Biochemie und Chemie
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Darstellung und Eigenschaften des Coenzymanalogen Nicotinamid-4-methyl-5-acetyl-imidazol-dinucleotid
(1970)
Kondensation des Quecksilbersalzes von 4-Methyl-5-acetyl-imidazol ** mit 1-Chlor-2.3.5-O-tribenzoyl-ribofuranose liefert das geschützte Ribosid 3. Zur Strukturaufklärung der Verbindung wurde 4-Methyl-5-acetyl-1-(β-D-0-2′.3′.5′-triacetyl-ribofuranosyl)-imidazol mit Methyljodid in das 3.4-Dimethyl-5-acetyl-1-(β-D-O-2′.3′.5′-triacetyl-ribofuranosyl)-imidazoliumjodid überführt und der Zuckerrest hydrolytisch gespalten. Das entstandene Imidazol-Derivat ist identisch mit 1.5-Dimethyl-4-acetyl-imidazol. 4-Methyl-5-acetyl-1- (β-D-ribofuranosyl) -imidazol wurde mit Aceton in das Isopropyliden-Derivat 4 überführt. Die Phosphorylierung zum Nucleosid-5′-phosphat (5) führten wir mit β-Cyanäthyl-phosphat durch. Durch Kondensation mit Nicotinamid-mononucleotid erhielten wir das Coenzymanaloge Nicotinamid-4-methyl-5-acetyl-imidazol-dinucleotid (6). Die Verbindung liegt im oxydierten Zustand in gefaltener Form vor. Das Fluoreszenz-Anregungsspektrum der Dihydroverbindung zeigt keine Energieübertragung vom nichtfunktionellen 4-Methyl-5-acetyl-imidazol-Teil auf den Dihydronicotinamid-Ring. Das Coenzymanaloge weist eine größere Michaelis- Konstante im Test mit Lactat-Dehydrogenase aus Schweineherz *** auf als das natürliche Nicotinamid-adenindinucleotid ***. Die maximale Umsatzzahl ist trotz der schwächeren Bindung vergrößert. Das unterschiedliche Verhalten des Coenzymanalogen 6 gegenüber NAD läßt, neben der π-Bindung des nichtfunktionellen Teils, eine polare Gruppe im aktiven Zentrum des Enzyms vermuten, die die Ausrichtung des Coenzyms im Coenzym-Enzym-Komplex bewirkt.
Dihydronicotinamid-4-methyl-5-acetyl-imidazol-dinucleotid bildet einen fluoreszierenden Komplex mit der Lactat-Dehydrogenase, der dem des NADH-LDH-Komplexes sehr ähnlich ist.
Fluorescense spectra of lactate dehydrogenase * (E.C. 1.1.1.27) were investigated in the presence of the coenzyme fragments dihydronicotinamide mononucleotide and dihydronicotinamide-ribose-5'-pyrophospho- (P2) -5“-ribose. The reduced mononucleotide is enzymatically less active as a hydrogen donor. However, formation of a complex with the enzyme was not observed under the conditions used. All the other substances: dihydronicotinamide-ribose-5'-pyrophospho- (P2) -5“-ribose, dihydronicotinamide- benzimidazole-dinucleotide, dihydronicotinamide-3-desazapurine-dinucleotide and dihydronicotinamide-6-mercaptopurine-dinucleotide form more or less stable complexes with lactate dehydrogenase. The complexes do not markedly differ from the complex formed with the natural cofactor. In all cases spectra indicate change in conformation of the coenzyme by forming the coenzyme-enzyme-complex which has been proposed by VELICK 1 too. The cysteine residues of the lactate dehydrogenase are not essential for binding the coenzyme to the active center; this was shown with mercury blocked enzyme.
Mechanism of Na+-dependent citrate transport from the structure of an asymmetrical CitS dimer
(2015)
The common human pathogen Salmonella enterica takes up citrate as a nutrient via the sodium symporter SeCitS. Uniquely, our 2.5 Å x-ray structure of the SeCitS dimer shows three different conformations of the active protomer. One protomer is in the outside-facing state. Two are in different inside-facing states. All three states resolve the substrates in their respective binding environments. Together with comprehensive functional studies on reconstituted proteoliposomes, the structures explain the transport mechanism in detail. Our results indicate a six-step process, with a rigid-body 31° rotation of a helix bundle that translocates the bound substrates by 16 Å across the membrane. Similar transport mechanisms may apply to a wide variety of related and unrelated secondary transporters, including important drug targets.
CD69 is a transmembrane lectin that can be expressed on most hematopoietic cells. In monocytes, it has been functionally linked to the 5-lipoxygenase pathway in which the leukotrienes, a class of highly potent inflammatory mediators, are produced. However, regarding CD69 gene expression and its regulatory mechanisms in monocytes, only scarce data are available. Here, we report that CD69 mRNA expression, analogous to that of 5-lipoxygenase, is induced by the physiologic stimuli transforming growth factor-β (TGF-β) and 1α,25-dihydroxyvitamin D3 (1α,25(OH)2D3) in monocytic cells. Comparison with T- and B-cell lines showed that the effect was specific for monocytes. CD69 expression levels were increased in a concentration-dependent manner, and kinetic analysis revealed a rapid onset of mRNA expression, indicating that CD69 is a primary TGF-β/1α,25(OH)2D3 target gene. PCR analysis of different regions of the CD69 mRNA revealed that de novo transcription was initiated and proximal and distal parts were induced concomitantly. In common with 5-lipoxygenase, no activation of 0.7 kb or ~2.3 kb promoter fragments by TGF-β and 1α,25(OH)2D3 could be observed in transient reporter assays for CD69. Analysis of mRNA stability using a transcription inhibitor and a 3′UTR reporter construct showed that TGF-β and 1α,25(OH)2D3 do not influence CD69 mRNA stability. Functional knockdown of Smad3 clearly demonstrated that upregulation of CD69 mRNA, in contrast to 5-LO, depends on Smad3. Comparative studies with different inhibitors for mitogen activated protein kinases (MAPKs) revealed that MAPK signalling is involved in CD69 gene regulation, whereas 5-lipoxygenase gene expression was only partly affected. Mechanistically, we found evidence that CD69 gene upregulation depends on TAK1-mediated p38 activation. In summary, our data indicate that CD69 gene expression, conforming with 5-lipoxygenase, is regulated monocyte-specifically by the physiologic stimuli TGF-β and 1α,25(OH)2D3 on mRNA level, although different mechanisms account for the upregulation of each gene.
Virus-infected cells are eliminated by cytotoxic T lymphocytes, which recognize viral epitopes displayed on major histocompatibility complex class I molecules at the cell surface. Herpesviruses have evolved sophisticated strategies to escape this immune surveillance. During the lytic phase of EBV infection, the viral factor BNLF2a interferes with antigen processing by preventing peptide loading of major histocompatibility complex class I molecules. Here we reveal details of the inhibition mechanism of this EBV protein. We demonstrate that BNLF2a acts as a tail-anchored protein, exploiting the mammalian Asna-1/WRB (Get3/Get1) machinery for posttranslational insertion into the endoplasmic reticulum membrane, where it subsequently blocks antigen translocation by the transporter associated with antigen processing (TAP). BNLF2a binds directly to the core TAP complex arresting the ATP-binding cassette transporter in a transport-incompetent conformation. The inhibition mechanism of EBV BNLF2a is distinct and mutually exclusive of other viral TAP inhibitors.
Nep1 (Emg1) is a highly conserved nucleolar protein with an essential function in ribosome biogenesis. A mutation in the human Nep1 homolog causes Bowen–Conradi syndrome—a severe developmental disorder. Structures of Nep1 revealed a dimer with a fold similar to the SPOUT-class of RNA-methyltransferases suggesting that Nep1 acts as a methyltransferase in ribosome biogenesis. The target for this putative methyltransferase activity has not been identified yet. We characterized the RNA-binding specificity of Methanocaldococcus jannaschii Nep1 by fluorescence- and NMR-spectroscopy as well as by yeast three-hybrid screening. Nep1 binds with high affinity to short RNA oligonucleotides corresponding to nt 910–921 of M. jannaschii 16S rRNA through a highly conserved basic surface cleft along the dimer interface. Nep1 only methylates RNAs containing a pseudouridine at a position corresponding to a previously identified hypermodified N1-methyl-N3-(3-amino-3-carboxypropyl) pseudouridine (m1acp3-Psi) in eukaryotic 18S rRNAs. Analysis of the methylated nucleoside by MALDI-mass spectrometry, HPLC and NMR shows that the methyl group is transferred to the N1 of the pseudouridine. Thus, Nep1 is the first identified example of an N1-specific pseudouridine methyltransferase. This enzymatic activity is also conserved in human Nep1 suggesting that Nep1 is the methyltransferase in the biosynthesis of m1acp3-Psi in eukaryotic 18S rRNAs.
The synergetic effects of combining structural biology and epr spectroscopy on membrane proteins
(2017)
Protein structures as provided by structural biology such as X-ray crystallography, cryo-electron microscopy and NMR spectroscopy are key elements to understand the function of a protein on the molecular level. Nonetheless, they might be error-prone due to crystallization artifacts or, in particular in case of membrane-imbedded proteins, a mostly artificial environment. In this review, we will introduce different EPR spectroscopy methods as powerful tools to complement and validate structural data gaining insights in the dynamics of proteins and protein complexes such that functional cycles can be derived. We will highlight the use of EPR spectroscopy on membrane-embedded proteins and protein complexes ranging from receptors to secondary active transporters as structural information is still limited in this field and the lipid environment is a particular challenge.
1. Fab co-complexes of proton pumping NADH:ubiquinone oxidoreductase (complex I) Fab fragments suitable for co-crystallization with complex I were generated using an immobilized papainbased protocol. The binding of the antibody fragments to complex I was verified using Surface Plasmon Resonance and size exclusion chromatography. The binding constants of the antibodies and their respective Fab fragments were found to be in the nanomolar range. This work presents the first report on successful crystallization of complex I (proton pumping NADH:ubiquinone oxidoreductase) from Yarrowia lipolytica with proteolytic Fab fragments. The quality of the crystals was significantly improved when compared to the initial experiments and the best crystals diffracted X-rays to a resolution of ~7 Å. The activity of complex I remained uninfluenced by antibody fragment binding. The initial diffraction data suggest that the complex I/Fab co-complex crystals represent a space group different to the one observed for the native protein. Ongoing experiments are aimed at further enhancements of the diffraction quality of the crystals. Providing a different space group the CI/Fab co-complexes may become a very useful approach for structure determination of the enzyme. Moreover, the bound Fab offers an additional possibility to generate phase information. The antibody-mediated crystallization represents a valuable tool in structural characterization of the NADH:oxidoreductase subcomplexes or even single subunits. 2. UDP-glucose pyrophosphorylase UDP-glucose pyrophosphorylase from Yarrowia lipolytica displays affinity towards Ni2+ NTA and was first detected in a contaminated sample of complex I. Following, separation from complex I, Ugp1p was purified using anion exchange chromatography. Sequence similarity studies revealed high identity to other known pyrophosphorylases. As indicated by laser-based mass spectrometry method (LILBID) Ugp1p from Y. lipolytica builds octamers similarly to the enzyme from Saccharomyces cerevisiae. The initial crystals grew as thin needles favorably in sitting drop setups. The size of the crystals was increased by employment of a micro batch technique. The improved crystals diffracted X-rays to a resolution of 3.2 Å at the synchrotron beamline. Structural characterization is under way using a molecular replacement approach based on the published structure of baker’s yeast UGPase.
Photo-initiated processes, like photo-excitation and -deexcitation, internal conversion, excitation energy transfer and electron transfer, are of importance in many areas of physics, chemistry and biology. For the understanding of such processes, detailed knowledge of excitation energies, potential energy surfaces and excited state properties of the involved molecules is an essential prerequisite. To obtain these informations, quantum chemical calculations are required. Several quantum chemical methods exist which allow for the calculation of excited states. Most of these methods are computationally costly what makes them only applicable to small molecules. However, many biological systems where photo-processes are of interest like light-harvesting complexes in photosynthesis or the reception of light in the human eye by rhodopsin are quite large. For large systems, however, only few theoretical methods remain applicable. The currently most widely used method is time-dependent density functional theory (TD-DFT), which can treat systems of up to 200–300 atoms with the excitation energies of some excited states exhibiting errors of less than 0.5 eV. Yet, TD-DFT has several drawbacks. The most severe failure of TD-DFT is the false description of charge transfer states which is particularly problematic in case of larger systems where it yields a multitude of artificially low-lying charge transfer states. But also Rydberg states and states with large double excitation character are not described correctly. Still, if these deficiencies are kept in mind during the interpretation of results, TD-DFT is a useful tool for the calculation of excited states. In my thesis, TD-DFT is applied in investigations of excitation energy and electron transfer processes in light-harvesting complexes. Since light-harvesting complexes, which consist of thousands of atoms, are by far too large to be calculated, model complexes for the processes of interest are constructed from available crystal structures. The model complexes are used to calculate potential energy curves along meaningful reaction coordinates. Artificial charge transfer states are corrected with the help of the so-called ∆DFT method. The resulting potential energy curves are then interpreted by comparison with experimental results. For the light-harvesting complex LH2 from purple bacteria the experimentally observed formation of carotenoid radical cations is studied. It is shown that the carotenoid radical cation is formed most likely via the optically forbidden S1 state of the carotenoid. In light-harvesting complex LHC-II of green plants the fast component of the so-called non-photochemical quenching (NPQ) is investigated. Two of several different hypotheses on the mechanism of NPQ, which have been proposed recently, are studied in detail. The first one suggests that NPQ proceeds via simple replacement of violaxanthin by zeaxanthin in the binding pocket in LHC-II. However, the calculated potential energy curves exhibit no difference between violaxanthin and zeaxanthin in the binding pocket. In combination with experimental results it is thus shown that simple replacement alone does not mediate NPQ in LHC-II. The second hypothesis proposes conformational changes of LHC-II that lead to quenching at the central lutein and chlorophyll molecules during NPQ. My TD-DFT calculations demonstrate that if this mechanism is operative, only the lutein 1 which is one of two central luteins present in LHC-II can take part in the quenching process. This is corroborated by recent experiments. Though several conclusions can be drawn from the investigations using TD-DFT, the interpretability of the results is limited due to the deficiencies of the method and of the models. To overcome the methodological deficiencies, more accurate methods have to be employed. Therefore, the so-called algebraic diagrammatic construction scheme (ADC) is implemented. ADC is a widely overlooked ab initio method for the calculation of excited states, which is based on propagator theory. Its theoretical derivation proceeds via perturbation expansion of the polarization propagator, which describes electronic excitations. This yields separate schemes for every order of perturbation theory. The second order scheme ADC(2), which is employed here, is the equivalent to the Møller-Plesset ground state method MP(2), but for excited states. It represents the computationally cheapest excited state method which can correctly describe doubly excited states, as well as Rydberg and charge transfer states. The quality of ADC(2) results is demonstrated in calculations on linear polyenes which serve as model systems for the larger carotenoid molecules. The calculations show that ADC(2) describes the three lowest excited states of polyenes sufficiently well, particularly the optically forbidden S1 state which is known to possess large double excitation character. Yet, the applicability of the method is limited compared to TD-DFT due to the much larger computational requirements. To facilitate the calculation of larger systems with ADC(2) a new variant of the method is developed and implemented. The variant employs the short-range behavior of electron correlation to reduce the computational effort. As a first step, the working equations of ADC(2) are transformed into a basis of local orbitals. In this basis negligible contributions of the equations which are due to electron correlation can be identified based on the distances of local orbitals. A so-called “bumping” scheme is implemented which removes the negligible parts during a calculation. This way, the computation times as well as the disk space requirements can be reduced. With the “bumping” scheme several new parameters are introduced that regulate the amount of “bumping” and thereby the speed and the accuracy of computations. To determine useful values for the parameters an evaluation is performed using the linear polyene octatetraene as test molecule. From the evaluation an optimal set of parameter values is obtained, so that the computation times become minimal, while the errors in the excitation energies due to the “bumping” do not exceed 0.15 eV. With further calculations on various molecules of different sizes it is tested if these parameter values are universal, i.e. if they can be used for all molecules. The test calculations show that the errors in the excitation energies are below 0.15 eV for all test systems. Additionally, no trend is visible for the errors that their magnitude might depend on the system. In contrast, the amount of disregarded contributions in the calculations increases drastically with growing system size. Thus, the local variant of ADC(2) can be used in future to reliably calculate excited states of systems which are not accessible with conventional ADC(2).
Die Arachidonsäurekaskade spielt bei Entzündungsprozessen und der Schmerzentstehung eine wichtige Rolle. Deren primäre Produkte, die Leukotriene und die Prostaglandine, sind entzündungsfördernde Mediatoren und nehmen Einfluss auf den Entzündungs-auflösendenprozess und sind bei einer Dysregulation für diverse Erkrankungen wie z.B. Asthma bronchiale und allergische Rhinitis mitverantwortlich. Die Kaskade gliedert sich mit ihren beiden Hauptenzymen, Cyclooxygenase und 5-Lipoxygenase (5-LO), in zwei Wege auf. Beide Enzyme sind außerdem in der Lage entzündungsauflösenden Mediatoren zu bilden. Die Mediatoren wie z.B. Lipoxin können im Zellstoffwechsel einerseits über die Lipoxygenase-Route, oder andererseits wie „aspirin-triggered“-Lipoxin von der durch geeignete Wirkstoffe acetylierten Cyclooxygenase-2 (COX-2) katalysiert werden. Diese Mediatoren werden benötigt, um (chronische) Entzündungen und beschädigtes Gewebe zurück zur Homöostase zu führen.
Die Pharmakotherapie chronisch entzündlicher Erkrankungen mit guter Wirksamkeit und verträglichem Profil bei Langzeiteinnahme stellt jedoch eine Herausforderung dar. Die Therapie verzögern oft, z. B bei Einnahme von nicht-steroidalen Antirheumatika (NSAR), die Entzündungsauflösung, da die Bildung von entzündungshemmenden und entzündungs-auflösenden Lipidmediatoren gehemmt werden. Die gezielte Modulation und Einflussnahme auf die Arachidonsäurekaskade an einem der beiden Enzyme, stellt daher einen guten Ansatz für eine verbesserte Therapiemöglichkeit von (chronischen) entzündlichen Krankheiten dar. Diese Arbeit beschäftigt sich mit der Synthese von Modulatoren und Inhibitoren der Arachidonsäurekaskade. Zum einen befasst sie sich mit der Entwicklung von irreversiblen COX-2-acetylierenden Substanzen als neues anti-entzündliches und entzündungsauflösendes Prinzip. Zum anderen mit der Untersuchung der Struktur-Wirkungsbeziehung (SAR) von 2-Aminothiazolen als direkte 5-LO-Inhibitoren ausgehend von SKI-II, welches zuvor als Leitstruktur zur Entwicklung von 5-LO-Inhibitoren entdeckt wurde.
Als Leitstrukturen für die irreversiblen COX-2-acetylierenden Substanzen wurden bekannte COX-2 selektive Substanzen ausgewählt sowie vereinzelte nicht-selektive NSAR. Es wurden an der COX-2 Kristallstruktur Docking-Studien durchgeführt, um die geeignetsten Positionen für die Einführung einer (labilen) Acetylgruppe zu identifizieren. Aufgrund dieser Studien wurden drei Positionen ausgewählt zur Derivatisierung. Es wurden daraufhin zahlreiche Derivate synthetisiert von Celecoxib, Valdecoxib, Rofecoxib, Etericoxib, als Vertreter der (COX-2) selektive Inhibitoren, sowie von Acetylsalicylsäure, Diclofenac und Nimesulid-Analoga als Vertreter der nicht-selektiven NSARs. Zusätzlich wurden Derivate synthetisiert mit Michael-Akzeptoren als kovalente bindende Komponente. Alle synthetisierten Substanzen wurden sukzessiv auf ihre COX inhibitorischen Eigenschaften hin untersucht und auf COX-2 Selektivitäten überprüft. Weiterhin wurden von allen Derivaten Auswaschungs-Studien durchgeführt als Vorversuche welche Derivate eine irreversible COX-2-Inhibition hervorrufen. In den Vorversuchen zeigte die Verbindung ST-1650 am deutlichsten eine COX-2-Selektivität sowie eine starke irreversible Inhibition der COX-2. Die Verbindung ST-1650 wurde weiterhin auf indirekte Hinweise zur Entstehung von heilungsfördernden Mediatoren untersucht anhand von: M1-Macrophagen Polarisation und einem Schmerzmodell, dem Zymosan-Überempfindlichkeit Pfotenmodell. Im Makrophagen-Modell konnte ST-1650 keine Phänotypverschiebung hinzu entzündungsauflösenden M2-Makrophagen bewirken, sowie in den Schmerzmodellen leider keine schnellere Schmerzauflösung als die Kontrollgruppe. Ob diese Effekte durch mangelnde oder zu geringer Entstehung von entzündungshemmenden Mediatoren zurückzuführen ist, ist noch unklar.
Für die SAR der 2-Aminothiazole als direkte 5-LO-Inhibitoren wurden über 60 Verbindungen synthetisiert und untersucht. Zu Beginn erfolgte eine Optimierung der Grundstruktur als 5-LO-Inhibitor. Es wurden die Einflüsse der Substituenten des Thiazolsrings und des Aminolinkers auf die 5-LO-Aktivität ermittelt, um die SAR initialer Arbeiten zu vertiefen. Nach der SAR-Untersuchung im intakten Zellsystem konnten durch Kombination bevorzugter Strukturelemente die zwei Verbindungen ST-1853 und ST-1906, als neue potente 5-LO-Inhibitoren entwickelt werden, die sich als nicht-toxisch herausstellten. Diese beiden 5-LO-Inhibitoren wirken um einen Faktor 10 potenter und sind weniger toxisch verglichen mit der Leitstruktur SKI-II. ST-1853 wurde innerhalb der Arachidonsäurekaskade auch auf Off-targets getestet, deren Aktivitäten sie erst bei 100-fach höherer Konzentration beeinflusst, sowie in humanem Vollblut, wo sie sich ihre 10-fach bessere Wirksamkeit im Vergleich zu SKI-II bestätigte. Darüber hinaus erwies sich ST-1853 bei den ersten Überprüfungen seiner Stabilität unter physiologischen Bedingungen wie bei der in vitro Metabolisierung durch Rattenlebermikrosomen als ausreichend stabil und daher zur weiteren Charakterisierung gut geeignet.