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Oral presentation from 4th International Conference of cGMP Generators, Effectors and Therapeutic Implications ; Regensburg, Germany. 19–21 June 2009 Background: An exaggerated pain sensitivity is the dominant feature of inflammatory and neuropathic pain both in the clinical setting and in experimental animal models. It manifests as pain in response to normally innocuous stimuli (allodynia), increased response to noxious stimuli (hyperalgesia) or spontaneous pain, and can persist long after the initial injury is resolved. Research over the last decades has revealed that several signaling pathways in the spinal cord essentially contribute to the pain sensitization. To test the contribution of cGMP produced by NO-sensitive guanylyl cyclase (NO-GC) to pain sensitization, we investigated the localization of NO-GC in the spinal cord and in dorsal root ganglia, and we characterized the nociceptive behavior of mice deficient in NO-GC (GC-KO mice). Results: We show that NO-GC (β1 subunit) is distinctly expressed in neurons of the mouse spinal cord, while its distribution in dorsal root ganglia is restricted to non-neuronal cells. GC-KO mice exhibited a considerably reduced nociceptive behavior in models of inflammatory or neuropathic pain, but their responses to acute pain were not impaired. Moreover, GC-KO mice failed to develop pain sensitization induced by spinal administration of drugs releasing NO. Surprisingly, during spinal nociceptive processing cGMP produced by NO-GC may activate signaling pathways different from cGMP-dependent protein kinase I (cGKI), while cGKI can be activated by natriuretic peptide receptor-B (NPR-B) dependent cGMP production. Conclusion: Taken together, our results provide evidence that NO-GC has a dominant role in the development of exaggerated pain sensitivity during inflammatory and neuropathic pain. Furthermore, beside the NO-mediated cGMP synthesis, cGMP produced by NPR-B contributes to pain sensitization by activation of cGKI.
The small leucine-rich proteoglycans (SLRPs) are biologically active components of the extracellular matrix (ECM), consisting of a protein core with leucine rich-repeat (LRR) motifs covalently linked to glycosaminoglycan (GAG) side chains. The diversity in composition resulting from the various combinations of protein cores substituted with one or more GAG chains along with their pericellular localization enables SLRPs to interact with a host of different cell surface receptors, cytokines, growth factors, and other ECM components, leading to modulation of cellular functions. SLRPs are capable of binding to: (i) different types of collagens, thereby regulating fibril assembly, organization, and degradation; (ii) Toll-like receptors (TLRs), complement C1q, and tumor necrosis factor-alpha (TNFα), regulating innate immunity and inflammation; (iii) epidermal growth factor receptor (EGF-R), insulin-like growth factor receptor (IGF-IR), and c-Met, influencing cellular proliferation, survival, adhesion, migration, tumor growth and metastasis as well as synthesis of other ECM components; (iv) low-density lipoprotein receptor-related protein (LRP-1) and TGF-β, modulating cytokine activity and fibrogenesis; and (v) growth factors such as bone morphogenic protein (BMP-4) and Wnt-I-induced secreted protein-1 (WISP-1), controlling cell proliferation and differentiation. Thus, the ability of SLRPs, as ECM components, to directly or indirectly regulate cell-matrix crosstalk, resulting in the modulation of various biological processes, aptly qualifies these compounds as matricellular proteins.
The manifestation of chronic back pain depends on structural, psychosocial, occupational and genetic influences. Heritability estimates for back pain range from 30% to 45%. Genetic influences are caused by genes affecting intervertebral disc degeneration or the immune response and genes involved in pain perception, signalling and psychological processing. This inter-individual variability which is partly due to genetic differences would require an individualized pain management to prevent the transition from acute to chronic back pain or improve the outcome. The genetic profile may help to define patients at high risk for chronic pain. We summarize genetic factors that (i) impact on intervertebral disc stability, namely Collagen IX, COL9A3, COL11A1, COL11A2, COL1A1, aggrecan (AGAN), cartilage intermediate layer protein, vitamin D receptor, metalloproteinsase-3 (MMP3), MMP9, and thrombospondin-2, (ii) modify inflammation, namely interleukin-1 (IL-1) locus genes and IL-6 and (iii) and pain signalling namely guanine triphosphate (GTP) cyclohydrolase 1, catechol-O-methyltransferase, μ opioid receptor (OPMR1), melanocortin 1 receptor (MC1R), transient receptor potential channel A1 and fatty acid amide hydrolase and analgesic drug metabolism (cytochrome P450 [CYP]2D6, CYP2C9).
Through the use of information about the biological target structure, the optimization of potential drugs can be improved. In this work I have developed a procedure that uses the quantitative change in the chemical perturbations (CSP) in the protein from NMR experiments for driving protein-ligand docking. The approach is based on a hybrid scoring function (QCSPScore) which combines traditional DrugScore potentials, which describe the interaction between protein and ligand, with Kendall’s rank correlation coefficient, which evaluates docking poses in terms of their agreement with experimental CSP. Prediction of the CSP for a specific ligand pose is done efficiently with an empirical model, taking into account only ring current effects. QCSPScore has been implemented in the AutoDock software package. Compared to previous methods, this approach shows that the use of rank correlation coefficient is robust to outliers. In addition, the prediction of native-like complex geometries improved because the CSP are already being used during the docking process, and not only in a post-filtering setting for generated docking poses. Since the experimental information is guaranteed to be quantitatively used, CSP effectively contribute to align the ligand in the binding pocket. The first step in the development of QCSPScore was the analysis of 70 protein-ligand complexes for which reference CSP were computed. The success rate in the docking increased from 71% without involvement of CSP to 100% if CSP were considered at the highest weighting scheme. In a second step QCSPScore was used in re-docking three test cases, for which reference experimental CSP data was available. Without CSP, i.e. in the use of conventional DrugScore potentials, none of the three test cases could be successfully re-docked. The integration of CSP with the same weighting factor as described above resulted in all three cases successfully re-docked. For two of the three complexes, native-like solutions were only produced if CSP were considered.Conformational changes in the binding pockets of up to 2 Å RMSD did not affect the success of the docking. QCSPScore will be particularly interesting in difficult protein-ligand complexes. They are in particular those cases in which the shape of the binding pocket does not provide sufficient steric restraints such as in flat protein-protein interfaces and in the virtual screening of small chemical fragments.
Background: The c-Cbl-associated protein (CAP), also known as ponsin, localizes to focal adhesions and stress fibers and is involved in signaling events. Phosphorylation has been described for the other two members of the sorbin homology family, vinexin and ArgBP2, but no data exist about the putative phosphorylation of CAP. According to previous findings, CAP binds to tyrosine kinase c-Abl. However, it is not known if CAP is a substrate of c-Abl or other tyrosine kinases or if phosphorylation regulates its localization.
Results: We here show that CAP is Tyr phosphorylated by and interacts with both c-Abl and c-Src. One major phosphorylation site, Tyr360, and two minor contributors Tyr326 and Tyr632 were identified as Abl phosphorylation sites, whereas Src preferentially phosphorylates Tyr326 and Tyr360. Phosphorylation of CAP was not necessary for its localization to focal adhesions and stress fibers, but Tyr326Phe substitution alters the function of CAP during cell spreading.
Conclusion: This is the first demonstration of phosphorylation of CAP by any kinase. Our findings suggest that coordinated action of Src and Abl might regulate the function of CAP and reveal a functional role especially for the Src-mediated Tyr phosphorylation of CAP in cell spreading.
Opting out of the great inflation: German monetary policy after the break down of Bretton Woods
(2009)
During the turbulent 1970s and 1980s the Bundesbank established an outstanding reputation in the world of central banking. Germany achieved a high degree of domestic stability and provided safe haven for investors in times of turmoil in the international financial system. Eventually the Bundesbank provided the role model for the European Central Bank. Hence, we examine an episode of lasting importance in European monetary history. The purpose of this paper is to highlight how the Bundesbank monetary policy strategy contributed to this success. We analyze the strategy as it was conceived, communicated and refined by the Bundesbank itself. We propose a theoretical framework (following Söderström, 2005) where monetary targeting is interpreted, first and foremost, as a commitment device. In our setting, a monetary target helps anchoring inflation and inflation expectations. We derive an interest rate rule and show empirically that it approximates the way the Bundesbank conducted monetary policy over the period 1975-1998. We compare the Bundesbank´s monetary policy rule with those of the FED and of the Bank of England. We find that the Bundesbank´s policy reaction function was characterized by strong persistence of policy rates as well as a strong response to deviations of inflation from target and to the activity growth gap. In contrast, the response to the level of the output gap was not significant. In our empirical analysis we use real-time data, as available to policy-makers at the time. JEL Classification: E31, E32, E41, E52, E58
Artenreiche montane Rasengesellschaften auf Lawinenbahnen des Nationalparks Gesäuse (Österreich)
(2009)
Das Ziel dieser Untersuchung war es, Erkenntnisse über die Bedeutung von Lawinenbahnen für die Biodiversität zu gewinnen. Dazu wurden im Nationalpark Gesäuse (Steiermark, Österreich) 16 Pflanzenbestände in drei ausgewählten Lawinenbahnen pflanzensoziologisch untersucht, vegetationsökologisch charakterisiert sowie mit Vegetationstabelle, bodenkundlichen Analysedaten und topographischen Parametern dokumentiert. Außerdem erfolgte eine Bestandsaufnahme der Schmetterlinge. Die Pflanzenartenvielfalt wurde mit verschiedenen Diversitäts-Indizes beurteilt. Die Ursachen für den Artenreichtum in den untersuchten Lawinenbahnen werden diskutiert.
Die Pflanzenbestände wurden überwiegend zum Origano-Calamagrostietum variae gestellt; eine Einzelaufnahme wurde dem Seslerio-Caricetum sem pervirentis zugeordnet. Im Ersteren dominieren Arten mit hemikryptophytischer Lebensform; Therophyten erreichen die zweithöchste Deckung. Die Pflanzengesellschaft wird von CSR-, CS- und C-Strategen aufgebaut; alle anderen Lebensstrategietypen haben keine Bedeutung. Das Origano-Calamagrostietum variae ist eine artenreiche, natürliche Dauergesellschaft, in der mäßiger Stress und schwache Störungen die Artenzusammensetzung maßgeblich bestimmen. Aktive Lawinenbahnen auf sehr flachgründigen, steinigen, nährstoffarmen, basenreichen Rendzinen in lokalklimatisch wärmebegünstigten steilen Hanglagen der montanen Höhenstufe zählen zu den arten-, blüten- und aspektreichsten und somit ökologisch wertvollsten Vegetationsformationen im Nationalparkgebiet. In den kräuterreichen Pflanzenbeständen wurden im Durchschnitt 71 Gefäßpflanzenarten und 5 Moosarten pro 20 m2 Aufnahmefläche gefunden. Mit dieser hohen Phytodiversität und dem Blütenreichtum ist auch eine große Artenvielfalt bei den Schmetterlingen verbunden. Die untersuchten Lawinenbahnen weisen nicht nur ein hohes Maß an Naturnähe auf, sie dürften auch der ursprüngliche Lebensraum einiger Pflanzenarten des Wirtschafts- und Extensivgrünlandes der Tallagen sein. Auf Grund ihrer hohen naturschutzfachlichen Bedeutung müssen Lawinenbahnen als Ganzes geschützt werden. Periodische oder episodische Lawinenabgänge sind Voraussetzung für die Existenz dieser störungsgeprägten Ökosysteme. Unterhalb von Lawinenbahnen dürfen keine Gebäude oder Infrastrukturen errichtet werden, weil diese Bautätigkeit Schutzobjekte erzeugt. Dadurch würde ein Bedarf für Schutzmaßnahmen entstehen, vor allem in Form von Lawinenverbauungen und Aufforstungen, wodurch Lawinenabgänge verhindert werden.
Die vorliegende Arbeit untersucht das nationale Selbstverständnis der gesamten Konföderation und behandelt insbesondere Aspekte der Innenpolitik sowie bestimmte soziokulturelle und sozioökonomische Charakteristika, aus denen sich die nationalistische Ideologie der Konföderierten konstituierte. Es bleibt zu betonen, dass sich der Fokus der hiesigen Untersuchungen auf innerstaatliche Ereignisse und Phänomene während des Bürgerkrieges richtet und somit vom großen Feld der konföderierten Außenpolitik beinahe vollständig absieht. Die Außenpolitik bildet zweifelsohne ein ebenso spannendes Forschungsgebiet, sie wird hier aber zu Gunsten einer expliziteren Betrachtung des innerstaatlichen Kontexts außen vor gelassen, da die inneren Umstände für die Genese des konföderierten Nationalismus unmittelbarer und somit von größerer Tragweite waren.
Solid state NMR is a emerging method for the study of membrane proteins, which has received much interest in recent years. Limiting the study of many pharmacologically relevant targets, are the often long measuring times, required to obtain especially higher dimensional solid state NMR spectra of good quality. To address this problem, multiple methods where developed in this work, which can be categorized into two groups. The first set of methods aims at the quality of certain spectra, by implementing a spectral filter, which increases the fidelity of the measured data. The second set of methods, addresses the problem of long measuring times directly, by increasing the sensitivity per unit time, as could be shown, for example, on homo- and heteronuclear singlequantum-singlequantum correlation experiments. The gains in measuring time for the latter group of methods are typically in the order of 2-3, but some experiments allow multiple methods to be employed simultaneously, which can lead to a decrease in measuring time of a factor of up to 8. It is important to mention, that none of the methods introduced in this work require any equipment in addition to the conventional setup present in most sold state NMR laboratories and no changes or addition to the samples under study are required. Therefore the gains reported in this work come at no extra cost and require only minimal implementation effort on the side of the user.
X-ray structure of the Na+-coupled Glycine-Betaine symporter BetP from Corynebacterium glutamicum
(2009)
Cellular membranes are important sites of interaction between cells and their environment. Among the multitude of macromolecular complexes embedded in these membranes, transporters play a particularly important role. These integral membrane proteins perform a number of vital functions that enable cell adaptation to changing environmental conditions. Osmotic stress is a major external stimulus for cells. Bacteria are frequently exposed to either hyperosmotic or hypoosmotic stress. Typical conditions for soil bacteria, such as Corynebacterium glutamicum, vary between dryness and sudden rainfall. Physical stimuli caused by osmotic stress have to be sensed and used to activate appropriate response mechanisms. Hypoosmotic stress causes immediate and uncontrolled influx of water. Cells counteract by instantly opening mechanosensitive channels, which act as emergency valves leading to fast efflux of small solutes out of the cell, therebydiminishing the osmotic gradient across the cell membrane. Hyperosmotic stress, on the other hand, results in water efflux. This is counterbalanced by an accumulation of small, osmotically active solutes in the cytoplasm, the so-called compatible solutes. They comprise a large variety of substances, including amino acids (proline), amino acid derivatives (betaine, ectoine), oligosaccharides (trehalose), and heterosides (glucosylglycerol). Osmoregulated transporters sense intracellular osmotic pressure and respond to hyperosmotic stress by facilitating the inward translocation of compatible solutes across the cell membrane, to restore normal hydration levels. This work presents the first X-ray structure of a member of the Betaine-Choline-Carnitine-Transporter (BCCT) family, BetP. This Na+-coupled symporter from Corynebacterium glutamicum is a highly effective osmoregulated and specific uptake system for glycine-betaine. X-ray structure determination was achieved using single wavelength anomalous dispersion (SAD) of selenium atoms. Selenium was incorporated into the protein during its expression in methione auxotrophic E. coli cells, grown in media supplemented with selenomethionine. SAD data with anomalous signal up to 5 Å led to the detection of 39 selenium sites, which were used to calculate the initial electron density map of the protein. Medium resolution and high data anisotropy made the structure determination of BetP a challenging task. A specific strategy for data anisotropy correction and a combination of various crystallographic programs were necessary to obtain an interpretable electron density map suitable for model building. The crystal structure of BetP shows a trimer with glycine-betaine bound in a three-fold cation-pi interaction built by conserved tryptophan residues. The bound substrate is occluded from both sides of the membrane and aromatic side chains line its transport pathway. Very interestingly, the structure reveals that the alpha-helical C-terminal domain, for which a chemo- and osmosensory function was elucidated by biochemical methods, interacts with cytoplasmic loops of an adjacent monomer. These unexpected monomer-monomer interactions are thought to be crucial for the activation mechanism of BetP, and a new atomic model combing biochemical results with the crystal structure is proposed. BetP is shown to have the same overall fold as three unrelated Na+-coupled symporters. While these were crystallised in either the outward- or inward-facing conformation, BetP reveals a unique intermediate state, opening new perspectives on the alternating access mechanism of transport.
Both the genomes of the epsilonproteobacteria Wolinella succinogenes and Campylobacter jejuni contain operons (sdhABE) that encode for so far uncharacterized enzyme complexes annotated as ‘non-classical’ succinate:quinone reductases (SQRs). However, the role of such an enzyme ostensibly involved in aerobic respiration in an anaerobic organism such as W. succinogenes has hitherto been unknown. We have established the first genetic system for the manipulation and production of a member of the non-classical succinate:quinone oxidoreductase family. Biochemical characterization of the W. succinogenes enzyme reveals that the putative SQR is in fact a novel methylmenaquinol:fumarate reductase (MFR) with no detectable succinate oxidation activity, clearly indicative of its involvement in anaerobic metabolism. We demonstrate that the hydrophilic subunits of the MFR complex are, in contrast to all other previously characterized members of the superfamily, exported into the periplasm via the twin-arginine translocation (tat)-pathway. Furthermore we show that a single amino acid exchange (Ala86→His) in the flavoprotein of that enzyme complex is the only additional requirement for the covalent binding of the otherwise non-covalently bound FAD. Our results provide an explanation for the previously published puzzling observation that the C. jejuni sdhABE operon is upregulated in an oxygen-limited environment as compared with microaerophilic laboratory conditions.
Inhibition of the soluble epoxide hydrolase (sEH) has beneficial effects on vascular inflammation and hypertension indicating that the enzyme may be a promising target for drug development. As the enzymatic core of the hydrolase domain of the human sEH contains two tyrosine residues (Tyr383 and Tyr466) that are theoretically crucial for enzymatic activity, we addressed the hypothesis that the activity of the sEH may be affected by nitrosative stress. Epoxide hydrolase activity was detected in human and murine endothelial cells as well in HEK293 cells and could be inhibited by either authentic peroxynitrite (ONOO−) or the ONOO− generator 3-morpholino-sydnonimine (SIN-1). Protection of the enzymatic core with 1-adamantyl-3-cyclohexylurea in vitro decreased sensitivity to SIN-1. Both ONOO− and SIN-1 elicited the tyrosine nitration of the sEH protein and mass spectrometry analysis of tryptic fragments revealed nitration on several tyrosine residues including Tyr383 and Tyr466. Mutation of the latter residues to phenylalanine was sufficient to abrogate epoxide hydrolase activity. In vivo, streptozotocin-induced diabetes resulted in the tyrosine nitration of the sEH in murine lungs and a significant decrease in its activity. Taken together, these data indicate that the activity of the sEH can be regulated by the tyrosine nitration of the protein. Moreover, nitrosative stress would be expected to potentiate the physiological actions of arachidonic acid epoxides by preventing their metabolism to the corresponding diols.
Proline-rich tyrosine kinase 2 (PYK2) can be activated by angiotensin II (Ang II) and reactive oxygen species. We report that in endothelial cells, Ang II enhances the tyrosine phosphorylation of endothelial NO synthase (eNOS) in an AT1-, H2O2-, and PYK2-dependent manner. Low concentrations (1–100 µmol/liter) of H2O2 stimulated the phosphorylation of eNOS Tyr657 without affecting that of Ser1177, and attenuated basal and agonist-induced NO production. In isolated mouse aortae, 30 µmol/liter H2O2 induced phosphorylation of eNOS on Tyr657 and impaired acetylcholine-induced relaxation. Endothelial overexpression of a dominant-negative PYK2 mutant protected against H2O2-induced endothelial dysfunction. Correspondingly, carotid arteries from eNOS–/– mice overexpressing the nonphosphorylatable eNOS Y657F mutant were also protected against H2O2. In vivo, 3 wk of treatment with Ang II considerably increased levels of Tyr657-phosphorylated eNOS in the aortae of wild-type but not Nox2y/– mice, and this was again associated with a clear impairment in endothelium-dependent vasodilatation in the wild-type but not in the Nox2y/– mice. Collectively, endothelial PYK2 activation by Ang II and H2O2 causes the phosphorylation of eNOS on Tyr657, attenuating NO production and endothelium-dependent vasodilatation. This mechanism may contribute to the endothelial dysfunction observed in cardiovascular diseases associated with increased activity of the renin–angiotensin system and elevated redox stress.
Crista junctions (CJs) are important for mitochondrial organization and function, but the molecular basis of their formation and architecture is obscure. We have identified and characterized a mitochondrial membrane protein in yeast, Fcj1 (formation of CJ protein 1), which is specifically enriched in CJs. Cells lacking Fcj1 lack CJs, exhibit concentric stacks of inner membrane in the mitochondrial matrix, and show increased levels of F1FO–ATP synthase (F1FO) supercomplexes. Overexpression of Fcj1 leads to increased CJ formation, branching of cristae, enlargement of CJ diameter, and reduced levels of F1FO supercomplexes. Impairment of F1FO oligomer formation by deletion of its subunits e/g (Su e/g) causes CJ diameter enlargement and reduction of cristae tip numbers and promotes cristae branching. Fcj1 and Su e/g genetically interact. We propose a model in which the antagonism between Fcj1 and Su e/g locally modulates the F1FO oligomeric state, thereby controlling membrane curvature of cristae to generate CJs and cristae tips.
An efficient route for delivering specific proteins and peptides into neurons could greatly accelerate the development of therapies for various diseases, especially those involving intracellular defects such as Parkinson disease. Here we report the novel use of polybutylcyanoacrylate nanoparticles for delivery of intact, functional proteins into neurons and neuronal cell lines. Uptake of these particles is primarily dependent on endocytosis via the low density lipoprotein receptor. The nanoparticles are rapidly turned over and display minimal toxicity to cultured neurons. Delivery of three different functional cargo proteins is demonstrated. When primary neuronal cultures are treated with recombinant Escherichia coli beta-galactosidase as nanoparticle cargo, persistent enzyme activity is measured beyond the period of nanoparticle degradation. Delivery of the small GTPase rhoG induces neurite outgrowth and differentiation in PC12 cells. Finally, a monoclonal antibody directed against synuclein is capable of interacting with endogenous alpha-synuclein in cultured neurons following delivery via nanoparticles. Polybutylcyanoacrylate nanoparticles are thus useful for intracellular protein delivery in vitro and have potential as carriers of therapeutic proteins for treatment of neuronal disorders in vivo.
The cell division cycle protein 37 (Cdc37) and the 90-kDa heat shock protein (Hsp90) are molecular chaperones, which are crucial elements in the protein signaling pathway. The largest class of client proteins for Cdc37 and Hsp90 are protein kinases. The catalytic domains of these kinases are stabilized by Cdc37, and their proper folding and functioning is dependent on Hsp90. Here, we present the x-ray crystal structure of the 16-kDa middle domain of human Cdc37 at 1.88 angstroms resolution and the structure of this domain in complex with the 23-kDa N-terminal domain of human Hsp90 based on heteronuclear solution state NMR data and docking. Our results demonstrate that the middle domain of Cdc37 exists as a monomer. NMR and mutagenesis experiments reveal Leu-205 in Cdc37 as a key residue enabling complex formation. These findings can be very useful in the development of small molecule inhibitors against cancer.
The single nucleotide polymorphism 118A>G of the human micro-opioid receptor gene OPRM1, which leads to an exchange of the amino acid asparagine (N) to aspartic acid (D) at position 40 of the extracellular receptor region, alters the in vivo effects of opioids to different degrees in pain-processing brain regions. The most pronounced N40D effects were found in brain regions involved in the sensory processing of pain intensity. Using the mu-opioid receptor-specific agonist DAMGO, we analyzed the micro-opioid receptor signaling, expression, and binding affinity in human brain tissue sampled postmortem from the secondary somatosensory area (SII) and from the ventral posterior part of the lateral thalamus, two regions involved in the sensory processing and transmission of nociceptive information. We show that the main effect of the N40D micro-opioid receptor variant is a reduction of the agonist-induced receptor signaling efficacy. In the SII region of homo- and heterozygous carriers of the variant 118G allele (n=18), DAMGO was only 62% as efficient (p=0.002) as in homozygous carriers of the wild-type 118A allele (n=15). In contrast, the number of [3H]DAMGO binding sites was unaffected. Hence, the micro-opioid receptor G-protein coupling efficacy in SII of carriers of the 118G variant was only 58% as efficient as in homozygous carriers of the 118A allele (p<0.001). The thalamus was unaffected by the OPRM1 118A>G SNP. In conclusion, we provide a molecular basis for the reduced clinical effects of opioid analgesics in carriers of mu-opioid receptor variant N40D.
Thalassämia major und Sichelzellanämie sind hereditäre Erkrankungen, die zu der Gruppe der quantitativen bzw. qualitativen Hämoglobinsynthesestörungen gehören und in unterschiedlichem Maße mit einer chronischen Anämie einhergehen. Dabei besteht die Therapie der Anämie in regelmäßigen Bluttransfusionen. Im Falle der Thalassämia major sind regelmäßige Bluttransfusionen alle 2-4 Wochen notwendig. Dabei übersteigt die damit zugeführte Eisenmenge bei weitem die Eisenausscheidungskapazität des Körpers, die limitiert und passiver Natur ist. Es kann dadurch zur Eisenüberladung des Körpers mit Erschöpfung der Eisenbindungskapazität und Nachweisbarkeit von freiem Eisen kommen. Freies Eisen generiert über die Fenton-Reaktion freie Radikale und reaktive Sauerstoffspezies, die ihrerseits in der Lage sind, biologische Moleküle sowie Zellstrukturen zu schädigen. Der Organismus verfügt über Mechanismen um diese Schäden zu verhindern bzw. den Ausmaß der Schäden zu begrenzen, die als antioxidativen Abwehrmechanismen bezeichnet werden. In dieser vorliegenden Arbeit wurden Blutproben von 22 Patienten mit ß-Thalassämia major und 16 Patienten mit Sichelzellanämie Patienten untersucht. Bei ihnen wurde das Vorliegen der pathologischen Modellsituation einer Eisenüberladung angenommen. Als Kontrollgruppe wurden 16 phänotypisch gesunde Geschwister der beiden Patientenkollektive herangezogen. Hauptziele dieser Arbeit war, die Bleomycin-Methode im Stoffwechsellabor des Zentrums für Kinderheilkunde und Jugendmedizin der Johann Wolfgang Goethe-Universität zu etablieren und dabei die folgenden Fragen zu klären: 1. Entsteht freies Eisen bei polytransfundierten Patienten? 2. Ist die Bleomycin-Assay zur Bestimmung des freien Eisens geeignet? 3. Welche Zusammenhänge bestehen zwischen den Parametern des Eisenstoffwechsels und können diese zur Abschätzung des freien Eisens genutzt werden? Freies Eisen entsteht dann, wenn die Eisenbindungskapazität des Transferrins überschritten wird. Bei gesunden Menschen liegt eine Transferrinsättigung im Durchschnitt bei unter 30%. Es ist also eine wertvolle Reserve vorhanden, um effektiv die Enstehung des freien Eisens zu verhindern. Bei bestimmten pathologischen Situationen, wie sie auch bei polytransfundierten Patienten bei Thalassämie vorliegen, wird dem Körper massiv Eisen zugeführt. Wir konnten bei 18 von 22 Patienten in der Thalassämiegruppe freies Eisen nachweisen. Der Median der freien Eisenkonzentration lag bei 1,25 μmol/l bei einer Spannbreite von 5,3μmol/l. In der Sichelzellanämiegruppe konnte nur bei einem Patienten freies Eisen nachgewiesen werden. Dieser hatte ebenfalls häufig Bluttransfusionen erhalten. Zur Messung des freien Eisens wurde die Bleomycin Methode nach Gutteridge et al angewandt. Es ist eine nasschemische Methode (Messung erfolgt via Spektroskopie) und erfordert keinen hohen technischen Aufwand. Da bei der Bestimmung des freien Eisens im mikromolaren Bereich geschieht, ist das Hauptproblem die Kontamination der Reagenzien durch das ubiquitär vorkommende Eisen. Durch höchste Sorgfalt und genaues Arbeiten im staubfreien Milieu und Behandlung der Reagenzien mit einem geeigneten Eisenkomplexbildner, wie z.B. Chelex100®, ist dieses Problem beherrschbar. Dennoch erfordert die Methode einen enormen Zeitaufwand, weshalb nach Parametern gesucht wurde, die zur Abschätzung oder zur Vorselektion der geeigneten Blutproben zur Bestimmung des freien Eisens herangezogen werden können. Wie oben schon erwähnt, hatten 18 von 22 Thalassämiepatienten freies Eisen im Blut. Davon hatten 15 eine Transferrinsättigung über 100% und 2 knapp unter 100%. Lediglich ein Patient, bei dem aber auch nur freies Eisen von 0,05 μmol/l gemessen wurde, hatte eine Transferrinsättigung deutlich unter 100%. Ein Patient aus der Sichelzellanämiegruppe, bei dem auch freies Eisen gemessen wurde, hatte ebenfalls eine Transferrinsättigung über 100%. Zusammenfassend kann festgehalten werden, dass eine hoch signifikante positive Korrelation zwischen dem freien Eisen und der Transferrinsättigung festegestellt wurde (r = 0,63, p = 0,002). 95% der Patienten, die freies Eisen im Blut hatten, wiesen auch Transferrinsättigungswerte über bzw. knapp unter 100% auf. Es besteht auch ein statistisch signifikanter positiver Zusammenhang zwischen der Serumeisenkonzentration und freiem Eisen. Alle Patienten mit freiem Eisen im Blut hatten Serumeisenwerte über 170 μg/dl. Damit konnte die Arbeitshypothese bestätigt werden, dass es bei polytransfundierten Thalassämiepatienten zu einer Eisenüberladung mit in der Folge entstehendem freiem Eisen kommt; bekannterweise induziert zweiwertiges Eisen die Fenton-Reaktion bzw. Haber-Weiss-Reaktion und damit oxidativen Stress. Bei Sichelzellanämiepatienten , die keine regelmäßigen Hochregimebluttransfusionen erhalten, die ebenso, wie in der Literatur beschrieben, oxidativem Stress ausgesetzt sind, müssen auch andere Pathomechanismen angenommen werden.
Thirteen species of skippers (six newly described; Lepidoptera: Hesperiidae: Hesperiinae: Hesperiini) from higher elevations of Mexico and Central America are reviewed. These are included in four genera (one newly described), some with proposed new combinations. Onespa Steinhauser, 1974, originally described as monotypic, is shown to include three species in addition to its type species, Onespa nubis Steinhauser, 1974. One of these, Atrytone gala Godman, 1900, that has been misplaced in several genera since its description, represents a new combination. The other two species, distributed in montane habitats in northwestern Mexico and in Costa Rica, are described as new. Buzyges Godman, 1900, distributed in Mexico and Central America and also formerly considered monotypic, is shown to embrace four species. Besides the type species, Buzyges idothea Godman, 1900, two species long placed in Poanes Scudder, 1872, Pamphila rolla Mabille, 1883, and Poanes benito Freeman, 1979, are included as new combinations. Another species, known only from Costa Rica, is described as new. These are united by several superficial characters, but especially by genital morphology of both sexes. Librita Evans, 1955, was described to include three species of which one, Librita raspa Evans, 1955, was subsequently removed. Augiades heras Godman, 1900 is here also removed from Librita and placed in a new genus with three previously undescribed species. This completes the disintegration of Librita, which is now monotypic. The four genera, although exhibiting similarities suggesting potential alliance, differ in their unique combinations of several superficial and genital traits from each other and other hesperiine skippers.
Sepsis is caused by infection and often followed by an overwhelming inflammatory response. This can lead to shock, organ failure and even death. Each year approximately 60,000 people die in Germany due to sepsis. There is good evidence that sepsis is associated with failure of the hypothalamic-pituitary-adrenal-axis. In patients with sepsis, glucocorticoids (e.g. corticosterone, cortisol) released from adrenal glands play an essential role in preventing an excessive pro-inflammatory response. Adrenal insufficiency occurs in a large number of patients with septic shock and is associated with an increased mortality. In the innate immune system, Toll-like receptors (TLRs) play a crucial role in its onset by recognizing pathogenassociated molecules. It is well known that there are interactions between the immune and endocrine stress systems; glucocorticoids and TLRs regulate each other in a bi-directional way. Therefore, a coordinated response of the adrenal and immune system is of vital importance for survival during severe inflammation. This experimental study focuses on the role of TLR-2, TLR-4 and TLR-9 during adrenal stress. The results show that in mice, the absence of TLR-2 and TLR-4, but not TLR-9 leads to altered adrenal morphology, relating to size and cellular structure. However, this alteration does not appear to compromise the phenotype of TLR knock-out mice. Mice deficient of TLR-2, 4 and 9 are not able to respond adequately to inflammatory stress induced by their potential ligands lipopolysaccharide (LPS), lipoteichoic acid (LTA) or cytidine phosphate guanosine-oligodeoxynucleotides (CpG-ODN). This impaired adrenal stress response appears to be associated with a decrease in systemic and intra-adrenal cytokine expressions. Taken together, these results suggest that TLR-2, 4 and 9 are key players in the immuno-endocrine response during inflammation and SIRS. In conclusion, TLRs play a crucial role in the immune-adrenal crosstalk. This close functional relationship needs to be considered in the treatment of inflammatory diseases where an intact adrenal stress response is required. Furthermore, TLR polymorphisms could contribute to the underlying mechanisms of impaired adrenal stress response in patients with bacterial sepsis