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In recent publications Otto Hahn, last president of the Kaiser-Wilhelm-Gesellschaft, is charged with having favoured the Nazi regime, before World War II by politically purging institutes and suppressing Lise Meitner’s contribution to the discovery of nuclear fission, and during the war by contributing to the German war efforts, mainly to the development of nuclear weapons. These charges, however, which partly concern also the Kaiser-Wilhelm-Gesellschaft and some of their institutes are based on ignorance or disregard of the historical sources.
The development of resistance to multiple drugs is a major problem in treatment of number of infectious diseases and cancer. The phenomenon of multidrug resistance (MDR) is based on the synergetic interplay of a number of mechanisms such as target inactivation, target alteration, prevention of drug influx as well as active extrusion of drugs from the cell. The latter is mediated by over-expression of multidrug efflux pumps. The first discovered and the best characterized until now the human MDR transporter is P-glycoprotein. It is a member of the ATP binding cassette (ABC) superfamily and acts as an active transporter for a variety of anticancer agents using the energy released by ATP hydrolysis. The closest structure and functional homologue of P-glycoprotein found in bacteria is LmrA from Lactococcus lactis. The major goals of this work are to establish the selective isotope labelling of LmrA in Lactococcus lactis, to optimize LmrA sample preparation for solid-state NMR, and finally to perform first solidstate NMR investigations on LmrA shedding light on its catalytic cycle and substrate binding. For a long time the solid-state NMR applications to biological science has been limited to investigation of small molecules mostly. Recently, the solid-state NMR methods have shown potential for structuraland non-perturbing, site directed functional studies of large membrane proteins as well as ligands bound to them. However, to our knowledge neither selective isotope amino acid labelling of any ABC transporter, nor NMR investigations on full-length ABC transporter have been reported to date. Solidstate NMR experiments on a membrane protein require reconstitution of purified proteins into a membrane environment at a high density and either isotopic enrichment of the protein or bound drugs or inhibitors. Therefore, the large quantities of LmrA reconstituted at a high density in lipid membranes, sufficient for advanced NMR studies have been produced and its functional state in reconstituted form has been assessed. In the next step, a procedure for cost effective selective amino acids isotope labelling of LmrA in Lactococcus lactis has been established. Using this protocol deuterium alanine labelled LmrA reconstituted into E. coli liposomes has been prepared. Deuterium NMR has been used extensively to assess the proteins dynamics in past. However, it has never been applied to ABC transporter. Here, we report 2H NMR on selective alanine isotope labelled LmrA which has been used to shed light on the dynamics changes in the protein occurred under AMP-PNP, non-hydrolysable ATP analogue, binding and in ATP/ADP-Vanadate trapped state. It has been found that the major conformation changes affecting the protein motional characteristics occur in the ATP binding domains but not in the transmembrane domains. Additionally, the binding of several substrates to LmrA has been studied by fluorescence spectroscopy as well as by 19F and 31P solid-state NMR. The binding constants for several LmrA substrates have been obtained by fitting the concentration dependant tryptophan intrinsic fluorescence quenching curves. Based on the fluorescence studies and solid-state NMR data, the conformation changes in LmrA under substrate binding have been discussed. In addition, the preferable location of nine LmrA and P-glycoprotein substrates within the model membrane has been studied via 1H-MAS-NOESY-NMR. The results have been interpreted with respect to LmrA and P-glycoprotein binding site accessibility from the membrane interface region.
The Na+/proline transporter of E. Coli (PutP) is responsible for the uptake of proline which is subsequently used not only as a carbon and nitrogen source and a constituent of proteins but also as a particularly effective osmoprotectant. However, for a long time there was little known about the single steps in the reaction cycle of this transporter and only few details about its structure-function relationship are available. Aim of the present work was to achieve a deeper understanding about the kinetic properties of the Na+/proline transporter and to get insights into the structure-function relationship of the substrate binding. To answer these questions different techniques were used. By using the novel SSM technique combining the preparation of PutP proteoliposomes it was possible to demonstrate for the first time the electrogenic substrate binding to PutP transporter. Due to rapid solution exchange measurements on the SSM it was additionally possible to obtain time resolved information about the kinetic details of the cytoplasmic substrate binding sites which were not available by previous steady state and equilibrium binding measurements. Pre-steady-state charge translocation was observed after rapid addition of one or both of the cosubstrates Na+ and/or proline to the PutP-WT proteoliposomes adsorbed on the SSM. Thereby it was possible to link the observed electrical signals with the binding activity of PutP. The observed Na+ and/or proline induced charge displacement were assigned to an electrogenic Na+ and/or proline binding process at the cytoplasmic face of the enzyme with a rate constant of k > 50 s-1 proceeding the rate limiting step of the reaction cycle. Furthermore, based on the kinetic analysis of the electrical signals obtained from the measurements of PutP on SSM, the following characteristics of the substrates binding in PutP were deduced: (1) both Na+ and proline can bind individually to the transporter. Under physiological conditions, an ordered binding mechanism prevails; while at sufficiently high concentrations, each substrate can bind in the absence of the other; (2) substrate binding is electrogenic not only for Na+, but also for the uncharged cosubstrate proline. The charge displacement associated with Na+ binding and proline binding is of comparable size and independent of the presence of the respective cosubstrate. In addition, it was concluded that Na+ accesses its binding site through a high-field access channel resulting in a charge translocation, whereas the binding of the electroneutral proline induces a conformation alteration involving the displacement of charged amino acid residue(s) of the protein; (3) Na+ and proline binding sites interact cooperatively with each other by increasing the affinity and/or the speed of binding of the respective cosubstrate; (4) proline binding proceeds in a two step process: low affinity (~ 0.9 mM) electroneutral substrate binding followed by a nearly irreversible electrogenic conformational transition; (5) membrane impermeable PCMBS inhibits both Na+ and proline binding to the inside-out orientated PutP transporter, indicating that rather than selectively blocking a specific binding site, PCMBS probably locks the enzyme in an inactive state. The possible targets for this SH-reagent are cysteines 281 and 344 located close to the cytoplasmic surface of the protein. Beyond it, transient electrical currents of PutP were also observed on the BLM after rapid addition of proline in the presence of Na+. This was possible by combining the conventional BLM technique with high-speed flash-photolysis of caged-proline. Indeed the signals on the BLM indicate the detection of a different underlying reaction process in comparison to the data achieved by the SSM technique. This has paved the way for supplemental information about the reaction cycle since it was possible to assign the flash-photolysis BLM signals to the proline binding step followed by the internalization of Na+ and proline into the liposome. Thereby it was found, that the presence of Na+ is indispensable and the time constant for the process is ~ 63 ms. Moreover, structure-function information about the Na+ and proline binding sites of PutP was obtained by investigating the functionally important amino acid residues Asp55, Gly63 and Asp187 with site-directed mutagenesis and the combined SSM technique. One finding is that the mutated proteins PutP-D55C and PutP-G63C showed no activity on the SSM. Therefore, it can be assumed that either both Asp55 and Gly63 are crucial for the structure of PutP protein, or they are located at or close to the Na+ and proline binding sites. Furthermore, the results obtained from PutP-D187N and PutP-D187C mutants on SSM suggest that Asp187 of PutP is likely to be involved in the Na+ binding at the cytoplasmic side of the backward running carrier. Taken together the results of the present work have substantially broadened the known picture of the Na+/proline transporter PutP thereby several steps of the reaction cycle were elucidated, and moreover, valuable insights into the structure-function relationship of the transporter have become available.
The technique of site-specific fluorescence labelling with Tetramethylrhodaminemaleimide (TMRM) in combination with two electrode voltage-clamp technique (TEVC), an approach that has been named voltage clamp fluorometry (VCF), has been used in this work to study the Na,K-ATPase. The TMRM dye has the ability to attach covalently to cysteine residues and it responds to changes in the hydrophobicity of its local environment. We exploited this property using a construct of the Na-pump in which the native, extracellularly accessible cysteines were removed and cysteine residues were introduced by site-directed mutagenesis in specific positions of the Na-pump. In this way it was possible to detect site-specific conformational rearrangements of the Na-pump in a time-resolved fashion within a native membrane environment. In particular this technique allows to resolve reactions with low electrogenicity that cannot be satisfactorily analyzed with purely electrophysiological techniques and to identify the conformations of the enzyme under specific ionic composition of the measuring buffers. We used VCF to study the influence that several cations like Na+, K+, NMG+, TEA+ and BTEA+ exert on the distribution of the Na,K-ATPase between several enzymatic intermediates and on some of the reactions related to cation transport. To this end we utilized the mutants N790C in the loop M5-M6 and the mutant E307C, T309C, L311C and E312C in the loop M3-M4. From the correspondence of the fluorescence changes with the activation and inhibition of pumping current, by K+ and ouabain respectively, and from the fact that in Na+/Na+ exchange conditions the voltage distribution of charge movement and fluorescence changes evoked by voltage jumps are in reasonable agreement we conclude that through the fluorescence signals measured from these mutants, we can indeed monitor conformational changes linked to transport activity of the enzyme. For the mutants N790 and L311, it was found that the Na+ dependence of the amplitude and kinetics of the fluorescence signal associated with the E1P-E2P transition is in agreement with the prediction of an access channel model describing the regulation of the access of extracellular Na+ to its binding site. In particular for the mutants E307 and T309 it was found that in Na+/Na+ exchange conditions, the conformational change tracked by the fluorescence was much slower than the charge relaxation at hyperpolarized potentials while the kinetics was very similar at depolarized potentials. This implies that at hyperpolarized potentials the conformational change connected to the E1P-E2P transition does not give a large contribution to the electrogenicity of the process which is also consistent with the access channel model. On the mutant N790C it was found that the external pH does not seem to have any effect on the E1P-E2P equilibrium even if it seems to modulate the fluorescence quantum yield of the dye. Fluorescence quenching experiments with iodide and D2O indicate that at hyperpolarized potentials the local environment of the mutant N790C, experiences a small change in the accessibility to water without major changes in the local electrostatic field ...
Sodium proton antiporters are ubiquitous membrane proteins found in the cytoplasmic and organelle membranes of cells of many different origins, including plants, animals and microorganisms. They are involved in cell energetics, and play primary roles in the homeostasis of intracellular pH, cellular Na+ content and cell volume. Adaptation to high salinity and/or extreme pH in plants and bacteria or in human heart muscles requires the action of such Na+/H+ antiporters. NhaA is the essential Na+/H+ antiporter for pH and Na+ homeostasis (at alkaline pH) in Escherichia coli and many other enterobacteria. NhaA is an electrogenic Na+/H+ antiporter that exchanges 2H+ for 1Na+ (or Li+). NhaA shares with many other prokaryotic and eukaryotic antiporters a very strong dependence on pH. In order to achieve three-dimensional structure of NhaA, the previously described NhaA protein preparation was modified: (i) the wild type bacterial strain (TA16) used for homologous over-expression of NhaA was replaced with a delta nhaA strain (RK20). As a result, the purity and homogeneity of the sample was significantly improved; (ii) the previously two-step purification procedure was shortened to a single step affinity chromatography purification; (iii) a wide-range screening of crystallisation conditions, more than 20,000, was performed; (iv) a Seleno-L-methionine (SeMet) NhaA derivative was produced in order to solve the phases during structure determination. In parallel, attempts of production and crystallisation of co-complexes composed of NhaA and antibody fragments have been made. Four different monoclonal antibodies were available against NhaA. Selected antibody fragments were produced and the stability of the complex analysed. Here, the crystal structure of the pH down-regulated secondary transporter NhaA of Escherichia coli is presented at 3.45 Å resolution. A negatively charged ion funnel opens to the cytoplasm and ends in the middle of the membrane at the putative ion-binding site. There, a unique assembly of two pairs of short helices connected by crossed, extended chains creates a balanced electrostatic environment. A possible mechanism is proposed: the binding of charged substrates causes electric imbalance inducing movements, which allow for a rapid alternating access mechanism. This ion exchange machinery is regulated by a conformational change elicited by a pH signal perceived at the cytoplasmic funnel entry. The structure represents a novel fold that provides two major insights: it reveals the structural basis for the mechanism of Na+/H+ exchange and its unique regulation by pH in NhaA and in many other similar antiporters. Furthermore, it is also important for the understanding of the architecture of membrane proteins in general. However, although many aspects of the ion-translocation mechanism and pH regulation are clarified by the NhaA structure, higher resolution structures with Li+ or Na+ bound are required for understanding the ligand binding and the translocation mechanism at the atomic level. The alkaline pH-induced conformation is essential to further understand the pH-control and proton access to the binding site.
Die chromosomale Translokation t(4;11) ist mit einer aggressiven pro-B ALL im Kleinkindesalter assoziiert und stellt eine der häufigsten genetischen Veränderungen des MLL Gens dar. Bei bis zu 40 % der untersuchten Translokationen des MLL Gens wurde das AF4 Gen als Translokationspartner identifiziert. Durch Arbeiten in unserer Arbeitsgruppe konnte in Focus Formation Experimenten das wachstumstrans-formierende Potenzial sowohl des Wildtyp AF4 Proteins, als auch des bei der Translokation entstehenden AF4•MLL Fusionsproteins, nachgewiesen werden. Es kann somit als gesichert angesehen werden, daß es sich bei dem Wildtyp-AF4 Protein um ein Proto-Onkoprotein und bei dem AF4•MLL Fusionsprotein um ein Onkoprotein handelt. Der für beide Proteine identische Bereich beschränkt sich auf die ersten 360 Aminosäuren des AF4 Proteins, was der Hypothese führte, daß der N-Terminale Bereich des AF4 Proteins (AF4•N) für das beobachtete onkogene Potential in murinen embryonalen Fibroblasten verantwortlich ist. Ein mit dem AF4•N Protein durchgeführter Hefe-2-Hybrid Screen identifizierte die beiden E3-Ligasen SIAH1 und SIAH2 als Bindungspartner. Hierbei handelt es sich um Tumorsupressor- Proteine, die durch Ubiquitinylierung von Zielproteinen diese dem proteasomalen Abbau zuführen. Unter normalen physiologischen Bedingungen unterliegt das AF4 Protein einem raschen Abbau am Proteasom. Dies ist für das AF4•MLL Fusionsprotein nur noch eingeschränkt möglich, da es wie für das Wildtyp-MLL beobachetet proteolytisch gespalten wird, mit sich selbst dimerisiert und dann nicht mehr über das Proteasom abgebaut werden kann. Eine Bindung der beiden E3-Ligasen SIAH1 und SIAH2 konnte jedoch noch beobachtet werden, deshalb sollte die AF4 und SIAH Protein-Protein-Interaktion genauer untersucht werden. Hierzu wurden Hefe-2-Hybrid Experimente mit Deletionsmutanten durchgeführt, um die minimalen Kontakt-domänen zu identifiziert. Die Stärke der Interaktionen wurde durch ß-Galaktosidasetests ermittelt. Die identifizierte minimale AF4 Proteindomäne enthält das für die Erkennung durch die E3-Ligasen notwendige PxAxVxP Motiv und hat eine Länge von 25 Aminosäuren. Für die E3-Ligasen SIAH1 und SIAH2 konnte der für die Interaktion notwendige Kontaktbereich innerhalb der sogenannten Substrat-Bindungs-Domäne (SBD) lokalisiert werden. Interessanterweise ist nicht die große Furche des Dimerisierungsinterfaces der beiden SIAH Monomere der Kontaktbereich, sondern der proximale Zink-Finger Bereich. Die experimentell ermittelten Proteindomänen wurden in geeignete bakterielle Expressionssysteme kloniert und ihre in vitro Interaktion durch Pulldown-Experimente bestätigt. Die strukturelle Aufklärung der Kontaktdomäne erfolgte dann mit Hilfe der NMR-Fast-Mapping Methode. Mit dieser kombinatorischen Methode wurden die an der AF4 Bindung beteiligten Aminosäuren des SIAH Proteins durch Änderung ihrer chemischen Verschiebung im [15N,1H] HSQC-Spektrum nach Titration mit steigenden AF4 Konzentrationen identifiziert. Aus den erhaltenen Daten und anhand der bekannten SIAH Röntgenstruktur konnte ein Modell für die Bindung des AF4 Proteins an die E3-Ligase SIAH1 erstellt werden. Über die Funktion des Proto-Onkoproteins AF4 ist bis dato wenig bekannt. Es gibt Hinweise, daß alle Vertreter der ALF Proteinfamilie über transkriptionsaktivierende Eigenschaften verfügen. Da posttranslationale Modifikationen von Proteinen, wie z.B. Sumoylierung, häufig zur Regulation von Transkriptionsfaktoren beobachtet werden, wurden Untersuchungen auf posttranslationale Modifikationen des AF4 Proteins durchgeführt. Hierzu wurde durch Mutation der E3-Ligase Erkennungssequenz PxAxVxP eine stabilisierte AF4 Mutante hergestellt. Durch Immunopräzipitations Experimente nach Transfektion in 293T Zellen konnte sowohl die Sumoylierung, als auch Tyrosin Phosphorylierungen des AF4 Proteins nachgewiesen werden.
Die NO-sensitive Guanylat-Cyclase (GC), der wichtigste physiologische Rezeptor für Stickstoffmonoxid (NO), ist an der Produktion des sekundären Botenstoffes cGMP beteiligt. Die GC ist ein obligates Heterodimer bestehend aus je einer alpha- und einer beta-Untereinheit, wobei die alphabeta-Isoform am häufigsten vorkommt. Die Bindung von NO an die prosthetische Häm-Gruppe der beta-Untereinheit führt zur Aktivierung des Enzyms. Das dabei gebildete cGMP bindet an Effektorproteine wie Proteinkinase G, Phosphodiesterasen und Ionenkanäle und vermittelt dadurch seine zellulären Effekte. Der Mechanismus der NO-induzierten Aktivierung der GC ist weitgehend bekannt; hingegen ist bisher nur wenig über alternative Regulationsmodi der GC wie zum Beispiel Phosphorylierung, Protein-Protein-Interaktion oder Translokation bekannt. Aufgabe der vorliegenden Arbeit war es daher, die Phosphorylierung der GC durch Tyrosinkinasen der Src-Familie sowie den GC-Interaktionspartner AGAP1 zu untersuchen. Die Tyrosinphosphorylierung der GC konnte in Gegenwart von Protein-Tyrosinphosphatase-Inhibitoren wie Pervanadat erstmals in endogenen Zellen wie Thrombozyten und vaskulären glatten Muskelzellen nachgewiesen werden. Untersuchungen mit dem Inhibitor SU6656 zeigten, dass Kinasen der Src-Familie an der Pervanadat-induzierten Phosphorylierung beteiligt sind. In Überexpressionssystemen wurde die GC durch Src und Fyn phosphoryliert, wobei Src hier deutlich effektiver war. Zudem kann Src die beta-Untereinheit der GC in vitro direkt phosphorylieren. Die Verwendung von Kinase-knockout-Zellen zeigte, dass neben Src auch andere Kinasen die GC-Phosphorylierung vermitteln können. Src interagiert mit dem Holoenzym der GC, wenn der Tyrosinrest 192 der beta-Untereinheit phosphoryliert ist. Hierbei bindet Src über seine SH2-Domäne an die GC. Mit der GC assoziiertes Src kann mindestens einen weiteren Tyrosinrest der beta-Untereinheit phosphorylieren. Ferner weisen einige Resultate auf eine zweite Bindungsstelle hin, die unabhängig von Tyrosin-192 und der SH2-Domäne ist. Experimente zur Lokalisation deuten auf eine möglicherweise durch Src vermittelte Translokation der Guanylat-Cyclase zur Plasmamembran hin. Ein weiterer Teil dieser Arbeit befasste sich mit AGAP1, einem etablierten Interaktionspartner der GC. AGAP1 ist am endosomalen Vesikeltransport beteiligt, indem es die Aktivität von Arf-GTPasen Phospholipid-abhängig stimulieren kann. In dieser Arbeit zeigte sich, dass AGAP1 über seinen N-Terminus sowie einen oder mehrere Segmente des C-Terminus dimerisiert. Außerdem kann AGAP1 über seine Pleckstrin-Homologie-Domäne an Phosphatidylinositol- Monophosphate und Phosphatidylinositol 3,4-bisphosphat binden. Zusammenfassend betrachtet zeigt diese Arbeit neue potentielle Regulationsmechanismen der NO-sensitiven Guanylat-Cyclase durch Tyrosinphosphorylierung und durch die Interaktion mit der Tyrosinkinase Src und dem Multidomänen-Protein AGAP1 auf. Hierbei wird deutlich, dass der NO/cGMP-Signalweg, die Tyrosinphosphorylierungs-Kaskaden und der Vesikeltransport regulatorisch ineinander greifen.
The N-terminal domain (matrix protein or MA) of a retroviral Gag polyprotein precursor plays a critical role in several stages of the retrovirus life cycle. MA is involved in the effective membrane targeting, assembly and release of the immature viral particles from the infected cell. In order to understand the structural basis of these functions, the full length MA from Moloney Murine Leukemia Virus (MoMuLV) was purified and the solution structure of the MA MoMuLV was determined by means of heteronuclear high-resolution NMR spectroscopy and compared with that of the X-ray diffraction analysis as well as with the structures of several MA proteins from geterologous viruses. Structural features were also obtained from CD spectroscopy, dynamic light scattering, sedimentation velocity, differential scanning calorimetry and other methods. It was found that the MA MoMuLV globular core (residues 8-98) is comprised of 7 well-defined helices (five alpha-helices and two 310 helices), with the general fold typical for MA proteins from other retroviral species. The N-terminus (residues Met1-Leu7) and the C-terminal proline-rich part (residues Pro103-Tyr131) are not structured in solution. Although MA MoMuLV has a low sequence identity compared with other matrix proteins for which the three-dimensional structure is known, it was shown that its overall topology and pattern of secondary structural units is similar to other retroviral matrix proteins. The monomeric state is observed for the correctly folded MA MoMuLV in a variety of external conditions and protein concentrations, indicating that virion assembly starts with the plasma membrane targeting of the nascent Gag precursor. The denaturation of MA MoMuLV is irreversible and is connected with protein aggregation. For Moloney Murine Leukemia Virus (MoMuLV) a proteolytic processing of the R-peptide (last 16 amino acids from the C-terminus of the Envelope protein (Env)) has been described as a second mode of fusion and activation preceding the receptor contact between the viral particle and the cellular membrane. An interaction between the R-peptide and MA MoMuLV has been proposed, since the R-peptide and MA are localized at the inner part of the membrane. Therefore the interaction between 15N labelled purified MA MoMuLV and synthesized R-peptide has been investigated using high-resolution NMR. It was found that in water solution MA MoMuLV and R-peptide do not form a tight complex, but in a mature virion in the presence of membranes or other protein factors it might be possible. In the case of HIV-1 the cytoplasmic part (EnvC) of the Env protein is much longer than in other retroviruses and again as for MoMuLV little is known about the interaction between EnvC and HIV MA. Hence, the full length HIV MA, and the last 150 amino acids from HIV Env have been subcloned with suitable expression vectors, purified and analysed by native gel electrophoresis, a pull down assay and by high resolution NMR for the purpose to detect the complex formation of EnvC and HIV MA. Finally, after all those experiments, it was found that a stable complex is not formed, but a weak interaction between the two proteins can not be excluded.