167 research outputs found

    Die Rolle der Epoxyeicosatriensäuren (EETs) bei der nozizeptiven Verarbeitung

    Get PDF
    Im Rahmen dieser Arbeit wurden Epoxyeicosatriensäuren (EETs) hinsichtlich ihrer Beteiligung an der Verarbeitung nozizeptiver Information untersucht. Im ersten Teil der Arbeit lag der Fokus auf der löslichen Epoxidhydrolase (sEH) und der drei von ihr metabolisierten EETs, 8,9-, 11,12-, und 14,15-EET. Dabei stellte sich heraus, dass sEH-defiziente Mäuse eine verlängerte mechanische Hyperalgesie bei zymosan-induziertem pathophysiologischen Nozizeptorschmerz aufwiesen. Anhand von Lipidmessungen mittels LC-MS/MS konnte gezeigt werden, dass zum Zeitpunkt des stärksten Schmerzempfindens (48 Stunden nach Zymosan-Injektion) vorwiegend 8,9-EET in den Dorsalwurzelganglien der sEH-defizienten Mäuse akkumuliert. Zudem wurde anhand von Calcium-Imaging-Versuchen gezeigt, dass 8,9-EET Calcium-Einströme in primär afferenten Neuronen von Wildtyp-Mäusen hervorruft, und eine Stimulation von Ischiasnerven mit 8,9-EET zu erhöhter Freisetzung des pronozizeptiven Peptids CGRP führt. Schließlich konnte gezeigt werden, dass Wildtyp-Mäuse nach intraplantarer 8,9-EET-Injektion eine geringere mechanische Schmerzschwelle aufweisen. Die Resultate dieses Teils der Arbeit weisen darauf hin, dass die lösliche Epoxidhydrolase (sEH) eine wichtige Rolle in der späten Phase des pathophy-siologischen Nozizeptorschmerzes spielt, indem sie 8,9-EET zu seinem bioinaktiven Metaboliten 8,9-DHET umsetzt. Im zweiten Teil der Arbeit wurde 5,6-EET gesondert untersucht, da es nicht durch sEH metabolisiert wird. Dabei wurde beobachtet, dass 5,6-EET bei akutem Schmerz in DRGs freigesetzt wird. In Calcium-Imaging-Versuchen mit DRG-Neuronen aus Wildtyp- TRPV4- und TRPA1-defizienten Mäusen sowie transfizierten Zelllinien zeigte sich, dass schon geringe Konzentrationen an 5,6-EET den TRPA1- (transient receptor potetntial ankyrin 1-) Kanal aktivieren (EC50 193 nM) und den TRPV1-Kanal sensibilisieren können. Auch die CGRP-Freisetzung am Ischiasnerv ist nach 5,6-EET-Stimulation signifikant erhöht. Zudem konnte beobachtet werden dass eine periphere Injektion von 5,6-EET zu akuter mechanischer Hyperalgesie in Wildtyp-, aber nicht in TRPA1-defizienten Mäusen führt. Die Resultate dieses Teils der Arbeit weisen 5,6-EET als bisher potentesten endogenen TRPA1-Aktivator aus, und implizieren eine wichtige Rolle dieses Lipids beim Übergang von physiologischem zu pathophysiologischem Nozizeptorschmerz und zu neruogener Inflammation. Darüber hinaus leisten die Resultate einen Beitrag zum grundlegenden Verständnis endogener TRP-Kanal-Aktivatoren bei der Schmerzwahrnehmung

    Soluble epoxide hydrolase limits mechanical hyperalgesia during inflammation.

    Get PDF
    RIGHTS : This article is licensed under the BioMed Central licence at http://www.biomedcentral.com/about/license which is similar to the 'Creative Commons Attribution Licence'. In brief you may : copy, distribute, and display the work; make derivative works; or make commercial use of the work - under the following conditions: the original author must be given credit; for any reuse or distribution, it must be made clear to others what the license terms of this work are.BACKGROUND: Cytochrome-P450 (CYP450) epoxygenases metabolise arachidonic acid (AA) into four different biologically active epoxyeicosatrienoic acid (EET) regioisomers. Three of the EETs (i.e., 8,9-, 11,12- and 14,15-EET) are rapidly hydrolysed by the enzyme soluble epoxide hydrolase (sEH). Here, we investigated the role of sEH in nociceptive processing during peripheral inflammation. RESULTS: In dorsal root ganglia (DRG), we found that sEH is expressed in medium and large diameter neurofilament 200-positive neurons. Isolated DRG-neurons from sEH(-/-) mice showed higher EET and lower DHET levels. Upon AA stimulation, the largest changes in EET levels occurred in culture media, indicating both that cell associated EET concentrations quickly reach saturation and EET-hydrolyzing activity mostly effects extracellular EET signaling. In vivo, DRGs from sEH-deficient mice exhibited elevated 8,9-, 11,12- and 14,15-EET-levels. Interestingly, EET levels did not increase at the site of zymosan-induced inflammation. Cellular imaging experiments revealed direct calcium flux responses to 8,9-EET in a subpopulation of nociceptors. In addition, 8,9-EET sensitized AITC-induced calcium increases in DRG neurons and AITC-induced calcitonin gene related peptide (CGRP) release from sciatic nerve axons, indicating that 8,9-EET sensitizes TRPA1-expressing neurons, which are known to contribute to mechanical hyperalgesia. Supporting this, sEH(-/-) mice showed increased nociceptive responses to mechanical stimulation during zymosan-induced inflammation and 8,9-EET injection reduced mechanical thresholds in naive mice. CONCLUSION: Our results show that the sEH can regulate mechanical hyperalgesia during inflammation by inactivating 8,9-EET, which sensitizes TRPA1-expressing nociceptors. Therefore we suggest that influencing the CYP450 pathway, which is actually highly considered to treat cardiovascular diseases, may cause pain side effects.Peer Reviewe

    The FKBP51 Inhibitor SAFit2 Restores the Pain-Relieving C16 Dihydroceramide after Nerve Injury

    Get PDF
    Neuropathic pain is a pathological pain state with a broad symptom scope that affects patients after nerve injuries, but it can also arise after infections or exposure to toxic substances. Current treatment possibilities are still limited because of the low efficacy and severe adverse effects of available therapeutics, highlighting an emerging need for novel analgesics and for a detailed understanding of the pathophysiological alterations in the onset and maintenance of neuropathic pain. Here, we show that the novel and highly specific FKBP51 inhibitor SAFit2 restores lipid signaling and metabolism in nervous tissue after nerve injury. More specifically, we identify that SAFit2 restores the levels of the C16 dihydroceramide, which significantly reduces the sensitization of the pain-mediating TRPV1 channel and subsequently the secretion of the pro-inflammatory neuropeptide CGRP in primary sensory neurons. Furthermore, we show that the C16 dihydroceramide is capable of reducing acute thermal hypersensitivity in a capsaicin mouse model. In conclusion, we report for the first time the C16 dihydroceramide as a novel and crucial lipid mediator in the context of neuropathic pain as it has analgesic properties, contributing to the pain-relieving properties of SAFit2

    Una reflexión sobre la importancia de la enseñanza de la shoá en Argentina

    Get PDF
    Este ensayo propone compartir algunos dilemas encontrados al momento de redactar un Proyecto de Ley para la incorporación de la temática Holocausto – Shoá en los contenidos de los currículos escolares de la provincia de Buenos Aires. Finalizada la tarea, se hizo necesario dar cuenta de algunos problemas que fueron surgiendo a lo largo del trabajo. Una de las cuestiones prioritarias quedó trazada cuando apareció la pregunta sobre ¿Por qué debería ser el Holocausto Judío un tema de enseñanza vigente en las sociedades presentes? Esta indagación suscitó un debate que llevó a desnaturalizar el acuerdo básico y común que había sido sostenido por los miembros de esta Comisión en una primera instancia. Si se pretendía que se reconociera la enseñanza del Holocausto como un tema de importancia para ser incorporado dentro del currículo de las escuelas, se debía considerar cuáles son los argumentos fundamentales que sostienen dicho tema. Es por ello que en este escrito proponemos dejar a un lado la cuestión del cómo llevar acabo la incorporación del Holocausto (en el que se debería trabajar rigurosamente con los contenidos de cada ciclo de la educación primaria, secundaria y superior), para dar lugar a un análisis profundo y específico de los ‘dilemas educativos a la hora de enseñar la temática del Holocausto-Shoá.Facultad de Periodismo y Comunicación Socia

    The G2A Receptor Controls Polarization of Macrophage by Determining Their Localization Within the Inflamed Tissue

    Get PDF
    Macrophages are highly versatile cells, which acquire, depending on their microenvironment, pro- (M1-like), or antiinflammatory (M2-like) phenotypes. Here, we studied the role of the G-protein coupled receptor G2A (GPR132), in chemotactic migration and polarization of macrophages, using the zymosan-model of acute inflammation. G2A-deficient mice showed a reduced zymosan-induced thermal hyperalgesia, which was reversed after macrophage depletion. Fittingly, the number of M1-like macrophages was reduced in the inflamed tissue in G2A-deficient mice. However, G2A activation was not sufficient to promote M1-polarization in bone marrow-derived macrophages. While the number of monocyte-derived macrophages in the inflamed paw was not altered, G2A-deficient mice had less macrophages in the direct vicinity of the origin of inflammation, an area marked by the presence of zymosan, neutrophil accumulation and proinflammatory cytokines. Fittingly neutrophil efferocytosis was decreased in G2A-deficient mice and several lipids, which are released by neutrophils and promote G2A-mediated chemotaxis, were increased in the inflamed tissue. Taken together, G2A is necessary to position macrophages in the proinflammatory microenvironment surrounding the center of inflammation. In absence of G2A the macrophages are localized in an antiinflammatory microenvironment and macrophage polarization is shifted toward M2-like macrophages

    Chondroprotection by urocortin involves blockade of the mechanosensitive ion channel Piezo1

    Get PDF
    Osteoarthritis (OA) is characterised by progressive destruction of articular cartilage and chondrocyte cell death. Here, we show the expression of the endogenous peptide urocortin1 (Ucn1) and two receptor subtypes, CRF-R1 and CRF-R2, in primary human articular chondrocytes (AC) and demonstrate its role as an autocrine/paracrine pro-survival factor. This effect could only be removed using the CRF-R1 selective antagonist CP-154526, suggesting Ucn1 acts through CRF-R1 when promoting chondrocyte survival. This cell death was characterised by an increase in p53 expression, and cleavage of caspase 9 and 3. Antagonism of CRF-R1 with CP-154526 caused an accumulation of intracellular calcium (Ca2+) over time and cell death. These effects could be prevented with the non-selective cation channel blocker Gadolinium (Gd3+). Therefore, opening of a non-selective cation channel causes cell death and Ucn1 maintains this channel in a closed conformation. This channel was identified to be the mechanosensitive channel Piezo1. We go on to determine that this channel inhibition by Ucn1 is mediated initially by an increase in cyclic adenosine monophosphate (cAMP) and a subsequent inactivation of phospholipase A2 (PLA2), whose metabolites are known to modulate ion channels. Knowledge of these novel pathways may present opportunities for interventions that could abrogate the progression of OA

    Novel Insights into the Diversity of Catabolic Metabolism from Ten Haloarchaeal Genomes

    Get PDF
    BACKGROUND: The extremely halophilic archaea are present worldwide in saline environments and have important biotechnological applications. Ten complete genomes of haloarchaea are now available, providing an opportunity for comparative analysis. METHODOLOGY/PRINCIPAL FINDINGS: We report here the comparative analysis of five newly sequenced haloarchaeal genomes with five previously published ones. Whole genome trees based on protein sequences provide strong support for deep relationships between the ten organisms. Using a soft clustering approach, we identified 887 protein clusters present in all halophiles. Of these core clusters, 112 are not found in any other archaea and therefore constitute the haloarchaeal signature. Four of the halophiles were isolated from water, and four were isolated from soil or sediment. Although there are few habitat-specific clusters, the soil/sediment halophiles tend to have greater capacity for polysaccharide degradation, siderophore synthesis, and cell wall modification. Halorhabdus utahensis and Haloterrigena turkmenica encode over forty glycosyl hydrolases each, and may be capable of breaking down naturally occurring complex carbohydrates. H. utahensis is specialized for growth on carbohydrates and has few amino acid degradation pathways. It uses the non-oxidative pentose phosphate pathway instead of the oxidative pathway, giving it more flexibility in the metabolism of pentoses. CONCLUSIONS: These new genomes expand our understanding of haloarchaeal catabolic pathways, providing a basis for further experimental analysis, especially with regard to carbohydrate metabolism. Halophilic glycosyl hydrolases for use in biofuel production are more likely to be found in halophiles isolated from soil or sediment

    The search for translational pain outcomes to refine analgesic development: Where did we come from and where are we going?

    Get PDF
    Pain measures traditionally used in rodents record mere reflexes evoked by sensory stimuli; the results thus may not fully reflect the human pain phenotype. Alterations in physical and emotional functioning, pain-depressed behaviors and facial pain expressions were recently proposed as additional pain outcomes to provide a more accurate measure of clinical pain in rodents, and hence to potentially enhance analgesic drug development. We aimed to review how preclinical pain assessment has evolved since the development of the tail flick test in 1941, with a particular focus on a critical analysis of some nonstandard pain outcomes, and a consideration of how sex differences may affect the performance of these pain surrogates. We tracked original research articles in Medline for the following periods: 1973-1977, 1983-1987, 1993-1997, 2003-2007, and 2014-2018. We identified 606 research articles about alternative surrogate pain measures, 473 of which were published between 2014 and 2018. This indicates that preclinical pain assessment is moving toward the use of these measures, which may soon become standard procedures in preclinical pain laboratories.FPU grant from the Spanish Ministry of Education, Culture and SportsSpanish Ministry of Economy and Competitiveness (MINECO, grant SAF2016-80540-R)Ramón Areces FoundationJunta de Andalucía (grant CTS 109)Esteve PharmaceuticalsEuropean Regional Development Fund (ERDF

    Oxidized lipids in persistent pain states

    No full text
    Chemotherapy, nerve injuries, or diseases like multiple sclerosis can cause pathophysiological processes of persistent and neuropathic pain. Thereby, the activation threshold of ion channels is reduced in peripheral sensory neurons to normally noxious stimuli like heat, cold, acid, or mechanical due to sensitization processes. This leads to enhanced neuronal activity, which can result in mechanical allodynia, cold allodynia, thermal hyperalgesia, spontaneous pain, and may initiate persistent and neuropathic pain. The treatment options for persistent and neuropathic pain patients are limited; for about 50% of them, current medication is not efficient due to severe side effects or low response to the treatment. Therefore, it is of special interest to find additional treatment strategies. One approach is the control of neuronal sensitization processes. Herein, signaling lipids are crucial mediators and play an important role during the onset and maintenance of pain. As preclinical studies demonstrate, lipids may act as endogenous ligands or may sensitize transient receptor potential (TRP)-channels. Likewise, they can cause enhanced activity of sensory neurons by mechanisms involving G-protein coupled receptors and activation of intracellular protein kinases. In this regard, oxidized metabolites of the essential fatty acid linoleic acid, 9- and 13-hydroxyoctadecadienoic acid (HODE), their dihydroxy-metabolites (DiHOMEs), as well as epoxides of linoleic acid (EpOMEs) and of arachidonic acid (EETs), as well as lysophospholipids, sphingolipids, and specialized pro-resolving mediators (SPMs) have been reported to play distinct roles in pain transmission or inhibition. Here, we discuss the underlying molecular mechanisms of the oxidized linoleic acid metabolites and eicosanoids. Furthermore, we critically evaluate their role as potential targets for the development of novel analgesics and for the treatment of persistent or neuropathic pain

    Drug repurposing to target neuroinflammation and sensory neuron-dependent pain

    No full text
    Around 20% of the American population have chronic pain and estimates in other Western countries report similar numbers. This represents a major challenge for global health care systems. Additional problems for the treatment of chronic and persistent pain are the comparably low efficacy of existing therapies, the failure to translate effects observed in preclinical pain models to human patients and related setbacks in clinical trials from previous attempts to develop novel analgesics. Drug repurposing offers an alternative approach to identify novel analgesics as it can bypass various steps of classical drug development. In recent years, several approved drugs were attributed analgesic properties. Here, we review available data and discuss recent findings suggesting that the approved drugs minocycline, fingolimod, pioglitazone, nilotinib, telmisartan, and others, which were originally developed for the treatment of different pathologies, can have analgesic, antihyperalgesic, or neuroprotective effects in preclinical and clinical models of inflammatory or neuropathic pain. For our analysis, we subdivide the drugs into substances that can target neuroinflammation or substances that can act on peripheral sensory neurons, and highlight the proposed mechanisms. Finally, we discuss the merits and challenges of drug repurposing for the development of novel analgesics
    corecore