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Identifizierung und Strukturaufklärung von Anthocyanen und ihrer Metabolite erfolgten mit Hilfe der mittels Hochleistungsflüssigchromatographie-Diodenarray-Detektion-Elektro-spray-Tan¬dem¬massen¬spektrometrie (HPLC-DAD-ESI-MS/MS). Quantitative Analysen wurden via HPLC-DAD durchgeführt. Die hierzu erforderlichen Referenzverbindungen wurden mittels präparativer HPLC aus Heidelbeeren isoliert (Reinheit zwischen 85,8% und 99,4%). Der Gehalt an Anthocyanen in den untersuchten Heidelbeerfrüchten lag bei 6 g/kg. Bezüglich der mengen¬mäßigen Verteilung dominierten Delphinidin- und Cyanidin¬glykoside vor den Glykosiden von Malvidin, Petunidin und Peonidin. Als konjugierte Zucker¬reste kamen vor allem Glukose und Galaktose vor, der Gehalt an Arabinosiden war weit geringer. Bei oraler Aufnahme erfolgt ein erster Kontakt der Anthocyane mit Speichel. Daher wurde dessen Wirkung auf die Heidelbeeranthocyane in ex vivo-Studien über einen (unphysio-logisch langen) Zeitraum von bis zu 30 Minuten untersucht. Dabei konnte wurde ins-besondere der Einfluß des pH-Wertes auf die Stabilität der Anthocyane aufgezeigt werden. Zur Simulation des Verhaltens von Anthocyanen im Magen wurden die einzelnen Heidelbeeranthocyane mit künstlichem Magensaft (pH 1,81) über vier Stunden inkubiert. Hier erwiesen sich alle untersuchten Verbindungen als stabil. Die anschließend von uns mit simuliertem Duodenalsekret (pH 7,2) über einen Zeitraum von 24 Stunden durchgeführten Studien zeigten, dass die Anthocyane unterschiedlich starken Modifizierungen unterlagen. Unter den schwach alkalischen Bedingungen wurden vor allem die Glykoside des Delphinidins schnell abgebaut, aber auch die übrigen Anthocyane erwiesen sich unter diesen Bedingungen als nicht stabil; nach 24 h war kein Anthocyan mehr nachweisbar. Um die Metabolisierungsvorgänge der Anthocyane im Dünn- und Dickdarm zu untersuchen, wurden ex vivo-Inkubationen jeweils mit frischem Ileo- bzw. Kolo¬stoma-beutel¬inhalt durchgeführt. Während die Abbaugeschwindigkeit in der ilealen Flüssigkeit vor allem von der pH-Stabilität des Aglykons abhänig war, konnten im Dickdarm einzig die Arabinoside nach einer Stunde noch alle in geringen Konzentrationen identifiziert werden. Die meisten Glukoside und Galaktoside waren zu diesem Zeitpunkt schon vollständig abgebaut. Da im Darm von einer hydrolytischen Spaltung der Anthocyane in Anthocyanidin und Zucker ausgegangen wird, wurde die Metabolisierung von Anthocyanidinen unter physio-logischen pH-Bedingungen untersucht. Neben der jeweiligen Spaltung in das Benzoe¬säure-derivat des B-Ringes sowie Phloroglucinessigsäure traten verschiedene Poly¬merisierungs¬-produkte auf, deren Strukturen nicht aufgeklärt werden konnten. In einer weiteren Versuchsreihe wurde die renale Ausscheidung von Anthocyanen bei Ileostomieprobanden nach oraler Applikation von 300 g Heidelbeeren über einen Zeitraum von acht Stunden untersucht. Es zeigte sich, dass ein Stoma des terminalen Ileums keinen Einfluss auf die Absorption und Metabolisierung der Anthocyane hatte. Die Bilanzierung der Anthocyane im Urin erfolgte als Äquvalente von Malvidin-3-O-glukosid, da nicht alle Anthocyanmetabolite zur Verfügung standen. Der Zeitpunkt der maximalen renalen Anthocyanausscheidung sowie die Menge der ausgeschiedenen Anthocyane waren starken interindividuellen Schwankungen unterworfen. Das Aus¬sscheidungs¬maximum (tmax) lag zwischen 0,5 und zwei Stunden. Bei der ausge¬schiedenen Menge wurden Werte zwischen 0,007% und 0.019% der auf¬ge¬nommenen Anthocyane ermittelt. Aufgrund der literaturbekannten Unterschiede zwischen den in Serum und Urin gefunden Anthocyanmengen ist davon auszugehen, dass es nach Anthocyanverzehr zu Inter-aktionen mit Proteinen in Blut oder Geweben kommt. Mittels Blutfraktionierung wurde das humane Serumalbumin (HSA) als wichtigster Bindungspartner der Anthocyane im Blut identifiziert. Anhand spektroskopischer Methoden war es möglich, die Bindungs¬parameter zu berechnen. Als Bindungsort wurde der hydrophile Eingang der lipophilen Warfarin-Bindungstasche in der Subdomäne IIA des HSA-Moleküls mittels "molecular modelling" identifiziert. Nasschemische Untersuchungen ergaben, dass die Bindung der Anthocyane an HSA diese vor ihrem pH-abhängigen Abbau schützt. Eine signifikante Herab¬setzung der chemischen Abbaugeschwindig¬keit konnte auch für bovines Serumalbumin beobachtet werden. Diese Erkenntnis ließ sich auf andere, mit dem HSA-Molekül nicht strukurverwandte lebensmittelrelevante Albumine übertragen. So zeigten Anthocyane große Stabilität in Milch und Eiklar, wobei die Stabilisierung auf eine Wechselwirkung mit den Proteinen Laktalbumin und Ovalbumin zurückgeführt werden konnte. Die in dieser Arbeit erlangten Erkenntnisse hinsichtlich Absorption, Metabolisierung und systemischer Verfügbarkeit im menschlichen Organismus leisten einen Beitrag zum besseren Verständnis der Wirkungen von Anthocyanen. Die neuen Erkenntnisse der Protein¬bindung sind vor allem für die Bewertung der Verfügbarkeit der Anthocyane in humanem Gewebe relevant.
The rapid appearance of resistant malarial parasites after introduction of atovaquone (ATQ) drug has prompted the search for new drugs as even single point mutations in the active site of Cytochrome b protein can rapidly render ATQ ineffective. The presence of Y268 mutations in the Cytochrome b (Cyt b) protein is previously suggested to be responsible for the ATQ resistance in Plasmodium falciparum (P. falciparum). In this study, we examined the resistance mechanism against ATQ in P. falciparum through computational methods. Here, we reported a reliable protein model of Cyt bc1 complex containing Cyt b and the Iron-Sulphur Protein (ISP) of P. falciparum using composite modeling method by combining threading, ab initio modeling and atomic-level structure refinement approaches. The molecular dynamics simulations suggest that Y268S mutation causes ATQ resistance by reducing hydrophobic interactions between Cyt bc1 protein complex and ATQ. Moreover, the important histidine contact of ATQ with the ISP chain is also lost due to Y268S mutation. We noticed the induced mutation alters the arrangement of active site residues in a fashion that enforces ATQ to find its new stable binding site far away from the wild-type binding pocket. The MM-PBSA calculations also shows that the binding affinity of ATQ with Cyt bc1 complex is enough to hold it at this new site that ultimately leads to the ATQ resistance.
Objective
To determine whether IgG subclasses of antiparanodal autoantibodies are related to disease course and treatment response in acute- to subacute-onset neuropathies, we retrospectively screened 161 baseline serum/CSF samples and 66 follow-up serum/CSF samples.
Methods
We used ELISA and immunofluorescence assays to detect antiparanodal IgG and their subclasses and titers in serum/CSF of patients with Guillain-Barre syndrome (GBS), recurrent GBS (R-GBS), Miller-Fisher syndrome, and acute- to subacute-onset chronic inflammatory demyelinating polyradiculoneuropathy (A-CIDP). We evaluated clinical data retrospectively.
Results
We detected antiparanodal autoantibodies with a prevalence of 4.3% (7/161), more often in A-CIDP (4/23, 17.4%) compared with GBS (3/114, 2.6%). Longitudinal subclass analysis in the patients with GBS revealed IgG2/3 autoantibodies against Caspr-1 and against anti-contactin-1/Caspr-1, which disappeared at remission. At disease onset, patients with A-CIDP had IgG2/3 anti-Caspr-1 and anti-contactin-1/Caspr-1 or IgG4 anti-contactin-1 antibodies, IgG3 being associated with good response to IV immunoglobulins (IVIg). In the chronic phase of disease, IgG subclass of one patient with A-CIDP switched from IgG3 to IgG4.
Conclusion
Our data (1) confirm and extend previous observations that antiparanodal IgG2/3 but not IgG4 antibodies can occur in acute-onset neuropathies manifesting as monophasic GBS, (2) suggest association of IgG3 to a favorable response to IVIg, and (3) lend support to the hypothesis that in some patients, an IgG subclass switch from IgG3 to IgG4 may be the correlate of a secondary progressive or relapsing course following a GBS-like onset.
Ligand-binding of Cys-loop receptors is determined by N-terminal extracellular loop structures from the plus as well as from the minus side of two adjacent subunits in the pentameric receptor complex. An aromatic residue in loop B of the glycine receptor (GIyR) undergoes direct interaction with the incoming ligand via a cation-π interaction. Recently, we showed that mutated residues in loop B identified from human patients suffering from hyperekplexia disturb ligand-binding. Here, we exchanged the affected human residues by amino acids found in related members of the Cys-loop receptor family to determine the effects of side chain volume for ion channel properties. GIyR variants were characterized in vitro following transfection into cell lines in order to analyze protein expression, trafficking, degradation and ion channel function. GIyR α1 G160 mutations significantly decrease glycine potency arguing for a positional effect on neighboring aromatic residues and consequently glycine-binding within the ligand-binding pocket. Disturbed glycinergic inhibition due to T162 α1 mutations is an additive effect of affected biogenesis and structural changes within the ligand-binding site. Protein trafficking from the ER toward the ER-Golgi intermediate compartment, the secretory Golgi pathways and finally the cell surface is largely diminished, but still sufficient to deliver ion channels that are functional at least at high glycine concentrations. The majority of T162 mutant protein accumulates in the ER and is delivered to ER-associated proteasomal degradation. Hence, G160 is an important determinant during glycine binding. In contrast, 1162 affects primarily receptor biogenesis whereas exchanges in functionality are secondary effects thereof.
Effect of inhalation exposure regimen on DNA binding potency of 1,2-dichloroethane in the rat
(1991)
1 ,2-Dichloroethane (DCE) was reported to be carcinogenic in rats in a long-tenn bioassay using gavage in com oil (24 and 48 mg/kg/day), but not by inhalation (up to 150-250 ppm, 7 h/day, 5 days/week). The daily dose metabolized was similar in the two experiments. In order to address this discrepancy, the genotoxicity of DCE was investigated in vivo under different exposure conditions. Fernale F-344 rats (183-188 g) were exposed to [1,2-14C]DCE in a closed inhalation chamber to either a low, constant concentration (0.3 mg/l = 80 ppm for 4 h) or to a peak concentration (up to 18 mg/1 = 4400 ppm) for a few minutes. After 12 h in the chamber, the dose metabolized under the two conditions was 34 mg/kg and 140 mg/k:g. DNA was isolated from liver and lung and was purified to constant specific radioactivity. DNA was enzymaticaBy hydrolyzed to the 3' -nucleotides which were separated by reverse phase HPLC. Most radioactivity eluted without detectable or with little optical density' indicating that the major part of the DNA radioactivity was due to covalent binding of the test compound. The Ievel of DNA adducts was expressed in the dose-nonnalized units ofthe Covalent Binding Index, CBI = f.Lmol adduct per mol DNA nucleotide/ mmol DCE per kg body wt. In liver DNA, the different exposure regimens resulted in markedly different CBI values of 1.8 and 69, for "constant-low" and ''peak" DCE exposure Ievels. In the Jung, the respective values were 0.9 and 31. It is concluded that the DNA darnage by DCE depends upon the concentration-time profile and that the carcinogenic potency determined in the gavage study should not be used for low-Ievel inhalation exposure.
The bloodstream developmental forms of pathogenic African trypanosomes are uniquely susceptible to killing by small hydrophobic peptides. Trypanocidal activity is conferred by peptide hydrophobicity and charge distribution and results from increased rigidity of the plasma membrane. Structural analysis of lipid-associated peptide suggests a mechanism of phospholipid clamping in which an internal hydrophobic bulge anchors the peptide in the membrane and positively charged moieties at the termini coordinate phosphates of the polar lipid headgroups. This mechanism reveals a necessary phenotype in bloodstream form African trypanosomes, high membrane fluidity, and we suggest that targeting the plasma membrane lipid bilayer as a whole may be a novel strategy for the development of new pharmaceutical agents. Additionally, the peptides we have described may be valuable tools for probing the biosynthetic machinery responsible for the unique composition and characteristics of African trypanosome plasma membranes.
We analyzed rest tremor, one of the etiologically most elusive hallmarks of Parkinson disease(PD), in 12 consecutive PD patients during a specific task activating the locus coeruleus (LC) to investigate a putative role of noradrenaline (NA) in tremor generation and suppression. Clinical diagnosis was confirmed in all subjects by reduced dopamine reuptake transporter (DAT) binding values investigated by single photon computed tomography imaging (SPECT) with [\(^{123}\)I] N-\(\omega\)-fluoropropyl-2 \(\beta\)-carbomethoxy-3 \(\beta\)-(4-iodophenyl) tropane (FP-CIT). The intensity of tremor (i.e., the power of Electromyography [EMG] signals), but not its frequency, significantly increased during the task. In six subjects, tremor appeared selectively during the task. In a second part of the study, we retrospectively reviewed SPECT with FP-CIT data and confirmed the lack of correlation between dopaminergic loss and tremor by comparing DAT binding values of 82 PD subjects with bilateral tremor (n = 27), unilateral tremor (n = 22), and no tremor (n = 33). This study suggests a role of the LC in Parkinson tremor.
Flexible behavior is only possible if contingencies between own actions and following environmental effects are acquired as quickly as possible; and recent findings indeed point toward an immediate formation of action-effect bindings already after a single coupling of an action and its effect. The present study explored whether these short-term bindings occur for both, stimulus- and goal-driven actions (“forced-choice actions” vs. “free-choice actions”). Two experiments confirmed that immediate action-effect bindings are formed for both types of actions and affect upcoming behavior. These findings support the view that action-effect binding is a ubiquitous phenomenon which occurs for any type of action.
PTEN induced kinase 1 (PINK1) is a serine/threonine kinase in the outer membrane of mitochondria (OMM), and known as a responsible gene of Parkinson's disease (PD). The precursor of PINK1 is synthesized in the cytosol and then imported into the mitochondria via the translocase of the OMM (TOM) complex. However, a large part of PINK1 import mechanism remains unclear. In this study, we examined using cell-free system the mechanism by which PINK1 is targeted to and assembled into mitochondria. Surprisingly, the main component of the import channel, Tom40 was not necessary for PINK1 import. Furthermore, we revealed that the import receptor Tom70 is essential for PINK1 import. In addition, we observed that although PINK1 has predicted mitochondrial targeting signal, it was not processed by the mitochondrial processing peptidase. Thus, our results suggest that PINK1 is imported into mitochondria by a unique pathway that is independent of the TOM core complex but crucially depends on the import receptor Tom70.
Escape from the host immune system is essential for intracellular pathogens. The adenoviral protein E3-14.7K (14.7K) is known as a general inhibitor of tumor necrosis factor (TNF)-induced apoptosis. It efficiently blocks TNF-receptor 1 (TNFR1) internalization but the underlying molecular mechanism still remains elusive. Direct interaction of 14.7K and/or associated proteins with the TNFR1 complex has been discussed although to date not proven. In our study, we provide for the first time evidence for recruitment of 14.7K and the 14.7K interacting protein optineurin to TNFR1. Various functions have been implicated for optineurin such as regulation of receptor endocytosis, vesicle trafficking, regulation of the nuclear factor kappa B (NF-kappa B) pathway and antiviral signaling. We therefore hypothesized that binding of optineurin to 14.7K and recruitment of both proteins to the TNFR1 complex is essential for protection against TNF-induced cytotoxic effects. To precisely dissect the individual role of 14.7K and optineurin, we generated and characterized a 14.7K mutant that does not confer TNF-resistance but is still able to interact with optineurin. In H1299 and KB cells expressing 14.7K wild-type protein, neither decrease in cell viability nor cleavage of caspases was observed upon stimulation with TNF. In sharp contrast, cells expressing the non-protective mutant of 14.7K displayed reduced viability and cleavage of initiator and effector caspases upon TNF treatment, indicating ongoing apoptotic cell death. Knockdown of optineurin in 14.7K expressing cells did not alter the protective effect as measured by cell viability and caspase activation. Taken together, we conclude that optineurin despite its substantial role in vesicular trafficking, endocytosis of cell surface receptors and recruitment to the TNFR1 complex is dispensable for the 14.7K-mediated protection against TNF-induced apoptosis.