly higher than in normal subjects (9 +/- 5 pg/ml), p less than 0.05. Antigenic levels of TNF were undetectable in approximately half the patients with ARDS or the high-risk state. Levels of TNF in BAL appeared to be highest in the first day of ARDS. There appeared to be no relationship between levels of TNF in serum or BAL and subsequent mortality. However, serum levels of TNF were significantly higher in septic patients than in nonseptic patients, whereas this difference was not apparent in BAL. These results show that functional and antigenic elevations of TNF are present in BAL and perhaps in serum of patients with ARDS or with the high-risk state.

Adult↗

Surfactant chemical composition and biophysical activity in acute respiratory distress syndrome.

Acute Respiratory Distress Syndrome (ARDS) is characterized by lung injury and damage to the alveolar type II cells. This study sought to determine if endogenous surfactant is altered in ARDS. Bronchoalveolar lavage was performed in patients at-risk to develop ARDS (AR, n = 20), with ARDS (A, n = 66) and in normal subjects (N, n = 29). The crude surfactant pellet was analyzed for total phospholipids (PL), individual phospholipids, SP-A, SP-B, and minimum surface tension (STmin). PL was decreased in both AR and A (3.48 +/- 0.61 and 2.47 +/- 0.40 mumol/ml, respectively) compared to N (7.99 +/- 0.60 mumol/ml). Phosphatidylcholine was decreased in A (62.64 +/- 2.20% PL) compared to N (76.27 +/- 2.05% PL). Phosphatidylglycerol was 11.58 +/- 1.21% PL in N and was decreased to 6.48 +/- 1.43% PL in A. SP-A was 123.64 +/- 20.66 micrograms/ml in N and was decreased to 49.28 +/- 21.68 micrograms/ml in AR and to 29.88 +/- 8.49 micrograms/ml in A. SP-B was 1.28 +/- 0.33 micrograms/ml in N and was decreased to 0.57 +/- 0.24 micrograms/ml in A. STmin was increased in AR (15.1 +/- 2.53 dyn/cm) and A (29.04 +/- 2.05 dyn/cm) compared to N (7.44 +/- 1.61 dyn/cm). These data demonstrate that the chemical composition and functional activity of surfactant is altered in ARDS. Several of these alterations also occur in AR, suggesting that these abnormalities occur early in the disease process.

Acute Disease↗

Anti-CD18 antibody attenuates neutropenia and alveolar capillary-membrane injury during gram-negative sepsis.

Activated polymorphonuclear leukocytes (PMNs) are implicated in the pathogenesis of acute lung injury (ALI) associated with sepsis. Adhesion of activated PMNs to endothelial monolayers is mediated by the CD18 adhesion-receptor complex on the PMN cell surface. Monoclonal antibody 60.3 (MoAb 60.3) blocks CD18-dependent PMN-endothelial adhesion in vitro and in vivo. This study was designed to determine the role of CD18-dependent PMN adhesion in ALI associated with gram-negative sepsis. Anesthetized, ventilated (FiO2 0.5, positive end-expiratory pressure 5 cm H2O) pigs received sterile saline (control, n = 8) or live Pseudomonas aeruginosa, 5 x 10(8) colony-forming units/ml at 0.3 ml/20 kg/min (septic, n = 9) for 1 hour. A third group (n = 7) received MoAb 60.3, 2 mg/kg intravenously, 15 minutes before Pseudomonas infusion. Animals were studied for 300 minutes. MoAb 60.3 significantly (p less than 0.05) attenuated the neutropenia seen in sepsis (15 +/- 1 vs 6 +/- 1 x 10(3) PMNs/mm3 at 300 min). Alveolar-capillary membrane injury was assessed by bronchoalveolar-lavage protein content and extravascular lung water determination. MoAb 60.3 significantly (p less than 0.05) reduced BAL protein at 300 minutes (388 +/- 75 vs 1059 +/- 216 micrograms/ml in septic animals) and attenuated the increase in extravascular lung water to 240 minutes (7.1 +/- 2 vs 14.2 +/- 1.2 ml/kg in septic animals). Systemic hypotension, decreased cardiac index, pulmonary hypertension, and relative hypoxemia, all characteristic of this model, were not altered by MoAb 60.3. These data suggest that, in this model of septic ALI, neutropenia is, in part, CD18 dependent and that blocking CD18-dependent PMN adhesion protects the alveolar-capillary membrane independently of altered hemodynamic status.

Acute Disease↗

Ibuprofen prevents deterioration in static transpulmonary compliance and transalveolar protein flux in septic porcine acute lung injury.

UNLABELLED: The effects of intravenous ibuprofen on measurements of pulmonary function and alveolar capillary membrane permeability to protein in sepsis-induced porcine acute lung injury (ALI) were studied. Young swine (15-25 kg) were anesthetized, cannulated, and ventilated (5 cm H2O PEEP, 0.5 FIO2, and 15 cc/kg tidal volume). Three groups were studied: septic animals (Ps, n = 10) received Pseudomonas aeruginosa for 1 hr IV, controls (C, n = 9) received 0.9% NaCl, and ibuprofen-treated septic animals (Ps + Ibu, n = 7) received ibuprofen 12.5 mg/kg at 0 and 120 min post Ps. Systemic (SAP) and pulmonary (PAP) arterial pressures, PaO2, cardiac index (CI), static lung compliance (CL), EVLW (thermal cardiogreen), and peripheral white blood cell counts (WBC) were measured. Bronchoalveolar lavage (BAL) was performed for protein and % neutrophil (%PMN) content. RESULTS: Ps produced significant (p less than 0.05) decreases in CL, PaO2, SAP, CI, and peripheral WBC and increases in PAP, EVLW, BAL protein, and %PMN's vs. controls. Ibu prevented the early increase in PAP and attenuated the late increase in PAP and EVLW. Ibu also maintained PaO2, CL, BAL protein, and %PMN's in BAL at control levels, but exhibited no significant effect on peripheral leukopenia. These data strongly suggest that ibuprofen administered before and at 120 min after onset of Pseudomonas infusion improves lung compliance and affects neutrophil function sufficiently to significantly ameliorate many of the physiologic derangements in acute sepsis.

Acute Disease↗

Ibuprofen attenuates hypochlorous acid production from neutrophils in porcine acute lung injury.

UNLABELLED: Hypochlorous acid (HOCl), a neutrophil-generated oxidant, has been implicated in tissue destruction in sepsis-induced acute lung injury (ALI). Ibuprofen, a cyclooxygenase inhibitor, successfully attenuates many of the physiological derangements in ALI. The aim of this study was to examine the role of PMN hypochlorous acid in sepsis-induced ALI and evaluate the effect of ibuprofen therapy. Neutrophils from three groups of young (15-25 kg), anesthetized swine were studied: controls (C, n = 7) received 0.9% NaCl, septic animals (Ps, n = 8) received live Pseudomonas aeruginosa (5 x 10(8) CFU/ml at 0.3 ml/20 kg/min) for 60 min, and ibuprofen-treated animals (Ps + I, n = 6) received Ps plus ibuprofen 12.5 mg/kg administered at 0 and 120 min. Neutrophils were isolated from peripheral blood at 0, 60, and 300 min and the rate and total production of HOCl were assessed on the basis of the ability of the amino acid taurine to trap HOCl. RESULTS: Septic (Ps) PMNs produce 32% more HOCl, P less than 0.01, at 300 min than at baseline which was associated with a marked increase in both extravascular lung water (6.44 +/- 0.8 ml/kg, t = 0 vs 16.03 +/- 2.6 ml/kg, t = 300, P less than 0.01) and bronchoalveolar protein content (115 +/- 13 micrograms/ml, t = 0 vs 633 +/- 104 micrograms/ml, t = 300, P less than 0.01). Ibuprofen significantly attenuated (P less than 0.05) HOCl production when compared to Ps, in conjunction with significantly (P less than 0.05) reduced levels of extravascular lung water and bronchoalveolar lavage protein.

Animals↗

In vivo interleukin-2 activated sheep lung lymph lymphocytes increase ovine vascular endothelial permeability by non-lytic mechanisms.

Therapeutic doses of recombinant interleukin-2 (rIL-2) often result in systemic toxicity consistent with increased vascular permeability. rIL-2 activated lymphocytes (IALs) may produce endothelial dysfunction and have cytolytic potential. However, much of the data on IAL cytotoxicity comes from the use of in vitro activated IALs. Alternatively, rIL-2 may enhance permeability directly or via release of various cytokines by host effector cells. The cytotoxicity of in vivo activated lung lymph lymphocytes has been studied in an ovine model of rIL-2 toxicity. The in vivo IALs had no significant endothelial cytolysis at effector to target ratios of 100:1. However, the in vivo IALs increased endothelial monolayer permeability to albumin, dependent on the concentration of IALs. rIL-2 induced no endothelial cytolysis or permeability alterations at doses of 10(5) and 2 x 10(5) U/ml, respectively. These findings suggest that the acute endothelial dysfunction characteristic of the vascular leak syndrome is not due to rIL-2 directly, but is mediated by in vivo IALs via non-cytolytic mechanisms and/or the release of secondary cytokines in response to rIL-2.

Albumins↗

Nonspecific cytotoxicity of recombinant interleukin-2 activated lymphocytes.

The administration of interleukin-2 (IL-2) and lymphokine activated killer (LAK) cells to patients with advanced metastatic cancer has yielded encouraging results. The purported ability of LAK cells to be discriminatively tumoricidal, thus sparing normal host tissue, represents a major advance over conventional chemotherapy. However, IL-2 adoptive immunotherapy results in dose-limiting toxicity characterized by weight gain, dyspnea, ascites, and peripheral-pulmonary edema suggestive of a vascular leak syndrome. It is unclear whether the observed toxicity is directly related to IL-2 and/or LAK cells. The authors examined the cytolytic nature of human LAK cells against human endothelial, epithelial, and fibroblast cell lines. Bovine endothelial cells also were studied. Using a 51Cr release assay, the cytolytic potential, time course, and effect of reactive oxygen intermediate inhibitors were studied. LAK cells were uniformly toxic against all cell lines, in contrast to high dose rIL-2 and excipient. Significant cytolysis was observed within 30 minutes and increased over the first 2 hours of LAK cells coming in contact with target cells. Reactive oxygen intermediate inhibitors did not reduce cytolytic activity. The authors thus found human LAK cells to be rapidly cytolytic against a variety of human and bovine cell lines. This cytolysis was independent of reactive oxygen intermediates.

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Cardiorespiratory and cellular changes with interleukin 2 infusion in sheep.

Recombinant interleukin 2 (rIL-2) administration, a new form of therapy for patients with far-advanced cancer, is associated with a "third space" syndrome, i.e., pulmonary edema, respiratory distress, and hypoxemia, which limits the dose and duration of treatment. To extend our knowledge regarding this toxicity, we established a sheep chronic lung lymph fistula model and measured hemodynamics, arterial blood gases, caudal mediastinal (lung) lymph flow (QL), and blood and lung lymph cellular changes before, during, and after (recovery) a 3-day continuous rIL-2 infusion (9 x 10(5) U/kg). Moderate systemic hypotension, mild pulmonary hypertension, and an increase in alveolar-arterial PO2 gradient was present on day 3 of rIL-2 infusion. QL increased from a base line of 1.9 +/- 0.2 to a maximum of 4.3 +/- 1.1 ml/15 min on day 3 of rIL-2 infusion. At no time was there a change in lymph-to-plasma protein ratio. The leukocyte count increased significantly to 16.1 +/- 4.5 x 10(3) cells/mm3 at recovery day 1. The percentage of blood lymphocytes decreased significantly by day 1 of rIL-2 infusion, returned to base-line levels on day 3, and significantly increased on day 2 of recovery. Lung lymph lymphocytes decreased significantly on days 1 and 2 of rIL-2 infusion. There was a shift in their size; i.e., their area increased from 32 +/- 7 to 57 +/- 19 micron 2 (P less than 0.05) by day 2 of rIL-2 infusion. By day 1 of recovery, lung lymph lymphocyte counts increased significantly.(ABSTRACT TRUNCATED AT 250 WORDS)

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Immunoreactive interleukin-1 in bronchoalveolar lavage fluid of high-risk patients and patients with the adult respiratory distress syndrome.

The adult respiratory distress syndrome (ARDS) is characterized by increased neutrophils and macrophages in bronchoalveolar lavage (BAL) fluid. Interleukin-1 (IL-1), an inflammatory mediator produced by macrophages, has been shown to be chemotactic for neutrophils and to stimulate lymphocyte activation and proliferation of fibroblasts. BAL was performed in patients with ARDS, patients at high risk to develop ARDS, and in normal nonsmokers. After removal of cells and surfactant-complexed lipids by centrifugation, the remaining supernatant was concentrated by ultrafiltration utilizing membranes retaining substances greater than 5000 daltons. The concentrate was assayed for immunoreactive IL-1 beta by a radioimmunoassay method. Patients with ARDS (n = 9) had an IL-1 level of 184 +/- 67 pg/ml, high-risk patients (n = 9) had 172 +/- 62 pg/ml, and normals (n = 10) had 4 +/- 1 pg/ml. There was a significant (p less than or equal to .05) increase in IL-1 in the ARDS and risk groups compared to normals. IL-1 was detected in serum from patients with ARDS (n = 19), high risk (n = 19), and normals (n = 8), but no difference was noted among the three groups. BAL cell differentials revealed that neutrophils were increased (p less than .05) in both the ARDS (59 +/- 10%) and high-risk (65 +/- 8%) groups compared to normals (2 +/- 1%). There was a correlation (r = 0.64, p less than .001) between IL-1 levels and BAL protein concentration. BAL IL-1 levels were highest in patients with the fully developed syndrome but were also elevated in patients at high risk. The absence of significant amounts of IL-1 in serum suggests that it may be produced within the lung.

Adult↗

A comparison of the cardiopulmonary effects of continuous versus bolus infusion of recombinant interleukin-2 in sheep.

The systemic administration of recombinant interleukin-2 (rIL-2) is used for the treatment of patients with far advanced cancer. However, treatment may be limited by a so-called "third space" syndrome. Whether these side effects are due to the total dose used or the method of administration is unclear. To define whether the continuous (Group 2) or bolus (Group 3) i.v. infusion of 9 x 10(5) units/kg rIL-2 over 72 h is associated with similar toxicities, we established a chronic sheep model and monitored changes in systemic and pulmonary vascular pressures, cardiac function, and gas exchange. At 72 h lung lymph flow, lymph/plasma protein ratios, lung histology, and extravascular lung water/dry lung weight were obtained. In both groups the infusion of rIL-2 resulted in an increase in high protein lung lymph flow, an increase in cardiac output, and a decrease in systemic vascular resistance. Large lymphoid cells were found by histology to be infiltrating the lung interstitium. In Group 2, in addition, there were mild pulmonary hypertension [pulmonary artery pressures increased from 14 +/- 5 to 22 +/- 6 mmHg (P less than 0.05)], systemic hypotension [81 +/- 7 compared to a baseline of 95 +/- 9 mmHg (P less than 0.01)], and worsening gas exchange. We conclude that a 72-h continuous or bolus infusion of equivalent doses of rIL-2 are associated with cardiopulmonary toxicity; however, pulmonary hypertension, systemic hypotension, and gas exchange are worse in animals receiving the continuous infusion.

Animals↗