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Biomedical subjects

D G Remick

Publications and source records attributed to D G Remick.

At least 91 records · Page 5Linked to original sources

Immunological priming attenuates the in vivo pathophysiological response to lipopolysaccharide. Comparison of cytokine production, tissue injury, and lethality in complete Freund's adjuvant-primed mice and in unprimed mice.

Previous reports have indicated that immunological priming of animals will result in increased cytokine production and enhanced susceptibility to the toxicity of cytokines. We primed mice with complete Freund's adjuvant and challenged 2 weeks later with 1 mg/mouse of lipopolysaccharide. Primed mice produced less tumor necrosis factor than naive mice (35 +/- 8 vs 108 +/- 20 ng/ml) and also less interleukin-6 (182 +/- 37 vs 6.39 +/- 155 ng/ml). Leukopenia developed only in the naive mice. Although neutropenia and lymphocytosis developed in both groups, the alterations manifested themselves more quickly in primed mice. Primed mice had substantially greater pulmonary neutrophil sequestration determined both enzymatically and histologically but no lung damage. However, primed mice had significantly less small bowel damage than naive mice. Mortality was substantially reduced in primed mice compared with unprimed mice. These results demonstrate that immunological priming in vivo decreases cytokine production in response to lipopolysaccharide challenge, decreases organ injury, and reduces mortality.

Animals↗

Regulation of interleukin 8 gene expression by oxidant stress.

Interleukin 8 (IL-8) is a recently described cytokine that functions as a potent neutrophil chemoattractant and activator. We sought to examine the link between the generation of reactive oxygen intermediates (ROI) and the regulation of IL-8 gene expression to specifically test the hypothesis that ROI would induce production of IL-8 mRNA and protein. In lipopolysaccharide-stimulated human whole blood, the OH radical scavenger dimethyl sulfoxide (Me2SO) dramatically inhibited (approximately 90%) IL-8 production, but had minimal effects on the production of tumor necrosis factor, interleukin 1 beta (IL-1), and IL-6. To determine whether NADPH-oxidase-generated free radicals were critical in the regulation of IL-8, studies were performed using blood from patients with chronic granulomatous disease. In both normal individuals and patients with chronic granulomatous disease, production of IL-8 could be initiated with lipopolysaccharide, phytohemagglutinin, or aggregated immune complexes, and this production could be inhibited by Me2SO (1% v/v). To examine if oxidant stress represents a ubiquitous mechanism for the induction of IL-8, experiments were performed in cultured cell lines. In the human hepatoma cell line Hep-G2, Me2SO dose-dependently inhibited tumor necrosis factor-stimulated IL-8 production, with a 74 +/- 1% reduction observed at a Me2SO concentration of 1%. Direct exposure to ROI demonstrated that H2O2 stimulated IL-8 production in a dose-dependent manner in Hep-G2 cells, A549 pulmonary type II epithelial cells, and human skin fibroblasts; this induction could be prevented by addition of catalase. The production of IL-8 appeared to be specific to an oxidant stress since exposure of the cells to heat shock or chemical stress did not induce expression of IL-8. These studies demonstrate that oxidant stress is an important regulator of IL-8 gene expression and support the hypothesis that low levels of ROI may serve to initiate IL-8 production which then serves to recruit neutrophils to sites of inflammation.

Antioxidants↗

Tumor necrosis factor, interleukin 6, and the acute phase response following hepatic ischemia/reperfusion.

We report here the production of systemic levels of tumor necrosis factor (TNF) and interleukin 6 (IL-6) and associated changes in serum macroglobulin to albumin ratios in a nonlethal rat model of partial hepatic ischemia/reperfusion (I/R). Plasma IL-6 was detectable and elevated at 1 hr of reperfusion as compared to sham-operated controls (I/R rats = 12,100 +/- 3860 pg/ml; sham rats = 5260 +/- 842 pg/ml; IL-6 values = means +/- SEM) and reached maximal levels at 6 hr of reperfusion (I/R rats = 47,400 +/- 25,700 pg/ml; sham rats = 3370 +/- 394 pg/ml), in contrast to maximal TNF levels at 30 min of reperfusion (I/R rats = 72 +/- 15 pg/ml; sham rats = 2 +/- 2 pg/ml; TNF values = means +/- SEM). Pretreatment with neutralizing TNF antisera prior to ischemia resulted in a reduction of IL-6 at 1 hr of reperfusion (anti-TNF = 3870 +/- 2550 pg/ml; control serum = 7650 +/- 1670 pg/ml), but was without effect on IL-6 levels at subsequent time points over the 24 hr of reperfusion. Electrophoretic determination of macroglobulin (alpha 1 + alpha 2) and albumin concentrations in sham-operated and ischemia/reperfusion animals demonstrated an elevation in the macroglobulin/albumin ratio in both groups over time, suggestive of an acute phase response, and the ratio was unchanged by immunoneutralization of TNF prior to ischemia/reperfusion. We conclude that this model of hepatic ischemia/reperfusion results in temporally distinct systemic elevations in IL-6 and TNF; however, the induction of IL-6 and the associated changes in serum macroglobulin concentration are independent of TNF.

Animals↗

Pathophysiologic alterations induced by tumor necrosis factor.

Work from several laboratories has documented that TNF is toxic in vivo. The data are sufficiently compelling that there is little doubt that this small peptide mediator can induce altered pathophysiology and tissue damage if injected in large quantities. Whereas injection of high-dose, exogenous rHu-TNF results in toxicity, and the production of very high levels in lethal septic shock is detrimental, the exact role of this molecule in inflammation is yet to be defined completely. At low, physiologic levels, TNF may be a necessary component required to orchestrate an effective immune response to a successful resolution. Several works have shown that inhibition of TNF with specific antibodies in models of bacterial infection can decrease survival (Havell, 1987; Echtenacher et al., 1990). Clearly, further work must be done to resolve the issue of the exact role of TNF in organ injury during septic shock.

Animals↗

Correlation of the local and systemic cytokine response with clinical outcome following thermal injury.

Eighty-eight patients with acute thermal injury were evaluated. Forty-eight hours after injury, TNF, IL-6, and IL-8 were significantly present in the systemic circulation, lung, normal skin, and thermally injured skin. The presence of TNF, IL-6, and IL-8 proteins in the lung, normal skin, and thermally injured skin were associated with TNF, IL-6, and IL-8 mRNA upregulation. Logistic regression analysis controlling for the Abbreviated Burn Severity Index demonstrated that the presence of IL-8 in the lung was associated with early pulmonary physiologic dysfunction (p = 0.006) and nosocomial pulmonary infection (p = 0.040). We conclude that acute thermal injury initiates an early systemic, lung, and skin response involving TNF, IL-6, and IL-8. The TNF, IL-6, and IL-8 protein present in the lung and skin in response to acute thermal injury are generated locally and do not originate from the systemic cytokine pool. The lung cytokine response to acute thermal injury may initiate local organ failure.

Adult↗

Mycobacterial 65-kD heat shock protein induces release of proinflammatory cytokines from human monocytic cells.

Monocytes having phagocytosed mycobacteria are known to present the bacterial 65-kD heat shock protein (hsp) on their cell surface to alpha beta and gamma delta T lymphocytes. Cytotoxic CD4+ cells may then lyse monocytes expressing mycobacterial 65-kD hsp. However, it is not known whether 65-kD hsp directly stimulates monocyte functions other than antigen presentation. This study has demonstrated that following extraction of bacterial lipopolysaccharide, purified recombinant mycobacterial 65-kD hsp may directly activate THP-1 cells, a human monocytic line, to accumulate mRNA for and secrete tumour necrosis factor (TNF), a cytokine important in granuloma formation, the characteristic host immune response to mycobacterial infection. TNF gene expression and secretion following stimulation by hsp was dose-dependent and abolished by heat-induced proteolysis. Subsequently, THP-1 cells secreted IL-6 and IL-8, cytokines involved in recruitment and differentiation of T lymphocytes. The data indicate that secretion of proinflammatory cytokines from monocytes activated by mycobacterial 65-kD hsp may be important in the host immune response and in the development of antigen-specific T cell-mediated immunity.

Bacterial Proteins↗

Differential cytokine gene expression and secretion after phagocytosis by a human monocytic cell line of Toxoplasma gondii compared with Mycobacterium tuberculosis.

Toxoplasma gondii infection may be clinically silent in immunocompetent individuals but may cause fatal disease in immunocompromised patients such as those with HIV infection. Proinflammatory cytokines are known to be important in murine resistance to T. gondii but there are no data from human models of infection. We have investigated whether phagocytosis of T. gondii, of Mycobacterium tuberculosis (a pathogen which elicits a granulomatous host immune response) and of inert latex particles by THP-1 cells, a human monocytic line, caused gene expression and secretion of tumour necrosis factor (TNF), IL-6 and IL-8. These cytokines are important in recruitment and activation of T lymphocytes, and both TNF and IL-6 may have direct antitoxoplasmacidal and antimycobacterial activity. Phagocytosis of T. gondii by THP-1 cells resulted in minimal gene expression and secretion of TNF, IL-6 and IL-8 similar to that following phagocytosis of inert latex particles. In contrast, phagocytosis of M. tuberculosis resulted in increased gene expression of TNF and IL-8 as well as increased secretion of all three cytokines, particularly IL-8. These observations may partially explain the frequency of non-inflammatory host responses to T. gondii in immunocompetent individuals.

Animals↗

Regulation of rat pulmonary endothelial cell interleukin-6 production by bleomycin: effects of cellular fatty acid composition.

Previous studies have shown upregulation of lung cell interleukin-6 (IL-6) production in bleomycin-induced pulmonary fibrosis. To further elucidate the regulatory mechanisms governing this disease, the effects of bleomycin on the production of the pleiotropic cytokine, IL-6, were investigated in lung endothelial cells. Rat pulmonary artery endothelial cells were treated with bleomycin at doses previously shown to be effective in upregulating cytokine production in these cells, and the conditioned media was collected and assayed for IL-6 activity. The results show that these endothelial cells constitutively produced IL-6 and that bleomycin increased the production in a time- and dose-dependent manner. Feeding rats diets deficient in n-6 fatty acids is known to ameliorate bleomycin-induced lung fibrosis. In order to examine if fatty acids could modulate IL-6 production in vitro, cells were lipid depleted and then supplemented with 18:1n-9, 18:2n-6, or 18:3n-3 fatty acids, and the effects of bleomycin on IL-6 production reexamined. This regimen resulted in significant depletion of arachidonate in the 18:1n-9 and 18:3n-3 supplemented cells, which was associated with significantly reduced IL-6 production relative to the 18:2n-6-supplemented cells, both constitutively and when stimulated with bleomycin. Preincubation with indomethacin did not significantly inhibit the production of IL-6 by all three groups of cells, nor did supplementation with a stable prostacyclin analog increase IL-6 production. These results suggest that endothelial cell IL-6 production is not directly dependent on prostacyclin or other cyclooxygenase metabolites but may require or be upregulated by 18:2n-6 and/or metabolites derived from it.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Halothane inhibits the intraalveolar recruitment of neutrophils, lymphocytes, and macrophages in response to influenza virus infection in mice.

The effect of halothane anesthesia on the influenza A specific immune response and the pathogenesis of infection was evaluated in mice. Three-wk-old CD-1 mice were anesthetized with either 2% halothane for 2 h or ketamine (100 mg/kg intraperitoneally) and subsequently inoculated intranasally with a sublethal dose of influenza type A/PR/8/34 virus. Bronchoalveolar lavage was performed on animals from each group at 4 h postinoculation and daily thereafter for 14 days. Total and differential white blood cell counts were measured in the lavage fluid and the lungs were examined histologically for evidence of injury. Infected mice anesthetized with halothane had lower daily cell counts in the lung than animals anesthetized with ketamine and a marked change in cell type distribution. On Days 4 and 11 postinoculation, there were significantly (P < 0.05) more white blood cells in the lavage fluid of animals anesthetized with ketamine than halothane (mean/mL, 738,000 +/- SEM, 128,000 vs 196,000 +/- 51,400, respectively, and 1,020,000 +/- 227,000 vs 117,000 +/- 34,600, respectively). Differential counts were significantly higher (P < 0.05) in the ketamine group compared to the halothane for neutrophils on Day 4 (452,000 +/- 77,900 vs 72,000 +/- 46,000, respectively) and on Day 11 for lymphocytes (340,000 +/- 59,000 vs 33,000 +/- 17,000, respectively) and macrophages (480,000 +/- 120,000 vs 130,000 +/- 61,000). Infected mice that were given ketamine were qualitatively "sicker" than the halothane-treated group as evidenced by the appearance of ruffled fur, tachypnea, and cachexia. Animals anesthetized with ketamine demonstrated a greater degree of pulmonary histopathology including diffuse infiltration of macrophages, neutrophils, hemorrhage, and fibrin deposition.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Requirements for tumor necrosis factor-alpha and interleukin-1 in limb ischemia/reperfusion injury and associated lung injury.

Ischemia in rat hind limbs followed by reperfusion results in local as well as remote organ (lung) injury characterized by increased vascular permeability (125I-labeled bovine serum albumin leakage) and hemorrhage (51Cr-labeled rat erythrocytes extravasation) in skeletal muscle and lung, together with an associated increased tissue content of myeloperoxidase, reflecting neutrophil accumulation. Within 60 minutes of reperfusion following ischemia, tumor necrosis factor-alpha (TNF-alpha), interleukin-1 (IL-1), and IL-6 plasma levels increased significantly, reaching maximum levels after 2 hours of reperfusion. Polyclonal antibodies to TNF-alpha and IL-1 provided significant protection against vascular injury in both muscle and lung. These results were confirmed by the use of soluble TNF-alpha receptor and IL-1 receptor antagonist. In rat lungs following ischemia and reperfusion, there was immunohistochemical evidence of E-selectin expression in the lung vasculature; this expression was blocked by treatment of animals with anti-TNF-alpha. These data indicate that both local (hind limb) and remote (lung) organ injury after ischemia/reperfusion requires participation of TNF-alpha and IL-1. The cytokines may, in part, be involved in the up-regulation of endothelial adhesion molecules.

Animals↗

Differential expression of tumor necrosis factor and interleukin-6 by peritoneal macrophages in vivo and in culture.

To investigate the differences in cytokine regulation in vitro as compared to in vivo, we examined the synthesis of tumor necrosis factor-alpha (TNF-alpha) and interleukin-6 (IL-6) by peritoneal macrophages in response to lipopolysaccharide (LPS). Mice (CBA/J) were primed with an intraperitoneal injection of complete Freund's adjuvant and after 2 weeks, peritoneal cells were harvested for culture or mice were injected intraperitoneally with LPS for in vivo studies. In ascites fluid, TNF-alpha peaked 1 hour after LPS and returned to baseline levels by 4 hours. In contrast, TNF-alpha in the media reached maximum at 7 hours. Expression of TNF-alpha messenger (m)RNA in vivo was rapid but transient, as levels peaked at 15 minutes and returned to baseline 1 hour after LPS. In contrast, TNF-alpha mRNA in vitro became maximal at 1 hour, but remained elevated to 5 hours after LPS. In vivo, IL-6 in ascites fluid peaked at 2 hours, whereas in vitro, IL-6 continued increasing to 24 hours. In vivo, IL-6 mRNA reached maximum at 30 minutes, but fell below baseline by 1.5 hours after LPS. In contrast, IL-6 mRNA in vitro was sustained at maximal expression between 5 to 9 hours after LPS. These results demonstrate that both TNF-alpha and IL-6 synthesis is more rapid in vivo than in vitro. The rapid kinetics of cytokine expression in vivo must considered when designing strategies to inhibit cytokine action in vivo.

Animals↗

Intratracheal administration of endotoxin and cytokines. IV. The soluble tumor necrosis factor receptor type I inhibits acute inflammation.

Endotoxin lipopolysaccharide (LPS) administered intratracheally to rats causes pulmonary tumor necrosis factor alpha (TNF) and interleukin-1 (IL-1) production and results in acute broncho-alveolar neutrophilic inflammation. In the present study, the recombinant human TNF soluble receptor type I (sTNFrI) co-injected intratracheally with LPS is shown to inhibit significantly (P < 0.0001) the number of neutrophils in bronchoalveolar lavage specimens at 6 hours as compared to intratracheal injection of LPS alone. The sTNFrI was at least as effective as the recombinant human IL-1 receptor antagonist (IL-1ra) as an inhibitor of acute inflammation. Inhibition of LPS-induced acute inflammation by the combination of sTNFrI and IL-1ra was not significantly more than the inhibition afforded by sTNFrI alone. Intratracheal co-injection of sTNFrI with LPS unexpectedly increased TNF levels in BAL specimens, perhaps by changing the normal catabolism of TNF. On the other hand, co-injection of sTNFrI and LPS decreased IL-6 levels in BAL fluid, most likely by interfering with the induction of IL-6 by TNF. The sTNFrI may prove to be an important pharmacological down-regulator of acute inflammation.

Acute Disease↗

Effects of coenzyme Q10 on the mediator cascade of sepsis.

Coenzyme Q10 (CoQ) has been promoted as an effective agent for reducing the deleterious effects of septic shock by acting as an oxygen free radical scavenger and thus stabilizing mitochondrial membranes and by inhibiting the arachidonic acid metabolic pathway and the formation of various prostaglandins. This study was undertaken to evaluate the effect of CoQ in a live Escherichia coli model of canine septic shock. Group I (E. coli, n = 5) animals received an LD100 dose of 10(9) live E. coli/kg and were given no further treatment. Group II (CoQ, n = 5) animals received a 20-mg/kg bolus of CoQ without further treatment. Group III (CoQ + E. coli, n = 5) animals received a 20-mg/kg bolus of CoQ 10 min prior to a bacterial infusion as in group 1. Mean arterial pressure stabilized at 70% of baseline levels (P < .002), while cardiac output remained near 50% of baseline levels (P < .053) in group III compared to group I dogs. The arachidonic acid metabolites, prostaglandin E2, Thromboxane B2, and leukotriene B4 were significantly elevated in groups I and III (vs. group II) (P < 0.05). The catecholamines, tumor necrosis factor (TNF) and interleukin 6 (IL-6) were significantly elevated in groups I and III (vs. group II) (P < 0.05). Fluorescent products (lipid peroxidation activity) were elevated in group I (vs. groups II and III) at 120 and 180 min (P < 0.05). We conclude that CoQ supports cardiovascular hemodynamics and prevents free radical mediated lipid peroxidation during live E. coli septic shock, and its effect is not due to altered levels of humoral or cytokine mediators.

Animals↗

Rapid determination of cell-associated tumor necrosis factor production by flow cytometry.

BACKGROUND: Tumor necrosis factor (TNF) is a cytokine implicated in many disease states, including septic shock and transplant rejection. Regulation of TNF production is complex, and under certain conditions TNF is expressed in cells, but not released. Determination of TNF, particularly on cells, may allow more rapid and specific diagnosis of diseases, and provide a better guide to therapy. We developed a method to quickly measure TNF associated with cells using flow cytometric techniques. EXPERIMENTAL DESIGN: RAW cells, a murine macrophage cell line, were stimulated with lipopolysaccharide (LPS) and examined by staining with an anti-murine TNF antibody followed by a fluorescein isothiocyanate FITC-labeled secondary antibody. RESULTS: Different permeabilization protocols showed that treating cells with 0.1% Triton X-100 for 5 minutes provided staining of cells comparable to 0.005% digitonin and 0.1% saponin; however, it was no better than untreated cells. Comparison of fluorescein isothiocyanate, phycoerythrin, and Red 613 fluorochromes showed that fluorescein isothiocyanate was comparable to phycoeryrthrin, but better than Red 613. Multiple experiments demonstrated that LPS-stimulated cells exhibited a 1.3- to 6.8-fold increase in the number of cells staining positively for TNF, as compared with unstimulated cells. Kinetic studies showed that LPS induced cell-associated TNF within 30 minutes, which plateaued between 2 and 4 hours. TNF staining correlated with the appearance of TNF biologic activity associated with the cells and immunoperoxidase staining of cytospin preparations. Cyclosporin A has been reported to inhibit secretion of TNF. LPS-stimulated cells treated with cyclosporin A showed no decrease in TNF staining by either flow cytometry analysis or immunohistochemistry, but there was a reduction of TNF in the culture supernatant. The human macrophage cell line, THP-1 was also tested and showed statistically significant results when comparing control versus anti-TNF antibodies. CONCLUSIONS: Flow cytometric detection of cell-associated TNF represents a relatively rapid and simple method with potential applications in the study of TNF gene expression. This method may be used to detect early TNF production in disease states such as septic shock and transplant rejection.

Animals↗

Detection of plasma tumor necrosis factor, interleukins 6, and 8 during the Jarisch-Herxheimer Reaction of relapsing fever.

The Jarisch-Herxheimer Reaction (J-HR) is a clinical syndrome occurring soon after the first adequate dose of an antimicrobial drug to treat infectious diseases such as Lyme disease, syphilis, and relapsing fever. Previous attempts to identify factors mediating this reaction, that may cause death, have been unsuccessful. We conducted a prospective trial in Addis Ababa, Ethiopia on 17 patients treated with penicillin for proven louse-borne relapsing fever due to Borrelia recurrentis to evaluate the association of symptoms with plasma levels of tumor necrosis factor (TNF), interleukins 6, and 8 (IL-6 and -8). 14 of the 17 (82%) patients experienced a typical J-HR consisting of rigors, a rise in body temperature (1.06 +/- 0.2 degrees C) peaking at 2 h, leukopenia (7.4 +/- 0.6 x 10(-3) cells/mm3) at 4 h, a slight decrease, and then rise of mean arterial blood pressure. Spirochetes were cleared from blood in 5 +/- 1 h after penicillin. There were no fatalities, but constitutional symptoms were severe during J-HR. Plasma TNF, IL-6, and -8 were raised in several patients on admission, but a seven-, six-, and fourfold elevation of these plasma cytokine concentrations over admission levels was detected, respectively, occurring in transient form coincidental with observed pathophysiological changes of J-HR. Elevated plasma cytokine levels were not detected in the three patients who did not suffer J-HR. We conclude that the severe pathophysiological changes characterizing the J-HR occurring on penicillin treatment of louse-borne relapsing fever are closely associated with transient elevation of plasma TNF, IL-6, and -8 concentrations.

Adolescent↗

Anti-tumor necrosis factor antibody therapy fails to prevent lethality after cecal ligation and puncture or endotoxemia.

Cytokines have been studied intensively to delineate their role in the altered pathophysiology observed in septic shock. We studied the role of TNF in the lethality of two well characterized models of septic shock by inhibiting TNF's activity with a specific antibody. In the first model, sepsis was induced by cecal ligation and puncture (CLP), and in the second model sepsis was induced by either an i.p. or i.v. injection of LPS. After CLP, plasma endotoxin was detectable within 4 h and reached a peak at 8 h (136 +/- 109 ng/ml). TNF bioactivity peaked at 12 h (528 +/- 267 pg/ml) at a significantly higher level than sham-operated control mice (64 +/- 31 pg/ml). After i.p. LPS, TNF peaked much more quickly (90 min) compared with CLP and at a significantly higher level (107,900 +/- 25,000 pg/ml). Another cytokine studied in septic shock, IL-6, peaked at 12 h after CLP at 1011 +/- 431 pg/ml, and at 90 min after lethal LPS at 16,300 +/- 3,700 pg/ml. Mice were treated with an anti-TNF antibody that has been shown previously to inhibit in vivo TNF activity. Antibody treatment of mice subjected to CLP significantly reduced TNF bioactivity but did not reduce mortality or pulmonary neutrophilic infiltration. In the i.v. LPS model, anti-TNF antibody treatment concomitant with LPS injection reduced plasma TNF activity from 80,000 +/- 20,000 pg/ml to undetectable levels. However, anti-TNF treatment immediately before either i.v. or i.p. LPS did not reduce mortality. Additionally, when the antibody was administered 4 h before the lethal i.v. LPS, there was no reduction in lethality. These data show that in two separate models of septic shock blockade of TNF biologic activity will not prevent lethality.

Animals↗

Biphasic production of IL-8 in lipopolysaccharide (LPS)-stimulated human whole blood. Separation of LPS- and cytokine-stimulated components using anti-tumor necrosis factor and anti-IL-1 antibodies.

TNF, IL-1, and IL-6 are integral components of the cytokine cascade released in the response to inflammatory stimuli such as LPS. IL-8 is produced both in response to LPS as well as TNF and IL-1. The early, local production of TNF and IL-1 may therefore contribute to the subsequent expression of IL-8. This hypothesis was tested using LPS-stimulated human whole blood as an ex vivo model of local cytokine production. The production of TNF, IL-1 alpha, IL-1 beta, IL-6, and IL-8 was found to be responsive to a wide range of LPS concentrations (0.1 ng/ml-10 micrograms/ml). These cytokines were first detected between 1 to 4 h post-LPS stimulation, and reached plateau levels after 6 to 12 h. IL-8, however, also displayed a secondary wave of production, with the levels again increasing between 12 to 24 h. The IL-8 present in the plasma after LPS stimulation was biologically active, as assessed by neutrophil chemotaxis. In further studies, addition of anti-TNF and anti-IL-1 neutralizing antibodies, alone and in combination, to LPS-stimulated blood resulted in nearly complete ablation of the secondary phase of IL-8 synthesis at both the levels of protein and mRNA, while leaving the first, LPS-mediated phase of IL-8 synthesis unaffected. This model of cytokine production in human whole blood may reflect the sequence of events in a localized environment of inflammation where both a primary stimulus and the induced early cytokine mediators may serve to elicit multiple, temporally distinct phases of IL-8 production.

Antibodies, Monoclonal↗