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Systemic inflammation leads to resistance to atracurium without increasing membrane expression of acetylcholine receptors.

BACKGROUND: Systemic inflammation may be associated with resistance to nondepolarizing neuromuscular blocking drugs, the mechanisms of which are, however, uncharacterized. The authors therefore investigated the pharmacodynamics of atracurium and its relation to the expression of nicotinic acetylcholine receptors and alpha1 -acid glycoprotein in a rat model of systemic inflammation. METHODS: To induce a systemic inflammation, male CD rats received 56 mg/kg corynebacterium parvum intravenously. On days 2, 4, 6, 8, 10, 12, 14, or 16 after infection, neuromuscular transmission was measured. The individual effective dose of atracurium was determined, followed by an atracurium infusion at a rate to establish a steady state neuromuscular block of 50%. Total and unbound plasma concentrations of atracurium for 50% paralysis were measured using high-performance liquid chromatography. Acetylcholine receptors were quantitated using 125I-alpha-bungarotoxin. alpha1 -Acid glycoprotein concentrations in the serum were measured using a competitive chemiluminescence immunoassay. RESULTS: The effective dose of atracurium was increased on days 4, 6, and 8. Total atracurium plasma concentrations at 50% neuromuscular paralysis were increased on days 4, 6, 8, and 10, with a peak at day 8 (8.0 +/- 1.3 micro g/ml) compared with control rats (4.23 +/- 0.82 micro g/ml). The alpha1 -acid glycoprotein concentrations were increased between days 2 and 10, with a peak on day 4 (6.52 +/- 1.45 mg/ml), and recovered to control values (0.61 +/- 0.33 mg/ml) on day 12. Unbound plasma concentrations of atracurium to achieve 50% depression, as well as the expression of acetylcholine receptors, did not differ between groups. CONCLUSION: Resistance to atracurium during corynebacterium parvum-induced systemic inflammation is due to increased drug binding to alpha1 -acid glycoprotein and is unrelated to changes in acetylcholine receptor expression.

Anesthesia↗

Breakdown of the blood-brain barrier to proteins in white matter of the developing brain following systemic inflammation.

Compromised blood-brain barrier permeability resulting from systemic inflammation has been implicated as a possible cause of brain damage in fetuses and newborns and may underlie white matter damage later in life. Rats at postnatal day (P) 0, P8 and P20 and opossums (Monodelphis domestica) at P15, P20, P35, P50 and P60 and adults of both species were injected intraperitoneally with 0.2-10 mg/kg body weight of 055:B5 lipopolysaccharide. An acute-phase response occurred in all animals. A change in the permeability of the blood-brain barrier to plasma proteins during a restricted period of postnatal development in both species was determined immunocytochemically by the presence of proteins surrounding cerebral blood vessels and in brain parenchyma. Blood vessels in white matter, but not grey matter, became transiently permeable to proteins between 10 and 24 h after lipopolysaccharide injection in P0 and P8 rats and P35-P60 opossums. Brains of Monodelphis younger than P35, rats older than P20 and adults of both species were not affected. Permeability of the blood-cerebrospinal fluid (CSF) barrier to proteins was not affected by systemic inflammation for at least 48 h after intraperitoneal injection of lipopolysaccharide. These results show that there is a restricted period in brain development when the blood-brain barrier, but not the blood-CSF barrier, to proteins is susceptible to systemic inflammation; this does not appear to be attributable to barrier "immaturity" but to its stage of development and only occurs in white matter.

Animals↗

Effects of corticosteroids on systemic inflammation in chronic obstructive pulmonary disease.

Patients with chronic obstructive pulmonary disease (COPD) are predisposed to atherosclerosis and coronary artery disease, but the underlying mechanisms are unclear. Although there is wide acceptance that atherosclerosis is related to systemic inflammation, the cause(s) and mechanism(s) of pulmonary inflammation in stable COPD remain unknown. Infectious (bacterial and viral) as well as noninfectious agents can cause acute exacerbations in COPD, and they intensify local and systemic inflammation. Although it is not known how systemic inflammation develops in stable COPD, there is good evidence to suggest that it occurs and that the intensity of systemic inflammation is linked to the severity of airflow obstruction. We postulate that systemic inflammation provides the linkage between COPD and atherosclerosis. Inhaled corticosteroids have been shown to improve health outcomes in COPD, but the mechanism by which this occurs is a pivotal and challenging question that has yet to be answered. To prove the concept that inhaled corticosteroids could suppress systemic inflammation (as exemplified by serum C-reactive protein [CRP] levels), a double-blind, placebo-controlled clinical trial was conducted in a group of patients with mild to moderate COPD. We found that withdrawal of inhaled corticosteroids increased serum CRP levels, and that reintroduction of inhaled fluticasone could suppress CRP levels.

Androstadienes↗

Intratracheal endotoxin causes systemic inflammation in ventilated preterm lambs.

Intratracheal endotoxin causes acute inflammation in the adult lung, and injurious styles of mechanical ventilation can result in systemic inflammation derived from the lungs. We asked how ventilated premature and near-term lungs responded to intratracheal endotoxin and if systemic inflammation occurred. Lambs delivered at 130 d gestational age (GA) were treated with surfactant or surfactant plus endotoxin (0.1 mg/kg or 10 mg/kg) (Escherichia coli, serotype O55:B5) and were ventilated for 6 h. Both endotoxin doses resulted in impaired gas exchange and systemic inflammation in the preterm lambs. Lambs at 141 d GA (term 146 d) were given either 10 mg/kg intratracheal endotoxin, 10 mg/kg endotoxin plus high tidal volume ventilation for the first 30 min of life, or 5 microg/kg endotoxin given intravenously. Endotoxin alone (10 mg/kg) caused lung inflammation but no systemic effects after 6 h of ventilation. Lambs given 10 mg/kg endotoxin plus high tidal volume ventilation or 5 microg/kg endotoxin intravenously had decreased gas exchange and systemic inflammation. Endotoxin was detected in the plasma of lambs at 130 d GA but not at 141 d GA. Inflammation in the lungs was more severe in preterm animals. Mechanical ventilation of the endotoxin-exposed preterm lung resulted in systemic effects at a low endotoxin dose and without high tidal volume ventilation.

Animals↗

Can inhaled fluticasone alone or in combination with salmeterol reduce systemic inflammation in chronic obstructive pulmonary disease? Study protocol for a randomized controlled trial [NCT00120978].

BACKGROUND: Systemic inflammation is associated with various complications in chronic obstructive pulmonary disease including weight loss, cachexia, osteoporosis, cancer and cardiovascular diseases. Inhaled corticosteroids attenuate airway inflammation, reduce exacerbations, and improve mortality in chronic obstructive pulmonary disease. Whether inhaled corticosteroids by themselves or in combination with a long-acting beta2-adrenoceptor agonist repress systemic inflammation in chronic obstructive pulmonary disease is unknown. The Advair Biomarkers in COPD (ABC) study will determine whether the effects of inhaled corticosteroids alone or in combination with a long-acting beta2-adrenoceptor agonist reduce systemic inflammation and improve health status in patients with chronic obstructive pulmonary disease. METHODS/DESIGN: After a 4-week run-in phase during which patients with stable chronic obstructive pulmonary disease will receive inhaled fluticasone (500 micrograms twice daily), followed by a 4-week withdrawal phase during which all inhaled corticosteroids and long acting beta2-adrenoceptor agonists will be discontinued, patients will be randomized to receive fluticasone (500 micrograms twice daily), fluticasone/salmeterol combination (500/50 micrograms twice daily), or placebo for four weeks. The study will recruit 250 patients across 11 centers in western Canada. Patients must be 40 years of age or older with at least 10 pack-year smoking history and have chronic obstructive pulmonary disease defined as forced expiratory volume in one second to vital capacity ratio of 0.70 or less and forced expiratory volume in one second that is 80% of predicted or less. Patients will be excluded if they have any known chronic systemic infections, inflammatory conditions, history of previous solid organ transplantation, myocardial infarction, or cerebrovascular accident within the past 3 months prior to study enrollment. The primary end-point is serum C-reactive protein level. Secondary end-points include circulating inflammatory cytokines such as interleukin-6 and interleukin-8 as well as health-related quality of life and lung function. DISCUSSION: If inhaled corticosteroids by themselves or in combination with a long-acting beta2-adrenoceptor agonist could repress systemic inflammation, they might greatly improve clinical prognosis by reducing various complications in chronic obstructive pulmonary disease.

Administration, Inhalation↗

Substituting human chorionic gonadotropin by gonadotropin-releasing hormone agonist to trigger final follicular maturation, during controlled ovarian hyperstimulation, results in less systemic inflammation.

BACKGROUND: To investigate the degree of systemic inflammation, as reflected by serum C-reactive protein (CRP) levels, associated with controlled ovarian hyperstimulation (COH) with human chorionic gonadotropin (hCG) or gonadotropin-releasing hormone (GnRH) agonist for the induction of final follicular maturation. DESIGN: Prospective, observational study. SETTING: An in vitro fertilization (IVF) unit of an academic medical center. PATIENTS: Twenty-four women undergoing COH and IVF with the flexible GnRH antagonist protocol were prospectively assigned to receive hCG or GnRH agonist for the induction of final follicular maturation. METHODS: Blood was drawn three times during COH for measurement of sex-steroid and CRP levels: the day on which adequate suppression was obtained (Day-0); the day of or prior to administration of hCG (Day-hCG); and (3) the day of ovum pick-up (Day-OPU). Levels were compared among the three time points in the two groups. RESULTS: No between-group differences were observed in terms of patient age, gonadotropin dosage, duration of stimulation or number of oocytes retrieved. Serum CRP levels were significantly higher on Day-OPU than on Day-hCG and Day-0, but the difference was significant only in the hCG group (p<0.03 for both). The percentage change in CRP levels after hCG administration (Day-OPU vs. Day-hCG) (96%) was higher than that after GnRH administration (23%). CONCLUSION: Administration of GnRH agonist in patients undergoing COH for IVF yields a lesser degree of systemic inflammation, as reflected by CRP levels, than hCG.

Adult↗

trans fatty acids and systemic inflammation in heart failure.

BACKGROUND: trans fatty acid (TFA) intake increases systemic inflammation in healthy persons. However, the effect in patients with established heart disease is unknown. OBJECTIVE: Our aim was to determine whether TFAs are associated with systemic inflammation in patients with established heart disease. DESIGN: Red blood cell membrane TFAs, a biomarker of dietary intake, and inflammatory marker concentrations were ascertained in 86 ambulatory patients with established heart failure. Associations between TFA levels and inflammatory markers were evaluated by linear regression. RESULTS: Mean (+/-SD) TFA levels were 1.8 +/- 0.4% of membrane fatty acids (range: 0.7-2.9%). For each inflammatory marker, associations are presented as the absolute difference and percentage difference from the mean for each 1% higher membrane TFA level. After adjustment for age, sex, body mass index, diabetes, smoking, ejection fraction, New York Heart Association class, ischemic etiology, statin use, and serum glucose, TFA levels were positively associated with interleukin (IL) 1beta (difference from mean: 0.38 pg/mL; percentage difference from mean: 66%; P=0.04), IL-1 receptor antagonist (4033 pg/mL; 297%; P=0.006), IL-6 (9.5 pg/mL; 123%; P=0.006), IL-10 (241 pg/mL; 183%; P=0.02), tumor necrosis factor (TNF) alpha (256 pg/mL; 249%; P=0.02), TNF receptor 1 (537 pg/mL; 41%; P=0.03), TNF receptor 2 (39 242 pg/mL; 247%; P=0.001), monocyte chemoattractant protein 1 (117 pg/mL; 119%; P=0.004), and brain natriuretic peptide (40 pg/mL; 57%; P=0.04). Further adjustments for other patient characteristics did not significantly alter the results. CONCLUSION: TFAs are strongly associated with systemic inflammation in patients with heart disease, which suggests that attention to TFA intake may be important for secondary prevention efforts.

Biomarkers↗

Acute systemic inflammation is associated with an increase in peritoneal solute transport rate in chronic peritoneal dialysis patients.

BACKGROUND: This study was performed to evaluate the effects of acute systemic inflammation on peritoneal solute transport rate (PSTR) in chronic peritoneal dialysis (CPD) patients. METHODS: A baseline standard peritoneal equilibration test (PET) was performed on each patient every 6 months, and blood concentration of high-sensitivity C-reactive protein (hs-CRP) was assayed every 2 months in our peritoneal dialysis clinic. Acute systemic inflammation was defined as a greater than 10-fold increase in hs-CRP concentration compared with baseline value, in the absence of peritonitis, and returning to baseline level in 2 months. In patients with acute systemic inflammation, PET and hs-CRP concentration assays were performed during inflammation and after recovery. Ten patients with acute systemic inflammation were enrolled in the inflammation group and 42 other patients served as controls. RESULTS: There were no significant changes in hs-CRP and dialysate-to-plasma ratio of creatinine (D/Pcreat) in the control group during the study period. In the inflammation group, median hs-CRP levels at baseline, during acute inflammation, and at recovery were 2.3 mg/L (range 0.3 - 4.5 mg/L), 39.2 mg/L (range 15.1 - 117.4 mg/L), and 3.7 mg/L (range 0.9 - 8.9 mg/L), respectively. Median D/Pcreat increased significantly from baseline (0.64; range 0.55 - 0.98) to time of acute inflammation (0.72; range 0.60 - 0.96) (p < 0.05). The D/Pcreat at recovery was 0.67 (range 0.52 - 0.94), which decreased significantly from time of acute inflammation (p < 0.05). There was no correlation between changes in log (hs-CRP) and changes in D/Pcreat. CONCLUSION: We have shown here that acute systemic inflammation is associated with a temporary increase in PSTR in CPD patients.

Biological Transport↗

Inducible nitric oxide synthase gene expression in the brain during systemic inflammation.

Inducible nitric oxide synthase (iNOS) is a transcriptionally regulated enzyme that synthesizes nitric oxide from L-arginine that has a key role in the pathophysiology of systemic inflammation and sepsis. Transgenic animals with a null mutation for the iNOS gene are resistant to hypotension and death caused by Escherichia coli lipopolysaccharide (LPS). The regulation of peripheral iNOS has been well studied in sepsis, but little is known about iNOS regulation in the brain during systemic inflammation or sepsis. We know that at baseline there is no detectable iNOS gene expression in the brain, but a detailed neuroanatomical study reveals that early in the course of systemic inflammation there is a profound induction of iNOS messenger RNA in vascular, glial and neuronal structures of the rat brain, accompanied by the production of nitric oxide (NO) metabolites in brain parenchyma and cerebrospinal fluid (CSF). We propose that the spillover of nitrite into the CSF has the potential to be a diagnostic marker for systemic inflammation and sepsis. Pharmacological interventions aimed at regulating iNOS function in the brain might represent a new treatment strategy in sepsis. Brain iNOS may be relevant to the pathophysiology, diagnosis and treatment of systemic inflammation and sepsis.

Animals↗

Systemic inflammation in patients with COPD and pulmonary hypertension.

STUDY OBJECTIVES: COPD is a systemic disorder that is associated with increases of inflammatory proteins in systemic circulation. However, no data on the potential role of systemic inflammation in pulmonary hypertension secondary to COPD are available. Therefore, our aim was to investigate the degree of systemic inflammation reflected by circulatory levels of C-reactive protein (CRP), tumor-necrosis factor (TNF)-alpha, and interleukin (IL)-6 in COPD patients with and without pulmonary hypertension. DESIGN: Cross-sectional study. SETTING: University hospital, tertiary referral setting. PATIENTS AND MEASUREMENTS: In 43 consecutive patients with COPD (mean [+/- SD] age, 65.0 +/- 10.5 years; mean FEV(1), 46.2 +/- 18.1% predicted), lung function was assessed using body plethysmography; pulmonary artery pressure (Ppa) levels were measured by echocardiography. Serum TNF-alpha and IL-6 levels were assessed by enzyme-linked immunosorbent assay, and high-sensitivity serum CRP levels were measured by chemiluminescent immunoassay. RESULTS: Pulmonary hypertension was present in 19 patients and was absent in 24 patients. In patients with pulmonary hypertension, serum CRP and TNF-alpha levels were significantly higher than in those patients without hypertension (median, 3.6 mg/L [25th to 75th percentile, 1.4 to 13.0 mg/L] vs 1.8 mg/L [25th to 75th percentile, 0.8 to 2.8 mg/L; p = 0.034]; and median, 4.2 pg/mL [25th to 75th percentile, 3.4 to 10.9 pg/mL] vs 3.1 pg/mL [25th to 75th percentile, 2.1 to 4.2 pg/mL]; p = 0.042, respectively). No differences were seen in serum IL-6 (median, 10.4 pg/mL [25th to 75th percentile, 8.8 to 12.2 pg/mL] vs 10.5 pg/mL [25th to 75th percentile, 9.4 to 39.1 pg/mL]; p = 0.651) between the groups. In multiple linear regression analysis, the following two variables were independent predictors of systolic Ppa (R(2) = 0.373): Pao(2) (p = 0.011); and log-transformed serum CRP level (p = 0.044). CONCLUSION: We conclude that increases in Ppa in patients with COPD are associated with higher serum levels of CRP and TNF-alpha, raising the possibility of a pathogenetic role for low-grade systemic inflammation in the pathogenesis of pulmonary hypertension in COPD patients.

Adult↗

Association of markers of systemic inflammation, C reactive protein, serum amyloid A, and fibrinogen, with socioeconomic status.

STUDY OBJECTIVE: Systemic inflammation may play an important part in the development of cardiovascular disease. It has also been shown that socioeconomic status predicts cardiovascular events independently of established risk factors. The aim of this study was to analyse the association of three sensitive markers of systemic inflammation: C reactive protein (CRP), serum amyloid A protein (SAA), and fibrinogen, with socioeconomic status. DESIGN: Cross sectional study. SETTING: Eastern and southern Finland. PARTICIPANTS: 1503 men aged 45 to 74 years who participated in a cardiovascular risk factor survey in 1997. Based on the levels of education and family income, the men were classified to three socioeconomic groups. MAIN RESULTS: Mean concentrations of CRP (p for the trend <0.001), SAA (p for the trend 0.018), and fibrinogen (p for the trend <0.001) decreased substantially with increasing socioeconomic status. The trends in CRP and fibrinogen remained statistically significant after adjustment for smoking, waist to hip ratio, and prevalent longstanding diseases, and a non-significant trend was found for SAA (p for the trend 0.118). The inverse association between inflammation markers and socioeconomic status was particularly strong among the men below 60 years of age. CONCLUSIONS: Systemic inflammation is a potential mediator, especially among young and middle aged men, for the association between socioeconomic status and cardiovascular disease.

Acute-Phase Proteins↗

Systemic inflammation, cachexia and prognosis in patients with cancer.

PURPOSE OF REVIEW: Cachexia remains an important cause of morbidity and mortality among cancer patients. The mechanisms underlying this syndrome remain unclear and are almost certainly multifactorial. Evidence from animal models suggests a compelling link between cachexia and inflammation, and a variety of pro-inflammatory cytokines play an integral role. This review summarizes current thinking relating to inflammation, cachexia and prognosis in cancer patients, with particular emphasis on studies relating to recent therapeutic advances. RECENT FINDINGS: Pro-inflammatory cytokines induce the acute phase protein response, a key marker of systemic inflammation. Recent evidence has also implicated other tumour-derived mediators, such as proteolysis-inducing factor and parathyroid hormone-related peptide. In addition, systemic inflammation has been found in association with many malignancies, and has been correlated with weight loss, hypermetabolism, anorexia, and adverse prognosis. Treatments such as fish oil, monoclonal antibodies, and non-steroidal anti-inflammatory drugs, have all been utilized to attenuate systemic inflammation and influence weight loss. Recent clinical studies have suggested that eicosapentaenoic acid and cyclo-oxygenase 2 inhibitors promote weight gain and downregulate the acute phase protein response. SUMMARY: Pro-inflammatory processes are clearly implicated in the hypermetabolism and weight loss associated with cancer-associated cachexia. In addition, the presence of systemic inflammation is now clearly linked with adverse prognosis in patients with cancer, which cannot be fully explained by the association with weight loss. Systemic inflammation remains an important area for novel therapeutic targets in combating cachexia, and eicosapentaenoic acid and cyclo-oxygenase 2 inhibitors appear to be efficacious in the armory against cachexia.

Acute-Phase Proteins↗

Fever and hypothermia in systemic inflammation: recent discoveries and revisions.

Systemic inflammation is accompanied by changes in body temperature, either fever or hypothermia. Over the past decade, the rat and mouse have become the predominant animal models, and new species-specific tools (recombinant antibodies and other proteins) and genetic manipulations have been applied to study fever and hypothermia. Remarkable progress has been achieved. It has been established that the same inflammatory agent can induce either fever or hypothermia, depending on several factors. It has also been established that experimental fevers are generally polyphasic, and that different mechanisms underlie different febrile phases. Signaling mechanisms of the most common pyrogen used, bacterial lipopolysaccharide (LPS), have been found to involve the Toll-like receptor 4. The roles of cytokines (such as interleukins-1beta and 6 and tumor necrosis factor-alpha) have been further detailed, and new early mediators (e.g., complement factor 5a and platelet-activating factor) have been proposed. Our understanding of how peripheral inflammatory messengers cross the blood-brain barrier (BBB) has changed. The view that the organum vasculosum of the lamina terminalis is the major port of entry for pyrogenic cytokines has lost its dominant position. The vagal theory has emerged and then fallen. Consensus has been reached that the BBB is not a divider preventing signal transduction, but rather the transducer itself. In the endothelial and perivascular cells of the BBB, upstream signaling molecules (e.g., pro-inflammatory cytokines) are switched to a downstream mediator, prostaglandin (PG) E2. An indispensable role of PGE2 in the febrile response to LPS has been demonstrated in studies with targeted disruption of genes encoding either PGE2-synthesizing enzymes or PGE2 receptors. The PGE2-synthesizing enzymes include numerous phospholipases (PL) A2, cyclooxygenases (COX)-1 and 2, and several newly discovered terminal PGE synthases (PGES). It has been realized that the "physiological," low-scale production of PGE2 and the accelerated synthesis of PGE2 in inflammation are catalyzed by different sets of these enzymes. The "inflammatory" set includes several isoforms of PLA2 and inducible isoforms of COX (COX-2) and microsomal (m) PGES (mPGES-1). The PGE2 receptors are multiple; one of them, EP3 is likely to be a primary "fever receptor." The effector pathways of fever start from EP3-bearing preoptic neurons. These neurons have been found to project to the raphe pallidus, where premotor sympathetic neurons driving thermogenesis in the brown fat and skin vaso-constriction are located. The rapid progress in our understanding of how thermoeffectors are controlled has revealed the inadequacy of set point-based definitions of thermoregulatory responses. New definitions (offered in this review) are based on the idea of balance of active and passive processes and use the term balance point. Inflammatory signaling and thermoeffector pathways involved in fever and hypothermia are modulated by neuropeptides and peptide hormones. Roles for several "new" peptides (e.g., leptin and orexins) have been proposed. Roles for several "old" peptides (e.g., arginine vasopressin, angiotensin II, and cholecystokinin) have been detailed or revised. New pharmacological tools to treat fevers (i.e., selective inhibitors of COX-2) have been rapidly introduced into clinical practice, but have not become magic bullets and appeared to have severe side effects. Several new targets for antipyretic therapy, including mPGES-1, have been identified.

Animals↗

The role of plasma high molecular weight kininogen in experimental intestinal and systemic inflammation.

Inflammation is accompanied by activation of the plasma kallikrein-kinin system (KKS). KKS activation has been demonstrated in a variety of inflammatory human diseases. To further explore the participation of KKS in arthritis and inflammatory bowel disease, we used two experimental animal models in arthritis and enterocolitis. We found that activation of KKS is associated with arthritis induced by intraperitoneal injection of peptidoglycan-polysaccharide polymers (PG-PS) as well as the enterocolitis and systemic inflammation induced also by PG-PS when injected into the intestinal wall of genetically susceptible Lewis rats. We postulated that KKS participates in the pathogenesis of inflammatory reactions involved in cellular injury, coagulation, fibrinolysis, kinin formation, complement activation, cytokine secretion, and release of proteases. We demonstrated that therapy with a specific plasma kallikrein inhibitor modulated the experimental enterocolitis, arthritis, and systemic inflammation. The fact that deficiency of plasma high molecular weight kininogen in the genetically susceptible Lewis rat results in decreased chronic enterocolitis and systemic inflammation also supports our hypothesis. We suggest that KKS plays a similar role in idiopathic human intestinal inflammatory disease and arthritis, making kallikrein-kinin system proteins appealing targets for drug therapy in chronic inflammatory diseases such as rheumatoid arthritis and Crohn's disease.

Amino Acid Sequence↗

Systemic inflammation in heart failure--the whys and wherefores.

Patients with chronic heart failure (HF) are characterized by systemic inflammation, as evident by raised circulating levels of several inflammatory cytokines with increasing levels according to the degree of disease severity. In addition to the myocardium itself, several tissues and cells can contribute to this inflammation, including leukocytes, platelets, tissue macrophages and endothelial cells. Although the mechanisms for the systemic inflammation is unknown, both infectious (e.g., endotoxins) and non-infectious (e.g., oxidative stress and hemodynamic overload) events could be operating, also including activation of Toll-like receptors as well as interaction with the neurohormone system. A growing body of evidence suggests that this systemic inflammation in chronic HF may play a role in the development and progression of this disorder, not only by promoting myocardial dysfunction, but also by inducing pathogenic consequences in other organs and tissues, thereby contributing to additional aspects of the HF syndrome such as cachexia, endothelial dysfunction and anemia. Although this inappropriate immune activation and inflammation could represent a new target for therapy in patients with chronic HF, the anti-tumor necrosis factor trials have been disappointing, and future research in this area will have to more precisely identify the most important mechanisms and actors in the immunopathogenesis of chronic HF in order to develop better immunomodulating agents for this disorder.

Anemia↗

The influence of systemic inflammation on inflammation in the brain: implications for chronic neurodegenerative disease.

Systemic inflammation is associated with sickness behaviour and signals pass from the blood to the brain via macrophage populations associated with the brain, the perivascular macrophages and the microglia. The amplitude, or gain, of this transduction process is critically dependent on the state of activation of these macrophages. In chronic neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease, or prion disease the pathology is associated with a highly atypical inflammatory response, characterised by the activation of the macrophage populations in the brain: the cells are primed. Recent evidence suggests that systemic inflammation may impact on local inflammation in the diseased brain leading to exaggerated synthesis of inflammatory cytokines and other mediators in the brain, which may in turn influence behaviour. These interactions suggest that systemic infections, or indeed any systemic challenge that promotes a systemic inflammatory response, may contribute to the outcome or progression of chronic neurodegenerative disease.

Alzheimer Disease↗

Biocompatibility parameters of different dialysis membranes assessed during systemic inflammation.

BACKGROUND: We explored whether biocompatible dialyzer membranes modulate the inflammatory response during blood contact in patients with systemic inflammation. METHODS: 15 patients with end-stage renal disease and systemic inflammation (mean serum C-reactive protein 86 +/- 4 mg/l) were randomly treated with Cuprophan (CU), polyamide (PA) and vitamin-E coated (VEC) membrane-based dialyzers. RESULTS: Changes in blood pressure, capillary blood oxygen saturation and differential blood counts during the hemodialysis session were not significantly different between the three dialyzers. Baseline blood levels of activated circulating complement (C3a) were more than 100 times above normal, and unlike expected they decreased during hemodialysis treatments (CU: from 7,389 +/- 783 to 5,423 +/- 761 ng/ml; PA: from 7,379 +/- 980 to 5,690 +/- 714 ng/ml; VEC: from 7.377 +/- 714 to 5,360 +/- 1,005 ng/ml; all n.s.). No significant differences between treatments were found with respect to changes in blood concentrations of TNF-alpha, interleukin-6 and interleukin-1 receptor antagonist as well as ICAM-1 (CU: from 451 +/- 41 to 477 +/- 41 ng/ml; PA: from 437 +/- 42 to 449 +/- 40 ng/ml; VEC: from 461 +/- 43 to 460 +/- 47 ng/ml). Furthermore, generation of reactive oxygen species by mononuclear blood cells was comparable during hemodialysis with the CU, PA and VEC dialyzer. CONCLUSION: The choice of dialyzer membrane material does not affect most aspects of biocompatibility when patients have significant systemic inflammation. This confounding variable should be taken into account in studies exploring the effects of biocompatible dialyzer membranes.

Female↗

The role of plasma high molecular weight kininogen in experimental intestinal and systemic inflammation.

Inflammation is accompanied by activation of the plasma kallikrein-kinin system (KKS). KKS activation has been demonstrated in a variety of inflammatory human diseases. To further explore the participation of KKS in arthritis and inflammatory bowel disease, we used two experimental animal models in arthritis and enterocolitis. We found that activation of KKS is associated with arthritis induced by intraperitoneal injection of peptidoglycan-polysaccharide polymers (PG-PS) as well as the enterocolitis and systemic inflammation induced also by PG-PS when injected into the intestinal wall of genetically susceptible Lewis rats. We postulated that KKS participates in the pathogenesis of inflammatory reactions involved in cellular injury, coagulation, fibrinolysis, kinin formation, complement activation, cytokine secretion, and release of proteases. We demonstrated that therapy with a specific plasma kallikrein inhibitor modulated the experimental enterocolitis, arthritis, and systemic inflammation. The fact that deficiency of plasma high molecular weight kininogen in the genetically susceptible Lewis rat results in decreased chronic enterocolitis and systemic inflammation also supports our hypothesis. We suggest that KKS plays a similar role in idiopathic human intestinal inflammatory disease and arthritis, making kallikrein-kinin system proteins appealing targets for drug therapy in chronic inflammatory diseases such as rheumatoid arthritis and Crohn's disease.

Amino Acid Sequence↗