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Protein biosynthesis is a conserved process, essential for life. Proteins are assembled from single amino acids according to their genetic blueprint in the form of a messenger ribonucleic acid (mRNA). Peptide bond formation is catalyzed by ancient ribonucleic acid (RNA) residues within the supramolecular ribosomal complex, which is organized in two dynamic subunits (Ramakrishnan, 2014). Each subunit comprises large ribosomal RNA (rRNA) molecules and several dozens of peripheral proteins. mRNA translation has been divided into three phases, namely translation initiation, elongation and termination in biochemistry textbooks. During initiation, the ribosomal subunits assemble into a functional ribosome on an activated mRNA and acquire the first transfer RNA (tRNA), an adapter between the start codon on the mRNA and the N-terminal methionine of the protein (Hinnebusch and Lorsch, 2012). During elongation, the ribosome translocates along the mRNA exposing one codon after the other, and amino acids are delivered to the ribosome by the respective tRNAs, and attached to the nascent polypeptide chain. During termination, the polypeptide is released and the ribosome remains loaded with mRNA and tRNA at the end of the open reading frame for the translated gene (Hellen, 2018). Bacterial ribosomes are subsequently recycled by a specific ribosome recycling factor and the small ribosomal subunit is simultaneously consigned to initiation factors for a next round of translation – rendering bacterial translation as a cyclic process with an additional ribosome recycling phase. However, the process of ribosome recycling remained enigmatic in Eukarya and Archaea until the simultaneous discovery of the twin-ATPase ABCE1 as the major ribosome recycling factor. Strikingly, ABCE1 has initially been shown to participate in translation initiation (Nürenberg and Tampé, 2013). Thus, closing the translation cycle by revealing the detailed molecular mechanism of ABCE1 and its role for translation initiation are the two goals of this research.
Beyond the plenitude of well-studied translational GTPases, ABCE1 is the only essential factor energized by ATP, delivering the energy for ribosome splitting via two nucleotide-binding sites. Here, I define how allosterically coupled ATP binding and hydrolysis events in ABCE1 empower ribosome recycling. ATP occlusion in the low-turnover control site II promotes formation of the pre-splitting complex and facilitates ATP engagement in the high-turnover site I, which in turn drives the structural re- organization required for ribosome splitting. ATP hydrolysis and ensuing release of ABCE1 from the small subunit terminate the post-splitting complex. Thus, ABCE1 runs through an allosterically coupled cycle of closure and opening at both sites consistent with a processive clamp model. This study delineates the inner mechanics of ABCE1 and reveals why various ABCE1 mutants lead to defects in cell homeostasis, growth, and differentiation (Nürenberg-Goloub et al., 2018).
Additionally, a high-resolution cryo-electron microscopy (EM) structure of the archaeal post-splitting complex was obtained, revealing a central macromolecular assembly at the crossover of ribosome recycling and translation initiation. Conserved interactions between ABCE1 and the small ribosomal subunit resemble the eukaryotic complex (Heuer et al., 2017). The conformational state of ABCE1 at the post-splitting complex confirms the molecular mechanism of ribosome recycling uncovered in this study. Moving further along the reaction coordinate of cellular translation, I reconstitute the complete archaeal translation initiation pathway and show that essential archaeal initiation factors are recruited to the post-splitting complex by biochemical methods and cryo-EM structures at intermediate resolution. Thus, the archaeal translation cycle is closed, following its bacterial model and paving the way for a deeper understanding of protein biosynthesis.
An essential part of the animal survival strategy comprises the ability to control body movement and coordinate long-term navigational strategies, in order to maintain locomotion towards a nutrition source and stay in its vicinity. In the nematode Caenorhabditis elegans (C. elegans) this function is carried out by neuronal circuits, that vary their activity in response to diverse environmental condition.
This comprises different classes of neurons, acting together in a sensory, signaling and modulatory system to control body posture and induce behavioral responses. For this reason, one particular goal in the field of neuroscience research is to elucidate the mechanisms of how neuronal circuits integrate multiple sensory cues to navigate the environment. Aim of this study was to analyze the function of a neuronal network comprising the interneurons AVK, as well as the identification of signaling molecules, controlling body posture during food related locomotory behavior. This should be achieved by establishing optogenetic approaches, which provide a non inversive and temporally precise control of neuronal activity and drives the activation or silencing of individual neurons, to alter the neuronal basis of behavior. Animals exposed to food perform a dwelling-like behavior, characterized by a slowing of locomotion with a reduced crawling distance and an irregular movement, accompanied by a high frequency of pauses, reversals and directional changes. Upon food-removal, they initiate a local-search behavior with the same behavioral characteristics, but with a more pronounced sinusoidal movement. After a prolonged period of unsuccessful food finding, animals exhibited long runs with reduced pauses, reversals and turnings, increasing their maximal covered distance, indicated as dispersal behavior. Acute photoinhibition of AVK neurons, mediated by cell-specific expression of halorhodopsin (NpHR) caused the animals to perform a dwelling-like locomotory state with increased bending angles, as seen during local-search behavior. Thus, food-induced behavioral effects are mimicked by the optogenetic manipulation of AVK interneurons.
In this study, signaling molecules were ascertained by cell specific mRNA profiling of AVK neurons, mediating these behavioral responses. It was able to demonstrate, that flp-1, coding for a FMRFamidelike neuropeptide, is one of the genes with the highest distribution in AVK. In the absence of food, AVK neurons continuously release the FMRFamide-like neuropeptide FLP-1 to inhibit a subset of target motoneurons, leading the animals to maintain a low body curvature to promote dispersing behavior.
Conversely, if AVK was inhibited by NpHR or the presence of food, less FLP-1 was secreted to the body fluid, indicated by reduced intracellular fluorescence levels of mCherry-tagged FLP-1 proteins in the scavenger cells. The search of a FLP-1 receptor was successful by in vitro investigation on G protein-coupled receptors (GPCRs) and neuropeptide ligands, revealing NPR-6 to be activated by FLP-1 neuropeptides, but with a low potency. Expression pattern of the NPR-6 receptor indicated receptor localization in in the VC ventral cord and SMB head motoneurons, as well as in a subset of other neurons required for chemosensation and feeding. AVK interneurons are highly coupled to SMB head motoneurons, forming electrical synapses composed of the gap junction protein subunits UNC-7 and UNC-9. Elimination of SMB or gap junction genes using cell ablation and RNA interference, respectively, phenocopied effects of AVK inhibition on bending angles. Furthermore, this study was able to demonstrate that these neurons get inhibited during FLP-1 transmission to the NPR-6 receptor, which was required to mediate AVK effects on crawling behavior. Consequently, photoinhibition of AVK caused disinhibition of VC and SMB neurons, in order to enhance sinusoidal movement and to induce a local-search related locomotory behavior.
Thereby, FLP-1 neuropeptide transmission is the preferred used signaling pathway over direct gap junction coupling. Additional neuropeptides and receptors were identified to be essential downstream to AVK neurons to mediate effects on body curvature and locomotory behavior as well. The high-potency FRPR-7 receptor was shown to mediate FLP-1 peptide effects on undulatory motion during swimming in a liquid environment, rather than crawling locomotion on a solid surface. This result suggests that the receptor NPR-6 is required for FLP-1 peptide effects on bending and crawling locomotion, whereas conversely the receptor FRPR-7 is addressed by FLP-1 peptides to exclusively regulate swimming behavior. The FRPR-7 receptor is expressed in the AIM and NSM motoneurons, which are suggested to be the primary neuronal candidates mediating swimming behavior. Furthermore, this study provides evidence, that FRPR-7 acts in the DVC interneuron to control spontaneous reversal behavior, most probably by inhibitory FLP-1 signaling from the AVK neurons. Among other neuropeptides, the FMRFamide-like peptide FLP-26 binds with higher affinity to NPR-6 receptors than FLP-1 peptides. FLP-26 peptides are expressed in the SMB motoneurons, where they are able to further potentiate FLP-1 inhibitory effects by simultaneous binding to NPR-6.
...
Rhabdomyosarcoma (RMS) is the most frequent pediatric soft-tissue sarcoma comprising two major subtypes – the alveolar and the embryonal rhabdomyosarcoma. The current therapeutic regime is multimodal including surgery, radiation and chemotherapy with cytostatic drugs. Although the prognosis for RMS patients has steadily improved to a 5-year overall survival rate of 70% for ERMS and 50% for ARMS, prognosis for subgroups with primary metastases or relapsed patients is still less than 25%, highlighting the need for development of new therapies for these subgroups. Since cancer cells are addicted to their cancer promoting transcriptional program, remodeling transcription by targeting bromodomain and extraterminal (BET) proteins has emerged as compelling anticancer strategy. However, in many cancer types BET inhibition was proved cytostatic but not cytotoxic emphasizing the need for combination protocols.
In this study we identify a novel synergistic interaction of the BET inhibitor JQ1 with p110α-isoform-specific Phosphoinositid-3-Kinase (PI3K) inhibitor BYL719 (Alpelisib) to induce mitochondrial apoptosis and global reallocation of BRD4 to chromatin. At first, we showed that JQ1 single treatment had cytostatic effects at nanomolar concentrations and inhibited MYC and Hedgehog (Hh) signaling in RMS known to promote proliferation of RMS. However, JQ1 single treatment barely induced cell death in RMS cells even at concentrations of up to 20 µM (< 20% cell death). Thus, we next tested combination approaches to elicit cell death. Since we previously identified synergistic cell death induction of Hh inhibition and PI3K inhibition in RMS cells we tested JQ1 in combination with the pan-PI3K/mTOR inhibitor PI-103 and the p110α-isoform-specific PI3K inhibitor BYL719. In addition, we tested JQ1 in combination with distinct HDAC inhibitors namely JNJ-26481585, SAHA (Vorinostat), MS-275 (Entinostat) and LBH-589 (Panobinostat) since the synergistic interaction of BET and HDAC inhibition has previously been described for other tumor entities.
Interestingly the synergism of cell death induction of JQ1/BYL719 co-treatment is superior to the synergism of JQ1 with pan-PI3K/mTOR inhibitor PI-103 or the tested HDAC inhibitors as confirmed by calculation of combination index. To investigate the molecular mechanisms underlying the synergy of JQ1/BYL719 co-treatment, we performed RNA-Seq and BRD4 ChIP-Seq experiments. RNA-Seq exhibited, that JQ1/BYL719 co-treatment shifted the overall balance of BCL-2 family gene expression towards apoptosis and increased gene expression of proapoptotic BMF, BCL2L11 (BIM) and PMAIP1 (NOXA) while decreasing gene expression of antiapoptotic BCL2L1 (BCL xL). These changes were verified by qRT-PCR and Western blot. Notably, BRD4 is phosphorylated upon JQ1/BYL719 co-treatment and globally reallocates BRD4 to chromatin. This BRD4 reallocation includes enrichment of BRD4 at the super-enhancer site of BMF, at the super-enhancer, typical enhancer and promoter regions of BCL2L11 (BIM) and at the PMAIP1 (NOXA) promoter, while JQ1 alone, as expected, reduces global chromatin binding of BRD4. Integration of RNA-Seq and BRD4 ChIP-Seq data underlines the transcriptional relevance of reallocated BRD4 upon JQ1/BYL719 co-treatment. Immunopreciptation studies showed, that RMS cells are initially primed to undergo mitochondrial apoptosis since BIM is constitutively bound to antiapoptotic BCL-2, BCL xL and MCL-1. JQ1/BYL719 co-treatment increased BIM expression and its neutralization of antiapoptotic BCL-2, BCL-xL and MCL-1 thereby rebalancing the ratio of pro- and antiapoptotic BCL-2 proteins in favor of apoptosis. This promotes activation of BAK and BAX resulting in caspase-dependent apoptosis. The functional relevance of proapoptotic re-balancing for the execution of JQ1/BYL719-mediated apoptosis was confirmed by individual silencing of BMF, BIM, NOXA or overexpression of BCL-2 or MCL-1, which all significantly rescued JQ1/BYL719-induced cell death. Execution of cell death by mitochondrial caspase-dependent apoptosis was veryfied by individual knockdown of BAK and BAX or caspase inhibitor N-Benzyloxycarbonyl-Val-Ala-Asp(O-Me) fluoromethylketone (zVAD.fmk), which all significantly rescued JQ1/BYL719-induced cell death.
In summary, combined BET and PI3Kα inhibition cooperatively induces mitochondrial apoptosis by proapoptotic re-balancing of BCL-2 family proteins accompanied by reallocation of BRD4 to transcriptional regulatory elements of BH3-only proteins.
Die Plasmamembran eukaryotischer Zellen dient als Barriere zwischen dem Inneren einer Zelle und ihrer Umgebung. Eine wichtige Aufgabe von Proteinen, die sich in der Plasmamembran befinden, besteht in der Erkennung der Umgebung, der Übermittlung dieser Informationen über die Plasmamembran in das Innere einer Zelle und der Einleitung einer zellulären Antwort. Membranrezeptoren binden Liganden, was zu ihrer Aktivierung und der Rekrutierung von intrazellulären Proteinen führt. Funktionelle Signalkomplexe werden gebildet und leiten einen Informationstransfer durch die Zellmembran ein, so dass die Expression bestimmter Gene stimuliert oder unterdrückt wird. Eine Störung der Signalinitiierung und -übertragung tritt bei vielen Krankheiten auf, so dass Membranproteine ein wichtiges Ziel in der Medikamentenentwicklung sind.
In dieser Arbeit wird die Fragestellung bearbeitet, wie der Tumornekrosefaktor-Rezeptor 1 (TNFR1) in funktionelle Komplexe in der Plasmamembran einer intakten Zelle organisiert ist. TNFR1 besitzt vier cysteinreiche Domänen (CRDs) in seiner extrazellulären Region. Die erste und von der Plasmamembran am weitesten entfernte CRD ist die Pre-Ligand Assembly Domain (PLAD). Kristallstrukturen zeigten, dass sich in einem TNFR1-Dimer zwei PLAD in unmittelbarer Nähe befinden. Crosslinking-Experimente berichteten über mehrere oligomere Zustände von TNFR1; die Ergebnisse unterschieden sich nach Art und Konzentration des Crosslinkers. In der nativen Umgebung einer intakten Zelle wurde der oligomere Zustand von TNFR1 bisher nicht bestimmt. Der kanonische Ligand für TNFR1 ist der Tumornekrosefaktor alpha (TNF), ein Homotrimer, welches in löslicher oder membrangebundener Form vorliegt. Nach der Bindung von TNF an TNFR1 bilden sich Rezeptortrimere. Diese Proteinkomplexe rekrutieren intrazellulär Proteine und bilden einen funktionellen Membrankomplex, der intrazelluläre Signalkaskaden aktiviert. Die kanonische Signalweiterleitung erfolgt durch den nuclear factor kappa-light-chain-enhancer of activated B-cells (NF-B), welcher Zellteilung oder Entzündung induziert. TNFR1 kann auch andere Signalwege wie beispielsweise Apoptose durch einen zytosolischen Komplex und die Procaspase-8, oder Nekroptose durch das Nekrosom und die mixed lineage kinase domain-like (MLKL)-Domäne einleiten. Die Dysregulation von TNFR1 ist bei einer Vielzahl von Krankheiten zu finden. Erhöhte TNFR1-Expressiosraten treten bei acquired immune deficiency syndrome (AIDS), multipler Sklerose und verschiedenen Krebsarten auf.
In einem zweiten Projekt wurde in Zusammenarbeit mit Prof. Dr. Michael Lanzer (Heidelberg, Germany) der Expressionsgrad des Proteins VAR2CSA in membranassoziierten knobs bestimmt, welche in Erythrozyten vorkommen, die mit dem Parasiten Plasmodium falciparum infizierten wurden. VAR2CSA gehört zur Proteinfamilie des Plasmodium falciparum erythrocyte membrane protein 1 (pfEMP1). Nach einer Infektion wird VAR2CSA zur Wirtszellmembran transportiert und in knobs eingelagert. Patienten, die Sichelzellenanämie-Erythrozyten (HbAS) aufweisen, sind im Gegensatz zu Patienten mit gesunden Erythrozyten (HbAA) immun gegen Malaria. Während die beiden Erythrozytentypen eine unterschiedliche Morphologie der knobs aufweisen, blieb ihre Zusammensetzung in Bezug auf VAR2CSA bisher ungeklärt.
Das Verständnis der Proteinfunktion erfordert eine Beschreibung der molekularen Organisation funktioneller Einheiten in der zellulären Umgebung. Hierfür ist die Fluoreszenzmikroskopie eine geeignete Methode, da sie eine gezielte Markierung von Zielproteinen ermöglicht. Die hohe Sensitivität ermöglicht die Visualisierung einzelner Proteine. Eine Einschränkung in der konventionellen Fluoreszenzmikroskopie ist die Auflösungsgrenze. Strukturelle Elemente, die kleiner als etwa die halbe Anregungswellenlänge sind (für die meisten Anwendungen 200 bis 300 nm) können nicht aufgelöst werden. Die Entwicklung der hochauflösenden Fluoreszenzmikroskopie ermöglichte es, diese Auflösungsgrenze zu umgehen und eine räumliche Auflösung von wenigen Nanometern zu erreichen, was die Visualisierung und Charakterisierung einzelner Proteinkomplexe ermöglichte. Eine Art der hochauflösenden Fluoreszenzmikroskopie ist die single-molecule localization microscopy (SMLM), die auf der Detektion einzelner Fluorophore, einer genauen Bestimmung ihrer Position (Lokalisation) und der Erzeugung eines rekonstruierten Bildes unterhalb der optischen Auflösungsgrenze basiert. Da die meisten Proben in der Fluoreszenzmikroskopie eine zu hohe räumliche Dichte an Fluorophoren aufweisen, um den Nachweis von einzelnen Fluorophoren zu ermöglichen, werden Verfahren zur Kontrolle der Emission von Fluorophoren eingesetzt. Eine Möglichkeit ist der Einsatz von Fluorophoren, die optisch zwischen einem nicht-fluoreszierenden und einem fluoreszierenden Zustand geschaltet werden können, z.B. photoschaltbare fluoreszierende Proteine in photoactivated localization microscopy (PALM) oder organische Farbstoffe in (direct) stochastic optical reconstruction microscopy ((d)STORM). SMLM erreicht eine räumliche Auflösung von 20 nm, was in den meisten Fällen ausreicht, um einzelne Proteinkomplexe in einer Zelle aufzulösen. Diese räumliche Auflösung ist jedoch nicht ausreichend, um Untereinheiten innerhalb eines Proteinkomplexes zu visualisieren. Zu diesem Zweck wurde SMLM erweitert und die verfügbare kinetische Information genutzt, die bei der Detektion einzelner Fluorophore ausgelesen wird. Viele Fluorophore weisen metastabile Dunkelzustände auf, die eine Lebensdauer von bis zu Sekunden aufweisen. Diese Übergänge erscheinen als "Blinken" der Fluoreszenzemission. In Kombination mit kinetischen Modellen kann aus der Anzahl an Blink-Ereignissen die Anzahl der Fluorophore ermittelt werden. Angewendet auf hochaufgelöste Proteinkomplexe kann die Auflösungsgrenze von hochauflösender Mikroskopie umgangen werden, und die Anzahl der Protein-Untereinheiten in einem hochaufgelösten Proteincluster ermittelt werden. Hierzu wird beispielsweise das photoschaltbare fluoreszierende Protein mEos2 an ein Zielprotein funsioniert (quantitative PALM (qPALM)).
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Electron microscopy (EM) demarcates itself from other structural biology techniques by its applicability to a large range of biological objects that spans from whole cells to individual macromolecules. In single-particle cryo-EM, frozen-hydrated samples, prepared by vitrification with liquid ethane, retain macromolecules in a medium that approximates their natural aqueous environment and that, in this way, preserves high-resolution structural information. Nonetheless, the sensitivity of biological specimens to the high-energy electron beam introduces restrictions on the total dose that can be used during imaging while avoiding significant radiation damage. Consequently, the signal-to-noise ratio attained in each individual image is very low, and structures with high-resolution detail must be recovered by averaging thousands of projections in random orientations. This is achieved through the use of image processing algorithms capable of aligning and classifying particle images through the evaluation of cross-correlation functions between each particle and a reference.
In recent years, several innovations took place in the field of single-particle cryo-EM, among which the development of direct electron detectors must be highlighted. Direct electron detectors have a better detective quantum efficiency (DQE) than both photographic film and CCD cameras, and offer a fast readout, compatible with the acquisition of movie stacks. Additionally, new image processing software has become available, with more sophisticated algorithms and designed to take advantage of the specific characteristics of the movies produced with direct electron detectors. These technological advances in both hardware and software catalyzed a revolution in single-particle cryo-EM, which is now routinely used for the determination of near-atomic structures. As a result, the range of macromolecules accessible to cryo-EM has increased drastically, as targets that were unsuitable before for imaging due to their small dimensions can now be adequately visualized and refined to high-resolution.
During my doctoral work, I have used single-particle cryo-EM to structurally characterize challenging membrane proteins, with a strong emphasis on protein complexes from aerobic respiratory chains. In chapter I of this thesis, I present my results on the bovine respirasome, a mitochondrial supercomplex composed of complexes I, III and IV. Chapter II is dedicated to the analysis of the structure of alternative complex III (ACIII) from Rhodothermus marinus, a bacterial quinol:cytochrome c/HiPIP oxidoreductase unrelated to the canonical cytochrome bc1 complex (complex III). In addition, in chapter III I describe the structure of KimA, a high-affinity potassium transporter that drives the transport of its substrate by using the energy stored in the form of a proton gradient. These three membrane proteins, with molecular weights ranging from 140 kDa to 1.7 MDa, illustrate the possibilities and limitations faced in single-particle cryo-EM.
The aerobic respiratory chain is responsible for the generation of a transmembrane difference of electrochemical potential that is then used by ATP synthase for the production of ATP or for driving solute transport over the membrane. They catalyze the transfer of electrons from a substrate, such as NADH or succinate, to molecular oxygen and use the chemical energy released in these redox reactions to drive the translocation of protons, or in some cases sodium ions, to the intermembrane space in mitochondria or the periplasm in bacteria.
In mitochondria, the respiratory chain is composed of four complexes: complex I (NADH:ubiquinone oxidoreductase), complex II (succinate dehydrogenase), complex III (cytochrome bc1 complex) and complex IV (cytochrome c oxidase). While it was for a long time believed that these complexes existed as single entities in the membrane, the use of milder procedures for protein purification and analysis revealed that respiratory complexes associate into well-ordered structures, known as supercomplexes. These have been proposed to offer different structural and functional advantages that are still controversial, including substrate channeling, stabilization of individual complexes and reduction of reactive oxygen species (ROS) production. The most thoroughly studied respiratory supercomplex has been the respirasome, conserved in higher eukaryotes and composed of one copy of complex I, a complex III dimer and one complex IV. By single-particle cryo-EM analysis, I retrieved a 9 Å map of the respirasome from Bos taurus, which allowed the accurate docking of atomic models of the three component complexes. The structure shows that complex III associates to the concave side of the membrane arm of complex I, while complex IV is located between the end of the complex I hydrophobic arm and complex III. Several defined protein-protein contacts are observed between the component complexes, which are mediated predominantly by supernumerary subunits and close to the membrane surfaces. The interactions established between complex I and complex III are extensive and may support the argument that the association of complex I into supercomplexes is required for the stabilization or even the biogenesis of this complex.
...
Polyketide synthases (PKSs) are large megaenzymes that occur in bacteria, fungi, and plants and produce polyketides, a class of secondary metabolites. Many polyketide natural products exhibit high biological activities e.g. as antibiotics or anti-fungal compounds. The modular architecture of assembly line PKSs makes them exciting targets for engineering approaches via the exchange of whole modules or single domains. Although many engineering attempts have been pursued over the last three decades, the resulting chimeric PKSs often exhibit decreased turnover rates or diminished product yields.
In this thesis, new approaches to engineer chimeric PKSs were explored, each targeting a different aspect of the chimeric system: First the relative contribution of protein-protein and protein-substrate recognition on the turnover of chimeric PKS was assessed, revealing the importance of protein-protein interactions between the acyl carrier protein (ACP) and the ketosynthase (KS) domain in the chain translocation step. Directed evolution experiments followed to optimize the protein-protein interaction across a chimeric interface. Additionally, different junction sites for the generation of chimeric PKSs were compared, showing the ability for recombination without interfering with the chain translocation reaction, and highlighting the use of SYNZIP domains to bridge PKS modules. To optimize chimeric PKSs even further, multipoint mutagenesis of KS domains was established, with positive effects on the activity of chimeric systems.
To support engineering attempts, several structure elucidation techniques were combined with in silico modeling to characterize the architecture of a PKS module and the domain-domain interactions within it. Preliminary results show a strong conformational flexibility of the PKS module and the great potential of these techniques to define the multitude of transient interactions in PKS modules.
Transport mechanism of a multidrug resistance protein investigated by pulsed EPR spectroscopy
(2019)
In human several diseases result from malfunctions of ATP-binding cassette (ABC) systems, which form one of the largest transport system superfamily. Many ABC exporters contain asymmetric nucleotide-binding sites (NBSs) and some of them are inhibited by the transported substrate.1 For the active transport of diverse chemically substrates across biological membranes, ABC transport complexes use the energy of ATP binding and subsequent hydrolysis. In this thesis, the heterodimeric ABC exporter TmrAB2,3 from Thermus thermophilus, a functional homolog of the human antigen translocation complex TAP, was investigated by using pulsed electron-electron double resonance (PELDOR/DEER) spectroscopy. In the presence of ATP, TmrAB exists in an equilibrium between inward- and outward-facing conformations. This equilibrium can be modulated by changing the ATP concentration, showing asymmetric behaviour in the open-to-close equilibrium between the consensus and the degenerate NBSs. At the degenerate NBS the closed conformation is more preferred and closure of one of the NBSs is sufficient to open the periplasmic gate at the transmembrane domain (TMD).3 By determining the temperature dependence of this conformational equilibrium, the thermodynamics of the energy coupling during ATP-induced conformational changes in TmrAB were investigated. The results demonstrate that ATP-binding alone drives the global conformational switching to the outward-facing state and allows the determination of the entropy and enthalpy changes for this step. With this knowledge, the Gibbs free energy of this ATP induced transition was calculated. Furthermore, an excess of substrate, meaning trans-inhibition of the transporter is resulting mechanistically in a reverse transition from the outward-facing state to an occluded conformation predominantly.3 This work unravels the central role of the reversible conformational equilibrium in the function and regulation of an ABC exporter. For the first time it is shown that the conformational thermodynamics of a large membrane protein complex can be investigated. The presented experiments give new possibilities to investigate other related medically important transporters with asymmetric NBSs or other similar protein complexes.
Photolabile protecting groups are widely used to trigger oligonucleotide activity. The ON/OFF‐amplitude is a critical parameter. An experimental setup has been developed to identify protecting group derivatives with superior caging properties. Bulky rests are attached to the cage moiety via Cu‐catalyzed azide–alkyne cycloaddition post‐synthetically on DNA. Interestingly, the decrease in melting temperature upon introducing o‐nitrobenzyl‐caged (NPBY‐) and diethylaminocoumarin‐cages (DEACM‐) in DNA duplexes reaches a limiting value. NMR spectroscopy was used to characterize individual base‐pair stabilities and determine experimental structures of a selected number of photocaged DNA molecules. The experimental structures agree well with structures predicted by MD simulations. Combined, the structural data indicate that once a sterically demanding group is added to generate a tri‐substituted carbon, the sterically less demanding cage moiety points towards the neighboring nucleoside and the bulkier substituents remain in the major groove.
Many processes in living cells involve interaction and cooperation of multiple proteins to fulfill a specific function. To understand biological processes in their full complexity, it is not sufficient to only identify the molecules being involved but also to understand the kinetic aspects of a reaction. Mass spectrometry (MS) is a very powerful tool which allows to precisely identify the molecules of a reaction. Usually this is done with tandem-MS experiments for purpose of de-novo peptide sequencing. However, since this involves protein digestion, a statement of the in-vivo constitution of non-covalently bound protein complexes is not possible. In order to detect an intact protein complex it is necessary to analyze the biological system softly and in a near-native environment with native MS. Native MS allows the non-destructive analysis of these non-covalent protein complexes as well as to detect their components. However, up to now native MS does not offer a possibility to resolve the timing of the constitution of protein complexes on a fast time-scale. Therefore, the progress of reactions on fast time-scales is invisible. However, a method which delivers both types of information - identification of the components of a protein complex, as well as time-resolving their interaction - would be of high interest.
A suitable ionization technique for native MS is laser-induced liquid-bead ion desorption (LILBID). LILBID employs well-defined droplets which are irradiated by IR laser pulses to generate gas phase ions. The not-continuous, repetitive nature of ion generation offers itself to the development of a time-resolved (TR) native MS system which is able to investigate protein complexes on a fast time scale. The LILBID-droplets can serve as reaction vessels if they are levitated in an electrodynamic Paul-trap. This new setup would allow sample manipulation and MS analysis on precise and fast reaction time-scales. The first part of this dissertation presents the construction and characterization of a setup for TR-LILBID-MS.
An example for a complex biological system is the self-assembly of beta-amyloid (Aβ). This small peptide is the major component in plaques related to Alzheimer’s disease. Clinically relevant is especially the 42 amino acid peptide Aβ42 which aggregates from monomers to oligomers through to fibrils. The oligomers are the neurotoxic species in this process and thus of high interest. Nevertheless, standard analytical techniques are unable to detect those oligomers which makes MS an optimal tool to study the oligomerization process of Aβ with the focus on disease relevant oligomers. TR-LILBID-MS allows to follow the oligomerization of Aβ enabling to study molecules which influence this kinetic. Combining MS with ion-mobility spectrometry adds an additional dimension - the collision cross section - to the mass-to-charge ratio obtained from MS. Therewith structural alterations induced by ligands can be correlated to differences in the aggregation kinetic. This allows to draw a picture of the aggregation process of Aβ for the development of disease-relevant small oligomers on a molecular level.
Die in der vorliegenden Arbeit gewonnenen Erkenntnisse zur Reaktivität zweifach reduzierter 9,10-Dihydro-9,10-diboraanthracene [A]2– erweitern das Einsatzspektrum von Hauptgruppenverbindungen im Hinblick auf die Aktivierung kleiner Moleküle. Komplementär zu Übergangsmetallkomplexen und FLPs ermöglichen die Salze M2[A] (M+ = Li+, Na+, K+) die Entwicklung neuartiger Synthesestrategien. Als besondere Herausforderung gilt die Aktivierung des stabilen H2-Moleküls, dessen Bindung die Dianionen [A]2– homolytisch in einer konzertierten Reaktion spalten.
Untersuchungen zur Kinetik der H2-Addition an M2[A] stellten die Abhängigkeit dieses Reaktionsschritts vom borgebundenen Substituenten und vom Kation heraus. Eine geringe sterische Abschirmung der Boratome durch kleine borgebundene Substituenten (C≡CtBu, Me, H) begünstigt die H2-Aufnahme gegenüber großen Substituenten (pTol, Xyl, Et). Die maximale Ausbeute an M2[A-H2] wird für M+ = Li+ erst nach mehreren Tagen bei 100 °C erhalten, während einige Stunden bei nur 50 °C für die quantitative Bildung von K2[A-H2] ausreichen.
Unter den Salzen M2[A] eignet sich Li2[68] mit borgebundenen Me-Substituenten besonders gut für den Einsatz als Hydrierungskatalysator. Mit Li2[68] konnten das Imin Ph(H)C=NtBu, das terminale Alken Ph2C=CH2 und Anthracen erfolgreich im NMR-Maßstab hydriert werden (Katalysatorladung 37 mol%, THF-d8, 1 atm H2-Initialdruck, 100 °C, 16 h). Im Reaktionsautoklaven war für die Hydrierung von Ph(H)C=NtBu eine Verringerung der Katalysatorladung auf 10 mol% Li2[68] möglich (THF, 7 atm H2-Initialdruck, 100 °C, 18 h). Konkurrenzreaktionen begründen Einschränkungen in Bezug auf die Substratpalette, da M2[68] (M+ = Li+, Na+) mit elektronenarmen ungesättigten Verbindungen, die C=C-, C≡C-, C=O- oder C=N-Bindungen enthalten, [4+2]-Cycloadditionsprodukte bilden können. Die Reversibilität dieser Reaktion entscheidet, ob Li2[68] als Katalysator fungiert oder irreversibel in den Strukturen gebunden bleibt.
Vielseitiger sind die H2-Aktivierungsprodukte M2[A-H2] als H–-Donoren geeignet: Na2[68-H2] ersetzt Halogenid- durch H–-Substituenten in Bromethan, sowie in Chlorsilanen und PCl3; CO2 wird in Natriumformiat überführt. Unabhängig von der Anzahl der Chlorliganden werden die Produkte immer vollständig hydriert. Eine erneute Reduktion von 68 kann wieder Na2[68] bereitstellen, das H2 aufnimmt und Na2[68-H2] regeneriert, welches für neue H–-Abgaben zur Verfügung steht. Bei der experimentellen Umsetzung des Kreislaufs ist es wichtig, die beschriebenen Reaktionsschritte nacheinander auszuführen und jeweils nur stöchiometrische Mengen des Elektrophils zuzugeben. Bei Abweichungen vom schrittweisen Syntheseprotokoll finden formale nukleophile Substitutionen mit M2[68] statt und monoanionische Spezies entstehen, z. B. wenn Et3SiBr als Elektrophil anwesend ist.
Gegenüber CO2 zeigt Li2[68] eine hohe Reaktivität, durch die selektiv CO und [CO3]2– gebildet werden. Wie zuvor bei den H–-Transferreaktionen ermöglicht die Reduktion der Neutralverbindung 68 die Regeneration von Li2[68].
Die Dianionen [A]2– stechen unter anderen cyclischen Borverbindungen in niedrigen Oxidationsstufen heraus, da mit [A]2– nicht nur die Aktivierung von H2 oder CO2 gelang, sondern erstmalig über die Einbindung der Additionsprodukte in zum Teil katalytische Folgereaktionen berichtet werden konnte.