Refine
Year of publication
Document Type
- Article (1098)
- Doctoral Thesis (723)
- Book (46)
- Preprint (26)
- Contribution to a Periodical (14)
- Conference Proceeding (11)
- Report (11)
- Review (9)
- diplomthesis (3)
- Part of a Book (2)
Has Fulltext
- yes (1949)
Is part of the Bibliography
- no (1949)
Keywords
- crystal structure (37)
- Crystal Structure (25)
- Synthesis (15)
- ESR Spectra (14)
- RNA (14)
- NMR-Spektroskopie (12)
- hydrogen bonding (11)
- IR Spectra (10)
- NMR spectroscopy (10)
- RNS (9)
Institute
- Biochemie und Chemie (1949) (remove)
Das extrem thermophile Eubakterium Thermus thermophilus ist in den letzten Jahren zu einem Modell für thermophile Organismen geworden und verdankt seinen Statuszum Teil seiner hohe Wachstumsrate, den guten Zellerträgen und der konstitutivenExpression eines natürlichen Kompetenzapparates, der seine genetische Manipulation ermöglicht. Die Verfügbarkeit von kompatiblen Plasmiden und bis zu vier thermostabilen Antibiotikaresistenzmarkern konnten den Wert des Organismus in Hinblick auf biotechnologische Anwendungen noch weiter steigern und tatsächlich besteht nach wie vor ein ungebrochenes Interesse an der Struktur- und Funktionsaufklärung thermophiler Proteine. Der Focus der hier vorliegenden Arbeit richtete sich auf eine der insgesamt zwei terminalen Oxidasen der Atmungskette von T. thermophilus, die Cytochrom ba3 Oxidase. Es wurden verschiedene rekombinante Varianten des Proteins, die sich hinsichtlich der Position und Länge des verwendeten Histidin-Tags unterschieden, kloniert, exprimiert und aufgereinigt. Das Einfügen eines internen His12-Tags in einen periplasmatischen Loop zwischen den Transmembranhelices IV und V führte zu einer rekombinanten Version der Oxidase, die in ihren Eigenschaften dem nativen Wildtyp entsprach und sich durch die in dieser Arbeit etablierte Aufreinigungsstrategie relativ schnell, in guten Ausbeuten und hoher Reinheit aufreinigen ließ. Weiterhin konnten verschiedene Punktmutationen von möglicherweise am Elektronentransfer beteiligten Aminosäureresten generiert und die resultierenden Proteine aufgereinigt und über ihre enzymatische Aktivität charakterisiert werden. Eine weiterführende Charakterisierung der Mutanten erfolgte im Rahmen einer Kooperation und ist bisher noch nicht abgeschlossen. Das Herzstück dieser Arbeit machte jedoch die Definition der Transkriptionseinheit der Cytochrom ba3 Oxidase und die sich daraus ergebenden Fragestellungen aus. So konnte gezeigt werden, dass das ba3 Operon zusätzlich zu den Strukturgenen der dort kodierten Untereinheiten noch mindestens ein, höchst wahrscheinlich jedoch zwei zusätzliche Gene enthält: cbaX und cbaY. Bioinformatische Charakterisierungen ordneten CbaY der diversen Gruppe von sekundären Transportern zu, und es konnte experimentell gezeigt werden, dass seine Anwesenheit für die Expression der Cytochrom ba3 Oxidase förderlich ist. CbaX hingegen konnte über die durchgeführte Homologiesuche keine Funktion zugeordnet werden; uncharakterisierte Homologe waren einzig in der Thermaceae Gruppe zu finden. Durch Deletions- und Komplementationsstudien konnte dem Protein eine entscheidende Rolle in der Assemblierung der ba3 Oxidase bescheinigt werden. CbaX scheint eine zentrale Aufgabe bei der Häm a Insertion in Untereinheit I zu spielen und könnte, ohne Sequenzhomologie aufzuweisen, die Rolle des Surf1-Proteins übernehmen, welches in den sequenzierten Organismen der Thermaceae Gruppe nicht konserviert ist. Die homologe Expression und Aufreinigung von CbaX führte nicht zur erwarteten Ausbeute und Reinheit des Proteins, konnte aber durch immunologische Experimente eine potentielle Interaktion von CbaX und der Cytochrom ba3 Oxidase nachweisen.
Die Atmungskette in der inneren Membran der Mitochondrien besteht aus fünf großen Enzymkomplexen. Die NADH-Dehydrogenase (I), Succinat-Dehydrogenase (II, indirekt), Cytochrom c-Reduktase (III) und Cytochrom c-Oxidase (IV) nutzen die Energie aus Elektronentransfers zum Aufbau eines Protonengradienten über die innere Mitochondrienmembran. Dieser wird anschließend von der FOF1-ATP-Synthase (V) als Energiequelle zur Phospho-rylierung von ADP verwendet. Für lange Zeit bestand eine Kontroverse, wie diese Proteine in der Membran organisiert sind. Nach dem „random collision“-Modell diffundieren sie frei als Einzelmoleküle und treffen sich nur zufällig, während sie nach dem „solid state“-Modell größere funktionelle Einheiten bilden. In den letzten Jahren gab es vermehrt Hinweise darauf, dass das letztere Modell das zutreffendere ist, da tatsächlich sogenannte Superkomplexe der Atmungskette in aktiver Form isoliert werden konnten. Schließlich konnte 2007 die erste drei-dimensionale Rekonstruktion eines Superkomplexes, bestehend aus Komplex I, dimerem Komplex III und Komplex IV publiziert werden. Aufgrund der Einschränkungen der verwendeten Negativkontrasttechnik hatte dieses Modell allerdings nur eine niedrige Auflösung und repräsentierte durch die Dehydrierung keinen nativen Zustand. Dadurch ließen sich die Strukturen der einzelnen Komplexe nur ungenau einpassen. Um diese Probleme zu umgehen, sollte eine Struktur unter Kryo-Bedingungen rekonstruiert werden. Um die für Kryo-EM benötigte größere Ausbeute und höhere Konzentration zu erzielen, wurde ein neues Reinigungsprotokoll für die Superkomplexe etabliert. Die wesentlichen Punkte darin sind der Austausch des für die Solubilisierung verwendeten Digitonins durch Amphipol A8-35 mittels ?-Cyclodextrin und eine anschließende Dichtegradienten-Ultrazentrifugation. Im BN-PAGE zeigten die auf diese Art gereinigten Superkomplexe das gleiche Banden- und Aktivitätsmuster wie Proben in Digitonin. Auch bei einer Einzelpartikelanalyse nach Negativ-kontrastfärbung konnten keine Unterschiede festgestellt werden und die Partikel zeigten ähnliche Orientierungen wie in der vorherigen Studie. Einige neue Ansichten ließen sich jedoch nicht zuordnen und stellten eventuell eine Verunreinigung mit größeren Superkomplexen dar. Da auch bei der Reinigung mit Amphipol die Proteinkonzentration letztlich nicht wesentlich erhöht werden konnte und sich die Superkomplexe nicht wie für Kryo-EM erforderlich in einen löchrigen Kohlefilm einlagerten, wurden die Proteine auf einem durchgehenden Kohlefilm in einer dünnen Pufferschicht vitrifiziert. Die dabei zu beobachtenden bevorzugten Orientierungen, sollten auch die Unterscheidung von verschiedenen Populationen von Superkomplexen erleichtern. Eine erste 3D-Rekonstruktion wurde mit Hilfe der „random conical tilt“-Methode errechnet. Dieses Modell wurde durch „projection matching“ bis zu einer Auflösung von 19 Å verfeinert, womit die Auflösung fast doppelt so hoch ist, wie bei der Rekonstruktion aus Negativ-kontrastfärbung (36 Å). Die Struktur repräsentiert einen natürlichen Zustand des Proteins und zeigt Details wie einzelne Domänen, Spalten zwischen Domänen und eine starke Krümmung des Membranarms von Komplex I, die zuvor nicht erkenn-bar waren. Die Amphipole bilden einen Gürtel um den Transmembranbereich. Die Röntgenstrukturen von Komplex I, III2 und IV konnten mit großer Präzision in die Dichtekarte eingepasst werden. Die wenigen kleinen Unterschiede zwischen Röntgenstrukturen und EM-Dichtekarte sind auf leichte Konformations-änderungen zurückzuführen. Die Kryo-EM-Rekonstruktion ist erheblich größer als die Rekonstruktion aus Negativfärbung, wodurch die enthaltenen Komplexe nur noch wenige punktuelle Kontakte haben. In den Zwischenräumen könnte eine spezielle Lipidumgebung die kleinen Elektronenüberträger Ubichinon und Cytochrom c in den Superkomplex integrieren. Ihre Bindestellen sind jeweils zueinander orientiert und die geringen Abstände, die zum ersten Mal bestimmt werden konnten, stützen die Hypothese eines gerichteten Substrattransfers über kurze Entfernungen. Von den möglichen Übertragungswegen scheint der kürzere mit weniger Transferreaktionen bevorzugt zu werden. Während der Entwicklung des neuen Reinigungsprotokolls für die Superkomplexe konnte zusätzlich eine neue Methode zur Rekonstitution von Membranproteinen entwickelt werden. Die solubilisierten Proteine werden dabei in Dichtegradienten mit steigenden Konzentrationen von ansolubilisierten Liposomen und Cyclodextrin zentrifugiert, wodurch ihnen langsam das Detergens entzogen und durch Lipid ersetzt wird. Proteoliposomen werden gleichzeitig von überschüssigem Lipid und Cyclodextrin-Detergens-Komplexen getrennt.
Almost two decades ago, microRNAs were discovered as novel posttranscriptional regulators of gene expression. Since then, research efforts have uncovered their involvement in the control of various cellular processes including migration, proliferation and cell survival. Even more complex events, such as the formation of new blood vessels or organ development, have been shown to be tightly regulated and orchestrated by microRNAs. Due to their crucial regulatory role in tissue homeostasis in vertebrates, it does not come as a big surprise that dysregulated microRNA ex-pression is associated with pathology of diverse diseases. In this regard, the miR-17-92 cluster is a prime example since it has become famous for its amplified expression in tumours and its on-cogenic potential. Our lab demonstrated the expression of the members of the miR-17-92 cluster, namely miR-17, -18a, -19a, -20a, -19b and -92a, in endothelial cells and provided evidence for the anti-angiogenic activity of miR-92a in ECs as well as its important regulatory role in tissue re-covery after ischemia. In this work we addressed the function of the remaining members of the miR-17-92 cluster, i.e. miR-17, miR-18a, miR-19a and miR-20a, in endothelial cells and angiogenesis. Surprisingly, the individual members all displayed anti-angiogenic properties in endothelial cells in vitro, although overexpression of the whole cluster in transformed colonocytes was shown to promote tumour angiogenesis in a mouse model. In this context, we provide evidence that the individual miRs differentially affect the paracrine angiogenic activity of endothelial and tumour cells. Moreover, Antagomir-mediated inhibition of miR-17/20 in a mouse tumour model did not affect tumour angi-ogenesis, although miR-17/20 inhibition profoundly increased vascularization of Matrigel plugs. Thus, our research efforts suggest a differential involvement of the members of the miR-17-92 cluster in physiological and tumour angiogenesis. Additionally, we identified Janus kinase (JAK) 1 as a novel miR-17 target in endothelial cells and demonstrated the involvement of JAK1 in angio-genesis and in the phosphorylation of STAT3 in response to different cytokines in vitro. Overall, inhibition of specific members of the miR-17-92 cluster might represent an attractive therapeutic strategy to enhance angiogenesis in ischemic diseases. In the second part of the present work we investigated the therapeutic value of Antagomir-mediated microRNA inhibition in animal models of pulmonary arterial hypertension. Collectively, inhibition of miR-17 by the respective Antagomir revealed a significant improvement of pulmonary hemodynamics and cardiac function in both the chronic hypoxia mouse model and the mono-crotaline-induced lung injury rat model. Histomorphometric analysis of the lungs of the pulmonary hypertensive mice and rats uncovered a significant reduction of disease associated musculariza-tion of pulmonary arteries in Antagomir-17 treated animals compared to the control animals indicating interference with smooth muscle cell proliferation or survival. Probing of lung tissue of the pulmonary hypertensive rats for selected miR-17 targets uncovered a profound increase in the expression of the cyclin dependent kinase inhibitor p21 in the Antagomir-17 treated rats suggest-ing that inhibition of miR-17 impairs proliferation by impeding cell cycle progression. Analysis of miR-17 function in human smooth muscle cells in vitro corroborated the results from the animal experiments by demonstrating pro-proliferative activity of miR-17 and decreased levels of p21 in these cells. Collectively, our results indicate that Antagomir-17 improves pulmonary hemodyna-mics and cardiac function by interfering with vascular remodelling within the lung. Hence, inhibi-tion of miR-17 might be of therapeutic value to ameliorate the disease pattern in pulmonary arte-rial hypertension. In summary, the present work provides insights into the regulatory functions of members of the miR-17-92 cluster, especially miR-17, in blood vessels and suggests that specific inhibition of members of the miR-17-92 cluster might be a novel option to treat vascular diseases.
Bacterial porin disrupts mitochondrial membrane potential and sensitizes host cells to apoptosis
(2009)
The bacterial PorB porin, an ATP-binding beta-barrel protein of pathogenic Neisseria gonorrhoeae, triggers host cell apoptosis by an unknown mechanism. PorB is targeted to and imported by host cell mitochondria, causing the breakdown of the mitochondrial membrane potential (delta psi m). Here, we show that PorB induces the condensation of the mitochondrial matrix and the loss of cristae structures, sensitizing cells to the induction of apoptosis via signaling pathways activated by BH3-only proteins. PorB is imported into mitochondria through the general translocase TOM but, unexpectedly, is not recognized by the SAM sorting machinery, usually required for the assembly of beta-barrel proteins in the mitochondrial outer membrane. PorB integrates into the mitochondrial inner membrane, leading to the breakdown of delta psi m. The PorB channel is regulated by nucleotides and an isogenic PorB mutant defective in ATP-binding failed to induce delta psi m loss and apoptosis, demonstrating that dissipation of delta psi m is a requirement for cell death caused by neisserial infection.
Background: Threonine Aspartase 1 (Taspase1) mediates cleavage of the mixed lineage leukemia (MLL) protein and leukemia provoking MLL-fusions. In contrast to other proteases, the understanding of Taspase1's (patho)biological relevance and function is limited, since neither small molecule inhibitors nor cell based functional assays for Taspase1 are currently available. Methodology/Findings: Efficient cell-based assays to probe Taspase1 function in vivo are presented here. These are composed of glutathione S-transferase, autofluorescent protein variants, Taspase1 cleavage sites and rational combinations of nuclear import and export signals. The biosensors localize predominantly to the cytoplasm, whereas expression of biologically active Taspase1 but not of inactive Taspase1 mutants or of the protease Caspase3 triggers their proteolytic cleavage and nuclear accumulation. Compared to in vitro assays using recombinant components the in vivo assay was highly efficient. Employing an optimized nuclear translocation algorithm, the triple-color assay could be adapted to a high-throughput microscopy platform (Z'factor = 0.63). Automated high-content data analysis was used to screen a focused compound library, selected by an in silico pharmacophor screening approach, as well as a collection of fungal extracts. Screening identified two compounds, N-[2-[(4-amino-6-oxo-3H-pyrimidin-2-yl)sulfanyl]ethyl]benzenesulfonamideand 2-benzyltriazole-4,5-dicarboxylic acid, which partially inhibited Taspase1 cleavage in living cells. Additionally, the assay was exploited to probe endogenous Taspase1 in solid tumor cell models and to identify an improved consensus sequence for efficient Taspase1 cleavage. This allowed the in silico identification of novel putative Taspase1 targets. Those include the FERM Domain-Containing Protein 4B, the Tyrosine-Protein Phosphatase Zeta, and DNA Polymerase Zeta. Cleavage site recognition and proteolytic processing of these substrates were verified in the context of the biosensor. Conclusions: The assay not only allows to genetically probe Taspase1 structure function in vivo, but is also applicable for high-content screening to identify Taspase1 inhibitors. Such tools will provide novel insights into Taspase1's function and its potential therapeutic relevance.
Background: ClC-7 is a ubiquitous transporter which is broadly expressed in mammalian tissues. It is implied in the pathogenesis of lysosomal storage disease and osteopetrosis. Because of its endosomal/lysosomal localization it is still poorly characterized. Methodology/Principal Findings: An electrophysiological characterization of rat ClC-7 using solid-supported membrane-based electrophysiology is presented. The measured currents show the characteristics of ClC-7 and confirm its function as a Cl−/H+-antiporter. We have used rat ClC-7 in CHO cells as a model system to investigate the functionality and cellular localization of the wt transporter and its variant G213R ClC-7 which is the analogue of human G215R ClC-7 responsible for autosomal dominant osteopetrosis type II. Our study shows that rat G213R ClC-7 is functional but has a localization defect in CHO cells which prevents it from being correctly targeted to the lysosomal membrane. The electrophysiological assay is tested as a tool for drug discovery. The assay is validated with a number of drug candidates. It is shown that ClC-7 is inhibited by DIDS, NPPB and NS5818 at micromolar concentrations. Conclusions/Significance: It is suggested that the scenario found in the CHO model system also applies to the human transporter and that mislocalization rather than impaired functionality of G215R ClC-7 is the primary cause of the related autosomal dominant osteopetrosis type II. Furthermore, the robust solid-supported membrane-based electrophysiological assay is proposed for rapid screening for potential ClC-7 inhibitors which are discussed for treatment of osteoporosis.
Reciprocal t(9;22) ABL/BCR fusion proteins: leukemogenic potential and effects on B cell commitment
(2009)
Background: t(9;22) is a balanced translocation, and the chromosome 22 breakpoints (Philadelphia chromosome – Ph+) determine formation of different fusion genes that are associated with either Ph+ acute lymphatic leukemia (Ph+ ALL) or chronic myeloid leukemia (CML). The "minor" breakpoint in Ph+ ALL encodes p185BCR/ABL from der22 and p96ABL/BCR from der9. The "major" breakpoint in CML encodes p210BCR/ABL and p40ABL/BCR. Herein, we investigated the leukemogenic potential of the der9-associated p96ABL/BCR and p40ABL/BCR fusion proteins and their roles in the lineage commitment of hematopoietic stem cells in comparison to BCR/ABL. Methodology: All t(9;22) derived proteins were retrovirally expressed in murine hematopoietic stem cells (SL cells) and human umbilical cord blood cells (UCBC). Stem cell potential was determined by replating efficiency, colony forming - spleen and competitive repopulating assays. The leukemic potential of the ABL/BCR fusion proteins was assessed by in a transduction/transplantation model. Effects on the lineage commitment and differentiation were investigated by culturing the cells under conditions driving either myeloid or lymphoid commitment. Expression of key factors of the B-cell differentiation and components of the preB-cell receptor were determined by qRT-PCR. Principal Findings: Both p96ABL/BCR and p40ABL/BCR increased proliferation of early progenitors and the short term stem cell capacity of SL-cells and exhibited own leukemogenic potential. Interestingly, BCR/ABL gave origin exclusively to a myeloid phenotype independently from the culture conditions whereas p96ABL/BCR and to a minor extent p40ABL/BCR forced the B-cell commitment of SL-cells and UCBC. Conclusions/Significance: Our here presented data establish the reciprocal ABL/BCR fusion proteins as second oncogenes encoded by the t(9;22) in addition to BCR/ABL and suggest that ABL/BCR contribute to the determination of the leukemic phenotype through their influence on the lineage commitment.
Background: The human pathogen Helicobacter pylori (H. pylori) is a main cause for gastric inflammation and cancer. Increasing bacterial resistance against antibiotics demands for innovative strategies for therapeutic intervention. Methodology/Principal Findings: We present a method for structure-based virtual screening that is based on the comprehensive prediction of ligand binding sites on a protein model and automated construction of a ligand-receptor interaction map. Pharmacophoric features of the map are clustered and transformed in a correlation vector (‘virtual ligand’) for rapid virtual screening of compound databases. This computer-based technique was validated for 18 different targets of pharmaceutical interest in a retrospective screening experiment. Prospective screening for inhibitory agents was performed for the protease HtrA from the human pathogen H. pylori using a homology model of the target protein. Among 22 tested compounds six block E-cadherin cleavage by HtrA in vitro and result in reduced scattering and wound healing of gastric epithelial cells, thereby preventing bacterial infiltration of the epithelium. Conclusions/Significance: This study demonstrates that receptor-based virtual screening with a permissive (‘fuzzy’) pharmacophore model can help identify small bioactive agents for combating bacterial infection.
Chlamydia are obligate intracellular bacteria that cause variety of human diseases. Host cells infected with Chlamydia are protected against many different apoptotic stimuli. The induction of apoptosis resistance is thought to be an important immune escape mechanism allowing Chlamydia to replicate inside the host cell. Infection with C. trachomatis activates the Raf/MEK/ERK pathway and the PI3K/AKT pathway. Here we show that inhibition of these two pathways by chemical inhibitors sensitized C. trachomatis infected cells to granzyme B-mediated cell death. Infection leads to the Raf/MEK/ERK-mediated up-regulation and PI3K-dependent stabilization of the anti-apoptotic Bcl-2 family member Mcl-1. Consistently, interfering with Mcl-1 up-regulation sensitized infected cells for apoptosis induced via the TNF receptor, DNA damage, granzyme B and stress. Our data suggest that Mcl-1 up-regulation is primarily required to maintain apoptosis resistance in C. trachomatis-infected cells.
The continuous progress in the structural and functional characterization of aquaporins increasingly attracts attention to study their roles in certain mammalian diseases. Although several structures of aquaporins have already been solved by crystallization, the challenge of producing sufficient amounts of functional proteins still remains. CF (cell free) expression has emerged in recent times as a promising alternative option in order to synthesize large quantities of membrane proteins, and the focus of this report was to evaluate the potential of this technique for the production of eukaryotic aquaporins. We have selected the mouse aquaporin 4 as a representative of mammalian aquaporins. The protein was synthesized in an E. coli extract based cell-free system with two different expression modes, and the efficiencies of two modes were compared. In both, the P-CF (cell-free membrane protein expression as precipitate) mode generating initial aquaporin precipitates as well as in the D-CF (cell-free membrane protein expression in presence of detergent) mode, generating directly detergent solubilized samples, we were able to obtain mg amounts of protein per ml of cell-free reaction. Purified aquaporin samples solubilized in different detergents were reconstituted into liposomes, and analyzed for the water channel activity. The calculated Pf value of proteoliposome samples isolated from the D-CF mode was 133 µm/s at 10°C, which was 5 times higher as that of the control. A reversible inhibitory effect of mercury chloride was observed, which is consistent with previous observations of in vitro reconstituted aquaporin 4. In this study, a fast and convenient protocol was established for functional expression of aquaporins, which could serve as basis for further applications such as water filtration.