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Lineare sowie zyklische 3-Alkylpyridinalkaloide sind vor allem in Schwämmen der Ordnung Haplosclerida, zu der auch Haliclona viscosa zählt, weit verbreitet. Die Synthese der zuvor von C. Volk isolierten Haliclamine C und D, des Viscosamins und des Viscosalin C bildete den Ausgangspunkt dieser Arbeit.[1-4] Sie erfolgte ausgehend von den bekannten Synthesen der Cyclostellettamine und Haliclamine[5-7] und gliedert sich in drei Abschnitte: erstens Synthese eines ω-Hydroxyalkylpyridins aus einem Bromalkohol, zweitens Funktionalisierung der Monomere in Abhängigkeit der gewählten Methode zur Di- bzw. Trimerisierung und drittens Verknüpfung und gegebenenfalls Zyklisierung. Durch Anwendung und Weiterentwicklung der bekannten Synthesewege wurden so insgesamt 14 lineare Monomere, zwei zyklische Monomere, 16 Cyclostellettamine, zwei Isocyclostellettamine, sieben Haliclamine, fünf Viscosaline sowie Viscosamin[8] und ein Analogon mit Heptylkette hergestellt. Dieser synthetische Zugang ermöglichte es, sowohl den finalen Strukturbeweis für die zuvor isolierten Verbindungen zu erbringen, als auch durch die Analyse der Fragmentierungs-muster von synthetischen und natürlichen Verbindungen mehr über das Verhalten dieser Verbindungen unter MS-Bedingungen zu erfahren. Die so gewonnenen Erkenntnisse führten dazu, dass drei unbekannte Verbindungen ohne Isolierung der Reinsubstanz mit einer Kombination von MS- und HPLC-Daten identifiziert werden konnten. So konnten das erste monozyklische 3-Alkylpyridinalkaloid marinen Ursprungs und zwei neue Haliclamine identifiziert und synthetisiert werden Des Weiteren gelang es, für die von C. Volk isolierten, jedoch nicht identifizierten Verbindungen Strukturen zu ermitteln bzw. auf Grund der MS-Daten Strukturvorschläge zu machen. Die durch den synthetischen Zugang große Anzahl verfügbarer 3-Alkylpyridinalkaloide ermöglichte außerdem eine systematische Untersuchung über den Zusammenhang von biologischer Aktivität und Struktur. Die Ergebnisse der am Helmholtz Institut für Infektionsforschung durchgeführten Experimente zu den antibakteriellen sowie cytotoxischen Eigenschaften von natürlichen wie auch rein synthetischen 3-Alkylpyridinalkaloiden zeigten, dass die Aktivität sich schon beim Addieren bzw. Subtrahieren einer Methylengruppe in einer Alkylkette signifikant ändert. [1] C. A. Volk, M. Köck, Org. Lett. 2003, 5, 3567-3569. [2] C. A. Volk, M. Köck, Org. Biomol. Chem. 2004, 2, 1827-1830. [3] C. A. Volk, H. Lippert, E. Lichte, M. Köck, Eur. J. Org. Chem. 2004, 3154-3158. [4] C. A. Volk, Dissertation, Johann Wolfgang Goethe Universität (Frankfurt am Main), 2004. [5] A. Grube, C. Timm, M. Köck, Eur. J. Org. Chem. 2006, 1285-1295 und Referenzen darin. [6] J. E. Baldwin, D. R. Spring, C. E. Atkinson, V. Lee, Tetrahedron 1998, 54, 13655-13680. [7] A. Kaiser, X. Billot, A. Gateau-Olesker, C. Marazano, B. C. Das, J. Am. Chem. Soc. 1998, 120, 8026-8034. [8] C. Timm, M. Köck, Synthesis 2006, 2580-2584.
A new pseudopolymorph of perchlorinated neopentasilane: the benzene monosolvate Si(SiCl3)4·C6H6
(2020)
A new pseudopolymorph of dodecachloropentasilane, namely a benzene monosolvate, Si5Cl12·C6H6, is described. There are two half molecules of each kind in the asymmetric unit. Both Si5Cl12 molecules are completed by crystallographic twofold symmetry. One of the benzene molecules is located on a twofold rotation axis with two C—H groups located on this rotation axis. The second benzene molecule has all atoms on a general position: it is disordered over two equally occupied orientations. No directional interactions beyond normal van der Waals contacts occur in the crystal.
Background: Simple peak-picking algorithms, such as those based on lineshape fitting, perform well when peaks are completely resolved in multidimensional NMR spectra, but often produce wrong intensities and frequencies for overlapping peak clusters. For example, NOESY-type spectra have considerable overlaps leading to significant peak-picking intensity errors, which can result in erroneous structural restraints. Precise frequencies are critical for unambiguous resonance assignments.
Results: To alleviate this problem, a more sophisticated peaks decomposition algorithm, based on non-negative matrix factorization (NMF), was developed. We produce peak shapes from Fourier-transformed NMR spectra. Apart from its main goal of deriving components from spectra and producing peak lists automatically, the NMF approach can also be applied if the positions of some peaks are known a priori, e.g. from consistently referenced spectral dimensions of other experiments.
Conclusions: Application of the NMF algorithm to a three-dimensional peak list of the 23 kDa bi-domain section of the RcsD protein (RcsD-ABL-HPt, residues 688-890) as well as to synthetic HSQC data shows that peaks can be picked accurately also in spectral regions with strong overlap.
Adequate digital resolution and signal sensitivity are two critical factors for protein structure determinations by solution NMR spectroscopy. The prime objective for obtaining high digital resolution is to resolve peak overlap, especially in NOESY spectra with thousands of signals where the signal analysis needs to be performed on a large scale. Achieving maximum digital resolution is usually limited by the practically available measurement time. We developed a method utilizing non-uniform sampling for balancing digital resolution and signal sensitivity, and performed a large-scale analysis of the effect of the digital resolution on the accuracy of the resulting protein structures. Structure calculations were performed as a function of digital resolution for about 400 proteins with molecular sizes ranging between 5 and 33 kDa. The structural accuracy was assessed by atomic coordinate RMSD values from the reference structures of the proteins. In addition, we monitored also the number of assigned NOESY cross peaks, the average signal sensitivity, and the chemical shift spectral overlap. We show that high resolution is equally important for proteins of every molecular size. The chemical shift spectral overlap depends strongly on the corresponding spectral digital resolution. Thus, knowing the extent of overlap can be a predictor of the resulting structural accuracy. Our results show that for every molecular size a minimal digital resolution, corresponding to the natural linewidth, needs to be achieved for obtaining the highest accuracy possible for the given protein size using state-of-the-art automated NOESY assignment and structure calculation methods.
The adaptive immune system is able to detect and destroy cells that are malignantly transformed or infected by intracellular pathogens. Specific immune responses against these cells are elicited by antigenic peptides that are presented on major histocompatibility complex class I (MHC I) molecules and recognized by cytotoxic T lymphocytes at the cell surface. Since these MHC I-presented peptides are generated in the cytosol by proteasomal protein degradation, they can be metaphorically described as a window providing immune cells with insights into the state of the cellular proteome. A crucial element of MHC I antigen presentation is the peptide-loading complex (PLC), a multisubunit machinery, which contains as key constituents the transporter associated with antigen processing (TAP) and the MHC I-specific chaperone tapasin (Tsn). While TAP recognizes and shuttles the cytosolic antigenic peptides into the endoplasmic reticulum (ER), Tsn samples peptides in the ER for their ability to form stable complexes with MHC I, a process called peptide proofreading or peptide editing. Through its selection of peptides that improve MHC I stability, Tsn contributes to the hierarchy of immunodominant peptide epitopes. Despite the fact that it concerns a key event in adaptive immunity, insights into the catalytic mechanism of peptide proofreading carried out by Tsn have only lately been gained via biochemical, biophysical, and structural studies. Furthermore, a Tsn homolog called TAP-binding protein-related (TAPBPR) has only recently been demonstrated to function as a second MHC I-specific chaperone and peptide proofreader. Although TAPBPR is PLC-independent and has a distinct allomorph specificity, it is likely to share a common catalytic mechanism with Tsn. This review focuses on the current knowledge of the multivalent protein–protein interactions and the concomitant dynamic molecular processes underlying peptide-proofreading catalysis. We do not only derive a model that highlights the common mechanistic principles shared by the MHC I editors Tsn and TAPBPR, and the MHC II editor HLA-DM, but also illustrate the distinct quality control strategies employed by these chaperones to sample epitopes. Unraveling the mechanistic underpinnings of catalyzed peptide proofreading will be crucial for a thorough understanding of many aspects of immune recognition, from infection control and tumor immunity to autoimmune diseases and transplant rejection.
Members of the ATP‐binding cassette (ABC) transporter superfamily translocate a broad spectrum of chemically diverse substrates. While their eponymous ATP‐binding cassette in the nucleotide‐binding domains (NBDs) is highly conserved, their transmembrane domains (TMDs) forming the translocation pathway exhibit distinct folds and topologies, suggesting that during evolution the ancient motor domains were combined with different transmembrane mechanical systems to orchestrate a variety of cellular processes. In recent years, it has become increasingly evident that the distinct TMD folds are best suited to categorize the multitude of ABC transporters. We therefore propose a new ABC transporter classification that is based on structural homology in the TMDs:
The title compound, C(21)H(18)ClN, was synthesized by an enanti-oselective Brønsted acid-catalysed transfer hydrogenation reaction. The six-membered heterocycle adopts a half-chair conformation. It has the biphenyl residue in an axial position. The two rings of the biphenyl residue are almost coplanar [dihedral angle = 2.65 (9)°]. The crystal packing is stabilized by N-H⋯Cl hydrogen bonds, which connect the mol-ecules into chains running along the a axis.
Die vorliegende Arbeit befasst sich mit der Entwicklung von neuen enantioselektiven und diastereoselektiven Brønsted-Säure katalysierten Reaktionen. Das Aktivierungsprinzip entspricht dabei einer klassischen Säure-Base-Reaktion, in der eine Brønsted-Säure einen Elektronenpaar-Donor protoniert, woraus die Bildung eines Ionenpaares resultiert. Erweitert man dieses Konzept durch den Einsatz einer chiralen Protonenquelle und verwendet als Base ein prochirales Substrat, wie ein Imin, so entsteht durch dessen Protonierung ein chirales Ionenpaar, wodurch das Substrat einerseits aktiviert wird und anderseits asymmetrische Induktion über das chirale Anion erfährt. Greift in dem darauf folgenden Schritt ein Nucleophil selektiv über eine Seite des positiv geladenen Elektrophils an, so bildet sich enantioselektiv ein neues Stereozentrum. Die Natur nutzt dieses Prinzip zum Aufbau von optisch reinen α-Aminosäuren. So katalysiert die Glutamatdehydrogenase (GDH) die Darstellung von Glutaminsäure durch Protonierung des entsprechenden α-Iminoglutarats, wodurch der nachfolgende Hydrid-Angriff mittels Nicotinamidadenindinukleotid (NADH) selektiv die (L)-Aminosäure liefert. Dieses Konzept konnte während der eigenen Diplomarbeit auf die enantioselektive Brønsted-Säure katalysierte Transferhydrierung von Ketiminen übertragen werden. Dabei simuliert eine chirale Protonenquelle 1 das Enzym (GDH) und das Reduktionsmittel NADH wird durch ein synthetisches Analogon, das Hantzsch Dihydropyridin 8a ersetzt ... Die vorliegende Arbeit ist kumulativ verfasst. Der größte Teil der hier vorgestellten Ergebnisse ist bereits veröffentlicht oder zur Publikation eingereicht. Die experimentellen Daten sind Bestandteil der in Kapitel 10 aufgeführten Publikationen und werden nicht gesondert diskutiert. Folgende Teile dieser Arbeit wurden bereits veröffentlicht: Highly Enantioselective Organocatalytic Carbonyl-Ene Reaction with strongly Acid, Chiral Brønsted Acids as Efficient Catalysts Rueping M., Theissmann T., Kuenkel A., Koenigs R.M., Angewandte Chemie International Edition 2008, 47, 6798, Angewandte Chemie 2008, 120, 6903. Asymmetric counterion pair catalysis: An enantioselective Brønsted acid-catalyzed protonation Rueping M., Theissmann T., Raja S., Bats J.W., Advanced Synthesis & Catalysis 2008, 350, 1001. An enantioselective chiral brønsted acid catalyzed imino-azaenamine reaction Rueping M., Sugiono E., Theissmann T., Kuenkel A., Köckritz A., Pews-Davtyan A., Nemati N., Beller M., Organic Letters 2007, 9, 1065. Remarkably low catalyst loading in Brønsted acid catalyzed transfer hydrogenations: Enantioselective reduction of benzoxazines, benzothiazines, and benzoxazinones Rueping M., Antonchick A.P., Theissmann T., Angewandte Chemie International Edition 2006, 45, 6751, Angewandte Chemie 2006, 118, 6903. A highly enantioselective brønsted acid catalyzed cascade reaction: Organocatalytic transfer hydrogenation of quinolines and their application in the synthesis of alkaloids Rueping M., Antonchick A.P., Theissmann T., Angewandte Chemie International Edition 2006, 45, 3683, Angewandte Chemie 2006, 118, 3765. Metal-free Brønsted acid catalyzed transfer hydrogenation - New organocatalytic reduction of quinolines Rueping M., Theissmann, T., Atonchick A.P., Synlett 2006, 1071. The twinned crystal structure of diiodobis(triphenylphosphine) palladium(II) dichloromethane disolvate at 173 K Theissmann T., Bolte M., Acta Crystallographica Section E, 2006, E62, 1056. Folgende Manuskripte wurden zur Veröffentlichung eingereicht: First Enantioselective Chiral Brønsted Acid Catalyzed Synthesis of 4´-Substituted Tetrahydroquinolines Rueping M., Theissmann T., Stoeckel M., Atonchick A.P. Asymmetric Organocatalytic Reductions in the Enantioselective Synthesis of Fluoroquinolones, Flumiquine and Levofloxacin Rueping M, Stoeckel M., Theissmann T., Haack K. Synthesis and Structural Investigations of H8-BINOL-derived N-triflylphosphoramides Rueping M., Nachtsheim B.J., Koenigs R., Ieawsuwan W., Theissmann T. Buchbeitrag: Metal-free Brønsted Acid Catalyzed Transfer-Hydrogenation: Enantioselective Synthesis of Tetrahydroquinolines Rueping M., Theissmann T., Atonchick A.P., Catalysts for Fine Chemical Industry, Vol. 5, 2006
The field of dynamic nuclear polarization has undergone tremendous developments and diversification since its inception more than 6 decades ago. In this review we provide an in-depth overview of the relevant topics involved in DNP-enhanced MAS NMR spectroscopy. This includes the theoretical description of DNP mechanisms as well as of the polarization transfer pathways that can lead to a uniform or selective spreading of polarization between nuclear spins. Furthermore, we cover historical and state-of-the art aspects of dedicated instrumentation, polarizing agents, and optimization techniques for efficient MAS DNP. Finally, we present an extensive overview on applications in the fields of structural biology and materials science, which underlines that MAS DNP has moved far beyond the proof-of-concept stage and has become an important tool for research in these fields.