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Arachidonic acid metabolites contribute to the irreversible depolarization induced by in vitro ischemia.

Intracellular recordings were made from hippocampal CA1 neurons in rat slice preparations. Superfusion with oxygen- and glucose-deprived medium (in vitro ischemia) produced a rapid depolarization approximately 5 min after the onset of the superfusion. Even when oxygen and glucose were reintroduced immediately after rapid depolarization, the membrane depolarized further (persistent depolarization) and reached 0 mV (irreversible depolarization) after 5 min from the reintroduction. The pretreatment of the slice preparation with a phospholipase A2 (PLA2) inhibitor, para-bromophenacyl bromide, or a cytochrome p-450 inhibitor, 17-octadecynoic acid, significantly restored the membrane to the preexposure potential level after the reintroduction of oxygen and glucose. The administration of 14,15-epoxyeicosatrienoic acid or 20-hydroxyeicosatetraenoic acid did not change the latency of the rapid depolarization and did not allow the membrane potential to recover after the ischemic exposure. In contrast, after pretreatment with cyclooxygenase or lipoxygenase inhibitors, such as indomethacin, resveratrol, Dup-697, nordihydroguaiaretic acid, and 3,4-dihydrophenyl ethanol, a minority of neurons tested showed postischemic recovery from the persistent depolarization. Improved recovery was also seen after treatment with the free radical scavengers, edaravone and alpha-tocopherol. These results suggest that the activation of the arachidonic acid cascade via PLA2 and the free radicals produced by arachidonic acid metabolism contribute to the irreversible depolarization produced by in vitro ischemia.

Action Potentials↗

Targeting integrin-linked kinase inhibits Akt signaling pathways and decreases tumor progression of human glioblastoma.

The phosphatidylinositol 3-kinase pathway is an important regulator of a wide spectrum of tumor-related biological processes, including cell proliferation, survival, and motility, as well as neovascularization. Protein kinase B/Akt is activated in a complex manner through the phosphorylation of protein kinase B/Akt on Thr308 and Ser473. Although protein-dependent kinase-1 has been shown to phosphorylate Akt at Thr308, it is not clear whether there is a distinct kinase that exclusively phosphorylates Akt at Ser473. A possible candidate is integrin-linked kinase (ILK), which has been shown to phosphorylate Akt at Ser473 in vitro. ILK is a multidomain focal adhesion protein that is believed to be involved in signal transmission from integrin and growth factor receptors. Further, ILK is implicated in the regulation of anchorage-dependent cell growth/survival, cell cycle progression, invasion and migration, and tumor angiogenesis. In this study, we tested the hypothesis that ILK inhibition would inhibit these processes in gliomas in which it is constitutively expressed. We found that a newly developed small-molecule compound (QLT0267) effectively inhibited signaling through the ILK/Akt cascade in glioma cells by blocking the phosphorylation of Akt and downstream targets, including mammalian target of rapamycin and glycogen synthase kinase-3beta. Treatment of glioma cells with 12.5 micromol/L QLT0267 inhibited cell growth by 50% at 48 hours. An anchorage-dependent cell growth assay confirmed the cell growth-inhibitory effect of QLT0267. Further, the decrease in cell growth was associated with a dramatic accumulation of cells in the G2-M phase of the cell cycle. Although the cell growth-inhibitory effects of the ILK inhibitor were achieved only at a high concentration, the QLT0267 was able to reduce cellular invasion and angiogenesis at much lower concentrations as shown by in vitro invasion assays and vascular endothelial growth factor secretion. Thus, blocking the ILK/Akt pathway is a potential strategy for molecular targeted therapy for gliomas.

Blotting, Western↗

Impaired beta-adrenergic hyperpolarization in arteries from prehypertensive spontaneously hypertensive rats.

Stimulation of beta-adrenoceptors leads to vascular smooth muscle hyperpolarization, presumably through the beta-adrenoceptors/Gs protein/adenylate cyclase/ATP-sensitive K(+)-channels (KATP) signaling cascade, which may play an important role in the sympathetic control of membrane potential. beta-Adrenoceptor-mediated hyperpolarization has been shown to be impaired in the established stage of experimental hypertension. The present study tested the hypothesis that beta-adrenergic hyperpolarization may be defective before the development of hypertension in some forms of genetic hypertension. We evaluated beta-adrenoceptor-mediated hyperpolarization using microelectrodes in mesenteric resistance arteries from 5-week-old, prehypertensive, spontaneously hypertensive rats (SHR) and age-matched Wistar-Kyoto rats (WKY). Isoproterenol-induced hyperpolarization was significantly smaller in SHR than in WKY (10(-7) mol/L: -4.6+/-0.6 versus -7.8+/-0.8 mV, P<0.01; 10(-6) mol/L -7.8+/-0.5 versus -9.8+/-0.6 mV, P<0.05; n=9). Furthermore, hyperpolarization to cholera toxin, a direct activator of Gs protein, was also impaired in SHR. On the other hand, hyperpolarization to forskolin, an adenylate cyclase activator, and to levcromakalim, a KATP opener, was comparable between groups. These findings suggest that beta-adrenoceptor-mediated hyperpolarization is defective in SHR before the development of hypertension, presumably because of an abnormality at the Gs protein site. Considering the importance of membrane potential in the control of vascular tone, altered beta-adrenergic control of membrane potential might play a role in the development of hypertension in SHR.

Animals↗

[Interleukin-1 signal transduction in interaction between the nervous and immune systems].

Ligand-receptor interactions of the cytokine Interleukin-1 (IL-1) with its target cells, and further intercellular signal transduction play the key role in manifestation of its biological effects. Peculiarities of IL-1 signaling are determined by its unique structure and the composition of its receptors. The sphingomyelin pathway of IL-1beta signal transduction is one of the principle signal mechanisms providing realization of most, if not all, biological effects of cytokine. This signaling pathway is initiated by activation of the membrane enzyme neutral sphingomyelinase (nSMase), which catalyses the hydrolysis of membrane shingomyelin to the secondary cellular messenger ceramide. It has been established that IL-1beta operation in the CNS involves mechanisms mediated by IL-1 type beta1 receptor and the shingomyeline pathway of cytokine signal transduction into the cell. Type 1 IL-1 receptor is necessary for IL-1-induced activation of nSMase, the key enzyme of the sphingomyelin cascade. Change in nSMase activity in membranes of nerve and immunocompetent cells is the common link in the stress reaction of neuroendocrinal and immune system cells. nSMase activity seems to be a potential target for testing effects of various pharmaceuticals and interventions, while planning strategy of correction of immune system dysfunctions and neuro-immune interaction disturbances.

Animals↗

Thrombelastography as an aid to regional anesthesia: preliminary communication.

Thrombelastography (TEG), a less commonly available technique used to assess hemostatic function, has recently gained popularity. Analysis of TEG yields qualitative information about platelet function, thromboplastin generation and their interaction with the intrinsic cascade to form a stable clot. Additional information is obtained about fibrinogen and Factor XIII levels as well as the fibrinolytic system. TEG has been shown to be more sensitive and accurate than traditional coagulation tests at both predicting and treating coagulopathies. We report here three cases in which TEG was used to assess hemostatic function in patients at risk for bleeding prior to the induction of regional anesthesia. In all three cases, traditional tests were inadequate to predict the safe practice of regional anesthesia. TEG provided this information and regional anesthesia was successfully employed.

Aged↗

Disseminated intravascular coagulation after hepatic resection.

Disseminated intravascular coagulation (DIC) after hepatic resection is a serious complication that leads to a fatal outcome unless prompt treatment is instituted. Between April 1973 and June 1988, DIC occurred postoperatively in 18 of 192 patients who underwent hepatic resection because of a variety of diseases of the liver and biliary tract. The diagnosis was made on the basis of changes in platelet count, fibrinogen level, serum level of fibrin degradation product (FDP), and protamine sulfate test. Heparin was used in an earlier series but has been discontinued because of difficulty in determining the optimal dose in patients undergoing liver resection. Instead, we now use gabexate mesilate, which blocks the coagulation cascade without the aid of antithrombin III and works as an anticoagulant. Fifteen patients had uneventful recoveries, but three died. Two died of aggravation of DIC, which was a result of reoperation performed under the diagnosis of surgical bleeding. The other patient died of liver failure after fever of unknown cause persisted for 4 months. The rationale for the diagnosis and treatment of DIC after liver resection is documented, and the problems involved are discussed.

Anticoagulants↗

[The vascular effects of thrombin on canine and human arteries; their independence from the metabolism of arachidonic acid].

Independently of it's effects on the coagulation cascade, thrombin can interact with the endothelium and release vasodilatory mediators as prostacyclin, endothelium dependent relaxing factor and potentiate the vascular changes induced by vasoconstrictors like endothelin or cathecolamines. Therefore, in the present study we tested the effect of thrombin in the pulmonary and femoral canine arteries and compared it with the effects on human umbilical artery; we also explore the possible mechanism of action of thrombin-induced changes in vascular tone by using specific inhibitors. Thrombin induced a concentration-dependent and endothelium-dependent relaxation on canine arteries (pulmonary or femoral) and endothelium-independent contraction of human umbilical arteries, neither the relaxation nor the contraction were significantly affected by incubation of the vessels with: a cyclooxygenase inhibitor (indomethacin), lypooxygenase inhibitor (BW 755C) or a soup of antagonists (atropine, metysergyde, propanolol, meperamine or phenoribenzamine) to block muscarinic, histaminic, serotoninergic or adrenergic receptors. However, incubation of the vessels with heparin or a calcium channel blocker did prevented the vasoconstrictor effect of thrombin in human umbilical veins. This results suggests that thrombin can elicit changes in vascular tone and the effect is dependent of the vessel stimulated, and the presence of the endothelium. Thus, thrombin-dependent change in vascular tone is not mediated by arachidonic acid metabolites, sympathetic or parasympathetic neurotransmitters, histamine or serotonine receptors. Thrombin effects may be mediated by interaction with an specific receptor coupled with a calcium signal.

Animals↗

[The "activated coagulation time (ACT)": two simple screening methods for evaluating coagulation disorders in dogs].

The use of the activated coagulation time (ACT) for testing the intrinsic coagulation is well established among veterinary practitioners in the USA. The advantage of the ACT compared to other coagulation tests is its ease to be performed under practice conditions. The ACT may be measured manually or instrumentally. The reference range of our instrumental measurement is between 90 and 120 seconds (median 105 seconds), of the manual measurement at room temperature between 115 and 145 seconds (median 125 seconds). Advantages of the instrumental method are the smaller amount of blood (0.4 ml versus 2.0 ml) necessary to perform the test, and the smaller potential for errors by unexperienced examiners. The spread is comparable between the two methods. The most important cause of false results is poor venipuncture technique: traumatic venipuncture will trigger the coagulation cascade already during venipuncture causing an artificially shortened ACT.

Animals↗

Pharmacotherapy and pharmacodynamics in the management of bacterial infection.

Minimum inhibitory concentration testing is the most common standard used to evaluate antibacterial activity of antimicrobials against specific pathogens. The consideration of pharmacodynamic factors in conjunction with these tests can improve the management of bacterial infections. Further, the incorporation of MIC values into pharmacodynamic ratios may provide clinically useful tools for selecting optimal antibiotic selection, determining proper dosing strategies, and predicting therapeutic outcomes. Physiologic consequences of infection and antibiotic treatment, such as endotoxin release and initiation of the septic cascade, also must be considered when choosing appropriate anti-infective therapy. The introduction of adjuvant immunotherapy, along with improvement, validation, and implementation of pharmacodynamic predictors of antibiotic efficacy, undoubtedly will provide the medical community with an effective arsenal to further reduce the morbidity and mortality rates associated with bacterial infections.

Anti-Bacterial Agents↗

Caveolin-1-deficient mice show accelerated mammary gland development during pregnancy, premature lactation, and hyperactivation of the Jak-2/STAT5a signaling cascade.

It is well established that mammary gland development and lactation are tightly controlled by prolactin signaling. Binding of prolactin to its cognate receptor (Prl-R) leads to activation of the Jak-2 tyrosine kinase and the recruitment/tyrosine phosphorylation of STAT5a. However, the mechanisms for attenuating the Prl-R/Jak-2/STAT5a signaling cascade are just now being elucidated. Here, we present evidence that caveolin-1 functions as a novel suppressor of cytokine signaling in the mammary gland, akin to the SOCS family of proteins. Specifically, we show that caveolin-1 expression blocks prolactin-induced activation of a STAT5a-responsive luciferase reporter in mammary epithelial cells. Furthermore, caveolin-1 expression inhibited prolactin-induced STAT5a tyrosine phosphorylation and DNA binding activity, suggesting that caveolin-1 may negatively regulate the Jak-2 tyrosine kinase. Because the caveolin-scaffolding domain bears a striking resemblance to the SOCS pseudosubstrate domain, we examined whether Jak-2 associates with caveolin-1. In accordance with this homology, we demonstrate that Jak-2 cofractionates and coimmunoprecipitates with caveolin-1. We next tested the in vivo relevance of these findings using female Cav-1 (-/-) null mice. If caveolin-1 normally functions as a suppressor of cytokine signaling in the mammary gland, then Cav-1 null mice should show premature development of the lobuloalveolar compartment because of hyperactivation of the prolactin signaling cascade via disinhibition of Jak-2. In accordance with this prediction, Cav-1 null mice show accelerated development of the lobuloalveolar compartment, premature milk production, and hyperphosphorylation of STAT5a (pY694) at its Jak-2 phosphorylation site. In addition, the Ras-p42/44 MAPK cascade is hyper-activated. Because a similar premature lactation phenotype is observed in SOCS1 (-/-) null mice, we conclude that caveolin-1 is a novel suppressor of cytokine signaling.

Amino Acid Sequence↗

Snail precedes slug in the genetic cascade required for the specification and migration of the Xenopus neural crest.

The complex sequence of inductive events responsible for the generation of the neural crest at the border between the neural plate and the epidermis, triggers a genetic cascade involving several families of transcription factors. Two members of the Snail family, Snail and Slug, have both been implicated in this cascade. In chick and Xenopus, loss- and gain-of-function experiments have provided evidence that Slug plays a key role in neural crest development. However, in contrast to the chick, Snail rather than Slug is expressed in the premigratory neural crest in the mouse and, in Xenopus, Snail precedes Slug expression in this population. Thus, in order to study the function of Snail in neural crest development in Xenopus, we have carried out conditional gain- and loss-of-function experiments using different Snail constructs fused to a glucocorticoid receptor element. We show that Snail is able to induce the expression of Slug and all other neural crest markers tested (Zic5, FoxD3, Twist and Ets1) at the time of specification. This activation is observed in whole embryos and in animal caps, in the absence of neural plate and mesodermal markers. We show that Snail is required for neural crest specification and migration and that it works as a transcriptional repressor. These functions have been previously attributed to SLUG: However, Slug alone is unable to induce other neural crest markers in animal cap assays, and we show that Snail and Slug can be functionally equivalent when tested in overexpression studies. This suggests that, in Xenopus embryos, at least some of the functions previously attributed to Slug can be carried out by SNAIL: This is additionally supported by rescue experiments in embryos injected with dominant-negative constructs that indicate that Snail lies upstream of Slug in the genetic cascade leading to neural crest formation and that it plays a key role in crest development.

Animals↗

A quantitative evaluation of IMRT dose distributions: refinement and clinical assessment of the gamma evaluation.

BACKGROUND AND PURPOSE: Although intensity modulated radiotherapy (IMRT) is a step forward in comparison to conventional, static beam delivery, quality assurance is more complex and labour intensive, demanding detailed two-dimensional dosimetric verification. Regardless of the technique used for measuring the dose distribution, what is essential to the implementation of routine verification of IMRT fields is the efficient and accurate comparison of the measured versus desired dose distribution. In order to achieve a fast, yet accurate quantitative measure of the correspondence between measured and calculated dose, the theoretical concept of the gamma evaluation method presented by Low et al. (Med. Phys., 25 (1998) 656) was converted into a calculation algorithm, taking into account practical considerations related to the discrete nature of the data. MATERIALS AND METHODS: A filter cascade of multiple levels was designed to obtain fast and accurate comparison of the two dose distributions under evaluation. The actual comparison consists of classification into accepted or rejected datapoints with respect to user-defined acceptance criteria (dose difference and distance to agreement). The presented algorithm was tested on dosimetric images calculated and/or acquired by means of a liquid filled portal imaging device during the course of intensity modulated treatments of prostate cancer, including pre-treatment verification as well as verification during treatment. To assess its ability to intercept possible errors in dose delivery, clinically relevant errors were deliberately introduced into the dose distributions. RESULTS: The developed gamma filter method proves successful in the efficient comparison of calculated versus measured IMRT dose distribution. Secondly, intercomparison of dosimetric images acquired during different treatment sessions illustrate its potential to highlight variations in the dosimetric images. The simulated errors were unmistakably intercepted. CONCLUSIONS: The readily obtained gamma evaluation images are an easy tool for quality control of IMRT fields. To reduce the artefacts related to the discrete nature and limited resolution of the data, a fast and accurate filter cascade was developed, offering the possibility to use the gamma method for day to day evaluation of patient dosimetric portal images with or without comparison to a predicted portal dose distribution.

Algorithms↗

Reducing infarct size in the setting of acute myocardial infarction.

Acute myocardial infarction is caused by coronary occlusion, and the mainstay of treatment has become reperfusion by either coronary angioplasty with possible stenting or surgical bypass grafting. Unfortunately, reperfusion can seldom be done soon enough to prevent infarction. Thus, the search for effective cardioprotection has been ongoing for more than 3 decades. After establishment of a suitable animal model to test the efficacy of pharmacological agents and other interventions, investigators found ischemic preconditioning to be a powerful and reproducible cardioprotectant. Much of the signaling pathway from cell receptor to end-effector has now been established even if the identity of the latter has not been proven. Remarkably, the actual protection is believed to occur during reperfusion rather than during ischemia. Yet, the clinical applicability of ischemic preconditioning is limited because of the obligate need to initiate it before ischemia. However, several strategies have been developed that can be applied at the time of reperfusion and which, therefore, hold clinical promise. These interventions are thought to trigger the same signaling cascades as ischemic preconditioning, which include activation of extracellular signal-regulated kinase and phosphatidylinositol 3-kinase and also somehow prevent mitochondrial permeability transition pore formation. Ultimately, deployment of any of these strategies for clinical use must involve the pharmaceutical industry, which is becoming increasingly reluctant to be involved. Before any approach is tested in the clinical arena, however, it should be thoroughly vetted in preclinical settings. Only then can industry maximize the chances that its application in man will have the highest chance of success.

Animals↗

Quinone reductase inhibitors block SAPK/JNK and NFkappaB pathways and potentiate apoptosis.

A variety of environmental stresses stimulate the mitogen-activated protein kinase/extracellular signal-regulated kinase (ERK) kinase (MEKK) > stress-activated protein kinase (SAPK)-ERK kinase (SEK) > SAPK/c-Jun NH(2)-terminal kinase (JNK) stress-activated protein kinase cascade and coordinately activate the transcription factor NFkappaB. Mechanisms of stress activation upstream of MEKK1 have not been precisely determined. Redox mechanisms involving sulfhydryls are likely because N-acetyl-cysteine at millimolar concentrations blocks stress signals. Because intracellular sulfhydryl concentrations can be regulated through redox cycling involving reactive quinones (1), we tested the ability of quinone reductase inhibitors to alter stress signaling. Several quinone reductases are inhibited by dicoumarol, a coumarin derivative. Dicoumarol prevented SAPK activation in vivo by chemical cell stressors and also prevented SAPK activation induced by expression of the tumor necrosis factor alpha (TNFalpha) receptor-associated protein TRAF2 but not by expression of truncated active MEKK1. Other coumarin derivatives failed to block SAPK activation, but other inhibitors of quinone reductases, particularly menadione, similarly blocked SAPK activation. Cells deficient in a major quinone reductase, NQO1, displayed hypersensitivity to dicoumarol stress inhibition, whereas SAPK in cells reconstituted with the NQO1 gene displayed relative dicoumarol resistance. Consistent with the proposed role of overlapping upstream signaling cascades in activation of NFkappaB, dicoumarol also blocked NFkappaB activation in primary macrophages stimulated with either lipopolysaccharide or TNFalpha. In addition, dicoumarol strongly potentiated TNFalpha-induced apoptosis in HeLa cells, probably by blocking the anti-apoptotic effect of NFkappaB. The ability of dicoumarol to simultaneously inhibit SAPK and NFkappaB activation and to potentiate apoptotic cell death suggests that SAPK is not an obligate participant in apoptosis. Dicoumarol, currently in clinical use as an oral anticoagulant, represents a potential therapeutic inhibitor of the SAPK and NFkappaB response.

Apoptosis↗

Role of the coagulation system in the local and systemic inflammatory response.

Activation of the coagulation cascade during the inflammatory response is an essential component of the host response to infection. Coagulation represents a double-edged sword. Necessary for hemostasis and the acute containment of an infective focus, it also amplifies the inflammatory response, decreases bacterial clearance, and in the critically ill patient contributes to end-organ damage and death. Evidence for these concepts is found in the fact that critically ill and septic patients consistently demonstrate marked abnormalities in their biochemical indices of coagulation. Moreover, there is excellent experimental evidence to suggest that replacement or inhibition of individual coagulation factors, either consumed or up-regulated during the inflammatory response, can attenuate both local and systemic injury and protect animals from otherwise fatal outcomes. Based on these facts, novel therapeutic approaches to the treatment of the systemic response to infection have been developed and tested in intensive care settings. Although promising results have been obtained, much work remains to be done in defining exactly which coagulation factors (or combination of factors) should be inhibited or replaced during treatment of the septic, critically ill patient. The experimental and clinical evidence linking the coagulation cascade to local and systemic inflammation is reviewed, and the status of the clinical trials performed to date is overviewed.

Animals↗

Apoptosis cascade proteins are regulated in vivo by high intracolonic butyrate concentration: correlation with colon cancer inhibition.

The present study was aimed at evaluating the effect of high intracolonic butyrate concentrations, either through fermentation of a soluble fiber-enriched diet or via intracolonic butyrate instillation, on colon cancer in a chemically induced (dimethylhydrazine) rat model. The effects were tested in four groups of dimethylhydrazine-treated rats: (i) rats fed a standard diet, (ii) rats fed a diet enriched with 15% citrus pectin, a soluble fiber that ferments and produces a high concentration of intracolonic butyrate, (iii) rats fed a standard diet and intrarectally instilled with a sodium butyrate solution (50 mM), (iv) rats fed a standard diet and intrarectally instilled with sodium butyrate vehicle solution (100 mM NaCl). The apoptotic index in the distal colon of rats fed pectin was higher than in colonic tissue from rats fed a standard diet. The expression of caspase-1, a cysteine protease implicated in the regulation of programmed cell death, as detected by both Northern and Western analysis, showed the highest mRNA and protein levels in colonic tissue from rats intrarectally instilled with butyrate. Immunohistology confirmed the Western blot findings. Expression of the cleaved poly(ADP-ribose) polymerase product, a downstream nuclear substrate for caspase-3 in the apoptotic pathway, was elevated in both the pectin-fed and butyrate-instilled groups. Expression of the antiapoptotic protein Bcl-2 was significantly reduced following pectin feeding as well as butyrate instillation. The highest expression of Bcl-2 was observed in tumor tissue. A marked reduction in aberrant crypt number was observed in colonic tissue obtained from both the pectin-fed and butyrate-instilled groups relative to rats from the standard diet group. The average tumor volume per rat in both the pectin-fed and butyrate-instilled groups was significantly lower than in rats from the standard diet and the sodium butyrate vehicle-instilled groups. We conclude that high butyrate levels, either instilled or obtained following fermentation of soluble dietary fibers, inhibit early and late events in colon tumorigenesis by controlling the transcription expression and activity of key proteins involved in the apoptotic cascade.

1,2-Dimethylhydrazine↗

Augmentation of the NO-cGMP cascade induces anxiogenic-like effect in mice.

Several studies have reported the anxiolytic-like effects of various nitric oxide synthase inhibitors in distinct animal models. However, in the context of anxiety, the possible involvement of cyclic GMP, believed to be one of the main targets of NO, remains obscure. Cyclic GMP is degraded by the specific phosphodiesterases in the brain. Therefore, we studied the effect of the selective phosphodiesterase type 5 inhibitor sildenafil in the mouse elevated plus-maze test of anxiety and in the open field test of locomotion. We found that sildenafil (0.05-10 mg/kg i.p.) alone did not affect the behavior of animals in the plus-maze or open field tests, but the anxiogenic beta-carboline DMCM given in a subconvulsive dose (2 mg/kg i.p.) decreased the time spent on open arms in the elevated plus-maze. Treatment with the NO precursor L-arginine (200 mg/kg i.p.) did not modify the behavior of animals in the plus-maze, however, when sildenafil (1 mg/kg i.p.) was administered in combination with L-arginine (200 mg/kg i.p.), both the time spent on the open arms and the percentage of open arm visits were significantly decreased. We conclude that augmentation of the NO-cGMP cascade induces anxiogenic-like effect in mice.

Animals↗

Reactive oxygen species induce proliferation of bovine aortic endothelial cells.

The effects of reactive oxygen species (ROS) on different cellular types are variable. In some conditions they can be harmful metabolites, but they can also act as intracellular messengers that are able to activate different transcription factors. Based on previous reports in which ROS were shown to stimulate the proliferation of mesenchymal cells, this study was carried out to assess this effect on bovine aortic endothelial cells (BAECs). When cells were incubated with glucose oxidase (GO), an enzyme that generates H2O2 continuously, a significant increase in BAEC proliferation was detected. BAEC proliferation was measured by the incorporation of [3H]-thymidine in the DNA of BAECs, and also by an increase in the number of cells. The effect observed with GO was maximal at 8-24 h. Catalase abolishes proliferation. We also tested the ability of GO to phosphorylate tyrosine residues in endothelial cell proteins. A significant increase in tyrosine phosphorylation was found, which might constitute the molecular basis for proliferative effect of GO. In conclusion, these results demonstrate the ability of H2O2 to stimulate BAEC proliferation at least under certain experimental conditions. We suggest a general activation of the cascade of tyrosine phosphorylation as one of the possible cellular mechanisms responsible for GO-induced BAEC proliferation.

Animals↗