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Biomedical subjects

R A Roth

Publications and source records attributed to R A Roth.

At least 73 records · Page 4Linked to original sources

Overexpression of insulin degrading enzyme: cellular localization and effects on insulin signaling.

To investigate the role of insulin degrading enzyme (insulysin, EC 3.4.24.56) in insulin signaling, Chinese hamster ovary cells overexpressing the human insulin receptor were genetically engineered to also stably overexpress the rat insulin degrading enzyme. In comparison to the parental cells, these cells expressed 2.7-fold elevated levels of enzyme and insulin degradation was also increased 2-fold. These cells also exhibited a more rapid decrease in receptor tyrosine phosphorylation after removal of insulin. Moreover, low concentrations of insulin were less effective at stimulating proliferation of the cells overexpressing the enzyme. Finally, a fraction of the overexpressed enzyme as well a fraction of the endogenous enzyme could be detected on the plasma membrane surface of these cells. These results support the hypothesis that this enzyme may function in insulin signaling by degrading the insulin molecule.

Animals↗

Development of a smart holmium:YAG laser lithotriptor.

BACKGROUND AND OBJECTIVE: The purpose of this study was to develop a feedback control system for the pulsed holmium:YAG medical laser that enhances tissue selectivity and safety by discriminating between soft and hard biological tissue such as urinary and biliary calculi and bone. STUDY DESIGN/MATERIALS AND METHODS: The ability to discriminate is achieved by monitoring prompt laser-induced visible/NIR photoemissions via retrograde transmission over the laser delivery fiber in conjunction with a developed detection algorithm. RESULTS: Experimental data are presented for a system that employs this discrimination scheme with an electro-optic shutter for rapid intrapulse feedback control of holmium laser-based lithotripsy procedures. The results demonstrate the feasibility of a lithotriptor that can deliver 1 J per pulse to calculi yet limit errant discharges to surrounding urinary tract tissue to < or = 0.1 J. CONCLUSION: Based on animal tissue safety data, the laser margin of safety is improved by an order of magnitude.

Algorithms↗

The role of neutrophils in producing hepatocellular dysfunction during the hyperdynamic stage of sepsis in rats.

Although studies have shown that hepatocellular function is depressed during the early, hyperdynamic stage of sepsis, the mechanism responsible for this remains unknown. To determine whether neutrophils play any role in producing this depression, hepatocellular function was measured in neutrophil-competent and neutropenic animals subjected to sepsis. Neutropenia was induced by tail vein injection of an immunoglobulin directly against rat neutrophils (anti-neutrophil Ig) at 16 and 2 h prior to the initiation of cecal ligation and puncture (CLP, i.e., a model of polymicrobial sepsis). Neutropenia was confirmed by peripheral blood smears. Neutrophil-competent controls were given nonimmunized Ig before the onset of sepsis. Sham-operated animals received anti-neutrophil Ig or control Ig. Hepatocellular function [i.e., the maximal velocity of indocyanine green clearance (Vmax) and efficiency of the clearance (Km)] was determined by a fiber-optic catheter and in vivo hemoreflectometer at 5 h after CLP (i.e., early, hyperdynamic sepsis) or sham operation. Serum alanine aminotransferase (ALT) levels were also determined. The results indicate that although circulating levels of ALT were not elevated, hepatocellular function was significantly depressed during early sepsis. The depression in Vmax and Km was, however, prevented by neutrophil depletion, suggesting an integral role of the neutrophils in depressing hepatocellular function under such conditions. The results suggest that the prudent modulation of neutrophil function during the early stage of polymicrobial sepsis may be beneficial for preventing or delaying the occurrence of hepatocellular dysfunction.

Alanine Transaminase↗

Is exposure to bacterial endotoxin a determinant of susceptibility to intoxication from xenobiotic agents?

Why certain individuals are more susceptible than others to harmful effects of chemical exposure remains incompletely understood. One understudied but potentially important determinant of susceptibility is concurrent or preexisting inflammation that may influence the pathogenic outcome of chemical exposure. Endotoxin from gram-negative bacteria is a potent inducer of inflammation. We are all exposed to endotoxin, and such exposure varies considerably among individuals depending on environment, bacterial infection, and conditions that affect its translocation from the lumen of the gastrointestinal tract into the circulation. Mammals have a vigorous response to endotoxin that includes recruitment and activation of inflammatory cells and release of many soluble mediators that affect cellular homeostasis. These and other results have led to the hypothesis that altered tissue homeostasis initiated by small, otherwise nontoxic doses of xenobiotic agents can progress to overt toxicity in the presence of inflammatory factors generated by concurrent endotoxin exposure. This hypothesis is supported by studies in animals, in which considerable evidence has accumulated indicating that endotoxin exposure can influence the magnitude of responses to toxic chemicals. For example, exposure to small amounts of endotoxin markedly augments liver injury from a variety of hepatotoxicants including carbon tetrachloride, ethanol, cadmium, halothane, allyl alcohol, and others. Although support for this hypothesis exists, much remains to be learned about the mechanisms by which endotoxin augments chemical toxicity and the implications for human health. Given the ubiquitous and variable exposure of people and animals to endotoxin, this inducer of inflammation should receive serious consideration as a potential determinant of susceptibility to toxic chemicals.

Animals↗

Insulin degradation by Madin-Darby canine kidney cells expressing the insulin receptor.

Prior studies have shown that Madin-Darby canine kidney cells (MDCK) overexpressing the human insulin receptor bind and respond normally to insulin (T.C. Yeh, R.A. Roth, Diabetes 43 (1994) 1297-1303). Moreover, the insulin receptor preferentially localizes to the basolateral membrane of these cells. In the present studies, insulin was added to either the apical or the basolateral side of these cells and the extent of degradation of the insulin was assessed. Radioactive insulin added to either side was bound to its receptor and the radioactivity which reached the other side of the cell was to a large extent degraded fragments. Insulin added to the apical side was degraded to a larger extent (83%) than when added to the basolateral side (49%) although the basolateral side has much more insulin receptors than the apical side. This degradation process was not inhibitors of either lysosomal enzymes, the proteasome complex or cathepsins. The degradation process could however, be potently inhibited by the sulfhydryl alkylating agent N-ethylmaleimide. Further, cell surface biotinylation study showed that the insulin degrading enzyme was preferentially localized on the apical membranes. These results suggest that insulin added on the apical side of MDCK cells are more closely linked to the degradation process than that added on the basolateral side.

Animals↗

Gadolinium chloride pretreatment protects against hepatic injury but predisposes the lungs to alveolitis after lipopolysaccharide administration.

Exposure to lipopolysaccharide (LPS) can result in multi-organ failure and death. After an intravenous injection of LPS into rats, neutrophils (PMN) rapidly accumulate in the liver sinusoids and pulmonary vasculature, and PMN play a critical role in producing both hepatic and pulmonary injury. Kupffer cells (KC), the resident macrophages of the liver, phagocytose LPS and produce inflammatory mediators which may be chemotactic and stimulatory for PMN. The purpose of this study was to determine whether inhibition of KC function affects PMN accumulation and the development of parenchymal injury in the liver and lungs after systemic administration of LPS. Female, Sprague-Dawley rats (180-230 g) were pretreated with either gadolinium chloride-6H2O (GdCl3; 10 mg/kg, intravenously), to inactivate KC, or saline vehicle 24 h before receiving either LPS (4 mg/kg, intravenously) or saline vehicle. Rats were killed 1.5, 6, and 24 h after LPS administration. In a preliminary study, exposure to GdCl3 decreased uptake of carbon in the liver, indicating inhibition of phagocytosis by KC. Ninety minutes after administration of LPS, PMN accumulated in the livers of LPS-treated rats, and this effect was not altered by pretreatment with GdCl3. Similarly, exposure to LPS resulted in PMN accumulation in the pulmonary tissue, which was unaffected by GdCl3 pretreatment. Exposure to GdCl3 before LPS administration resulted in a significant increase in the number of PMN recovered by bronchoalveolar lavage at 24 h, indicating diffuse acute alveolitis. LPS-induced hepatic injury was prevented by pretreatment with GdCl3; however, the increased wet lung/body weight ratio observed after LPS administration was unaffected by GdCl3. These results confirm that inactivation of KC protects against hepatic injury and extend this finding by ruling out inhibition of hepatic PMN accumulation as a mechanism for this effect. The data also suggest that treatment with GdCl3 predisposes the lungs to alveolitis during systemic exposure to LPS.

Animals↗

Insulin is degraded extracellularly in wounds by insulin-degrading enzyme (EC 3.4.24.56).

The exact mechanism by which insulin reverses impaired wound healing is unknown. Previous investigators have shown that insulin is degraded in experimental wounds, suggesting that the action of insulin may be locally modified. The following study corroborates these findings and identifies the major proteinase responsible for insulin degradation in wound fluid (WF). Adult male Fisher rats were wounded by subcutaneous implantation of polyvinyl alcohol sponges while under pentobarbital sodium anesthesia. WF and serum were collected on 1, 5, 10, and 14 days postinjury. Decreased insulin concentration in late WF correlated with an increased insulin-degrading activity. Multiple proteinases appear to participate in the overall degradation of insulin in WF. However, the primary enzyme responsible for insulin degradation in WF was characterized by immunoprecipitation and immunoblotting and identified as the neutral thiol-dependent metalloproteinase, insulin-degrading enzyme (EC 3.4.24.56). Exogenous steroid administration caused a decrease in WF insulin-degrading activity. Glucagon and adrenocorticotrophin degradation was also observed, whereas minimal degradation of insulin-like growth factors I and II and epidermal growth factor was detected in WF. The ability to extracellularly degrade insulin may represent a unique mechanism for the regulation of this hormone's role in healing wounds.

Adrenocorticotropic Hormone↗

A constitutively active version of the Ser/Thr kinase Akt induces production of the ob gene product, leptin, in 3T3-L1 adipocytes.

The expression of the ob gene product leptin in adipose tissues has been previously described to be regulated by insulin in vivo and vitro. Akt, a ser/thr kinase with a pleckstrin homology domain, has recently been identified to function in the insulin receptor signaling cascade. The aim of this study was to investigate the role of Akt in the production of leptin by adipocytes. Therefore, we examined leptin production by 3T3-L1 adipocytes stably expressing a myristoylated version of Akt which is constitutively active. Leptin levels in the supernatants of serum starved, nonstimulated 3T3-L1 adipocytes were determined by radioimmunoassay (RIA). Expression of the constitutively active Akt was found to induce a more than 20-fold increase in leptin levels whereas a control non-myristoylated Akt had no effect. Leptin mRNA levels as determined by either RNase protection assay or reverse transcriptase (RT)-polymerase chain reaction (PCR) were not elevated by the constitutively active Akt. These results indicate that Akt can induce leptin production in 3T3-L1 adipocytes via a non-transcriptional mechanism.

3T3 Cells↗

Improved glucose tolerance restores insulin-stimulated Akt kinase activity and glucose transport in skeletal muscle from diabetic Goto-Kakizaki rats.

The serine/threonine kinase Akt (protein kinase B [PKB] or related to A and C protein kinase [RAC]) has recently been implicated to play a role in the signaling pathway to glucose transport. However, little is known concerning the regulation of Akt activity in insulin-sensitive tissues such as skeletal muscle. To explore the role of hyperglycemia on Akt kinase activity in skeletal muscle, normal Wistar rats or Goto-Kakizaki (GK) diabetic rats were treated with phlorizin. Phlorizin treatment normalized fasting blood glucose and significantly improved glucose tolerance (P < 0.001) in GK rats, whereas in Wistar rats, the compound had no effect on glucose homeostasis. In soleus muscle from GK rats, maximal insulin-stimulated (120 nmol/l) Akt kinase activity was reduced by 68% (P < 0.01) and glucose transport was decreased by 39% (P < 0.05), compared with Wistar rats. Importantly, the defects at the level of Akt kinase and glucose transport were completely restored by phlorizin treatment. There was no significant difference in Akt kinase protein expression among the three groups. At a submaximal insulin concentration (2.4 nmol/l), activity of Akt kinase and glucose transport were unaltered. In conclusion, improved glucose tolerance in diabetic GK rats by phlorizin treatment fully restored insulin-stimulated activity of Akt kinase and glucose transport. Thus, hyperglycemia may directly contribute to the development of muscle insulin resistance through alterations in insulin action on Akt kinase and glucose transport.

Animals↗

Effect of timing of treatment of the glyburide-reversible cardioprotective activity of BMS-180448.

The effect of the timing of treatment with the ATP-regulated potassium channel agonist BMS-180448 was evaluated in isolated rat heart and ferret models of ischemia and reperfusion. In rat hearts, 10 microM BMS-180448, given before and after global ischemia as well as only during reflow, improved reperfusion contractile function and attenuated lactic dehydrogenase release, although reperfusion-only treatment was less effective. Cromakalim (10 microM) and bimakalim (10 microM) treatment before and after global ischemia afforded a degree of protection similar to that of BMS-180448, although they were not cardioprotective when given only during reperfusion. Pre- and post-treatment cardioprotection were abolished by glyburide. Ischemia/reperfusion significantly increased cytosolic calcium concentration ([Ca++]i) and BMS-180448 given only during reperfusion attenuated this change. In anesthetized ferrets, BMS-180448 (2 mg/kg) or vehicle was infused i.v. during a 40-min interval beginning 1) 10 min before coronary occlusion, 2) at the 45th min of ischemia or 3) at the 5th min of reperfusion. Preocclusion administration of BMS-180448 was associated with a 35% reduction in infarct damage from that recorded in vehicle-treated control ferrets. Drug administered at the midpoint of ischemia reduced infarct size approximately 44%, whereas delaying BMS-180448 infusion until the 5th min of reperfusion reduced, but still provided a significant (17%) level of salvage. The favorable effects of BMS-180448 in the ferret were not associated with changes in either collateral blood flow or peripheral hemodynamics. Thus BMS-180448 shows some protective effects when given only during reperfusion. Cromakalim and bimakalim did not exert similar actions and the difference may be secondary to the faster penetration of BMS-180448.

Animals↗

Expression of a constitutively active Akt Ser/Thr kinase in 3T3-L1 adipocytes stimulates glucose uptake and glucose transporter 4 translocation.

Akt is a serine/threonine kinase that requires a functional phosphatidylinositol 3-kinase to be stimulated by insulin and other growth factors. When directed to membranes by the addition of a src myristoylation sequence, Akt becomes constitutively active. In the present studies, the constitutively active Akt and a nonmyristoylated control mutant were expressed in 3T3-L1 cells that can be induced to differentiate into adipocytes. The constitutively active Akt induced glucose uptake into adipocytes in the absence of insulin by stimulating translocation of the insulin-responsive glucose transporter 4 to the plasma membrane. The constitutively active Akt also increased the synthesis of the ubiquitously expressed glucose transporter 1. The increased glucose influx in the 3T3-L1 adipocytes directed lipid but not glycogen synthesis. These results indicate that Akt can regulate glucose uptake and metabolism.

3T3 Cells↗

Akt, a pleckstrin homology domain containing kinase, is activated primarily by phosphorylation.

Akt is a serine/threonine kinase that is stimulated by receptor tyrosine kinases and contains a pleckstrin homology domain. One model proposed to explain this activation suggests that receptor tyrosine kinases stimulate a phosphatidylinositol 3-kinase whose lipid products directly activate Akt kinase by interacting with its pleckstrin homology domain. In the present study, we show, in three cell types, that Akt does not require its pleckstrin homology domain to respond to either insulin or platelet-derived growth factor. Moreover, attachment of the src myristoylation signal to target Akt, without its pleckstrin homology domain, to the membrane constitutively activates Akt by causing an increase in its basal level of phosphorylation. This constitutively active form of Akt can also activate p70(S6K), indicating that the pleckstrin homology domain is not necessary for downstream interactions. Fusion of the inter src homology 2 domain from the p85 regulatory subunit of the phosphatidylinositol 3-kinase to Akt also constitutively activated Akt and induced an association with the lipid kinase. Phosphorylation of this fusion protein still critically contributes toward its increased activity. The sum of these results indicates that the primary mechanism of Akt activation is via protein phosphorylation.

Animals↗

Characterization and cloning of a 58/53-kDa substrate of the insulin receptor tyrosine kinase.

A monoclonal antibody has been produced which immunoprecipitates 58- and 53-kDa proteins which are rapidly tyrosine phosphorylated in insulin-treated cells. These proteins can also be tyrosine phosphorylated in vitro by the isolated human insulin receptor. Increased tyrosine phosphorylation of these proteins is also observed in cells expressing a transforming chicken c-Src (mutant Phe-527) and in cells with the activated tyrosine kinase domains of the Drosophila insulin receptor, human insulin-like growth factor I receptor, and human insulin receptor-related receptor. P58/53 did not appear to associate with either the GTPase activating protein of Ras (called GAP) or the phosphatidylinositol 3-kinase by either co-immunoprecipitation experiments or in Far Westerns with the SH2 domains of these two proteins. Since p58/53 did not appear, by immunoblotting, to be related to any previously described tyrosine kinase substrate such as the SH2 containing proteins SHC and the tyrosine phosphatase Syp, the protein was purified in sufficient amounts to obtain peptide sequence. This sequence was utilized to isolate a cDNA clone that encodes a previously uncharacterized 53-kDa protein which, when expressed in mammalian cells, is tyrosine phosphorylated by the insulin receptor.

Amino Acid Sequence↗

Cellular fibronectin and von Willebrand factor concentrations in plasma of rats treated with monocrotaline pyrrole.

The monocrotaline pyrrole (MCTP)-treated rat is a useful model for the study of certain chronic pulmonary vascular diseases. A single, i.v. administration of a low dose of MCTP causes pneumotoxicity, pulmonary vascular remodeling, sustained increases in pulmonary arterial pressure, and right ventricular hypertrophy in rats. The pulmonary vascular lesions are characterized by endothelial cell alterations, platelet and fibrin microvascular thrombosis, pulmonary edema, and thickening of the intimal and medial layers of the vessel wall. These lesions suggest that some dysfunction of the hemostatic system occurs in the lungs of rats treated with MCTP. We evaluated the concentrations of two adhesion proteins, cellular fibronectin (cFn) and von Willebrand factor (vWF), in the plasma of rats treated with MCTP. We hypothesized that changes in these factors occur along with markers of pneumotoxicity and ventricular hypertrophy and that such changes might contribute to the genesis of the vascular lesions. Enzyme-linked immunosorbent assays were used to measure cFn and vWF concentrations in the plasma of rats after MCTP treatment. Rats treated with a single i.v. injection of 3.5 mg MCTP/kg body weight had delayed and progressive lung injury characterized at 5 days post-treatment by increases in the lung-to-body weight ratio and in lactate dehydrogenase activity and protein concentration in cell-free bronchoalveolar lavage fluid (BALF). Values for these markers were further increased at 8 days and reached a plateau thereafter. The number of nucleated cells within the BALF was increased at 8 and 14 days. Right ventricular hypertrophy, an indirect marker of pulmonary hypertension, was evident at 14 days. The cFn concentration was increased in plasma in rats at 8 and 14 days after treatment with MCTP. There was no difference between the vWF concentration in plasma of rats treated with MCTP and those treated with vehicle at any time. We conclude that an increase in plasma cFn concentration occurs prior to the onset of right ventricular hypertrophy and that this change is consistent with a role for cFn in the genesis of vascular remodeling and pulmonary hypertension in the MCTP-treated rat. The lung vascular injury and pulmonary hypertension in this model were not reflected in altered vWF concentration in the plasma.

Animals↗

Nitric oxide is not involved in hepatocyte killing by neutrophils activated by N-formyl-methionyl-leucylphenylalanine or phorbol myristate acetate in vitro.

Polymorphonuclear leukocytes (PMNS) have been implicated as cellular mediators of hepatic injury in models of inflammation in vivo. In vitro, hepatocyte killing by activated PMNs is mediated in part by proteases, but the role of nitric oxide is unknown. NO is produced by PMNs and hepatocytes and can act either to damage or protect in various models of toxicity. Therefore, we tested the hypothesis that NO is important in PMN-mediated hepatocyte killing in vitro. Freshly isolated hepatocytes from rat liver and PMNs elicited from rat peritoneum were cultured together or alone for 16 hours. Both cell types spontaneously released NO, estimated as its stable breakdown product, nitrite. Accumulation of nitrite in medium from hepatocyte cultures was augmented threefold by incubation with L-arginine and was completely inhibited by treatment with the nitric oxide synthase (NOS) inhibitor NG-methyl-L-arginine (NMA). Nitrite release in PMN cultures was unaffected by L-arginine addition and only partially inhibited by NMA. In PMN:hepatocyte cocultures (10:1), accumulation of nitrite was additive relative to cells cultured separately. Incubation with NMA blocked nitrite production completely in cocultures, whereas L-arginine caused a two-fold increase in nitrite. Addition of PMN stimulants, N-formyl-methionyl-leucyl-phenylalanine (FMLP), or phorbol myristate acetate (PMA), caused increased release of alanine aminotransferase (ALT) activity into medium from hepatocytes cultured with PMNs but not from hepatocytes cultured alone; this indicated that injury to hepatocytes was due to activated PMNS. However, neither FMLP nor PMA significantly altered nitrite release from cocultures. Despite the alterations in NO production induced by addition of NMA or L-arginine, neither agent altered the release of ALT from hepatocytes in coculture with activated PMNs. Thus, PMNs and hepatocytes provided NO in vitro, but neither suppression nor elevation of NO production affected PMN-mediated hepatocyte killing. Accordingly, NO is not involved in the mechanisms by which FMLP-or PMA-stimulated PMNs mediate hepatocyte injury in vitro.

Animals↗

Identification of factors from rat neutrophils responsible for cytotoxicity to isolated hepatocytes.

Activated polymorphonuclear neutrophils (PMNs) have been shown to be cytotoxic to rat hepatic parenchymal cells in vitro. This cytotoxicity could be observed without direct cell-cell contact, since the conditioned medium from PMNs activated with formyl-Met-Leu-Phe (fMLP) was effective in hepatocyte killing. To identify the toxic factor(s) released by PMNs, degranulation was induced by fMLP in PMNs pretreated with cytochalasin B. The contents released from the phagocytes were subjected to gel filtration on a Sephadex G-100 column. Resulting fractions were tested for cytotoxicity to isolated hepatocytes by using release of alanine aminotransferase as a marker for hepatocyte injury. Cytotoxicity was associated with fractions containing cathepsin G and elastase and not with other fractions, including those containing myeloperoxidase. The former two enzymes were purified to homogeneity with a carboxymethyl cellulose column. Each of these enzymes demonstrated concentration-dependent cytotoxicity to hepatocytes at concentrations > 2 microgram/mL. Moreover, they exhibited an additive cytotoxic effect. Effective concentrations for the combined cathepsin G and elastase in the incubation mixture were similar to the concentrations of these enzymes in PMN-conditioned medium that produced cytotoxicity to hepatocytes. Cytotoxicity of either purified enzyme or of conditioned medium could be prevented by plasma alpha-1-antitrypsin or soybean trypsin-chymotrypsin inhibitor, which were also potent inhibitors of enzymic activity of both cathepsin G and elastase. By contrast, the serine protease inhibitors, aprotinin and 4-(2-aminoethyl)-benzene-sulfonyl fluoride, were less effective in inhibiting cathepsin G and elastase activities as well as cytotoxicity caused by the purified proteases or PMN-conditioned medium. These results support the hypothesis that cathepsin G and elastase are important mediators of hepatic parenchymal cell killing produced by activated PMNs in vitro.

Alanine Transaminase↗

Thrombin is a distal mediator of lipopolysaccharide-induced liver injury in the rat.

Previous results demonstrated that rats given Escherichia coli lipopolysaccharide (LPS; 4 mg/kg, i.v.) experience hepatocellular necrosis that begins within 4 hr and that prior treatment with anticoagulants (e.g., heparin) which target thrombin prevents the liver injury. In this study, hepatocellular injury, as marked by increased plasma alanine aminotransferase (ALT) activity and histologic changes, was prevented when heparin or hirudin was administered to rats shortly before the onset of injury. These results suggest that thrombin is a critical mediator that acts distally in the series of inflammatory events that culminates in hepatocellular damage. To explore further this hypothesis, livers isolated from rats 2 hr after LPS administration were perfused with various media. Perfusion of livers with medium comprising diluted blood from heparin-treated donors resulted in no release of ALT activity. By contrast, perfusion with similar medium anticoagulated with ancrod, which prevents clotting by depleting fibrinogen but does not inhibit thrombin, resulted in hepatocellular injury evidenced as a time-dependent appearance of ALT activity in the medium. Moreover, when livers from rats treated 2 hr previously with LPS were perfused with buffer to which thrombin had been added, injury resulted. No injury resulted when thrombin was omitted from the buffer or when livers from saline-treated rats were used. These results indicate that thrombin is a critical and distal mediator of LPS-induced liver damage and contributes to hepatocellular injury through a mechanism that is independent of clot formation. Furthermore, inflammatory events triggered by LPS exposure are a prerequisite for thrombin-induced injury.

Alanine Transaminase↗

Mechanisms of inflammatory liver injury: adhesion molecules and cytotoxicity of neutrophils.

During recent years, increasing experimental evidence has suggested that hepatic nonparenchymal cells, in particular Kupffer cells and neutrophils, can contribute significantly to the pathogenesis of liver injury in various chemical toxicities. Neutrophils are central to the mechanism of injury after hepatic ischemia reperfusion and endotoxemia. In this symposium summary, an overview of critical aspects of neutrophil-dependent liver injury is presented. A general introduction to the involvement of adhesion molecules in neutrophil rolling and transendothelial migration is provided. Mediators and mechanisms of neutrophil sequestration in the liver vasculature, extravasation, and adherence-dependent cytotoxicity are discussed using the examples of endotoxin-induced hepatic failure and ischemia-reperfusion injury. These processes involve a complex network of inflammatory mediators including cytokines, chemokines, and lipid-derived compounds. The role of neutrophil-derived cytotoxic mediators, e.g., reactive oxygen and proteases, in the molecular mechanisms of parenchymal cell injury is discussed. Furthermore, interactions between neutrophils and contractile, perisinusoidal, stellate cells that influence microvascular blood flow in the liver are discussed. Results of these and other investigations are leading to increased understanding of the complex interactions between neutrophils and tissues that result in injury.

Animals↗