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Patterns of cytokine evolution (tumor necrosis factor-alpha and interleukin-6) after septic shock, hemorrhagic shock, and severe trauma.

OBJECTIVE: To compare the patterns of evolution of two proinflammatory cytokines (tumor necrosis factor [TNF]-alpha and interleukin-6 [IL-6]) in two major clinical entities associated with systemic inflammatory response: septic shock and multiple trauma (with and without hemorrhagic shock). DESIGN: Prospective study of two cohorts of patients. SETTING: Critical care unit and Emergency Center of a university hospital. PATIENTS: Twenty-five nontrauma patients with septic shock and 60 multiple trauma patients (of whom eight patients were resuscitated from hemorrhagic shock). INTERVENTIONS: Serial blood samples were collected in each patient for determination of serum cytokine concentrations. Samples were obtained over 7 days in septic shock patients and 11 days in trauma patients. Standard resuscitation techniques were used in each patient. Clinical and laboratory data were prospectively collected. MEASUREMENTS AND MAIN RESULTS: High concentrations of circulating TNF-alpha and IL-6 were found in patients with septic shock. High IL-6 concentrations, but normal TNF-alpha concentrations were detected in trauma patients. At study entry, TNF-alpha concentrations were higher in nonsurvivor septic shock than in nonsurvivor trauma patients (42 +/- 7 vs 13 +/- 2 pg/mL; p < .001). During the whole study period, nonsurvivor septic shock patients maintained higher TNF-alpha concentrations than nonsurvivor trauma patients (p < .001). In survivors in both groups, normal values for TNF-alpha were detected during the whole study period. At study entry, IL-6 concentrations were significantly higher in nonsurvivor septic shock patients than in nonsurvivor trauma patients (15,627 +/- 4336 vs. 317 +/- 124 pg/mL; p < .0001). During the whole study period, much higher concentrations of IL-6 were detected in septic shock patients than in trauma patients (p < .0001). In survivors, at study entry, IL-6 concentrations were much higher in septic shock patients than in trauma patients (3947 +/- 1410 vs. 247 +/- 41 pg/mL; p < .001). Higher IL-6 concentrations were maintained throughout the study period in septic shock patients than in trauma patients (p < .001). In septic shock patients, changes in both TNF-alpha and IL-6 were correlated with outcome, higher values being found in patients likely to die. Neither TNF-alpha nor IL-6 values were of any significant value in predicting outcome of trauma patients. When septic shock patients were compared with traumatized patients resuscitated from hemorrhagic shock, the former had much higher concentrations of both TNF-alpha and IL-6 throughout the study period (p < .01 to p < .00001). Increased IL-6 values were an indicator of the development of a nosocomial infection in trauma patients. In five trauma patients who developed a nosocomial pneumonia during the study period, the IL-6 concentration was 433 +/- 385 pg/mL before the onset of pneumonia, then peaked at 3970 +/- 1478 pg/mL on day 7, and returned to baseline (219 +/- 58 pg/mL) on day 11. CONCLUSIONS: In septic shock patients, high amounts of circulating TNF-alpha and IL-6 are found and then correlate with fatal outcome. In trauma patients (even those patients resuscitated from hemorrhagic shock), much less increased concentrations of IL-6 are detected while normal TNF-alpha circulating concentrations are measured. In these patients, cytokine concentrations do not correlate with outcome. This finding suggests a much higher degree of activation of the immunoinflammatory cascade in septic shock than in multiple trauma patients. Increased IL-6 values are an indicator of the development of a nosocomial infection in trauma patients.

Adult↗

The effect of ATP on survival in intestinal ischemia shock, hemorrhagic shock, and endotoxin shock in rats.

Mg-ATP 72 mumole/kg was injected into anesthetized rats subjected to intestinal ischemia shock (SAO), hemorrhagic shock (HS), and endotoxin shock (ES), shock models in which all untreated animals died. Administration of Mg-ATP in no instance improved survival rate. In SAO, Mg-ATP given intra-arterially (IA) or intraperitoneally (IP) before the period of ischemia significantly reduced the survival time, and when given IA after the period of ischemia caused no significant change in survival time. In HS survival time was not significantly altered if Mg-ATP was given IA before or after the period of hypotension, but if given IP before bleeding survival time was significantly prolonged. Marked hemodynamic effects of Mg-ATP were observed resulting in reduction of the maximum bleeding volume and in an earlier spontaneous reuptake of the shed blood. In ES survival time was not affected if the Mg-ATP was given before the endotoxin, but survival time was significantly decreased if Mg-ATP was given before as well as after the endotoxin. It is concluded that any beneficial effect of ATP is probably small, whereas the occurrence of adverse effects cannot be neglected.

Adenosine Triphosphate↗

Splanchnic blood flow response to intraaortic balloon pump assist of hemorrhagic shock.

Hemorrhagic shock results in marked changes in splanchnic arterial blood flow. We studied the effects of intraaortic balloon pump assist (IABP) upon splanchnic blood flow during sustained hemorrhagic shock and following volume resuscitation. Hemorrhagic shock was induced (mean blood pressure = 30 mm Hg) for 120 min in 20 dogs. Controls (n = 11) underwent resuscitation with shed blood and lactated Ringers solution only. In the study group (n = 9), IABP was begun after 60 min of hemorrhagic shock and continued throughout a 90-min period after resuscitation. Hemodynamic parameters were assessed and splanchnic blood flow was estimated (radioactive microsphere technique) at baseline, through 120 min of sustained hypotension, and during the resuscitation period. Splanchnic blood flow was significantly reduced in both the control and the IABP groups during the period of hemorrhagic shock. Interestingly, the IABP group was found to have a return to preshock splanchnic viscera perfusion without the hyperemic reperfusion phenomenon seen in control animals resuscitated with shed blood and Ringers lactate alone. IABP assist of hemorrhagic shock appears to improve vasomotor control of splanchnic blood flow in this experimental preparation of shock. This may result in less reperfusion injury to the splanchnic viscera during the resuscitation of severe hemorrhagic shock.

Animals↗

Matrix metalloproteinase inhibition protects hepatic integrity in hemorrhagic shock.

Hemorrhagic shock increases cytokines, such as tumor necrosis factor-alpha (TNF-alpha), and interleukin-6 (IL-6), and compromises hepatic function and integrity. The production of TNF-alpha involves a cascade reaction regulated by the enzyme TNF-alpha convertase. The purpose of this study was to examine the effects of matrix metalloproteinase inhibitor (MMPI) (British Biotech 1101) in vivo on hepatic integrity in a rat model of hemorrhagic shock. Sprague-Dawley rats (n = 26) were divided as follows: hemorrhagic shock (group 1) and hemorrhagic shock plus MMPI (group 2). TNF-alpha, IL-6, and hepatic membrane potentials (Em) were obtained. The administration of MMPI significantly decreased TNF-alpha levels (P <0.001) and stabilized the membrane potential at -30 mV as compared to the depolarized membrane potential at -20 mV for hemorrhagic shock without MMPI. IL-6 levels were not affected by the MMPI. This study demonstrates that MMPI decreases TNF-alpha levels and protects hepatic integrity in hemorrhagic shock, as evidenced by the stabilization of the membrane potential, independent of the mean arterial pressure. The hepatic protection is closely related to the decrease in TNF-alpha levels seen in the portal circulation.

Animals↗

Interferon-gamma restores immune competence after hemorrhagic shock.

Hemorrhagic shock increases the susceptibility to infection in both clinical and laboratory settings. Hemorrhagic shock also is associated with a decreased production of interferon-gamma (IFN-gamma), a potent modulator of immune function. We investigated the effect of IFN-gamma both alone and in addition to antibiotic prophylaxis upon infection following hemorrhagic shock. Sprague-Dawley rats were bled to a mean arterial pressure of 45 mm Hg for 45 min and then were resuscitated with shed blood and normal saline. Abscess formation was induced 1 hr later by subcutaneous injection of 1 X 10(8) Staphylococcus aureus. Four treatments were investigated: (1) control; (2) recombinant rat IFN-gamma, 7500 units, 30 min after inoculation and daily for 3 days; (3) cefamandole (CEF) nafate, 30 mg/kg, 30 min before and 4 hr after inoculation; and (4) IFN-gamma + CEF as in (2) and (3). Abscess size, weight, and quantitative bacterial counts were measured 7 days after inoculation. Hemorrhagic shock increased mean abscess size from 11.7 +/- 2.8 to 14.1 +/- 1.9 mm (P less than 0.05), in untreated rats. IFN-gamma alone resulted in minor changes in abscess formation in both shocked and unshocked animals. Shock rendered CEF ineffective in reducing abscess size. IFN-gamma + CEF significantly reduced abscess size (14.1 +/- 1.9 to 8.1 +/- 1.8 mm) and weight (771 +/- 214 to 252 +/- 132 mg) and decreased bacterial count after shock to 12% of control (all P less than 0.05). These data demonstrate that hemorrhagic shock impairs antibiotic efficacy; however, the addition of IFN-gamma restores the ability of host defenses to combat bacterial infection.

Abscess↗

Comparison of bacterial translocation during traumatic shock and hemorrhagic shock in rats.

UNLABELLED: Traumatic shock has been classified as a kind of hypovolemic shock similar to hemorrhagic shock. Since bacterial translocation has been observed in shock, this study investigated the difference in bacterial translocation during traumatic shock and hemorrhagic shock, and considered this effect on lung injury during sepsis. METHODS: Forty-eight male or female Sprague-Dawley rats were divided into 2 groups, hemorrhagic shock and traumatic shock. Bacterial translocation, endotoxin, and blood gas were evaluated. Alterations of the lungs morphologically and functionally were observed. RESULTS: Traumatic shock induced more bacterial translocation and endotoxemia from the gut. Blood gas analysis shows a more severe disorder in traumatic shock than in hemorrhagic shock. Pathological morphologic changes of lungs were more severe in traumatic shock than in hemorrhagic shock. CONCLUSIONS: Traumatic shock cause more bacterial translocation and endotoxemia which subsequently caused serial pathological alterations in lung morphologically and functionally than pure hemorrhagic shock does. These results suggest that this trauma activates more severe mechanism to damage lungs.

Animals↗

Perflubron emulsion improves hepatic microvascular integrity and mitochondrial redox state after hemorrhagic shock.

Hemorrhagic shock is associated with decreased systemic oxygen delivery, but also with impaired microvascular perfusion, which can result in diminished local oxygen availability even in the presence of adequate cardiac output after resuscitation. Beside surgical interventions to control blood loss, transfusion of stored packed red blood cells represents the current standard of care in the management of severe hemorrhagic shock. Because stored red blood cells are less deformable and show a higher O2 affinity that affects the O2 off-load to tissues, perfluorocarbon-based artificial oxygen carriers might improve local O2 delivery under these conditions. To test this, rats were subjected to hemorrhagic shock (1 h, mean arterial pressure [MAP] 30-35 mmHg) and were resuscitated with fresh whole blood, pentastarch, stored red blood cells, perflubron emulsion (2.7 and 5.4 g/kg body weight) together with pentastarch, or stored red blood cells together with 2.7 g/kg perflubron emulsion. Hepatic microcirculation, tissue oxygenation, and mitochondrial redox state were investigated by intravital microscopy. In addition, hepatocellular function and liver enzyme release were determined. After hemorrhagic shock and resuscitation with perflubron emulsion, volumetric sinusoidal blood flow was significantly increased compared with resuscitation with stored red blood cells. Furthermore, resuscitation with perflubron emulsion resulted in higher hepatic tissue PO2 and normalized mitochondrial redox potential, which was accompanied by lessened hepatocellular injury as well as improved liver function. These results indicate that, in this model of hemorrhagic shock, asanguineous fluid resuscitation with addition of perflubron emulsion is superior to stored blood or pentastarch alone with respect to increased local O2 availability on the cellular level. This effect is primarily due to improved restoration of hepatic microcirculatory integrity.

Acid-Base Equilibrium↗

[Hemorrhagic shock].

Hemorrhagic shock generates a prolonged alteration of organ perfusion due to the decrease in oxygen delivery. Hemorrhagic shock is mainly due to three etiologies: traumatology, gastrointestinal bleeding and high risk surgery. If intensive cares are not rapidly performed, severe complications occur, as organ failure with a high mortality rate. Primary cares aim at restoring a perfusion pressure to prevent tissue hypoperfusion while waiting for the radical therapy of bleeding. Priority during initial treatment is to restore tissue perfusion and achieve haemostasis in vital functions. Fluid resuscitation and transfusion are common to every case of hemorrhagic shock but the strategy to localise the hemorrhage and stop the bleeding differs between the situations. Key factors in the management of hemorrhagic shock are the communication between surgical, anaesthetic, and critical care teams and the application of pathology.

Decision Trees↗

An experimental study of susceptibility to infection after hemorrhagic shock.

Hemorrhagic shock has been associated with an increased risk of infection after injury. The immediate and long term effects of hemorrhagic shock without tissue injury on the susceptibility of an animal to infection and the efficacy of antibiotic prophylaxis to prevent infection in this setting were examined. Sprague-Dawley rats were subjected to hemorrhagic shock (LD15) by bleeding to a mean arterial pressure of 45 millimeters of mercury for 45 minutes and were resuscitated with shed blood and normal saline solution. In one experiment, dorsal wounds were inoculated one hour before or after shock with either 10(6), 10(8) or 10(10) Staphylococcus aureus. In a second experiment, rats were infected at one hour, or one, three or five days after shock with 10(6), 10(7) or 10(8) S. aureus. Equivalent numbers of rats received cefamandole nafate prior to bacterial challenge. Hemorrhagic shock increased the susceptibility to wound infection at all inocula. Infection increased whether rats were wounded before or after shock, and this effect was sustained for up to three days. Antibiotic prophylaxis was of limited value in reducing the incidence of wound infection after shock.

Animals↗

Alterations of cullin-5 mRNA levels in the rat central nervous system following hemorrhagic shock.

Hemorrhagic shock is a clinical syndrome that manifests as hypoperfusion, hypoxia, and ischemia initiating various cellular stress responses involved in the synthesis and release of an assortment of pro-inflammatory molecules, cytokines, chemokines, and reactive oxidant species (ROS). The ROS have been shown to oxidize and damage proteins making them targets for ubiquitination and proteasomal degradation. Cullin-5 (cul-5), an E3 ligase that binds ubiquitin to proteins targeted for degradation via the proteasome, was investigated for its gene expression during hemorrhagic shock. Male Long-Evans rats were subjected to volume controlled (27 ml kg-1) hemorrhage over 10 min and kept in shock for 60 min. Quantitative realtime polymerase chain reaction showed cul-5 mRNA levels were significantly increased in the brainstem and cerebellum, and decreased in the hypothalamus of rats as a result of hemorrhagic shock (n = 6) compared to sham-treated rats (n = 6). Cul-5 mRNA levels in the cerebral cortex, small intestine, kidney, liver, lung, or pituitary gland did not significantly change after hemorrhagic shock. This is the first report of cul-5 mRNA regulation by hemorrhagic shock. Evidence indicates this protein may have a regulatory role in ubiquitin-proteasomal protein degradation in response to hemorrhagic shock.

Animals↗

Intrinsic myocardial function in hemorrhagic shock.

Hemorrhage is a stress on the cardiovascular system that results in decreased loading of the heart but also decreased blood pressure and thus decreased perfusion pressure for tissue blood flow. The heart's response to hemorrhage is governed by both an increase in sympathetic nervous system activation of the heart and decreased preload and afterload for the heart. Whether the heart can maintain normal contractile function and reserves under conditions of prolonged hemorrhagic shock is not clear. To assess the effects of hemorrhagic shock of different lengths on intrinsic cardiac contractile function, guinea pigs were surgically prepared for the measurement of blood pressure, heart rate, and cardiac output and blood samples were taken for the measurement of metabolic indices of cardiovascular stress. Fifty percent of the animals' blood volume was removed and then animals were followed for 1, 2, or 3 h of hemorrhagic shock. Hearts were then removed for measurement of intrinsic contractile function. Hearts from animals exposed to 1 or 2 h of shock exhibited normal ventricular function although hearts removed after 3 h exhibited changes in ventricular function. Maintenance of normal cardiac function through at least 2 h of shock must represent adequate physiologic modulation of coronary blood flow to deliver adequate oxygen to match the myocardial oxygen demands under conditions of severe blood loss. This balance may be disrupted by 3 h of shock thus resulting in loss of contractile reserve.

Alanine Transaminase↗

Local lactate and histamine changes in small bowel circulation measured by microdialysis in pig hemorrhagic shock.

Hemorrhagic shock results in inadequate tissue oxygenation. Plasma lactate (L) can characterize the degree of systemic oxygen debt (OD), but gives no information on local changes. The aim of this study was to characterize different degrees of hemorrhagic shock by microdialysis measurement of L and histamine (H) in small bowel circulation. Thirty-eight pigs were randomized to five groups of increasing OD (< 50 --> 120 ml/kg). The OD was accrued by hemorrhage over 60 min and was followed by retransfusion and observation for 3 days. In parallel to plasma probes, subserosa(ss)-, submucosa(sm)-, and intraluminal(il)-L- and H-probes were obtained by small bowel microdialysis every 30 min for 210 min. Ss- and sm-L increased during hemorrhage from 1.2 +/- 0.06 and 1.18 +/- 0.06 to 2.57 +/- 0.15 and 2.96 +/- 0.27 mmol/L. Highest mean L > 3.5mmol/L resulted 90 and 120 min after induction of hemorrhage. Although ss- and sm- levels hardly differed, il-L was significantly decreased with 0.27 +/- 0.02 mmol/L at 0 min and highest mean il-L at 120 min: 2.45 +/- 0.51 mmol/L. Sm-L was significantly increased after 60, 90, 120, and 150 min of highest hemorrhage severity (OD > 100 mL/kg). In parallel, systemic L increased significantly during hemorrhage and correlated well with the severity of shock. Although systemic H increased significantly during hemorrhage (from 1.3 +/- 0.31 to 15.2 +/- 0.67 ng/mL), H-dialysates showed no effect either over time nor with the degree of hemorrhage. In conclusion, microdialysis allows evaluation of local L changes in small bowel circulation in pig hemorrhagic shock. Sm-L levels appear to correlate with the degree of shock. Local H changes were not observed during hemorrhagic shock in this study.

Animals↗

Increasing antibiotic dose decreases polymicrobial infection after hemorrhagic shock.

Hemorrhagic shock has been shown to increase the susceptibility to infection despite the administration of conventionally accepted doses of antimicrobial drugs. The efficacy of increasing antibiotic dose in a model of mixed gram-negative infection, both with and without hemorrhagic shock, was examined. Shock was induced by bleeding rats to a mean arterial pressure of 45 millimeters of mercury for 45 minutes followed by resuscitation with shed blood and saline solution. One hour after shock or sham, the rats were inoculated with 1 x 10(8) Escherichia coli plus 1 x 10(9) Bacteroides fragilis in a fecal suspension subcutaneously. Rats were given either no antibiotic (CONTROL) or cefoxitin at 30 milligrams per kilogram (STANDARD) or 200 milligrams per kilogram (HIGH) intraperitoneally, 30 minutes before and at six and 12 hours after inoculation. Tissue cefoxitin concentrations were measured 30 minutes before and at six and 12 hours after inoculation. Tissue cefoxitin concentrations were measured 30 minutes after the initial dose. STANDARD reduced abscess diameter by 58 percent compared with CONTROL in rats that were not shocked, but only by 26 percent after shock (p < 0.05 shock versus sham). HIGH further decreased abscess diameter and weight (4 +/- 1 millimeter and 22 +/- 22 milligrams) after shock compared with STANDARD (9 +/- 1 millimeter and 230 +/- 90 milligrams; both p < 0.05). Peak tissue cefoxitin levels were greater than 19 times the minimal inhibitory concentration for each bacteria for HIGH compared with eight times for STANDARD. These data demonstrate that an increased dose of cefoxitin was superior to a conventional dose in controlling a mixed gram-negative infection after shock and suggest that altering traditional antibiotic use may decrease the incidence of infection after shock and hemorrhage.

Abscess↗

Interferon-gamma reverses bone marrow inhibition following hemorrhagic shock.

Hemorrhagic shock has been demonstrated to alter the myelopoietic response to bacterial lipopolysaccharide. Interferon-gamma has been shown to improve the immune response following experimental shock and injury; however, its effect on myelopoiesis is controversial. This study was performed to determine whether treatment with interferon-gamma will improve the bone marrow response to lipopolysaccharide after hemorrhagic shock. Rats subjected to either shock or a sham procedure were allocated into three groups: (1) control rats received no further treatment; (2) lipopolysaccharide-treated rats received saline for 3 days and then were challenged with lipopolysaccharide to stimulate myelopoiesis; and (3) interferon-treated rats received interferon-gamma (7500 U subcutaneously 1 hour after shock and then every day for 3 days) and lipopolysaccharide as in group 2. Serum colony-stimulating factor levels were measured 6 hours and bone marrow white blood cell count and granulocyte-macrophage colony-forming units (CFU-GM) were measured 24 hours following lipopolysaccharide administration. In sham-treated rats, lipopolysaccharide increased CFU-GM 77% compared with controls. In contrast, treatment with lipopolysaccharide decreased CFU-GM 43% following shock. Treatment with interferon-gamma increased CFU-GM in all animals and reversed the decline in CFU-GM seen in shocked lipopolysaccharide-treated animals. Serum colony-stimulating factor levels were unaffected by either shock or interferon-gamma administration. These data demonstrate that interferon-gamma exerts a stimulatory effect on bone marrow following shock and restores the myelopoietic response to lipopolysaccharide.

Animals↗

Effects of lactated Ringer solution and prednisolone sodium succinate on dogs with induced hemorrhagic shock.

Hemorrhagic shock was induced in nonsplenectomized dogs by removing 41% of their blood volume over a 15-minute period. Hemodynamic and metabolic variables were determined prior to and for 3 hours after completion of hemorrhage. One group of 5 dogs was not treated. After the 30-minute sample was collected, a second group of 5 dogs was given lactated Ringer solution (LRS) at 88 ml/kg of body weight, IV. A third group of 5 dogs was given LRS (88 ml/kg, IV) and prednisolone sodium succinate (11 mg/kg, IV) 30 minutes after hemorrhage. The IV administration of LRS was completed within 15 minutes. The glucocorticoid was administered as an IV bolus after 500 ml of LRS had been given. The large volume and administration of LRS significantly (P = 0.05) improved many of the hemodynamic and metabolic effects of acute hemorrhage and hemorrhagic shock. At one time or another during the 2.5-hour observation period after the initiation of treatment, mean arterial pressure, cardiac index, systemic vascular resistance, heart rate, respiratory rate, lactate, glucose, and arterial and venous blood gas values were significantly (P = 0.05) improved, compared with baseline values. The addition of prednisolone sodium succinate to the treatment regimen improved the effectiveness of LRS alone only in some dogs at random sampling times. Significant trends were not observed except, possibly, the improvement of venous pH and A-V pH and PCO2 differences.

Acute Disease↗

The effect of insulin on glucose uptake in soleus muscle during hemorrhagic shock.

Hemorrhagic shock was produced by bleeding conscious rats to a mean arterial pressure of 40 mm Hg, which was maintained for 2 h. Basal glucose uptake by isolated soleus muscle from normal rats and rats subjected to hemorrhagic shock ('shock' muscles) increased with the increase ib medium glucose concentration. Uptake values were similar in both groups of muscles. This indicates that there were no alterations in the basal glucose carrier mechanism during shock. Whereas insulin (0.1 U/ml) stimulated glucose uptake in control muscles under aerobic as well as under anaerobic conditions, it had no stimulatory effect in 'shock' muscles under either environment. Maximal stimulation of glucose uptake in 'shock' muscles was observed at an insulin concentration of 0.2 U/ml. The ability of muscle to bind insulin was not altered during shock. The present experiments indicate that insulin responsiveness to tissues is altered in shock. This could be due to alterations in the insulin sensitivity of the glucose carrier mechanism during shock.

Anaerobiosis↗

Early growth response 1 mediates the systemic and hepatic inflammatory response initiated by hemorrhagic shock.

Hemorrhagic shock (HS) is a major cause of morbidity and mortality in trauma patients. The early growth response 1 (Egr-1) transcription factor is induced by a variety of cellular stresses, including hypoxia, and may function as a master switch to trigger the expression of numerous key inflammatory mediators. We hypothesized that HS would induce hepatic expression of Egr-1 and that Egr-1 upregulates the inflammatory response after HS. The Egr-1 mice and wild-type (WT) controls (n>or=5 for all groups) were subjected to HS alone or HS followed by resuscitation (HS/R). Other mice were subjected to a sham procedure which included general anesthesia and vessel cannulation but no shock (sham). After the HS, HS/R, or sham procedures, mice were euthanized for determination of serum concentrations of interleukin (IL) 6, IL-10, and alanine aminotransferase. Northern blot analysis was performed to evaluate Egr-1 messenger RNA (mRNA) expression. Liver whole cell lysates were evaluated for Egr-1 protein expression by Western blot analysis. Hepatic expression of IL-6, granulocyte colony-stimulating factor, and intracellular adhesion molecule 1 mRNA was determined by semiquantitative reverse transcriptase-polymerase chain reaction. The Egr-1 DNA binding was assessed using the electrophoretic mobility shift assay. Hemorrhagic shock results in a rapid and transient hepatic expression of Egr-1 mRNA in WT mice by 1 h, whereas protein and DNA binding activity was evident by 2.5 h. The Egr-1 mRNA expression diminished after 4 h of resuscitation, whereas Egr-1 protein expression and DNA binding activity persisted through resuscitation. The Egr-1 mice exhibited decreased levels of hepatic inflammatory mediators compared with WT controls with a decrease in hepatic mRNA levels of IL-6 by 42%, granulocyte colony-stimulating factor by 39%, and intracellular adhesion molecule 1 by 43%. Similarly, Egr-1 mice demonstrated a decreased systemic inflammatory response and hepatic injury after HS/R compared with their WT counterparts. Early growth response 1 is rapidly upregulated in the liver during and after resuscitation from HS. Our results showing a blunted inflammatory response in Egr-1 mice provides evidence that Egr-1 functions as a proximal signal transduction mechanism responding to shock by amplifying the systemic inflammatory response.

Animals↗