TY - JOUR A1 - Zaccheus, Mona V. A1 - Bröker, Nina Kristin A1 - Lundborg, Magnus A1 - Uetrecht, Charlotte A1 - Barbirz, Stefanie A1 - Widmalm, Goran T1 - Structural studies of the O-antigen polysaccharide from Escherichia coli TD2158 having O18 serogroup specificity and aspects of its interaction with the tailspike endoglycosidase of the infecting bacteriophage HK620 JF - Carbohydrate research N2 - We have analyzed the O-antigen polysaccharide of the previously uncharacterized Escherichia coli strain TD2158 which is a host of bacteriophage HK620. This bacteriophage recognizes and cleaves the polysaccharide with its tailspike protein (TSP). The polysaccharide preparation as well as oligosaccharides obtained from HK620TSP endoglycosidase digests were analyzed with NMR spectroscopy. Additionally, sugar analysis was performed on the O-antigen polysaccharide and MALDI-TOF MS was used in oligosaccharide analysis. The present study revealed a heterogeneous polysaccharide with a hexasaccharide repeating unit of the following structure: alpha-D-Glcp-(1 -> 6) vertical bar vertical bar 2)-alpha-L-Rhap-(1 -> 6)-alpha-D-Glcp-(1 -> 4)-alpha-D-Galp-(1 -> 3)-alpha-D-GlcpNAc- (1 ->vertical bar beta-D-Glcp/beta-D-GlcpNAc-(1 -> 3) A repeating unit with a D-GlcNAc substitution of D-Gal has been described earlier as characteristic for serogroup O18A1. Accordingly, we termed repeating units with D-Glc substitution at D-Gal as O18A2. NMR analyses of the polysaccharide confirmed that O18A1- and O18A2-type repeats were present in a 1:1 ratio. However, HK620TSP preferentially bound the D-GlcNAc- substituted O18A1-type repeating units in its high affinity binding pocket with a dissociation constant of 140 mu M and disfavored the O18A2-type having a beta-D-Glcp-(1 -> 3)-linked group. As a result, in hexasaccharide preparations, O18A1 and O18A2 repeats were present in a 9: 1 ratio stressing the clear preference of O18A1- type repeats to be cleaved by HK620TSP. KW - Escherichia coli KW - Tailspike KW - Endoglycosidase KW - Lipopolysaccharide KW - NMR KW - Mass spectrometry Y1 - 2012 U6 - https://doi.org/10.1016/j.carres.2012.05.022 SN - 0008-6215 VL - 357 IS - 8 SP - 118 EP - 125 PB - Elsevier CY - Oxford ER - TY - THES A1 - Vranic, Marija T1 - 3D Structure of the biomarker hepcidin-25 in its native state T1 - 3D-Struktur des Biomarkers Hepcidin-25 im eigenen nativen Zustand N2 - Hepcidin-25 (Hep-25) plays a crucial role in the control of iron homeostasis. Since the dysfunction of the hepcidin pathway leads to multiple diseases as a result of iron imbalance, hepcidin represents a potential target for the diagnosis and treatment of disorders of iron metabolism. Despite intense research in the last decade targeted at developing a selective immunoassay for iron disorder diagnosis and treatment and better understanding the ferroportin-hepcidin interaction, questions remain. The key to resolving these underlying questions is acquiring exact knowledge of the 3D structure of native Hep-25. Since it was determined that the N-terminus, which is responsible for the bioactivity of Hep-25, contains a small Cu(II)-binding site known as the ATCUN motif, it was assumed that the Hep-25-Cu(II) complex is the native, bioactive form of the hepcidin. This structure has thus far not been elucidated in detail. Owing to the lack of structural information on metal-bound Hep-25, little is known about its possible biological role in iron metabolism. Therefore, this work is focused on structurally characterizing the metal-bound Hep-25 by NMR spectroscopy and molecular dynamics simulations. For the present work, a protocol was developed to prepare and purify properly folded Hep-25 in high quantities. In order to overcome the low solubility of Hep-25 at neutral pH, we introduced the C-terminal DEDEDE solubility tag. The metal binding was investigated through a series of NMR spectroscopic experiments to identify the most affected amino acids that mediate metal coordination. Based on the obtained NMR data, a structural calculation was performed in order to generate a model structure of the Hep-25-Ni(II) complex. The DEDEDE tag was excluded from the structural calculation due to a lack of NMR restraints. The dynamic nature and fast exchange of some of the amide protons with solvent reduced the overall number of NMR restraints needed for a high-quality structure. The NMR data revealed that the 20 Cterminal Hep-25 amino acids experienced no significant conformational changes, compared to published results, as a result of a pH change from pH 3 to pH 7 and metal binding. A 3D model of the Hep-25-Ni(II) complex was constructed from NMR data recorded for the hexapeptideNi(II) complex and Hep-25-DEDEDE-Ni(II) complex in combination with the fixed conformation of 19 C-terminal amino acids. The NMR data of the Hep-25-DEDEDE-Ni(II) complex indicates that the ATCUN motif moves independently from the rest of the structure. The 3D model structure of the metal-bound Hep-25 allows for future works to elucidate hepcidin’s interaction with its receptor ferroportin and should serve as a starting point for the development of antibodies with improved selectivity. N2 - Hepcidin-25 (Hep-25) spielt eine entscheidende Rolle bei der Kontrolle der Eisenhomöostase. Da die Dysfunktion des Hepcidin-Signalweges aufgrund des Eisenungleichgewichts zu mehreren Krankheiten führt, stellt Hepcidin ein potenzielles Ziel für die Diagnose und Behandlung von Störungen des Eisenstoffwechsels dar. Trotz intensiver Forschung in den letzten zehn Jahren, die darauf abzielte, einen selektiven Immunoassay für die Diagnose und Behandlung von Eisenerkrankungen zu entwickeln und die Ferroportin-Hepcidin-Interaktion besser zu verstehen, bleiben Fragen offen. Der Schlüssel zur Lösung dieser grundlegenden Fragen liegt darin, genaue Kenntnisse über die 3D-Struktur des nativen Hep-25 zu erlangen. Da festgestellt wurde, dass der N-Terminus, der für die Bioaktivität von Hep-25 verantwortlich ist, eine kleine Cu(II)-Bindungsstelle enthält, die als ATCUN-Motiv bekannt ist, wurde angenommen, dass der Hep-25- Cu(II)-Komplex die native, bioaktive Form des Hepcidins ist. Diese Struktur ist bisher noch nicht im Detail untersucht worden. Aufgrund fehlender Strukturinformationen über metallgebundenes Hep-25 ist wenig über seine mögliche biologische Rolle im Eisenstoffwechsel bekannt. Daher konzentriert sich diese Arbeit auf die strukturelle Charakterisierung des metallgebundenen Hep-25 mittels NMR-Spektroskopie und Molekulardynamik Simulationen. In der vorliegenden Arbeit wurde ein Protokoll zur Präparation und Reinigung von korrekt gefaltetem Hep-25 in hohen Mengen entwickelt. Um das Problem der geringen Löslichkeit von Hep-25 bei neutralem pH-Wert zu überwinden, haben wir einen C-terminalen DEDEDEDE Löslichkeits-Tag eingeführt. Die Metallbindung wurde durch eine Reihe von NMRspektroskopischen Experimenten untersucht, um die Aminosäuren zu identifizieren, welche an der Metallkoordination beteiligt sind. Basierend auf den erhaltenen NMR-Daten wurde eine Strukturberechnung durchgeführt, um eine Modellstruktur des Hep-25-Ni(II)-Komplexes zu erzeugen. Der DEDEDE-Tag wurde aufgrund fehlender NMR- restraints von der Strukturberechnung ausgeschlossen. Die dynamische Natur und der schnelle Austausch eines Teils der Amid-Protonen mit dem Lösungsmittel reduzierten die Gesamtzahl der NMR- restraints, die für eine hochwertige Struktur erforderlich waren. Die NMR-Daten zeigten, dass die 20 C-terminalen Hep-25-Aminosäuren keine signifikanten Konformationsänderungen als Folge eines pH-Wechsels von pH 3 auf pH 7 und einer Metallbindung erfuhren. Ein 3D-Modell des Hep-25-Ni(II)-Komplexes wurde aus den NMR-Daten des Hexapeptid-Ni(II)-Komplexes und des Hep-25-DEDEDE-Ni(II)-Komplexes in Kombination mit der bekannten Konformation der 19 C-terminalen Aminosäuren erstellt. Die NMR-Daten des Hep-25-DEDEDE-Ni(II)Komplexes zeigen, dass sich das Ni-ATCUN-Motiv unabhängig vom C-Terminus bewegt. Die 3D-Modellstruktur des metallgebundenen Hep-25 ermöglicht es, in Zukunft die Interaktion von Hepcidin mit seinem Rezeptor Ferroportin zu untersuchen und soll als Ausgangspunkt für die Entwicklung von Antikörpern mit verbesserter Selektivität dienen. KW - iron KW - hepcidin KW - peptide KW - metal KW - binding KW - NMR KW - Eisen KW - Hepcidin KW - Peptid KW - Metall KW - Bindung KW - NMR Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-459295 ER - TY - JOUR A1 - Shainyan, Bagrat A. A1 - Moskalik, Mikhail Yu A1 - Heydenreich, Matthias A1 - Kleinpeter, Erich T1 - Conformational equilibrium and dynamic behavior of bis-N-triflyl substituted 3,8-diazabicyclo[3.2.1]octane JF - Magnetic resonance in chemistry N2 - Restricted rotation about the N-S partial double bonds in a bis-N-triflyl substituted 3,8-diazabicyclo[3.2.1]octane derivative 1 has been frozen at low temperature (Delta G* = 11.6 kcal mol(-1)), and the existence of all four rotamers about the two N-S bonds, 3-in, 8-in, 3-in, 8-out, 3-out, 8-in, and 3-out, 8-out, respectively, proved experimentally by NMR spectroscopy and theoretically by DFT and MP2 calculations. Copyright (C) 2014 John Wiley & Sons, Ltd. KW - NMR KW - H-1 KW - C-13 KW - F-19 KW - Dynamic NMR KW - Conformational equilibrium KW - restricted N-S rotation Y1 - 2014 U6 - https://doi.org/10.1002/mrc.4086 SN - 0749-1581 SN - 1097-458X VL - 52 IS - 8 SP - 448 EP - 452 PB - Wiley-Blackwell CY - Hoboken ER - TY - JOUR A1 - Pihlaja, Kalevi A1 - Sinkkonen, Jari A1 - Stajer, Geza A1 - Koch, Andreas A1 - Kleinpeter, Erich T1 - 1-Oxo-1,3-dithiolanes - synthesis and stereochemistry JF - Magnetic resonance in chemistry N2 - 1-Oxo-1,3-dithiolane (4) and its cis- and trans-2-methyl (5,6), -4-methyl (7,8) and -5-methyl (9,10) derivatives were prepared by oxidizing the corresponding 1,3-dithiolanes (1-3) with NaIO(4) in water. The oxides were purified and their isomers separated using thin layer chromatography. The structural characterization was carried out with (1)H and (13)C NMR spectroscopy and molecular modelling. The sulfoxides 4-6 and 8-10 attain two S(1) type envelopes (sometimes slightly distorted) the S=O(ax) envelope greatly dominating. Cis-4-methyl-1-oxo-1,3-dithiolane is a special case exhibiting both two closely related S=O(ax) (30 and 27%) as well as S=O(eq) (21 and 22%) forms [S(1) and C(4) envelopes, respectively]. The relative energies of these conformations, the values of (1)H-(1)H coupling constants and (1)H and (13)C chemical shifts were estimated by computational methods and they support well the conclusions based on the experimental data. KW - NMR KW - (1)H NMR KW - (13)C NMR KW - sulfur heterocycles KW - conformational analysis KW - computational chemistry Y1 - 2011 U6 - https://doi.org/10.1002/mrc.2764 SN - 0749-1581 VL - 49 IS - 7 SP - 443 EP - 449 PB - Wiley-Blackwell CY - Malden ER - TY - JOUR A1 - Paz, Cristian A1 - Heydenreich, Matthias A1 - Schmidt, Bernd A1 - Vadra, Nahir A1 - Baggio, Ricardo T1 - Three new dihydro-beta-agarofuran sesquiterpenes from the seeds of Maytenus boaria JF - Acta Crystallographica Section C N2 - As part of a project studying the secondary metabolites extracted from the Chilean flora, we report herein three new beta-agarofuran sesquiterpenes, namely (1S,4S,5S,6R,7R,8R,9R,10S)-6-acetoxy-4,9-dihydroxy-2,2,5a,9-tetramethyloctahydro-2H-3,9a-methanobenzo[b] oxepine-5,10-diylbis(furan-3-carboxylate), C27H32O11, (II), (1S,4S,5S,6R,7R,9S,10S)-6-acetoxy-9-hydroxy-2,2,5a, 9-tetramethyloctahydro-2H-3,9a-methanobenzo[ b] oxepine-5,10-diyl bis(furan-3-carboxylate), C27H32O10, (III), and (1S,4S,5S,6R,7R,9S,10S)-6-acetoxy-10-(benzoyloxy)-9-hydroxy-2,2,5a,9-tetramethyloctahydro-2H-3,9a-methanobenzo[b]oxepin-5-yl furan-3-carboxylate, C29H34O9, (IV), obtained from the seeds of Maytenus boaria and closely associated with a recently published relative [Paz et al. (2017). Acta Cryst. C73, 451-457]. In the (isomorphic) structures of (II) and (III), the central decalin system is esterified with an acetate group at site 1 and furoate groups at sites 6 and 9, and differ at site 8, with an OH group in (II) and no substituent in (III). This position is also unsubstituted in (IV), with site 6 being occupied by a benzoate group. The chirality of the skeletons is described as 1S, 4S, 5S, 6R, 7R, 8R, 9R, 10S in (II) and 1S, 4S, 5S, 6R, 7R, 9S, 10S in (III) and (IV), matching the chirality suggested by NMR studies. This difference in the chirality sequence among the title structures (in spite of the fact that the three skeletons are absolutely isostructural) is due to the differences in the environment of site 8, i.e. OH in (II) and H in (III) and (IV). This diversity in substitution, in turn, is responsible for the differences in the hydrogen-bonding schemes, which is discussed. KW - Celastraceae KW - Maytenus boaria KW - sesquiterpene KW - dihydro-beta-agarofuran KW - crystal structure KW - NMR KW - DSC Y1 - 2018 U6 - https://doi.org/10.1107/S2053229618005429 SN - 2053-2296 VL - 74 SP - 564 EP - 570 PB - International Union of Crystallography CY - Chester ER - TY - THES A1 - Nitschke, Felix T1 - Phosphorylation of polyglycans, especially glycogen and starch T1 - Phosphorylierung von Polysacchariden, insbesondere bei Glykogen und Stärke N2 - Functional metabolism of storage carbohydrates is vital to plants and animals. The water-soluble glycogen in animal cells and the amylopectin which is the major component of water-insoluble starch granules residing in plant plastids are chemically similar as they consist of α-1,6 branched α-1,4 glucan chains. Synthesis and degradation of transitory starch and of glycogen are accomplished by a set of enzymatic activities that to some extend are also similar in plants and animals. Chain elongation, branching, and debranching are achieved by synthases, branching enzymes, and debranching enzymes, respectively. Similarly, both types of polyglucans contain low amounts of phosphate esters whose abundance varies depending on species and organs. Starch is selectively phosphorylated by at least two dikinases (GWD and PWD) at the glucosyl carbons C6 and C3 and dephosphorylated by the phosphatase SEX4 and SEX4-like enzymes. In Arabidopsis insufficiency in starch phosphorylation or dephosphorylation results in largely impaired starch turnover, starch accumulation, and often in retardation of growth. In humans the progressive neurodegenerative epilepsy, Lafora disease, is the result of a defective enzyme (laforin) that is functional equivalent to the starch phosphatase SEX4 and capable of glycogen dephosphorylation. Patients lacking laforin progressively accumulate unphysiologically structured insoluble glycogen-derived particles (Lafora bodies) in many tissues including brain. Previous results concerning the carbon position of glycogen phosphate are contradictory. Currently it is believed that glycogen is esterified exclusively at the carbon positions C2 and C3 and that the monophosphate esters, being incorporated via a side reaction of glycogen synthase (GS), lack any specific function but are rather an enzymatic error that needs to be corrected. In this study a versatile and highly sensitive enzymatic cycling assay was established that enables quantification of very small G6P amounts in the presence of high concentrations of non-target compounds as present in hydrolysates of polysaccharides, such as starch, glycogen, or cytosolic heteroglycans in plants. Following validation of the G6P determination by analyzing previously characterized starches G6P was quantified in hydrolysates of various glycogen samples and in plant heteroglycans. Interestingly, glucosyl C6 phosphate is present in all glycogen preparations examined, the abundance varying between glycogens of different sources. Additionally, it was shown that carbon C6 is severely hyperphosphorylated in glycogen of Lafora disease mouse model and that laforin is capable of removing C6 phosphate from glycogen. After enrichment of phosphoglucans from amylolytically degraded glycogen, several techniques of two-dimensional NMR were applied that independently proved the existence of 6-phosphoglucosyl residues in glycogen and confirmed the recently described phosphorylation sites C2 and C3. C6 phosphate is neither Lafora disease- nor species-, or organ-specific as it was demonstrated in liver glycogen from laforin-deficient mice and in that of wild type rabbit skeletal muscle. The distribution of 6-phosphoglucosyl residues was analyzed in glycogen molecules and has been found to be uneven. Gradual degradation experiments revealed that C6 phosphate is more abundant in central parts of the glycogen molecules and in molecules possessing longer glucan chains. Glycogen of Lafora disease mice consistently contains a higher proportion of longer chains while most short chains were reduced as compared to wild type. Together with results recently published (Nitschke et al., 2013) the findings of this work completely unhinge the hypothesis of GS-mediated phosphate incorporation as the respective reaction mechanism excludes phosphorylation of this glucosyl carbon, and as it is difficult to explain an uneven distribution of C6 phosphate by a stochastic event. Indeed the results rather point to a specific function of 6-phosphoglucosyl residues in the metabolism of polysaccharides as they are present in starch, glycogen, and, as described in this study, in heteroglycans of Arabidopsis. In the latter the function of phosphate remains unclear but this study provides evidence that in starch and glycogen it is related to branching. Moreover a role of C6 phosphate in the early stages of glycogen synthesis is suggested. By rejecting the current view on glycogen phosphate to be a stochastic biochemical error the results permit a wider view on putative roles of glycogen phosphate and on alternative biochemical ways of glycogen phosphorylation which for many reasons are likely to be mediated by distinct phosphorylating enzymes as it is realized in starch metabolism of plants. Better understanding of the enzymology underlying glycogen phosphorylation implies new possibilities of Lafora disease treatment. N2 - Pflanzen und Tiere speichern Glukose in hochmolekularen Kohlenhydraten, um diese bei Bedarf unter anderem zur Gewinnung von Energie zu nutzen. Amylopectin, der größte Bestandteil des pflanzlichen Speicherkohlenhydrats Stärke, und das tierische Äquivalent Glykogen sind chemisch betrachtet ähnlich, denn sie bestehen aus verzweigten Ketten, deren Bausteine (Glukosylreste) auf identische Weise miteinander verbunden sind. Zudem kommen in beiden Kohlenhydraten kleine aber ähnliche Mengen von Phosphatgruppen vor, die offenbar eine tragende Rolle in Pflanzen und Tieren spielen. Ist in Pflanzen der Einbau oder die Entfernung von Phosphatgruppen in bzw. aus Stärke gestört, so ist oft der gesamte Stärkestoffwechsel beeinträchtigt. Dies zeigt sich unter anderem in der übermäßigen Akkumulation von Stärke und in Wachstumsverzögerungen der gesamten Pflanze. Beim Menschen und anderen Säugern beruht eine schwere Form der Epilepsie (Lafora disease) auf einer Störung des Glykogenstoffwechsels. Sie wird durch das erblich bedingte Fehlen eines Enzyms ausgelöst, das Phosphatgruppen aus dem Glykogen entfernt. Während die Enzyme, die für die Entfernung des Phosphats aus Stärke und Glykogen verantwortlich sind, hohe Ähnlichkeit aufweisen, ist momentan die Ansicht weit verbreitet, dass der Einbau von Phosphat in beide Speicherkohlenhydrate auf höchst unterschiedliche Weise erfolgt. In Pflanzen sind zwei Enzyme bekannt, die Phosphatgruppen an unterschiedlichen Stellen in Glukosylreste einbauen (Kohlenstoffatome 6 und 3). In Tieren soll eine seltene, unvermeidbare und zufällig auftretende Nebenreaktion eines Enzyms, das eigentlich die Ketten des Glykogens verlängert (Glykogen-Synthase), den Einbau von Phosphat bewirken, der somit als unwillkürlich gilt und weithin als „biochemischer Fehler“ (mit fatalen Konsequenzen bei ausbleibender Korrektur) betrachtet wird. In den Glukosylresten des Glykogens sollen ausschließlich die C-Atome 2 und 3 phosphoryliert sein. Die Ergebnisse dieser Arbeit zeigen mittels zweier unabhängiger Methoden, dass Glykogen auch am Glukosyl-Kohlenstoff 6 phosphoryliert ist, der Phosphatposition, die in der Stärke am häufigsten vorkommt. Die Tatsache, dass in dieser Arbeit Phosphat neben Stärke auch erstmals an Glukosylresten von anderen pflanzlichen Kohlenhydraten (wasserlösliche Heteroglykane) nachgewiesen werden konnte, lässt vermuten, dass Phosphorylierung ein generelles Phänomen bei Polysacchariden ist. Des Weiteren wiesen die Ergebnisse darauf hin, dass Phosphat im Glykogen, wie auch in der Stärke, einem bestimmten Zweck dient, der im Zusammenhang mit der Regulation von Kettenverzweigung steht, und dass kein zufälliges biochemisches Ereignis für den Einbau verantwortlich sein kann. Aufgrund der grundlegenden Ähnlichkeiten im Stärke- und Glykogenstoffwechsel, liegt es nahe, dass die Phosphorylierung von Glykogen, ähnlich der von Stärke, ebenfalls durch spezifische Enzyme bewirkt wird. Ein besseres Verständnis der Mechanismen, die der Glykogen-Phosphorylierung zugrunde liegen, kann neue Möglichkeiten der Behandlung von Lafora disease aufzeigen. KW - Stärke KW - Glykogen KW - Phosphorylierung KW - NMR KW - Lafora disease KW - starch KW - glycogen KW - phosphorylation KW - NMR KW - Lafora disease Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-67396 ER - TY - JOUR A1 - Lilie, Hauke A1 - Baer, Dorit A1 - Kettner, Karina A1 - Weininger, Ulrich A1 - Balbach, Jochen A1 - Naumann, Manfred A1 - Mueller, Eva-Christina A1 - Otto, Albrecht A1 - Gast, Klaus A1 - Golbik, Ralph A1 - Kriegel, Thomas T1 - Yeast hexokinase isoenzyme ScHxk2 stability of a two-domain protein with discontinuous domains JF - Protein engineering design & selection N2 - The hexokinase isoenzyme 2 of Saccharomyces cerevisiae (ScHxk2) represents an archetype of a two-domain protein with the active site located in a cleft between the two domains. Binding of the substrate glucose results in a rigid body movement of the two domains leading to a cleft closure of the active site. Both domains of this enzyme are composed of discontinuous peptide sequences. This structural feature is reflected in the stability and folding of the ScHxk2 protein. Structural transitions induced by urea treatment resulted in the population of a thermodynamically stable folding intermediate, which, however, does not correspond to a molecule with one domain folded and the other unfolded. As demonstrated by different spectroscopic techniques, both domains are structurally affected by the partial denaturation. The intermediate possesses only 40% of the native secondary structural content and a substantial increase in the Stokes radius as judged by circular dichroism and dynamic light scattering analyses. One-dimensional H-1 NMR data prove that all tryptophan residues are in a non-native environment in the intermediate, indicating substantial changes in the tertiary structure. Still, the intermediate possesses quite a high stability for a transition intermediate of about Delta G = -22 kJ mol(-1). KW - dynamic light scattering KW - NMR KW - ScHxk2 KW - stability KW - transition intermediate Y1 - 2011 U6 - https://doi.org/10.1093/protein/gzq098 SN - 1741-0126 VL - 24 IS - 1-2 SP - 79 EP - 87 PB - Oxford Univ. Press CY - Oxford ER - TY - JOUR A1 - Kramer, Markus A1 - Kleinpeter, Erich T1 - A conformational study of N-acetyl glucosamine derivatives utilizing residual dipolar couplings JF - Journal of magnetic resonance N2 - The conformational analyses of six non-rigid N-acetyl glucosamine (NAG) derivatives employing residual dipolar couplings (RDCs) and NOEs together with molecular dynamics (MD) simulations are presented. Due to internal dynamics we had to consider different conformer ratios existing in solution. The good quality of the correlation between theoretically and experimentally obtained RDCs show the correctness of the calculated conformers even if the ratios derived from the MD simulations do not exactly meet the experimental data. If possible, the results were compared to former published data and commented. KW - NMR KW - Residual dipolar couplings KW - Molecular dynamics KW - N-acetyl glucosamine derivatives KW - Carbohydrates Y1 - 2011 U6 - https://doi.org/10.1016/j.jmr.2011.06.029 SN - 1090-7807 VL - 212 IS - 1 SP - 174 EP - 185 PB - Elsevier CY - San Diego ER - TY - JOUR A1 - Koch, Andreas A1 - Stamboliyska, Bistra A1 - Mikhova, Bozhana A1 - Breznica-Selmani, Pranvera A1 - Mladenovska, Kristina A1 - Popovski, Emil T1 - Calculations of C-13 NMR chemical shifts and F-C coupling constants of ciprofloxacin JF - Magnetic resonance in chemistry N2 - Ciprofloxacin is a widely used fluoroquinolone antibiotic. In this work, a comprehensive evaluation of MP2 and DFT with different functionals and basis sets was carried out to select the most suitable level of theory for the study of the NMR properties of ciprofloxacin. Their relative predictive capabilities were evaluated comparing the theoretically predicted and experimental spectral data. Our computational results indicated that in contrast to the solid state, the molecule of ciprofloxacin does not exist as a zwitterion in gaseous state. The results of the calculations of the chemical shifts most close to the experimental were obtained with B3LYP/aug-cc-pVDZ. The F-C coupling constants were calculated systematically with different DFT methods and several basis sets. In general, the calculations of the coupling constants with the BHandH computational method including the applied in this work 6-311++G**, EPRII, and EPRIII basis sets showed a good reproducibility of the experimental values of the coupling constants. KW - C-13 chemical shifts KW - ciprofloxacin KW - DFT calculations KW - F-C coupling constants KW - NMR Y1 - 2019 U6 - https://doi.org/10.1002/mrc.4827 SN - 0749-1581 SN - 1097-458X VL - 57 IS - 4 SP - 75 EP - 84 PB - Wiley CY - Hoboken ER - TY - JOUR A1 - Kleinpeter, Erich A1 - Laemmermann, Anica A1 - Kühn, Heiner T1 - Synthesis and NMR spectra of the syn and anti isomers of substituted cyclobutanes-evidence for steric and spatial hyperconjugative interactions JF - Tetrahedron N2 - The syn and anti isomers of cis,cis-tricyclo[5.3.0.0(2.6)]dec-3-ene derivatives have been synthesized and their (1)H and (13)C NMR spectra unequivocally analyzed. Both their structures and their (1)H and (13)C NMR chemical shifts were calculated by DFT, the latter two calculations employing the GIAO perturbation method. Additionally, calculated NMR shielding values were partitioned into Lewis and non-Lewis contributions from the bonds and lone pairs involved in the molecules by accompanying NBO and NCS analyses. The differences between the syn and anti isomers were evaluated with respect to steric and spatial hyperconjugation interactions. KW - Conformational analysis KW - cis,cis-Tricyclo[5.3.0.0(2,6)]dec-3-enes KW - NMR KW - DFT calculation KW - NBO/NCS analysis Y1 - 2011 U6 - https://doi.org/10.1016/j.tet.2011.02.012 SN - 0040-4020 VL - 67 IS - 14 SP - 2596 EP - 2604 PB - Elsevier CY - Oxford ER -