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Bei inflammatorischen Schmerzen kann durch Hemmung der COX-2 im Rückenmark die zentrale Sensibilisierung reduziert werden. Da die Hemmung der gesamten COX-2 vermittelten Prostaglandinsynthese jedoch zahlreiche unerwünschte Nebenwirkungen verursacht, wird in jüngster Zeit diskutiert, ob eine selektive Hemmung der PGE2 Synthese auf Ebene der mPGES-1 für die Therapie passagerer Schmerzen sinnvoller ist. Um die funktionellen Rollen von COX-2 und mPGES-1 im Rückenmark zu charakterisieren, wurden in der vorliegenden Arbeit die Folgen einer COX-Inhibierung und mPGES-1-Deletion auf den spinalen Eicosanoidmetabolismus, die neuronale Erregbarkeit, die Synthese proinflammatorischer Zytokine und das nozizeptive Verhalten untersucht. Das proinflammatorische Zytokin TNFa induzierte in primären Rückenmarksneuronen eine COX-2- und mPGES-1-Expression und eine erhöhte PGE2 Synthese. Diese Induktion der PGE2 Synthese konnte durch den selektiven COX-2 Inhibitor Rofecoxib und den „selektiven COX-1 Inhibitor“ SC-560 gleichermaßen potent gehemmt werden. Da der Effekt von SC-560 unerwartet war, wurde sein Wirkmechanismus genauer untersucht. Es konnte gezeigt werden, dass SC-560 in Rückenmarkskulturen weder die COX-2 und mPGES-1 Expression, die PLA2 Aktivität, die mPGES-1 Aktivität noch den PGE2 Transport hemmte. Durch Experimente mit Zellen aus COX-1-/- Mäusen konnte gezeigt werden, dass SC-560 in Rückenmarkskulturen die COX-2 unabhängig von COX-1 in nanomolaren Konzentrationen inhibiert. Da dieses Ergebnis den postulierten COX-1-selektiven Eigenschaften von SC-560 widersprach, wurde nach der Ursache für den Verlust der COX-1-Selektivität gesucht. Es zeigte sich, dass SC-560 in einer zellfreien in vitro Synthese und im Vollbluttest mit klarer Selektivität COX-1 hemmt. In kultivierten Rückenmarkszellen, RAW-Makrophagen und Blutzellen (Monozyten und Thrombozyten) inhibiert SC-560 allerdings d beide COX-Isoformen potent. Es wurde dadurch deutlich, dass die zelluläre Einbindung von COX-2 sowie ein niedriger Proteingehalt im extrazellulären Medium die halbmaximalen Konzentrationen (IC50) für die COX-2-Hemmung durch SC-560 stark reduzieren kann und hierdurch die COX-1-Selektivität der Substanz verloren geht. Neben einer COX-2 Hemmung verursachte auch eine mPGES-1-Deletion in Rückenmarkskulturen sowie im adulten Rückenmark eine Reduktion der PGE2 Synthese. Überrachenderweise bewirkte jedoch die mPGES-1-Defizienz im Gegensatz zur COX-2 Hemmung durch Etoricoxib im Zymosanmodell keine Reduktion der mechanischen Hyperalgesie. Um die Ursache für die unterschiedliche antihyperalgetische Wirkung der COX-2-Hemmung und mPGES-1-Deletion zu finden, wurden zunächst die Konsequenzen für die gesamte Prostaglandinsynthese untersucht. Die Analyse mittels LC-MS/MS zeigte, dass im Rückenmark mPGES-1-defizienter Mäuse verstärkt PGI2, PGF2a und PGD2 synthetisiert wird. Da für alle drei Prostaglandine bereits pronozizeptive Effekte beschrieben wurden, wurde die Expression von den entsprechenden Rezeptoren im Rückenmark und die Konsequenzen der Rezeptoraktivierung auf die neuronale Erregbarkeit untersucht. Mittels „calcium imaging“ wurde demonstriert, dass selektive IP Rezeptoragonisten in Rückenmarksneuronen eine PKA und PKC vermittelte Phosphorylierung der NMDA Rezeptoren verursachen und die Aktivierbarkeit der NMDA Rezeptoren sensibilisieren. Eine Verstärkung des NMDA induzierten Calciumeinstromes konnte nach Applikation der anderen Prostaglandine nicht beobachtet werden. Die Ergebnisse zeigen daher, dass in mPGES-1-defizienten Mäusen durch die Umleitung der Prostaglandinsynthese zu Prostacyclin die exzitatorischen NMDA Rezeptoren sensibilisiert und hierdurch die antihyperalgitische Wirkung von PGE2-Synthesehemmung kompensiert werden kann. Zusammenfassend lässt sich aus den Ergebnissen schlussfolgern, dass mPGES-1 als Zielmolekül für die Schmerztherapie eher nicht eignet ist. mPGES-1-defiziente Tiere zeigten in inflammatorischen Schmerzmodellen ein normales nozizeptives Verhalten. Dies kann dadurch erklärt werden, dass es nach einer mPGES-1 Deletion im Rückenmark zwar zur Reduktion der PGE2 Synthese aber auch gleichzeitig zur verstärkten Synthese anderer pronozizeptiv wirkender Prostaglandine kommt.
Summary The basal transcription apparatus of archaea is well characterized. However, much less is known about the mechanisms of transcription termination and translation initation. Recently, experimental determination of the 5´-ends of ten transcripts from Pyrobaculum aerophilum revealed that these are devoid of a 5´-UTR. Bioinformatic analysis indicated that many transcripts of other archaeal species might also be leaderless. The´-ends and 3´-ends of 40 transcripts of two haloarchaeal species, Halobacterium salinarum and Haloferax volcanii, have been determined. They were used to characterize the lengths of 5´-UTRs and 3´-UTRs and to deduce consensus sequence-elements for transcription and translation. The experimental approach was complemented with a bioinformatics analysis of the H. salinarum genome sequence. Furthermore, the influence of selected 5´-UTRs and 3´-UTRs on transcript stability and translational efficiency in vivo was characterized using a newly established reporter gene system, gene fusions, and real-time PCR. Consensus sequences for basal promoter elements could be refined and a novel element was discovered. A consensus motif probably important for transcriptional termination was established. All 40 haloarchaeal transcripts analyzed had a 3´-UTR (average size 57 nt), and their 3´-ends were not posttranscriptionally modified. Experimental data and genome analyses revealed that the majority of haloarchaeal transcripts are leaderless, indicating that this is the predominant mode for translation initiation in haloarchaea. Surprisingly, the 5´-UTRs of most leadered transcripts did not contain a Shine-Dalgarno (SD) sequence. A genome analysis indicated that less than 10% of all genes are preceded by a SD sequence and even most proximal genes in operons lack a SD sequence. Seven different leadered transcripts devoid of a SD sequence were efficiently translated in vivo, including artificial 5´-UTRs of random sequences. Thus, an interaction of the 5´-UTRs of these leadered transcripts with the 16S rRNA could be excluded. Taken together, either a scanning mechanism similar to the mechanism of translation initiation operating in eukaryotes or a novel mechanism must operate on most leadered haloarchaeal transcripts. Author Summary Expression of the information encoded in the genome of an organism into its phenotype involves transcription of the DNA into messenger RNAs and translation of mRNAs into proteins. The textbook view is that an mRNA consists of an untranslated region (5´-UTR), an open reading frame encoding the protein, and another untranslated region (3´-UTR). We have determined the 5´-ends and the 3´-ends of 40 mRNAs of two haloarchaeal species and used this dataset to gain information about nucleotide elements important for transcription and translation. Two thirds of the mRNAs were devoid of a 5´-UTR, and therefore the major pathway for translation initiation in haloarchaea involves so-called leaderless transcripts. Very unexpectedly, most leadered mRNAs were found to be devoid of a sequence motif believed to be essential for translation initiation in bacteria and archaea (Shine-Dalgarno sequence). A bioinformatic genome analysis revealed that less than 10% of the genes contain a Shine-Dalgarno sequence. mRNAs lacking this motif were efficiently translated in vivo, including mRNAs with artificial 5´-UTRs of total random sequence. Thus, translation initiation on these mRNAs either involves a scanning mechanism similar to the mechanism operating in eukaryotes or a totally novel mechanism operating at least in haloarchaea.
Background The connection of the variable part of the heavy chain (VH) and and the variable part of the light chain (VL) by a peptide linker to form a consecutive polypeptide chain (single chain antibody, scFv) was a breakthrough for the functional production of antibody fragments in Escherichia coli. Being double the size of fragment variable (Fv) fragments and requiring assembly of two independent polypeptide chains, functional Fab fragments are usually produced with significantly lower yields in E. coli. An antibody design combining stability and assay compatibility of the fragment antigen binding (Fab) with high level bacterial expression of single chain Fv fragments would be desirable. The desired antibody fragment should be both suitable for expression as soluble antibody in E. coli and antibody phage display. Results Here, we demonstrate that the introduction of a polypeptide linker between the fragment difficult (Fd) and the light chain (LC), resulting in the formation of a single chain Fab fragment (scFab), can lead to improved production of functional molecules. We tested the impact of various linker designs and modifications of the constant regions on both phage display efficiency and the yield of soluble antibody fragments. A scFab variant without cysteins (scFabdeltaC) connecting the constant part 1 of the heavy chain (CH1) and the constant part of the light chain (CL) were best suited for phage display and production of soluble antibody fragments. Beside the expression system E.coli, the new antibody format was also expressed in Pichia pastoris. Monovalent and divalent fragments (DiFabodies) as well as multimers were characterised. Conclusion A new antibody design offers the generation of bivalent Fab derivates for antibody phage display and production of soluble antibody fragments. This antibody format is of particular value for high throughput proteome binder generation projects, due to the avidity effect and the possible use of common standard sera for detection.
FTY720 is a novel immunosuppressive drug that inhibits the egress of lymphocytes from secondary lymphoid tissues and thymus. In its phosphorylated form FTY720 is a potent S1P receptor agonist. Recently it was also shown that FTY720 can reduce prostaglandin synthesis through the direct inhibition of the cytosolic phospholipase A2 (cPLA2). Since prostaglandins are important mediators of nociception, we studied the effects of FTY720 in different models of nociception. We found that intraperitoneal administration of FTY720 reduced dose-dependently the nociceptive behaviour of rats in the formalin assay. Although the antinociceptive doses of FTY720 were too low to alter the lymphocyte count, prostanoid concentrations in the plasma were dramatically reduced. Surprisingly, intrathecally administered FTY720 reduced the nociceptive behaviour in the formalin assay without altering spinal prostaglandin synthesis, indicating that additional antinociceptive mechanisms beside the inhibition of prostaglandin synthesis are involved. Accordingly, FTY720 reduced also the nociceptive behaviour in the spared nerve injury model for neuropathic pain which does not depend on prostaglandin synthesis. In this model the antinociceptive effect of FTY720 was similar to gabapentin, a commonly used drug to treat neuropathic pain. Taken together we show for the first time that FTY720 possesses antinociceptive properties and that FTY720 reduces nociceptive behaviour during neuropathic pain.
Consequences of altered eicosanoid patterns for nociceptive processing in mPGES-1-deficient mice
(2007)
Cyclooxygenase-2 (COX-2)-dependent prostaglandin (PG) E2 synthesis in the spinal cord plays a major role in the development of inflammatory hyperalgesia and allodynia. Microsomal PGE2 synthase-1 (mPGES-1) isomerizes COX-2-derived PGH2 to PGE2. Here, we evaluated the effect of mPGES-1-deficiency on the noci-ceptive behavior in various models of nociception that depend on PGE2 synthesis. Surprisingly, in the COX-2-dependent zymosan-evoked hyperalgesia model, the nociceptive behavior was not reduced in mPGES-1-deficient mice despite a marked decrease of the spinal PGE2 synthesis. Similarly, the nociceptive behavior was unaltered in mPGES-1-deficient mice in the formalin test. Importantly, spinal cords and primary spinal cord cells derived from mPGES-1-deficient mice showed a redirection of the PGE2 synthesis to PGD2, PGF2α and 6-keto-PGF1α (stable metabolite of PGI2). Since the latter prostaglandins serve also as mediators of noci-ception they may compensate the loss of PGE2 synthesis in mPGES-1-deficient mice.
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.