132 resultados para SIGNAL-REGULATING KINASE-1

em Université de Lausanne, Switzerland


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OBJECTIVE: Chronic activation of the nuclear factor-kappaB (NF-kappaB) in white adipose tissue leads to increased production of pro-inflammatory cytokines, which are involved in the development of insulin resistance. It is presently unknown whether peroxisome proliferator-activated receptor (PPAR) beta/delta activation prevents inflammation in adipocytes. RESEARCH DESIGN AND METHODS AND RESULTS: First, we examined whether the PPARbeta/delta agonist GW501516 prevents lipopolysaccharide (LPS)-induced cytokine production in differentiated 3T3-L1 adipocytes. Treatment with GW501516 blocked LPS-induced IL-6 expression and secretion by adipocytes and the subsequent activation of the signal transducer and activator of transcription 3 (STAT3)-Suppressor of cytokine signaling 3 (SOCS3) pathway. This effect was associated with the capacity of GW501516 to impede LPS-induced NF-kappaB activation. Second, in in vivo studies, white adipose tissue from Zucker diabetic fatty (ZDF) rats, compared with that of lean rats, showed reduced PPARbeta/delta expression and PPAR DNA-binding activity, which was accompanied by enhanced IL-6 expression and NF-kappaB DNA-binding activity. Furthermore, IL-6 expression and NF-kappaB DNA-binding activity was higher in white adipose tissue from PPARbeta/delta-null mice than in wild-type mice. Because mitogen-activated protein kinase-extracellular signal-related kinase (ERK)1/2 (MEK1/2) is involved in LPS-induced NF-kappaB activation in adipocytes, we explored whether PPARbeta/delta prevented NF-kappaB activation by inhibiting this pathway. Interestingly, GW501516 prevented ERK1/2 phosphorylation by LPS. Furthermore, white adipose tissue from animal showing constitutively increased NF-kappaB activity, such as ZDF rats and PPARbeta/delta-null mice, also showed enhanced phospho-ERK1/2 levels. CONCLUSIONS: These findings indicate that activation of PPARbeta/delta inhibits enhanced cytokine production in adipocytes by preventing NF-kappaB activation via ERK1/2, an effect that may help prevent insulin resistance.

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Substantial evidence supports a role for myocyte enhancer factor 2 (MEF2)-mediated transcription in neuronal survival, differentiation and synaptic function. In developing neurons, it has been shown that MEF2-dependent transcription is regulated by neurotrophins. Despite these observations, little is known about the cellular mechanisms by which neurotrophins activate MEF2 transcriptional activity. In this study, we examined the role of salt-inducible kinase 1 (SIK1), a member of the AMP-activated protein kinase (AMPK) family, in the regulation of MEF2-mediated transcription by the neurotrophin brain-derived neurotrophic factor (BDNF). We show that BDNF increases the expression of SIK1 in primary cultures of rat cortical neurons through the extracellular signal-regulated kinase 1/2 (ERK1/2)-signaling pathway. In addition to inducing SIK1 expression, BDNF triggers the phosphorylation of SIK1 at Thr182 and its translocation from the cytoplasm to the nucleus of cortical neurons. The effects of BDNF on the expression, phosphorylation and, translocation of SIK1 are followed by the phosphorylation and nuclear export of histone deacetylase 5 (HDAC5). Blockade of SIK activity with a low concentration of staurosporine abolished BDNF-induced phosphorylation and nuclear export of HDAC5 in cortical neurons. Importantly, stimulation of HDAC5 phosphorylation and nuclear export by BDNF is accompanied by the activation of MEF2-mediated transcription, an effect that is suppressed by staurosporine. Consistent with these data, BDNF induces the expression of the MEF2 target genes Arc and Nur77, in a staurosporine-sensitive manner. In further support of the role of SIK1 in the regulation of MEF2-dependent transcription by BDNF, we found that expression of wild-type SIK1 or S577A SIK1, a mutated form of SIK1 which is retained in the nucleus of transfected cells, is sufficient to enhance MEF2 transcriptional activity in cortical neurons. Together, these data identify a previously unrecognized mechanism by which SIK1 mediates the activation of MEF2-dependent transcription by BDNF.

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Cancer cell metabolism differs from that of non-transformed cells in the same tissue. This specific metabolism gives tumor cells growing advantages besides the effect in increasing anabolism. One of these advantages is immune evasion mediated by a lower expression of the mayor histocompatibility complex class I molecules. The extracellular-signal-regulated kinase-5 regulates both mayor histocompatibility complex class I expression and metabolic activity. However, the mechanisms underlying are largely unknown. We show here that extracellular-signal-regulated kinase-5 regulates the transcription of the NADH(+)-dependent histone deacetylase silent mating type information regulation 2 homolog 1 (Sirtuin 1) in leukemic Jurkat T cells. This involves the activation of the transcription factor myocyte enhancer factor-2 and its binding to the sirt1 promoter. In addition, extracellular-signal-regulated kinase-5 is required for T cell receptor-induced and oxidative stress-induced full Sirtuin 1 expression. Extracellular-signal-regulated kinase-5 induces the expression of promoters containing the antioxidant response elements through a Sirtuin 1-dependent pathway. On the other hand, down modulation of extracellular-signal-regulated kinase-5 expression impairs the anti-oxidant response. Notably, the extracellular-signal-regulated kinase-5 inhibitor BIX02189 induces apoptosis in acute myeloid leukemia tumor cells without affecting T cells from healthy donors. Our results unveil a new pathway that modulates metabolism in tumor cells. This pathway represents a promising therapeutic target in cancers with deep metabolic layouts such as acute myeloid leukemia.

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In vivo exposure to chronic hypoxia (CH) depresses myocardial performance and tolerance to ischemia, but daily reoxyenation during CH (CHR) confers cardioprotection. To elucidate the underlying mechanism, we tested the role of phosphatidylinositol-3-kinase-protein kinase B (Akt) and p42/p44 extracellular signal-regulated kinases (ERK1/2), which are known to be associated with protection against ischemia/reperfusion (I/R). Male Sprague-Dawley rats were maintained for two weeks under CH (10% O(2)) or CHR (as CH but with one-hour daily exposure to room air). Then, hearts were either frozen for biochemical analyses or Langendorff-perfused to determine performance (intraventricular balloon) and tolerance to 30-min global ischemia and 45-min reperfusion, assessed as recovery of performance after I/R and infarct size (tetrazolium staining). Additional hearts were perfused in the presence of 15 micromol/L LY-294002 (inhibitor of Akt), 10 micromol/L UO-126 (inhibitor of ERK1/2) or 10 micromol/L PD-98059 (less-specific inhibitor of ERK1/2) given 15 min before ischemia and throughout the first 20 min of reperfusion. Whereas total Akt and ERK1/2 were unaffected by CH and CHR in vivo, in CHR hearts the phosphorylation of both proteins was higher than in CH hearts. This was accompanied by better performance after I/R (heart rate x developed pressure), lower end-diastolic pressure and reduced infarct size. Whereas the treatment with LY-294002 decreased the phosphorylation of Akt only, the treatment with UO-126 decreased ERK1/2, and that with PD-98059 decreased both Akt and ERK1/2. In all cases, the cardioprotective effect led by CHR was lost. In conclusion, in vivo daily reoxygenation during CH enhances Akt and ERK1/2 signaling. This response was accompanied by a complex phenotype consisting in improved resistance to stress, better myocardial performance and lower infarct size after I/R. Selective inhibition of Akt and ERK1/2 phosphorylation abolishes the beneficial effects of the reoxygenation. Therefore, Akt and ERK1/2 have an important role to mediate cardioprotection by reoxygenation during CH in vivo.

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Peripheral inflammation induces persistent central sensitization characterized by mechanical allodynia and heat hyperalgesia that are mediated by distinct mechanisms. Compared to well-demonstrated mechanisms of heat hyperalgesia, mechanisms underlying the development of mechanical allodynia and contralateral pain are incompletely known. In this study, we investigated the distinct role of spinal JNK in heat hyperalgesia, mechanical allodynia, and contralateral pain in an inflammatory pain model. Intraplantar injection of complete Freund's adjuvant (CFA) induced bilateral mechanical allodynia but unilateral heat hyperalgesia. CFA also induced a bilateral activation (phosphorylation) of JNK in the spinal cord, and the phospho JNK1 (pJNK1) levels were much higher than that of pJNK2. Notably, both pJNK and JNK1 were expressed in GFAP-positive astrocytes. Intrathecal infusion of a selective peptide inhibitor of JNK, D-JNKI-1, starting before inflammation via an osmotic pump, reduced CFA-induced mechanical allodynia in the maintenance phase but had no effect on CFA-induced heat hyperalgesia. A bolus intrathecal injection of D-JNKI-1 or SP600126, a small molecule inhibitor of JNK also reversed mechanical allodynia bilaterally. In contrast, peripheral (intraplantar) administration of D-JNKI-1 reduced the induction of CFA-induced heat hyperalgesia but did not change mechanical allodynia. Finally, CFA-induced bilateral mechanical allodynia was attenuated in mice lacking JNK1 but not JNK2. Taken together, our data suggest that spinal JNK, in particular JNK1 plays an important role in the maintenance of persistent inflammatory pain. Our findings also reveal a unique role of JNK1 and astrocyte network in regulating tactile allodynia and contralateral pain.

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The c-Jun N-terminal kinase (JNK) is a mitogen-activated protein kinase (MAPK) activated by stress-signals and involved in many different diseases. Previous results proved the powerful effect of the cell permeable peptide inhibitor d-JNKI1 (d-retro-inverso form of c-Jun N-terminal kinase-inhibitor) against neuronal death in CNS diseases, but the precise features of this neuroprotection remain unclear. We here performed cell-free and in vitro experiments for a deeper characterization of d-JNKI1 features in physiological conditions. This peptide works by preventing JNK interaction with its c-Jun N-terminal kinase-binding domain (JBD) dependent targets. We here focused on the two JNK upstream MAPKKs, mitogen-activated protein kinase kinase 4 (MKK4) and mitogen-activated protein kinase kinase 7 (MKK7), because they contain a JBD homology domain. We proved that d-JNKI1 prevents MKK4 and MKK7 activity in cell-free and in vitro experiments: these MAPKK could be considered not only activators but also substrates of JNK. This means that d-JNKI1 can interrupt downstream but also upstream events along the JNK cascade, highlighting a new remarkable feature of this peptide. We also showed the lack of any direct effect of the peptide on p38, MEK1, and extracellular signal-regulated kinase (ERK) in cell free, while in rat primary cortical neurons JNK inhibition activates the MEK1-ERK-Ets1/c-Fos cascade. JNK inhibition induces a compensatory effect and leads to ERK activation via MEK1, resulting in an activation of the survival pathway-(MEK1/ERK) as a consequence of the death pathway-(JNK) inhibition. This study should hold as an important step to clarify the strong neuroprotective effect of d-JNKI1.

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RESUME Ce mémoire de thèse traite de l'étude de la « scaffold »protéine ou protéine «échafaud», « Islet-Brain1/ JNK Interacting Protein 1 » (IB1/JIP-1) dans la vessie et la prostate, deux organes importants de l'appareil uro-genital. Cette protéine, mise en évidence dans notre laboratoire à la fin des année 90, a été reconnue pour réguler la voie de signalisation des « Mitogen-Activated Protein Kinases » (MAPKs), et en particulier de la MAPK appelée c-Jun N-terminal Kinase (JNK). Le réseau de voie de signalisation permet aux cellules de percevoir les changements dans le milieu extracellulaire et de permettre une réponse appropriée à ces différents stimuli. La connaissance des voies de signalisation a permis de mettre en évidence leur rôle crucial tant dans l'homéostase des tissus sains que dans des processus pathologiques comme l'oncogenèse. Parmi une vingtaine de voie de signalisation, la voie de signalisation des «MAPKinases » est une des plus importantes et a été montrée pour participer à diverses fonctions cellulaires telles que la différentiation, la motilité, la division et la mort cellulaire. La voie de signalisation des « MAPKinases » est typiquement constituée d'un module de trois kinases qui s'activent séquentiellement par phosphorylation. On note la présence d'une MAPK, d'un activateur de MAPK et d'un activateur de l'activateur de MAPK. Une fois la MAPK activée, elle permettra la régulation de différentes cibles dont certain facteur de transcription. Chez les mammifères, il existe 3 grands groupes de MAPKs : the extracellular signal-regulated kinase 1 and 2 (ERK 1/2) cascade, qui régule préférentiellement la croissance et la différentiation cellulaire, ainsi que les cascades JNK et p38 qui régulent préférentiellement la réponse à différents stress cellulaires telle que l'inflammation ou l'apoptose. JNK est activé par différents stress cellulaire telle que les cytokines inflammatoires. JNK est également requis au cours du développement embryonnaire et contribue à la mort (apoptose) ou à la prolifération cellulaire. Plusieurs études ont mis en évidence le rôle de JNK durant le processus tumoral, sans que son rôle soit clairement identifié. JNK pourrait avoir des fonctions différentes durant l'initiation puis de la progression tumorale. Chez les mammifères, les voies de signalisation intracellulaires forment un réseau complexe et elles interagissent entre elles, ce qui permet aux cellules une réponse adéquate aux multitudes de stimuli existants dans les organismes pluricellulaires. Parmi plusieurs mécanismes de régulation, les protéines dites « scaffold » ou «échafaud » jouent un rôle crucial dans l'homéostase de la voie de signalisation des «MAPKinase ». L'introduction revoit brièvement ces différents aspects, de la voie de signalisation des «MAPKinase et des connaissance sur IB1/JIP-1. Les premières études effectuées sur IB1/JIP-1 ont montré une expression relativement spécifique de cette protéine dans certains types de neurones ainsi que dans la cellule beta-sécrétrice d'insuline. IB1/JIP-1 régule la voie de signalisation JNK par interaction avec les différents composants du module, modifiant ainsi le spectre de substrats activés par JNK. La fonction précise de IB1/JIP-1 n'était pas encore élucidée, mais plusieurs travaux mettaient en lumière un rôle dans la régulation, et la sous-location cellulaire des composants de la voie de signalisation JNK, ainsi que dans la survie cellulaire à certain stress. Cette expression relativement spécifique est intrigante car elle suggère que sa présence serait nécessaire à une régulation spécifique de la MAPKinase JNK ou à certaines autres fonctions cellulaires également spécifiques de certains tissus. Le premier but de ce travail a consisté à mettre en évidence l'expression de IB1/JIP-1 dans l'appareil uro-génital et plus particulièrement dans la vessie et la prostate. Nos résultats ont montré que IB1/JIP-1 est spécifiquement exprimé au niveau de l'urothélium vésical, mais pas dans le muscle lisse. Il en est de même au niveau de la prostate où IB1/JIP-1 est exprimé spécifiquement au niveau de l'épithélium sécrétoire et absent au niveau du stroma fibro-musculaire. La vessie et la prostate sont des organes ou l'activité JNK pourrait être crucial tant dans l' homeostase tissulaire que dans le développement de pathologies bénignes ou malignes. La vessie et la prostate sont le siège fréquent de tumeur. La base pour le développement du cancer est complexe et implique plusieurs anomalies génétiques. Ce processus complexe lié au développement tumoral est encore loin d`être complètement élucidé, raison pour laquelle il est crucial de poursuivre l'étude des différents gènes pouvant être impliqué dans ces processus ou pouvant être utilisé comme outil thérapeutique. Dans l'urothelium de la vessie, la fonction de la MAPK JNK n'a été que très peu étudiée. Il existe quelques études, in vitro, suggérant une implication possible de cette voie de signalisation dans des processus telle que le développement ou la progression tumorale. Le chapitre 1 décrit une étude in vivo dans la vessie un modèle de stress mécanique, connu pour activer les MAPKinase. La dilatation vésicale, due à une obstruction urétrale, a mis en évidence une diminution de l'expression de IB1/JIP-1 ainsi qu'une activation de la MAPKinase JNK. Dans ce modèle, la régulation de IB1/JIP-1, par l'intermédiaire d'un vecteur viral, a permis de démontrer que IB1/JIP-1 régulait l'activité de JNK dans ce tissu. Pour poursuivre l'étude de cette fonction d' IB1/JIP-1 dans l'urothélium, nous avons investigué l'activité JNK dans des souris génétiquement modifiées et porteuse d'une délétion de 1 des 2 allèles du gène codant pour IB1/JIP-1, avec un contenu en IB1/JIP-1 diminué de moitié. L'activation de JNK est également augmentée dans l'urothelium au repos de ces souris, ce qui confirme la fonction régulatrice de JNK par IB1/JIP-1. Ces résultats ont permis de mettre en évidence un rôle critique de celle-ci dans l'homéostase de I`urothelium et suggère une nouvelle cible pour réguler la voie de signalisation dans ce tissu. En outre, la modulation des niveaux d'expression d'IB1/JIP-1 dans la vessie, in vivo, par l'intermédiaire de vecteurs viraux s'est révélée réalisable et indique un moyen élégant pour développer une thérapie génique dans cet organe. Un autre élément de ce travail de thèse, révélée au chapitre 2, a été d'étudier la régulation dans la vessie de rat de la communication intercellulaire de type « GAP ». Les cellules adjacentes partagent des ions, messagers secondaires et des petits métabolites par l'intermédiaire de canaux intercellulaire qui forment les jonctions de type « GAP ». Ce type de communications intercellulaire permet une activité cellulaire coordonnée, une caractéristique importante pour l'homéostase des organismes multicellulaire. Ce type de communication intercellulaire est formé de 2 demi-canaux appelés connexons. Chaque connexon est formé de six protéines appelées connexins (Cx). Il existe environ vingt connexines différentes nommées par leur poids moléculaire respectif. Les jonctions de type canaux "GAP" permettent aux cellules de communiquer avec les cellules voisines au quelles elles sont mécaniquement ou électriquement couplées. La vessie peut être particulièrement dépendante de la communication intercellulaire par les canaux « Gap » qui permettrait de coordonner la réponse de la musculature ainsi que de l'urothélium à l'augmentation de la pression transmurale du à l'accumulation d'urine, situation fréquemment observée dans le cadre de l'hyperplasie bénigne de la prostate. Dans la vessie de rat, la connexine26 est exprimée uniquement dans l'urothelium. La Cx26, a été montrée pour être un possible « tumor suppressor gene » dans le cancer de vessie. Une augmentation de la Cx26 ainsi que du couplage des cellules urothéliales a été démontré dans notre modèle de stress mécanique sur la vessie de rat et est dépendante de 2 éléments de réponses connues pour interagir avec AP-1. La régulation de IB1/JIP-1 a permis de montrer que celle-ci régulait l'activité JNK, ainsi que l'activité du facteur de transcription AP-1, composé de c-Jun lui-même cible de JNK. Cette réduction de l'activité de AP-1 est associée à une diminution de l'expression du transcipt de la Cx26. En résumé, la Cx26 pourrait être régulée par le complexe AP-1 lui-même dépendant du contenu en IB1/JIP-1. Dans le chapitre 3, l'étude de IB1/J1P-1 s'est portée sur la prostate. Cet organe, siège fréquent de pathologie telle que le cancer ou l'hyperplasie bénigne de la prostate, exprime IB1/JIP-1 au niveau de son épithélium sécrétoire. Cette expression est maintenue dans une lignée cellulaire humaine largement étudiée est reconnue comme un modèle adéquat de cellules tumorales de type androgène-sensible. IB1/JIP-1 a été investigué dans un modèle in vitro d'apoptose en réponse à un agent appelé N-(4-hydroxyphenyl)retinamide (4-HPR) qui induit une activation de la MAPK JNK ainsi que également un diminution du contenu en IB1/JIP-1. La surexpression de IB1/JIP-1 en utilisant à nouveau des virus comme vecteur a démontré que IB1/JIP-1 était capable de réguler l'activité de JNK ainsi que les taux d'apoptose. Dans le cancer de la prostate, certains travaux ont montré que la différentiation neuroendocrine des cellules tumorales est associée à la progression tumorale et à la perte de sensibilité aux androgènes. Ce travail a permis de dévoiler l'augmentation d'expression de IB1/JIP-1 dans un modèle de neurodifferentiation des cellules d'une lignée prostatique humaine (LNCaP). Les mécanismes qui permettent une expression spécifique de IB1/JIP-1 ont été partiellement investiguée dans notre laboratoire. Son promoteur humain contient un « Neuron Restricive Silencer Element » (NRSE) connu pour se lier a répresseur transcriptionel appelé « RE-1 Silencer Transcription Factor » ou « Neuron Restrictive Silencer Factor » (REST/NRSF). NRSF/REST est capable de réprimer l'expression de gènes neuronaux en dehors du système neuronal. Il prend part à la différentiation terminale des gènes neuronaux. Dans le chapitre 3, on observe que l'activité de REST/NRSF est diminuée dans les cellules LNCaP qui se transdifferencient de manière neuroendocrine, et que REST/NRSF est capable de moduler l'expression de ces gènes cibles dans ce type cellulaire. Ces travaux laissent suggérer que NRSF/REST participe à l'acquisition du phénotype neuroendocrinien et pourrait être une cible pour réguler ce phénomène. En conclusion, ce travail de thèse présente l'expression de IB1/JIP-1 dans 2 organes de l'appareil uro-génital ; la vessie et la prostate. La fonction de IB1/JIP-1 a été étudiée in vivo dans la vessie de rat, ce qui a mis en évidence sa fonction régulatrice de l'activité de la MAPKinase JNK, et de l'activité du facteur de transcription AP-1 ; ainsi que sa possible implication régulatrice de gène cible tel que la Connexin 26 (Cx26). AP-1 et la Cx26 pourraient jouer un rôle dans le processus oncologique, tant dans le control de l'invasion cellulaire ou le control de la croissance cellulaire. Dans la prostate, IB1/JIP-1 régule également l'activité JNK; crucial dans la transmission de certains stimulis pro-apoptotiques. Dans un modèle de transdifférenciation neuroendocrinienne, phénotype possiblement lié au caractère agressif du cancer de la prostate, l'expression de IB1/JIP-1 est augmenté, suggérant soit un rôle possible dans le développement du phénotype neuronal ou une implication dans une fonction anti-apoptotique. Ce travail a donc permis d'élargir nos connaissances sur la régulation et le control de la voie de signalisation des MAPKinases par IB1/JIP-1, qui pourrait avoir encore d'autres fonctions dans ces tissus.

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Human cytosolic thymidine kinase (hTK1) has proven to be a suitable target for the noninvasive imaging of cancer cell proliferation using radiolabeled thymidine analogues such as [(18)F]3'-fluoro-3'-deoxythymidine ([(18)F]FLT). A thymidine analogue for single photon emission computed tomography (SPECT), which incorporates the readily available and inexpensive nuclide technetium-99m, would be of considerable practical interest. hTK1 is known to accommodate modification of the structure of the natural substrate thymidine at the positions N3 and C3' and, to a lesser extent, C5. In this work, we used the copper-catalyzed azide-alkyne cycloaddition to synthesize two series of derivatives in which thymidine is functionalized at either the C3' or N3 position with chelating systems suitable for the M(CO)(3) core (M = (99m)Tc, Re). The click chemistry approach enabled complexes with different structures and overall charges to be synthesized from a common precursor. Using this strategy, the first organometallic hTK1 substrates in which thymidine is modified at the C3' position were identified. Phosphorylation of the organometallic derivatives was measured relative to thymidine. We have shown that the influence of the overall charge of the derivatives is dependent on the position of functionalization. In the case of the C3'-functionalized derivatives, neutral and anionic substrates were most readily phosphorylated (20-28% of the value for the parent ligand thymidine), whereas for the N3-functionalized derivatives, cationic and neutral complexes were apparently better substrates for the enzyme (14-18%) than anionic derivatives (9%).

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Mitogen-activated protein kinase (MAPK) cascades regulate a wide variety of cellular processes that ultimately depend on changes in gene expression. We have found a novel mechanism whereby one of the key MAP3 kinases, Mekk1, regulates transcriptional activity through an interaction with p53. The tumor suppressor protein p53 down-regulates a number of genes, including the gene most frequently mutated in autosomal dominant polycystic kidney disease (PKD1). We have discovered that Mekk1 translocates to the nucleus and acts as a co-repressor with p53 to down-regulate PKD1 transcriptional activity. This repression does not require Mekk1 kinase activity, excluding the need for an Mekk1 phosphorylation cascade. However, this PKD1 repression can also be induced by the stress-pathway stimuli, including TNFα, suggesting that Mekk1 activation induces both JNK-dependent and JNK-independent pathways that target the PKD1 gene. An Mekk1-p53 interaction at the PKD1 promoter suggests a new mechanism by which abnormally elevated stress-pathway stimuli might directly down-regulate the PKD1 gene, possibly causing haploinsufficiency and cyst formation.

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MEK kinase 1 (MEKK1) is a 196-kDa enzyme that is involved in the regulation of the c-Jun N-terminal kinase (JNK) pathway and apoptosis. In cells exposed to genotoxic agents including etoposide and cytosine arabinoside, MEKK1 is cleaved at Asp874 by caspases. The cleaved kinase domain of MEKK1, itself, stimulates caspase activity leading to apoptosis. Kinase-inactive MEKK1 expressed in HEK293 cells effectively blocks genotoxin-induced apoptosis. Treatment of cells with taxol, a microtubule stabilizing agent, did not induce MEKK1 cleavage in cells, and kinase-inactive MEKK1 expression failed to block taxol-induced apoptosis. MEKK1 became activated in HEK293 cells exposed to taxol, but in contrast to etoposide-treatment, taxol failed to increase JNK activity. Taxol treatment of cells, therefore, dissociates MEKK1 activation from the regulation of the JNK pathway. Overexpression of anti-apoptotic Bcl2 blocked MEKK1 and taxol-induced apoptosis but did not block the caspase-dependent cleavage of MEKK1 in response to etoposide. This indicates Bcl2 inhibition of apoptosis is, therefore, downstream of caspase-dependent MEKK1 cleavage. The results define the involvement of MEKK1 in the induction of apoptosis by genotoxins but not microtubule altering drugs.

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Cell polarity is essential for various cellular functions during both proliferative and developmental stages, and it displays dynamic alterations in response to intracellular and extracellular cues. However, the molecular mechanisms underlying spatiotemporal control of polarity transition are poorly understood. Here, we show that fission yeast Cki3 (a casein kinase 1γ homolog) is a critical regulator to ensure persistent monopolar growth during S phase. Unlike the wild type, cki3 mutant cells undergo bipolar growth when S phase is blocked, a condition known to delay transition from monopolar to bipolar growth (termed NETO [new end takeoff]). Consistent with this role, Cki3 kinase activity is substantially increased, and cells lose their viability in the absence of Cki3 upon an S-phase block. Cki3 acts downstream of the checkpoint kinase Cds1/Chk2 and calcineurin, and the latter physically interacts with Cki3. Autophosphorylation in the C terminus is inhibitory toward Cki3 kinase activity, and calcineurin is responsible for its dephosphorylation. Cki3 localizes to the plasma membrane, and this localization requires the palmitoyltransferase complex Erf2-Erf4. Membrane localization is needed not only for proper NETO timing but also for Cki3 kinase activity. We propose that Cki3 acts as a critical inhibitor of cell polarity transition under S-phase arrest.

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Tenascin-C is an adhesion-modulating extracellular matrix molecule that is highly expressed in tumor stroma and stimulates tumor cell proliferation. Adhesion of T98G glioblastoma cells to a fibronectin substratum is inhibited by tenascin-C. To address the mechanism of action, we performed a RNA expression analysis of T89G cells grown in the presence or absence of tenascin-C and found that tenascin-C down-regulates tropomyosin-1. Upon overexpression of tropomyosin-1, cell spreading on a fibronectin/tenascin-C substratum was restored, indicating that tenascin-C destabilizes actin stress fibers through down-regulation of tropomyosin-1. Tenascin-C also increased the expression of the endothelin receptor type A and stimulated the corresponding mitogen-activated protein kinase signaling pathway, which triggers extracellular signal-regulated kinase 1/2 phosphorylation and c-Fos expression. Tenascin-C additionally caused down-regulation of the Wnt inhibitor Dickkopf 1. In consequence, Wnt signaling was enhanced through stabilization of beta-catenin and stimulated the expression of the beta-catenin target Id2. Finally, our in vivo data derived from astrocytoma tissue arrays link increased tenascin-C and Id2 expression with high malignancy. Because increased endothelin and Wnt signaling, as well as reduced tropomyosin-1 expression, are closely linked to transformation and tumorigenesis, we suggest that tenascin-C specifically modulates these signaling pathways to enhance proliferation of glioma cells.

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In solid organ transplantation, ischemia/reperfusion (IR) injury during organ procurement, storage and reperfusion is an unavoidable detrimental event for the graft, as it amplifies graft inflammation and rejection. Intracellular mitogen-activated protein kinase (MAPK) signaling pathways regulate inflammation and cell survival during IR injury. The four best-characterized MAPK subfamilies are the c-Jun NH2-terminal kinase (JNK), extracellular signal- regulated kinase-1/2 (ERK1/2), p38 MAPK, and big MAPK-1 (BMK1/ERK5). Here, we review the role of MAPK activation during myocardial IR injury as it occurs during heart transplantation. Most of our current knowledge regarding MAPK activation and cardioprotection comes from studies of preconditioning and postconditioning in nontransplanted hearts. JNK and p38 MAPK activation contributes to myocardial IR injury after prolonged hypothermic storage. p38 MAPK inhibition improves cardiac function after cold storage, rewarming and reperfusion. Small-molecule p38 MAPK inhibitors have been tested clinically in patients with chronic inflammatory diseases, but not in transplanted patients, so far. Organ transplantation offers the opportunity of starting a preconditioning treatment before organ procurement or during cold storage, thus modulating early events in IR injury. Future studies will need to evaluate combined strategies including p38 MAPK and/or JNK inhibition, ERK1/2 activation, pre- or postconditioning protocols, new storage solutions, and gentle reperfusion.

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In the pathogenesis of type I diabetes mellitus, activated leukocytes infiltrate pancreatic islets and induce beta cell dysfunction and destruction. Interferon (IFN)-gamma, tumor necrosis factor-alpha and interleukin (IL)-1 beta play important, although not completely defined, roles in these mechanisms. Here, using the highly differentiated beta Tc-Tet insulin-secreting cell line, we showed that IFN-gamma dose- and time-dependently suppressed insulin synthesis and glucose-stimulated secretion. As described previously IFN-gamma, in combination with IL-1 beta, also induces inducible NO synthase expression and apoptosis (Dupraz, P., Cottet, S., Hamburger, F., Dolci, W., Felley-Bosco, E., and Thorens, B. (2000) J. Biol. Chem. 275, 37672--37678). To assess the role of the Janus kinase/signal transducer and activator of transcription (STAT) pathway in IFN-gamma intracellular signaling, we stably overexpressed SOCS-1 (suppressor of cytokine signaling-1) in the beta cell line. We demonstrated that SOCS-1 suppressed cytokine-induced STAT-1 phosphorylation and increased cellular accumulation. This was accompanied by a suppression of the effect of IFN-gamma on: (i) reduction in insulin promoter-luciferase reporter gene transcription, (ii) decrease in insulin mRNA and peptide content, and (iii) suppression of glucose-stimulated insulin secretion. Furthermore, SOCS-1 also suppressed the cellular effects that require the combined presence of IL-1 beta and IFN-gamma: induction of nitric oxide production and apoptosis. Together our data demonstrate that IFN-gamma is responsible for the cytokine-induced defect in insulin gene expression and secretion and that this effect can be completely blocked by constitutive inhibition of the Janus kinase/STAT pathway.