948 resultados para mitogen activated protein kinase p38 inhibitor


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Male Wistar rats were trained in one-trial step-down inhibitory avoidance using a 0.4-mA footshock. At various times after training (0, 1.5, 3, 6 and 9 h for the animals implanted into the CA1 region of the hippocampus; 0 and 3 h for those implanted into the amygdala), these animals received microinfusions of SKF38393 (7.5 µg/side), SCH23390 (0.5 µg/side), norepinephrine (0.3 µg/side), timolol (0.3 µg/side), 8-OH-DPAT (2.5 µg/side), NAN-190 (2.5 µg/side), forskolin (0.5 µg/side), KT5720 (0.5 µg/side) or 8-Br-cAMP (1.25 µg/side). Rats were tested for retention 24 h after training. When given into the hippocampus 0 h post-training, norepinephrine enhanced memory whereas KT5720 was amnestic. When given 1.5 h after training, all treatments were ineffective. When given 3 or 6 h post-training, 8-Br-cAMP, forskolin, SKF38393, norepinephrine and NAN-190 caused memory facilitation, while KT5720, SCH23390, timolol and 8-OH-DPAT caused retrograde amnesia. Again, at 9 h after training, all treatments were ineffective. When given into the amygdala, norepinephrine caused retrograde facilitation at 0 h after training. The other drugs infused into the amygdala did not cause any significant effect. These data suggest that in the hippocampus, but not in the amygdala, a cAMP/protein kinase A pathway is involved in memory consolidation at 3 and 6 h after training, which is regulated by D1, ß, and 5HT1A receptors. This correlates with data on increased post-training cAMP levels and a dual peak of protein kinase A activity and CREB-P levels (at 0 and 3-6 h) in rat hippocampus after training in this task. These results suggest that the hippocampus, but not the amygdala, is involved in long-term storage of step-down inhibitory avoidance in the rat.

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The carboxyl-terminal (CT) domain of connexin43 (Cx43) has been implicated in both hormonal and pH-dependent gating of the gap junction channel. An in vitro assay was utilized to determine whether the acidification of cell extracts results in the activation of a protein kinase that can phosphorylate the CT domain. A glutathione S-transferase (GST)-fusion protein was bound to Sephadex beads and used as a target for protein kinase phosphorylation. A protein extract produced from sheep heart was allowed to bind to the fusion protein-coated beads. The bound proteins were washed and then incubated with 32P-ATP. Phosphorylation was assessed after the proteins were resolved by SDS-PAGE. Incubation at pH 7.5 resulted in a minimal amount of phosphorylation while incubation at pH 6.5 resulted in significant phosphorylation reaction. Maximal activity was achieved when both the binding and kinase reactions were performed at pH 6.5. The protein kinase activity was stronger when the incubations were performed with manganese rather than magnesium. Mutants of Cx43 which lack the serines between amino acids 364-374 could not be phosphorylated in the in vitro kinase reaction, indicating that this is a likely target of this reaction. These results indicate that there is a protein kinase activity in cells that becomes more active at lower pH and can phosphorylate Cx43.

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The mechanism by which Ang II stimulates the growth of vascular smooth muscle cells was investigated by measuring the phosphorylation of mitogen-activated protein kinases ERK 1 and ERK 2. Ca2+ ionophore was found to have effects practically analogous to Ang II. We found that the signaling pathway involves the activation of epidermal growth factor receptor (EGFR) kinase, activation of the adaptor proteins Shc and Grb2, and the small G-protein Ras. Although the mechanism of AT1- (or Ca2+)-induced activation of EGFR is not yet clear, we have found that calcium-dependent protein kinase CAKß/PYK2 and c-Src are involved in this process. These studies indicate a transactivation mechanism that utilizes EGFR as a bridge between a Gq-coupled receptor and activation of phosphotyrosine generation.

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This article reviews recent results of studies aiming to elucidate modes of integrating signals initiated in ACTH receptors and FGF2 receptors, within the network system of signal transduction found in Y1 adrenocortical cells. These modes of signal integration should be central to the mechanisms underlying the regulation of the G0->G1->S transition in the adrenal cell cycle. FGF2 elicits a strong mitogenic response in G0/G1-arrested Y1 adrenocortical cells, that includes a) rapid and transient activation of extracellular signal-regulated kinases-mitogen-activated protein kinases (ERK-MAPK) (2 to 10 min), b) transcription activation of c-fos, c-jun and c-myc genes (10 to 30 min), c) induction of c-Fos and c-Myc proteins by 1 h and cyclin D1 protein by 5 h, and d) onset of DNA synthesis stimulation within 8 h. ACTH, itself a weak mitogen, interacts with FGF2 in a complex manner, blocking the FGF2 mitogenic response during the early and middle G1 phase, keeping ERK-MAPK activation and c-Fos and cyclin D1 induction at maximal levels, but post-transcriptionally inhibiting c-Myc expression. c-Fos and c-Jun proteins are mediators in both the strong and the weak mitogenic responses respectively triggered by FGF2 and ACTH. Induction of c-Fos and stimulation of DNA synthesis by ACTH are independent of PKA and are inhibited by the PKC inhibitor GF109203X. In addition, ACTH is a poor activator of ERK-MAPK, but c-Fos induction and DNA synthesis stimulation by ACTH are strongly inhibited by the inhibitor of MEK1 PD98059.

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The regulatory function of α1B-adrenoceptors in mammalian heart homeostasis is controversial. The objective of the present study was to characterize the expression/activity of key proteins implicated in cardiac calcium handling (Na+/K+-ATPase and Ca2+-ATPases) and growth (ERK1/2, JNK1/2 and p38) in mice with cardiac-selective overexpression of constitutively active mutant α1B-adrenoceptor (CAMα1B-AR), which present a mild cardiac hypertrophy phenotype. Immunoblot assays showed that myocardial plasma membrane Ca2+-ATPase (PMCA) expression was increased by 30% in CAMα1B-AR mice (N = 6, P < 0.05), although there was no change in sarco/endoplasmic reticulum Ca2+-ATPase (SERCA2) expression. Moreover, total Ca2+-ATPase activity was not modified, but a significant increase in the activity of the thapsigargin-resistant (PMCA) to thapsigargin-sensitive (SERCA) ratio was detected. Neither Na+/K+-ATPase activity nor the expression of α1 and α2 subunit isoforms was changed in CAMα1B-AR mouse hearts. Moreover, immunoblot assays did not provide evidence for an enhanced activation of the three mitogen-activated protein kinases studied in this stage of hypertrophy. Therefore, these findings indicate that chronic cardiac α1B-AR activation in vivo led to mild hypertrophy devoid of significant signs of adaptive modifications concerning primary intracellular calcium control and growth-related proteins, suggesting a minor pathophysiological role of this adrenergic receptor in mouse heart at this stage of development.

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We investigated whether Ca2+/calmodulin-dependent kinase II (CaMKII) and calcineurin (CaN) are involved in myocardial hypertrophy induced by tumor necrosis factor α (TNF-α). The cardiomyocytes of neonatal Wistar rats (1-2 days old) were cultured and stimulated by TNF-α (100 μg/L), and Ca2+ signal transduction was blocked by several antagonists, including BAPTA (4 µM), KN-93 (0.2 µM) and cyclosporin A (CsA, 0.2 µM). Protein content, protein synthesis, cardiomyocyte volumes, [Ca2+]i transients, CaMKIIδB and CaN were evaluated by the Lowry method, [³H]-leucine incorporation, a computerized image analysis system, a Till imaging system, and Western blot analysis, respectively. TNF-α induced a significant increase in protein content in a dose-dependent manner from 10 µg/L (53.56 µg protein/well) to 100 μg/L (72.18 µg protein/well), and in a time-dependent manner from 12 h (37.42 µg protein/well) to 72 h (42.81 µg protein/well). TNF-α (100 μg/L) significantly increased the amplitude of spontaneous [Ca2+]i transients, the total protein content, cell size, and [³H]-leucine incorporation in cultured cardiomyocytes, which was abolished by 4 µM BAPTA, an intracellular Ca2+ chelator. The increases in protein content, cell size and [³H]-leucine incorporation were abolished by 0.2 µM KN-93 or 0.2 µM CsA. TNF-α increased the expression of CaMKIIδB by 35.21% and that of CaN by 22.22% compared to control. These effects were abolished by 4 µM BAPTA, which itself had no effect. These results suggest that TNF-α induces increases in [Ca2+]i, CaMKIIδB and CaN and promotes cardiac hypertrophy. Therefore, we hypothesize that the Ca2+/CaMKII- and CaN-dependent signaling pathways are involved in myocardial hypertrophy induced by TNF-α.

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Ca2+ pumps are important players in smooth muscle contraction. Nevertheless, little information is available about these pumps in the vas deferens. We have determined which subtype of sarco(endo)plasmic reticulum Ca2+-ATPase isoform (SERCA) is expressed in rat vas deferens (RVD) and its modulation by calmodulin (CaM)-dependent mechanisms. The thapsigargin-sensitive Ca2+-ATPase from a membrane fraction containing the highest SERCA levels in the RVD homogenate has the same molecular mass (∼115 kDa) as that of SERCA2 from the rat cerebellum. It has a very high affinity for Ca2+ (Ca0.5 = 780 nM) and a low sensitivity to vanadate (IC50 = 41 µM). These facts indicate that SERCA2 is present in the RVD. Immunoblotting for CaM and Ca2+/calmodulin-dependent protein kinase II (CaMKII) showed the expression of these two regulatory proteins. Ca2+ and CaM increased serine-phosphorylated residues of the 115-kDa protein, indicating the involvement of CaMKII in the regulatory phosphorylation of SERCA2. Phosphorylation is accompanied by an 8-fold increase of thapsigargin-sensitive Ca2+ accumulation in the lumen of vesicles derived from these membranes. These data establish that SERCA2 in the RVD is modulated by Ca2+ and CaM, possibly via CaMKII, in a process that results in stimulation of Ca2+ pumping activity.

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O-GlcNAcylation is a modification that alters the function of numerous proteins. We hypothesized that augmented O-GlcNAcylation levels enhance myosin light chain kinase (MLCK) and reduce myosin light chain phosphatase (MLCP) activity, leading to increased vascular contractile responsiveness. The vascular responses were measured by isometric force displacement. Thoracic aorta and vascular smooth muscle cells (VSMCs) from rats were incubated with vehicle or with PugNAc, which increases O-GlcNAcylation. In addition, we determined whether proteins that play an important role in the regulation of MLCK and MLCP activity are directly affected by O-GlcNAcylation. PugNAc enhanced phenylephrine (PE) responses in rat aortas (maximal effect, 14.2±2 vs 7.9±1 mN for vehicle, n=7). Treatment with an MLCP inhibitor (calyculin A) augmented vascular responses to PE (13.4±2 mN) and abolished the differences in PE-response between the groups. The effect of PugNAc was not observed when vessels were preincubated with ML-9, an MLCK inhibitor (7.3±2 vs 7.5±2 mN for vehicle, n=5). Furthermore, our data showed that differences in the PE-induced contractile response between the groups were abolished by the activator of AMP-activated protein kinase (AICAR; 6.1±2 vs 7.4±2 mN for vehicle, n=5). PugNAc increased phosphorylation of myosin phosphatase target subunit 1 (MYPT-1) and protein kinase C-potentiated inhibitor protein of 17 kDa (CPI-17), which are involved in RhoA/Rho-kinase-mediated inhibition of myosin phosphatase activity. PugNAc incubation produced a time-dependent increase in vascular phosphorylation of myosin light chain and decreased phosphorylation levels of AMP-activated protein kinase, which decreased the affinity of MLCK for Ca2+/calmodulin. Our data suggest that proteins that play an important role in the regulation of MLCK and MLCP activity are directly affected by O-GlcNAcylation, favoring vascular contraction.

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The aim of the present study was to determine the mechanisms underlying the relaxant effect of adrenomedullin (AM) in rat cavernosal smooth muscle (CSM) and the expression of AM system components in this tissue. Functional assays using standard muscle bath procedures were performed in CSM isolated from male Wistar rats. Protein and mRNA levels of pre-pro-AM, calcitonin receptor-like receptor (CRLR), and Subtypes 1, 2 and 3 of the receptor activity-modifying protein (RAMP) family were assessed by Western immunoblotting and quantitative real-time polymerase chain reaction, respectively. Nitrate and 6-keto-prostaglandin F1α (6-keto-PGF1α; a stable product of prostacyclin) levels were determined using commercially available kits. Protein and mRNA of AM, CRLR, and RAMP 1, -2, and -3 were detected in rat CSM. Immunohistochemical assays demonstrated that AM and CRLR were expressed in rat CSM. AM relaxed CSM strips in a concentration-dependent manner. AM22-52, a selective antagonist for AM receptors, reduced the relaxation induced by AM. Conversely, CGRP8-37, a selective antagonist for calcitonin gene-related peptide receptors, did not affect AM-induced relaxation. Preincubation of CSM strips with NG-nitro-L-arginine-methyl-ester (L-NAME, nitric oxide synthase inhibitor), 1H-(1,2,4)oxadiazolo[4,3-a]quinoxalin-1-one (ODQ, quanylyl cyclase inhibitor), Rp-8-Br-PET-cGMPS (cGMP-dependent protein kinase inhibitor), SC560 [5-(4-chlorophenyl)-1-(4-methoxyphenyl)-3-trifluoromethyl pyrazole, selective cyclooxygenase-1 inhibitor], and 4-aminopyridine (voltage-dependent K+ channel blocker) reduced AM-induced relaxation. On the other hand, 7-nitroindazole (selective neuronal nitric oxide synthase inhibitor), wortmannin (phosphatidylinositol 3-kinase inhibitor), H89 (protein kinase A inhibitor), SQ22536 [9-(tetrahydro-2-furanyl)-9H-purin-6-amine, adenylate cyclase inhibitor], glibenclamide (selective blocker of ATP-sensitive K+ channels), and apamin (Ca2+-activated channel blocker) did not affect AM-induced relaxation. AM increased nitrate levels and 6-keto-PGF1α in rat CSM. The major new contribution of this research is that it demonstrated expression of AM and its receptor in rat CSM. Moreover, we provided evidence that AM-induced relaxation in this tissue is mediated by AM receptors by a mechanism that involves the nitric oxide-cGMP pathway, a vasodilator prostanoid, and the opening of voltage-dependent K+ channels.

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Les maladies cardiovasculaires sont la principale cause de mortalité dans les pays occidentaux et représentent une complication majeure du syndrome métabolique. Il est maintenant largement admis que l’athérosclérose est une maladie inflammatoire chronique et que l’inflammation joue un rôle pathogénique majeur dans l’initiation et la progression de la maladie athéromateuse. Il a été démontré qu’une augmentation des niveaux sériques de la protéine c-réactive (CRP), une protéine de la phase aigüe et un important constituant de la réponse immunitaire de type inné, est associée à un risque cardiovasculaire accru. Ainsi, il a été documenté qu’une augmentation de CRP, tant chez les sujets sains que chez les sujets diabétiques, était associée à une augmentation du risque de morbidité et de mortalité cardiovasculaires. De multiples évidences suggèrent que la CRP puisse non seulement constituer un marqueur de risque des maladies cardiovasculaires mais aussi représenter un facteur pro-athérogénique direct. La dysfonction endothéliale représente un des stades les plus précoces du processus athérosclérotique et un rôle de la CRP dans la pathogenèse de la dysfonction endothéliale est postulé. Outre son origine systémique, la CRP est produite dans la lésion athérosclérotique et par diverses cellules vasculaires, dont les cellules endothéliales. Afin d’élucider le rôle de la CRP vasculaire dans l’altération de la fonction endothéliale associée au syndrome métabolique, nous avons étudié la régulation de l’expression endothéliale de la CRP par les acides gras libres (AGL) et le rôle de la CRP endothéliale dans l’inhibition de la synthèse d’oxyde nitrique (NO) par les AGL. Nos résultats démontrent que :1) l’acide palmitique (PA) induit l’expression génique de CRP au niveau de cellules endothéliales aortiques humaines (HAECs) en culture et, augmente, de manière dose-dépendante, l’expression protéique de la CRP; 2) La pré-incubation des HAECs avec des antioxydants et des inhibiteurs de la i) protéine kinase C (PKC), ii) du facteur nucléaire-kappa B, iii) des Janus kinases et des protéines de transduction et de régulation de la transcription et iv) des protéines kinases activées par les mitogènes prévient l’effet stimulant du PA sur l’expression protéique et génique de la CRP; 3) Le traitement des HAECs par le PA induit une augmentation de la production des espèces réactives oxygénées, un effet prévenu par les inhibiteurs de la PKC et par l’AICAR(5-amino-4-imidazole carboxamide 1-β-D-ribofuranoside), un activateur de la protéine kinase activée par l’AMP; 4) L’incubation des HAECs en présence de PA résulte enfin en une diminution de la production basale endothéliale de NO, un effet abrogé par la préincubation de ces cellules avec un anticorps anti-CRP. Dans l’ensemble, ces données démontrent un effet stimulant du PA sur l’expression de la CRP endothéliale via l’activation de kinases et de facteurs de transcription sensibles au stress oxydatif. Ils suggèrent en outre un rôle de la CRP dans la dysfonction endothéliale induite par les AGL.

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Le CD40 ligand (CD40L) est une molécule inflammatoire appartenant à la famille du Facteur de Nécrose Tumorale ("Tumor Necrosis Factor", TNF), originalement identifié au niveau des cellules immunitaires. L’interaction du CD40L avec son récepteur de haute affinité présent sur les cellules B, le CD40, est d’une importance cruciale à la production d’immunoglobulines lors de la réponse immunitaire. Aujourd’hui, nous savons que ces deux molécules qui constituent l’axe CD40/CD40L sont aussi exprimées au niveau des cellules du système vasculaire et occupent une place importante dans une variété de réactions inflammatoires, de sorte que le CD40L est présentement reconnu comme une molécule thrombo-inflammatoire prédictive des évènements cardiovasculaires. Les plaquettes sont la principale source du CD40L soluble ("soluble CD40L", sCD40L) plasmatique et il fut démontré être impliqué dans l’activation plaquettaire, malgré que son impact exact sur la fonction plaquettaire et les mécanismes sous-jacents demeurent inconnus. Ainsi, le but de ce projet était de déterminer l’impact du sCD40L sur la fonction plaquettaire et d’élucider les mécanismes cellulaires et moléculaires sous-jacents. Les objectifs spécifiques étaient : 1) d’évaluer l’impact du sCD40L sur l’activation et l’agrégation plaquettaire in vitro; 2) de déterminer le récepteur cible (CD40 ou autre) impliqué dans ces effets; 3) de décortiquer les voies signalétiques intracellulaires et moléculaires induites par le sCD40L, impliquant la participation potentielle de la famille du facteur associé du récepteur du TNF ("Tumor Necrosis Factor Receptor Associated Factor", TRAF) et 4) d’analyser l’effet du sCD40L sur la formation du thrombus in vivo. Le sCD40L augmente fortement l’activation et l’agrégation plaquettaire induite par de faibles doses d’agonistes. Les plaquettes humaines traitées avec une forme mutante du sCD40L qui n’interagit pas avec le CD40 et les plaquettes de souris CD40 déficientes (CD40-/-) ne furent pas en mesure d’induire ces effets. De plus, nous démontrons la présence de plusieurs membres de la famille des TRAFs dans les plaquettes, parmi lesquels seulement TRAF-2 interagit avec le CD40 suite à la stimulation par le sCD40L. Le sCD40L agit sur les plaquettes au repos par l’entremise de la protéine Rac1 et de sa cible en aval, soit la protéine kinase activatrice du mitogène p38 ("Mitogen Activating Protein Kinase", MAPK). Ceci mène ultimement au changement de forme plaquettaire et à la polymérisation de l’actine. Par ailleurs, il est intéressant de noter que les souris CD40-/- démontrent un défaut significatif de l’agrégation plaquettaire en réponse au collagène, ce qui souligne l’importance du CD40 dans les interactions plaquettes-plaquettes. Dans un deuxième temps, le sCD40L amplifie l’agrégation plaquettaire en sang complet, accélère les temps de thrombose in vitro mesurés à l’aide du système PFA-100 et augmente l’adhésion plaquettaire au collagène sous condition de flux, le tout par l’entremise du CD40. Finalement, dans un modèle de thrombose artérielle murin, l’infusion du sCD40L exacerbe la formation du thrombus chez les souris du type sauvage ("Wild Type", WT), mais non chez les souris CD40-/-. Ceci fut en plus associé à une augmentation significative du nombre de leucocytes au sein du thrombus des souris WT traitées à l’aide du sCD40L, tel que démontré par marquage immuno-histologique anti-CD45 et par quantification des coupes artérielles par microscopie optique. En résumé, ce projet identifie une nouvelle voie signalétique, TRAF-2/Rac1/p38 MAPK, en réponse au sCD40L et démontre ses effets sur l’activation et l’agrégation plaquettaire. De manière encore plus importante, nous démontrons pour la première fois la présence d’une corrélation positive entre les niveaux circulants du sCD40L et la thrombose artérielle, tout en soulignant l’importance du CD40 dans ce processus. Ainsi, le sCD40L constitue un activateur important des plaquettes, les prédisposant à une thrombose exacerbée en réponse au dommage vasculaire. Ces résultats peuvent expliquer le lien étroit qui existe entre les niveaux circulants du sCD40L et l’incidence des maladies cardiovasculaires.

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Le CD40 ligand (CD40L) est un régulateur important de la réponse immunitaire et un contributeur clé dans les maladies auto-immunes. Nous avons rapporté précédemment que le CD40L se liait à l’intégrine α5β1, toutefois, les conséquences fonctionnelles de cette interaction demeurent inconnues. Les lymphocytes T sont au centre de la pathogénèse des maladies auto-immunes. Ils expriment, lors de celles-ci, des quantités aberrantes d’intégrines β1 faisant en sorte que la liaison CD40L/α5β1 pourrait être d’une haute importance dans les réponses inflammatoires. Dans cette étude, nous avons démontré que la forme soluble du CD40L (sCD40L) se liait aux lymphocytes T primaires ainsi qu’aux cellules Jurkat E6.1 et ce, dépendamment de l’intégrine α5β1. L’interaction du CD40L avec l’α5β1 lymphocytaire a induit l’activation des voies anti-apoptotiques dont les MAPKs (les protéines kinases mitogène activée) et les PI3 kinases (PI3K). La liaison du sCD40L à l’α5β1 n’a pas induit son changement structural ni son adhésion à la FN (fibronectine). Ceci pourrait avoir des conséquences directes sur la survie des cellules T lors de la progression des maladies inflammatoires. Ces résultats soulignent l’impact de l’interaction CD40L/α5β1 sur la fonction biologique des lymphocytes T et ils pourraient expliquer leur survie et leur persistance au niveau des sites d’inflammations durant les maladies auto- immunes.

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Apoptosis induced by the death-inducing ligand FasL (CD95L) is a major mechanism of cell death. Trophoblast cells express the Fas receptor yet survive in an environment that is rich in the ligand. We report that basal nitric oxide (NO) production is responsible for the resistance of trophoblasts to FasL-induced apoptosis. In this study we demonstrate that basal NO production resulted in the inhibition of receptor clustering following ligand binding. In addition NO also protected cells through the selective nitrosylation, and inhibition, of protein kinase Cepsilon (PKCepsilon) but not PKCalpha. In the absence of NO production PKCepsilon interacted with, and phosphorylated, the anti-apoptotic protein cFLIP. The interaction is predominantly with the short form of cFLIP and its phosphorylation reduces its recruitment to the death-inducing signaling complex (DISC) that is formed following binding of a death-inducing ligand to its receptor. Inhibition of cFLIP recruitment to the DISC leads to increased activation of caspase 8 and subsequently to apoptosis. Inhibition of PKCepsilon using siRNA significantly reversed the sensitivity to apoptosis induced by inhibition of NO synthesis suggesting that NO-mediated inhibition of PKCepsilon plays an important role in the regulation of Fas-induced apoptosis.

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The role of protein kinase C (PKC) activation in ischemic preconditioning remains controversial. Since diacylglycerol is the endogenous activator of PKC and as such might be expected cardioprotective, we have investigated whether: (i) the diacylglycerol analog 1,2-dioctanoyl-sn-glycerol (DOG) can protect against injury during ischemia and reperfusion; (ii) any effect is mediated via PKC activation; and (iii) the outcome is influenced by the time of administration. Isolated rat hearts were perfused with buffer at 37°C and paced at 400 bpm. In Study 1, hearts (n=6/group) were subjected to one of the following: (1) 36 min aerobic perfusion (controls); (2) 20 min aerobic perfusion plus ischemic preconditioning (3 min ischemia/3 min reperfusion+5 min ischemia/5 min reperfusion); (3) aerobic perfusion with buffer containing DOG (10 μM) given as a substitute for ischemic preconditioning; (4) aerobic perfusion with DOG (10 μM) during the last 2 min of aerobic perfusion. All hearts then were subjected to 35 min of global ischemia and 40 min reperfusion. A further group (5) were perfused with DOG (10 μM) for the first 2 min of reperfusion. Ischemic preconditioning improved postischemic recovery of LVDP from 24±3% in controls to 71±2% (P<0.05). Recovery of LVDP also was enhanced by DOG when given just before ischemia (54±4%), however, DOG had no effect on the recovery of LVDP when used as a substitute for ischemic preconditioning (22±5%) or when given during reperfusion (29±6%). In Study 2, the first four groups of study were repeated (n=4–5/group) without imposing the periods of ischemia and reperfusion, instead hearts were taken for the measurement of PKC activity (pmol/min/mg protein±SEM). PKC activity after 36 min in groups (1), (2), (3) and (4) was: 332±102, 299±63, 521±144, and 340±113 and the membrane:cytosolic PKC activity ratio was: 5.6±1.5, 5.3±1.8, 6.6±2.7, and 3.9±2.1 (P=NS in each instance). In conclusion, DOG is cardioprotective but under the conditions of the present study is less cardioprotective than ischemic preconditioning, furthermore the protection does not appear to necessitate PKC activation prior to ischemia.