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Post-exercise hypotension (PEH) is the phenomenon of lowered blood pressure after a single bout of exercise. Only a fraction of people develops PEH but its occurrence correlates well with long-term effects of sports on blood pressure. Therefore, PEH has been suggested as a suitable predictor for the effectivity of exercise as therapy in hypertension. Local vascular bioactive lipids might play a potential role in this context. We performed a cross-over clinical pilot study with 18 healthy volunteers to investigate the occurrence of PEH after a single short-term endurance exercise. Furthermore, we investigated the plasma lipid profile with focus on arachidonic acid (AA)-derived metabolites as potential biomarkers of PEH. A single bout of ergometer cycling induced a significant PEH in healthy volunteers with the expected high inter-individual variability. Targeted lipid spectrum analysis revealed significant upregulation of several lipids in the direct post-exercise phase. Among these changes, only 15- hydroxyeicosatetranoic acid (HETE) correlated significantly with the extent of PEH but in an AA-independent manner, suggesting that 15-HETE might act as specific PEH-marker. Our data indicate that specific lipid modulation might facilitate the identification of patients who will benefit from exercise activity in hypertension therapy. However, larger trials including hypertonic patients are necessary to verify the clinical value of this hypothesis.
Inhibitor-kappaB kinase epsilon (IKKε) and TANK-binding kinase 1 (TBK1) are non-canonical IκB kinases, both described as contributors to tumor growth and metastasis in different cancer types. Several hints indicate that they are also involved in the pathogenesis of melanoma; however, the impact of their inhibition as a potential therapeutic measure in this “difficult-to-treat” cancer type has not been investigated so far. We assessed IKKε and TBK1 expression in human malignant melanoma cells, primary tumors and the metastasis of melanoma patients. Both kinases were expressed in the primary tumor and in metastasis and showed a significant overexpression in tumor cells in comparison to melanocytes. The pharmacological inhibition of IKKε/TBK1 by the approved drug amlexanox reduced cell proliferation, migration and invasion. Amlexanox did not affect the cell cycle progression nor apoptosis induction but significantly suppressed autophagy in melanoma cells. The analysis of potential functional downstream targets revealed that NF-кB and ERK pathways might be involved in kinase-mediated effects. In an in vivo xenograft model in nude mice, amlexanox treatment significantly reduced tumor growth. In conclusion, amlexanox was able to suppress tumor progression potentially by the inhibition of autophagy as well as NF-кB and MAP kinase pathways and might therefore constitute a promising candidate for melanoma therapy.
The processing of pain undergoes several changes in aging that affect sensory nociceptive fibers and the endogenous neuronal inhibitory systems. So far, it is not completely clear whether age-induced modifications are associated with an increase or decrease in pain perception. In this study, we assessed the impact of age on inflammatory nociception in mice and the role of the hormonal inhibitory systems in this context. We investigated the nociceptive behavior of 12-month-old versus 6–8-week-old mice in two behavioral models of inflammatory nociception. Levels of TRP channels, and cortisol as well as cortisol targets, were measured by qPCR, ELISA, and Western blot in the differently aged mice. We observed an age-related reduction in nociceptive behavior during inflammation as well as a higher level of cortisol in the spinal cord of aged mice compared to young mice, while TRP channels were not reduced. Among potential cortisol targets, the NF-κB inhibitor protein alpha (IκBα) was increased, which might contribute to inhibition of NF-κB and a decreased expression and activity of the inducible nitric oxide synthase (iNOS). In conclusion, our results reveal a reduced nociceptive response in aged mice, which might be at least partially mediated by an augmented inflammation-induced increase in the hormonal inhibitory system involving cortisol.
I-kappaB-Kinase epsilon - ein neues Zielprotein für die Pharmakotherapie bei Schmerz und Entzündung?
(2010)
Der Transkriptionsfaktor NF-kappaB spielt eine wichtige Rolle bei der Regulation von Immunantworten, Apoptose und Entzündungen sowie bei der Entstehung und Verarbeitung von Schmerzen. Ein pharmakologischer Eingriff in die NF-kappaB-Aktivierungskaskade könnte daher eine Schmerzhemmung bewirken und so Ansätze für die Entwicklung neuer Therapien für pathophysiologische Schmerzen liefern. Die NF-kappaB-Signalübertragungskaskade bietet verschiedene Angriffspunkte für Pharmaka, wobei zurzeit IkappaB Kinasen (IKK) als hoffnungsvolle Zielmoleküle im Fokus der Untersuchungen stehen. Verschiedene IKKs regulieren die Aktivität von NF-kappaB über die Phosphorylierung des inhibitorischen Proteins IkappaB oder über die direkte Phosphorylierung von NF-kappaB. In der vorliegenden Arbeit wurde die Rolle der neu entdeckten IKK epsilon bei der Schmerzentstehung und -verarbeitung sowie deren Eignung als neues Zielmolekül für die Schmerztherapie näher untersucht. Es konnte gezeigt werden, dass IKK epsilon konstitutiv in Geweben der Maus, welche an der Entstehung und Verarbeitung von Schmerzen beteiligt sind, exprimiert ist. Im Rückenmark konnte die Lokalisation von IKK epsilon in den schmerzrelevanten Laminae I und II des Dorsalhorns nachgewiesen werden und auch in den Hinterwurzelganglien (Dorsal Root Ganglia (DRG’s)) war IKK epsilon in kleinen, nozizeptiven Neuronen exprimiert. Nach peripherer entzündlich-nozizeptiver Stimulation mit Formalin oder Zymosan kam es im Lumbalmark und den DRG’s zu einem signifikanten Anstieg der IKK epsilon-Expression sowohl auf mRNA- als auch auf Proteinebene. Diese Beobachtungen machten eine Beteiligung von IKK epsilon an der Prozessierung von Schmerz sehr wahrscheinlich. Um die Rolle von IKK epsilon während der Schmerzentstehung und -verarbeitung besser beurteilen zu können wurde das Verhalten von IKK epsilon defizienten Mäusen in akuten und inflammatorischen Schmerzmodellen charakterisiert. Es konnte gezeigt werden, dass der Knockout von IKK epsilon zu einem signifikant verringerten nozizeptiven Verhalten im Formalintest und einer Hemmung der mechanischen Hyperalgesie nach Zymosaninjektion im Vergleich zu Wildtyp-Mäusen führte. Gleichzeitig konnte kein Unterschied im akut nozizeptiven Verhalten festgestellt werden. Der Knockout von IKK epsilon hatte demnach keine Auswirkung auf den akuten physiologischen Nozizeptorschmerz, zeigte jedoch eine Verbesserung bei pathophysiologischen Schmerzen. Das verringerte nozizeptive Verhalten der IKK epsilon defizienten Mäuse im Formalintest ging mit einer Hemmung der NF-kappaB-Aktivierung im Rückenmark einher. Auch konnte eine verringerte mRNA-Expression der NF-kappaB-abhängigen Gene Cyclooxygenase-2 (COX-2), Matrixmetalloprotease-9 (MMP-9) und induzierbare Stickstoffmonoxid-Synthase (iNOS), die an der Regulation von Entzündungsschmerzen beteiligt sind, im Rückenmark und den DRG’s nachgewiesen werden. Da IKK epsilon bisher hauptsächlich mit der Aktivierung des TypI Interferon-Signalweges in Zusammenhang gebracht wurde, wurde außerdem geprüft, ob es nach Injektion mit Formalin zu einer Aktivierung des Trankriptionsfaktors Interferon-regulierender Faktor (IRF)-3 in Wildtyp-Mäusen kommt, was nicht beobachtet werden konnte. Der Knockout von IKK epsilon scheint demnach seine antinozizeptive Wirkung direkt über eine fehlende Aktivierung von NF-kappaB zu entfalten, wonach IKK epsilon eine bedeutendere Rolle als bisher angenommen bei der Aktivierung von NF-kappaB spielt. Dies konnte durch in vitro Daten untermauert werden. Der Knockdown von IKK epsilon in Makrophagen-Zellkultur mit spezifischer siRNA verhinderte die Phosphorylierung von NF-kappaBp65 am Serinrest 536 nach Stimulation mit LPS. Anhand der vorliegenden Daten lässt sich also schlussfolgern, dass IKK epsilon an der Schmerzentstehung und verarbeitung bei Entzündungen beteiligt zu sein scheint. Eine Hemmung dieser Kinase könnte demnach ein neues, lohnendes Ziel für die Entwicklung neuer Medikamente für die Schmerztherapie sein.
Nerve injury leads to sensitization mechanisms in the peripheral and central nervous system which involve transcriptional and post-transcriptional modifications in sensory nerves. To assess protein regulations in the spinal cord after injury of the sciatic nerve in the Spared Nerve Injury model (SNI) we performed a proteomic analysis using 2D-difference gel electrophoresis (DIGE) technology. Among approximately 2300 protein spots separated on each gel we detected 55 significantly regulated proteins after SNI whereof 41 were successfully identified by MALDI-TOF MS. Out of the proteins which were regulated in the DIGE analyses after SNI we focused on the carboxypeptidase A inhibitor latexin because protease dysfunctions contribute to the development of neuropathic pain. Latexin protein expression was reduced after SNI which could be confirmed by Western Blot analysis, quantitative RT-PCR and in-situ hybridisation. The decrease of latexin was associated with an increase of the activity of carboxypeptidase A indicating that the balance between latexin and carboxypeptidase A was impaired in the spinal cord after peripheral nerve injury due to a loss of latexin expression in spinal cord neurons. This may contribute to the development of cold allodynia because normalization of neuronal latexin expression in the spinal cord by AAV-mediated latexin transduction or administration of a small molecule carboxypeptidase A inhibitor significantly reduced acetone-evoked nociceptive behavior after SNI. Our results show the usefulness of proteomics as a screening tool to identify novel mechanisms of nerve injury evoked hypernociception and suggest that carboxypeptidase A inhibition might be useful to reduce cold allodynia.
Background: Caloric restriction is associated with broad therapeutic potential in various diseases and an increase in health and life span. In this study, we assessed the impact of caloric restriction on acute and inflammatory nociception in mice, which were either fed ad libitum or subjected to caloric restriction with 80% of the daily average for two weeks.
Results: The behavioral tests revealed that inflammatory nociception in the formalin test and in zymosan-induced mechanical hypersensitivity were significantly decreased when mice underwent caloric restriction. As potential mediators of the diet-induced antinociception, we assessed genes typically induced by inflammatory stimuli, AMP-activated kinase, and the endocannabinoid system which have all already been associated with nociceptive responses. Zymosan-induced inflammatory markers such as COX-2, TNFα, IL-1β, and c-fos in the spinal cord were not altered by caloric restriction. In contrast, AMPKα2 knock-out mice showed significant differences in comparison to C57BL/6 mice and their respective wild type littermates by missing the antinociceptive effects after caloric restriction. Endocannabinoid levels of anandamide and 2-arachidonyl glyceroldetermined in serum by LC-MS/MS were not affected by either caloric restriction alone or in combination with zymosan treatment. However, cannabinoid receptor type 1 expression in the spinal cord, which was not altered by caloric restriction in control mice, was significantly increased after caloric restriction in zymosan-induced paw inflammation. Since increased cannabinoid receptor type 1 signaling might influence AMP-activated kinase activity, we analyzed effects of anandamide on AMP-activated kinase in cell culture and observed a significant activation of AMP-activated kinase. Thus, endocannabionoid-induced AMP-activated kinase activation might be involved in antinociceptive effects after caloric restriction.
Conclusion: Our data suggest that caloric restriction has an impact on inflammatory nociception which might involve AMP-activated kinase activation and an increased activity of the endogenous endocannabinoid system by caloric restriction-induced cannabinoid receptor type 1 upregulation.