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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.
Enolase is a glycolytic enzyme, which catalyzes the inter-conversion of 2-phosphoglycerate to phosphoenolpyruvate. Altered expression of this enzyme is frequently observed in cancer and accounts for the Warburg effect, an adaptive response of tumor cells to hypoxia. In addition to its catalytic function, ENO-1 exhibits other activities, which strongly depend on its cellular and extracellular localization. For example, the association of ENO-1 with mitochondria membrane was found to be important for the stability of the mitochondrial membrane, and ENO-1 sequestration on the cell surface was crucial for plasmin-mediated pericellular proteolysis. The latter activity of ENO-1 enables many pathogens but also immune and cancer cells to invade the tissue, leading further to infection, inflammation or metastasis formation. The ability of ENO-1 to conduct so many diverse processes is reflected by its contribution to a high number of pathologies, including type 2 diabetes, cardiovascular hypertrophy, fungal and bacterial infections, cancer, systemic lupus erythematosus, hepatic fibrosis, Alzheimer’s disease, rheumatoid arthritis, and systemic sclerosis. These unexpected non-catalytic functions of ENO-1 and their contributions to diseases are the subjects of this review.
Uncaging approach, native membrane dynamics and lipidic cubic phases in biomolecular solid-state NMR
(2019)
It was previously shown for the Escherichia coli diacylglycerol kinase (DgkA) that enzyme-reactions at the membrane interface can be monitored by solid-state NMR. However, such studies can face problems due to limited accessibility of the active sites: Natural substrates for membrane enzymes, but also ligands for membrane proteins or lipid mediators, are either partitioning into the membrane and cannot be added easily, or if soluble exhibit accessibility restrictions, as they cannot freely pass through lipid bilayers. This situation complicates quantitative kinetic analysis of biochemical processes such as enzyme activity, ligand binding, but also oligomerization or folding reactions in the membrane or at its interface under MAS NMR conditions.
To overcome these limitations the feasibility and possible advantages of the uncaging approach as a new tool for biomolecular solid-state NMR to trigger reactions by light have been explored. DgkA’s enzymatic activity, exemplary of a biochemical process on the membrane interface, was thereby triggered in situ during MAS by light-induced release of its substrates that were rendered inactive with photolabile protecting groups. To be capable of uncaging sufficient amounts of substrate during MAS to follow the enzymatic reaction via 31P real-time NMR measurements, several illumination variants including an existing illumination setup to study retinal proteins under cryogenic conditions via DNP enhanced NMR were tested. As uncaging of micromole amounts of substrates requires a higher flux compared to initiation of a photocycle in retinal proteins, a new illumination setup was built with Bruker Biospin and Leoni Fibertech. It consists of a modified MAS probe and a suitable fiber bundle, allowing to efficiently couple light from high power LEDs into a sapphire rotor containing the sample, without disturbing the magnetic field homogeneity or sample rotation. By reducing the sample volume to the illuminated area up to 60 mM ATP were released by uncaging NPE ATP to initiate DgkA’s activity in several tested membrane mimetics. These mimetics included liposomes and bicelles, which are well established in the field of biomolecular solid state NMR as well as the optically transparent lipidic cubic phase of monoolein, widely used in membrane protein crystallography, but not yet well characterized as membrane mimetic under MAS conditions. A unique and powerful but compared to time and spatial resolution often underrepresented advantage of the uncaging approach for biophysical studies has been demonstrated by successful uncaging of a non-miscible lipid substrate to trigger DgkA’s kinase reaction: Initiation of processes that cannot easily be triggered by mixing. Examples of these are reactions involving highly hydrophobic, membrane partitioning compounds including lipid substrates, ligands or interaction partners, but also oligomerization or folding of biomacromolecules. The herein performed experiments therefore serve as a first demonstration of the uncaging approach’s feasibility and compatibility with a wide variety of membrane mimetics and give a first indication of its potential for a variety of biomolecular solid state NMR experiments.
As high accessibility for solutes has been a second focus for the choice of membrane mimetics, DgkA’s activity in the lipidic cubic phases of monoacylglycerols with its two continuous networks of water channels has been further characterized. Kinetic parameters obtained from 31P real time solid state NMR experiments revealed that DgkA’s activity is similar to activities obtained in swollen cubic phases in a bath solution with wider water channels. Diffusion of ATP in a non swollen cubic phase was however strongly reduced compared to ATP in solution as diffusion measurements showed. Therefore, saturation of the enzyme required distinctly higher ATP concentrations. These results thereby underline the advantage of a non invasive and label free method like NMR to directly gain information about enzymatic reactions of immobilized enzymes in porous materials. The obtained wealth of information from 31P real time NMR experiments and biochemical assays in different membrane mimetics in presence and absence of lipid substrates and activators also provided further insight into DgkA’s enzymatic activity. It confirms ATP binding and hydrolysis in the absence of a lipid substrate, in agreement with the proposed mode of substrate binding, and allowed to estimate the in vivo relevance of previously observed ATPase activity in liposomes.
Further exploration of the cubic phase as membrane mimetic for protein solid state NMR revealed its high stability under MAS at elevated temperatures and capacity to reconstitute sufficient amounts of DgkA. Unlike monoolein, DgkA was cross-polarizable in a cubic phase and exhibited similar dynamics compared to DgkA reconstituted into liposomes, allowing to acquire the herein shown dipolar coupling based 2D protein spectra. As lipidic cubic phases are not containing phospholipids, monoacylglycerols could be especially useful as membrane mimetics for 31P correlation spectra. Initial experiments under DNP conditions, where in liposomes line broadening causes severe overlap of phospholipid signals and unspecific cross polarization highlight this aspect.
In summary, herein reported results of the experiments performed with lipidic cubic phases demonstrate that they are robust and versatile membrane mimetics. They could be of advantage for a variety of solid-state NMR experiments where either optical transparency for efficient illumination is desired, accessibility for solutes and membrane components under MAS is required, or interference of phosphorous signals of other membrane mimetics must be avoided.
In the second chapter of this thesis 1H solid-state NMR as a label free method to probe membrane order and dynamics directly within a cellular and disease relevant context was used to observe the effects of soluble epoxide hydrolase (sEH) encoding gene knock-outs on membrane dynamics. Knock-out of the sEH encoding gene changed the overall membrane dynamics in the physiological temperature range of native membranes derived from mouse brains, making the bulk membrane more dynamic. To confirm that these effects are related to the enzymatic activity of sEH, substrates and products of sEH were added to evaluate their effects on membrane dynamics. 19,20 dihydroxydocosapentaenoic acid (DHDP), a product of sEH, partially reversed the knock out phenotype in a concentration dependent manner whereas the substrate 19,20 epoxydocosapentaenoic acid did not cause any effects. As both polyunsaturated fatty acids did not show differences in phase behavior in a simple phospholipid bilayer these results provide evidence that the previously observed concentration dependent DHDP induced relocation of cholesterol away from detergent resistant lipid raft fractions is associated with alteration of membrane dynamics. Therefore, also the effect of cholesterol removal via cyclodextrin on membrane dynamics was analyzed. Removal of cholesterol led to a similar temperature profile of wild type and knock out membranes thereby supporting the hypothesis that DHDP induced relocation of cholesterol is causing altered membrane dynamics. These alterations have been shown by the lead authors of the collaborative research project to induce relocation of various membrane proteins and are involved in the development of diabetic retinopathy. Furthermore, in this context inhibition of sEH has been shown to inhibit diabetic retinopathy and proposed as target for prevention of one of the leading causes of blindness in the developed world.
De novo fatty acid biosynthesis in humans is accomplished by a multidomain protein, the type I fatty acid synthase (FAS). Although ubiquitously expressed in all tissues, fatty acid synthesis is not essential in normal healthy cells due to sufficient supply with fatty acids by the diet. However, FAS is overexpressed in cancer cells and correlates with tumor malignancy, which makes FAS an attractive selective therapeutic target in tumorigenesis. Herein, we present a crystal structure of the condensing part of murine FAS, highly homologous to human FAS, with octanoyl moieties covalently bound to the transferase (MAT) and the condensation (KS) domain. The MAT domain binds the octanoyl moiety in a novel (unique) conformation, which reflects the pronounced conformational dynamics of the substrate binding site responsible for the MAT substrate promiscuity. In contrast, the KS binding pocket just subtly adapts to the octanoyl moiety upon substrate binding. Besides the rigid domain structure, we found a positive cooperative effect in the substrate binding of the KS domain by a comprehensive enzyme kinetic study. These structural and mechanistic findings contribute significantly to our understanding of the mode of action of FAS and may guide future rational inhibitor designs.
Protein quality control (PQC) machinery is in charge of ensuring protein homeostasis in the cell, i.e. proteostasis. Chaperones assist polypeptides throughout their maturation until functionality is achieved. This process might be disrupted in the presence of mutations or external damaging agents that affect the folding and stability of proteins. In this case, proteins can be efficiently recognized and targeted for degradation in a controlled manner. Ubiquitylation refers to the covalent attachment of one or more ubiquitin moieties to faulty proteins, thus triggering their degradation by the 26S proteasome.
More than 30% of proteins need cofactor molecules. Lack of cofactors renders proteins non-functional. We wanted to understand how the PQC deals with wild-type proteins in the absence of their cofactors. Several studies have indicated the importance of the riboflavin-derived cofactor FAD in the stability of individual flavoproteins, and hence we assumed that loss of flavin should mediate a targeted degradation of this group of proteins. Indeed, our mass spectrometry experiments showed that flavoproteome levels decreased under riboflavin starvation. The oxidoreductase NQO1 was used as a model enzyme to further investigate the mechanism of flavoproteome targeting by the PQC. We showed that cofactor loading determines ubiquitylation of NQO1 by the co-chaperone CHIP, both in vivo and in vitro. Furthermore, subtle changes in the C-terminus of NQO1 in the absence of FAD seemed to be crucial for this recognition event. ApoNQO1 interactome differed from holoNQO1. Chaperones and degradation factors were enriched on NQO1 upon cofactor withdrawal, probably to support maturation and prevent aggregation of the enzyme.
Loss of protein folding and stability, even to a small extent, can enhance the aggregating behavior of proteins. Proper loading with FAD reduced the co-aggregation of NQO1 with Aβ1-42 peptide. We assumed that the flavoproteome might represent aggregating-prone species under riboflavin deprivation. Supportingly, reversible apoNQO1 aggregates were observed in vivo in the absence of cofactor. General amyloidogenesis in vivo also increased under these conditions, apparently as a result of flavoproteome destabilization. In this context, we think that our data might have important implications considering the onset and development of conformational diseases.
This work has shed some light on the therapeutic implications of riboflavin deficiency as well. The sensitivity of melanoma cells towards the alkylating agent methyl methanesulfonate (MMS) increased under riboflavin starvation. Subsequent analyses indicated that a complex metabolic reorganization, mostly affecting proliferation and energy metabolism, occurs in response to starvation. What we suggest to call “flavoaddiction” can be understood as the dependence of melanoma cells on the flavoproteome structural and functional intactness to survive chemotherapy. Understanding this cellular reprogramming in detail might reveal new possibilities for future therapies.
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.
Multidomain enzymes, such as fatty acid synthases (FASs) or polyketide synthases (PKSs), play a crucial role in the biosynthesis of important natural products. They have a high significance in the development of new pharmaceuticals and various research approaches focus on the engineering of these proteins. For example, human type I FAS is an interesting therapeutic target. Owing to its importance in lipogenesis, upregulation of human type I FAS expression has been observed in numerous cancers. Type I FAS is also regarded as important target in antiobesity treatment. Both multidomain enzyme classes - FASs and PKSs - show high structural and functional similarities. Particularly animal type I FAS is most relevant as evolutionary precursor of the PKS family. Therefore, the well characterized FASs are suitable model proteins for the poorly characterized PKSs, to gain deeper understanding in these megasynthases.
Furthermore, fatty acids are considered to be strategically important platform chemicals accessible through sustainable microbial approaches. The recently acquired structural information on FASs provides an excellent understanding of the molecular basis of fatty acid synthesis. The specific understanding of chain-length control, the characterization of a multitude of substrate-specific thioesterases, and the emerging tools and means for metabolic engineering have fostered targeted approaches for modulating chain length. There is large interest in short-chain fatty acids, since these compounds are biotechnologically valuable platform chemicals and biofuel precursors, and attempts on the synthesis of short-chain fatty acids have been reported during the last years.
Primary focus of this thesis lies on the animal type I FASs, which exhibit large conformational variety, as seen in electron microscopy and high-speed atomic force microscopy. Conformational dynamics facilitate productive protein-protein interactions between catalytic domains within the enzyme and aid acyl carrier protein (ACP)-mediated substrate shuttling during the catalytic cycle of fatty acid biosynthesis. To gain deeper insight into the fundamental processes of ACP-mediated substrate shuttling and the underlying conformational dynamics, spectroscopic methods like Förster resonance energy transfer and electron paramagnetic resonance spectroscopy shall be employed. These spectroscopic methods demand site-specific labeling of proteins with fluorophore or spin labels, which can be accomplished with the amber codon suppression technology. Through amber codon suppression, a non-canonical amino acid (ncAA) with an orthogonal functional group is incorporated site-specifically into the protein sequence, which can be used in chemoselective reactions for protein labeling.
This thesis is at the forefront of employing the technology of amber codon suppression for addressing complex biological questions on megasynthases. The successful production of ncAA-modified FASs is challenging. With the aim of incorporating ncAAs into the multidomain 540 kDa large murine FAS, we by far exceed boundaries of documented application of amber codon suppression. Most of the proteins that are reported by Liu & Schultz in applications of amber codon suppression are in the range of 30kDa - for example the TE domain of human FAS. In the same review, the largest protein amber codon suppression was applied to is a potassium channel with roughly 80 kDa. Thus, to the best of my knowledge no protein exceeding 100 kDa has been used in amber codon suppression so far.
In this thesis a low-complex, well-plate based reporter assay is presented, based on an ACP-GFP fusion protein for fast and efficient screening of ncAA incorporation. Reliability and applicability of the reporter assay is demonstrated by successful upscaling to larger protein constructs and increased expression scale.
As outlined in this thesis, we have carefully set up methods for the modification of murine FAS and made several achievements:
(i) We have created our own toolbox with a multitude of suppressor plasmids and various orthogonal pairs. pACU and pACE plasmids are compatible for fast exchange of cassettes, and cloning procedures are optimized for modification of synthetases by site-directed mutagenesis. (ii) We have organic synthesis of several ncAAs stably running in the lab and synthesis of other ncAAs can be established when required. Therefore, extensive screening at moderate costs is possible. (iii) We have established a reporter assay for screening our own library of vectors for amber codon suppression and for optimizing incorporation of ncAAs. (iv) We successfully incorporated ncAAs into subconstructs and full-length murine FAS, and collected initial promising results for the application of these proteins in spectroscopic methods. Thus, laying the foundation for future studies to address fundamental questions of the ACP-mediated substrate shuttling and other conformational dynamics of these enzymes.
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.
The endosteal bone marrow niche and vascular endothelial cells provide sanctuaries to leukemic cells. In murine chronic myeloid leukemia (CML) CD44 on leukemia cells and E-selectin on bone marrow endothelium are essential mediators for the engraftment of leukemic stem cells (LSC). We hypothesized that non-adhesion of CML-initiating cells to E-selectin on the bone marrow endothelium may lead to superior eradication of LSC in CML after treatment with imatinib than imatinib alone. Indeed, here we show that treatment with the E-selectin inhibitor GMI-1271 in combination with imatinib prolongs survival of mice with CML via decreased contact time of leukemia cells with bone marrow endothelium. Non-adhesion of BCR-ABL1+ cells leads to an increase of cell cycle progression and an increase of expression of the hematopoietic transcription factor and protooncogene Scl/Tal1 in leukemia-initiating cells (LIC). We implicate SCL/TAL1 as indirect phosphorylation target of BCR-ABL1 and as a negative transcriptional regulator of CD44 expression. We show that increased SCL/TAL1 expression is associated with improved outcome in human CML. These data demonstrate the BCR-ABL1-specific, cell-intrinsic pathways leading to altered interactions with the vascular niche via the modulation of adhesion molecules - a strategy therapeutically exploitable in future.
Krebs ist und wird voraussichtlich auch in näherer Zukunft eine der häufigsten Todesursachen weltweit bleiben. Trotz vielversprechenden Fortschritten in Therapeutik und Diagnostik bedarf es noch weiterer Forschung, um die vielfältigen molekularen Mechanismen zu entschlüsseln, welche dem Verlauf von malignen Tumorerkrankungen bestimmen und zu beeinflussen vermögen. Das RNA-Bindeprotein Hu antigen R (HuR) reguliert Genexpression auf posttranskriptioneller Ebene, indem es durch Bindung an Ziel mRNAs Einfluss auf deren Abbau, Lokalisation oder Translationseffizienz nimmt. Darüber hinaus zeigte sich in den letzten Jahren, dass HuR diese Prozesse auch indirekt durch Interaktion mit regulatorischen RNAs beeinflusst. In Krebszellen lässt sich häufig eine erhöhte Aktivität von HuR beobachten, welche in Verbindung mit verschiedenen tumorigenen Prozessen gebracht wird. Unter anderem trägt HuR zur Deregulation des Zellzyklus bei, indem es die Expression der Cycline A2, B1, D1 und E1 erhöht. Weiterhin unterstützt HuR das Tumorwachstum durch Regulation von proangiogenen Faktoren wie VEGF, IL8 und COX2. Da HuR generell eine prominente Rolle bei der Regulation von Immunantworten, sowohl in Immunzellen selbst als auch in solidem Gewebe einnimmt, wurde HuR in der Vergangenheit häufig auch mit der Ausbildung des inflammatorischen Tumormikromilieus in Verbindung gebracht, jedoch ist die Datenlage in dieser Hinsicht bis heute uneindeutig. Obwohl eine Großzahl an Zytokinen und inflammatorischen Faktoren prinzipiell als HuR Zielgene beschrieben sind, gibt es nur für die wenigsten dieser Proteine entsprechende Untersuchungen in Tumorzellen.
Ziel dieser Arbeit war es, den Einfluss von HuR in Tumoren auf die Rekrutierung von Makrophagen zu evaluieren. Hierfür bot sich als in vitro Modell die Brustkrebszelllinie MCF-7 an, da diese unter entsprechenden Kultivierungsbedingungen dreidimensionale Sphäroide bildet. Solch ein Sphäroidmodell bietet sich als Kompromiss zwischen der klassischen zweidimensionalen Zellkultur an, welche zwar höchst artifiziell, jedoch leicht zu handhaben und zu kontrollieren ist, und den physiologischeren, aber gleichzeitig experimentell unzugänglicheren und speziesfremden Tiermodellen. Mittels lentiviraler Transduktion wurde ein small hairpin RNA (shRNA) vermittelter stabiler Knockdown von HuR in MCF-7 erzielt, welcher zu vermindertem Zellwachstum führte, jedoch keinen weiteren Einfluss auf die Bildung von Sphäroiden hatte. Um die initiale Suche nach HuR-regulierten, potenziell relevanten Faktoren möglichst breit und unvoreingenommen zu halten, wurde die Expression von 174 Zytokinen in Wildtyp- und HuR-knockdown Sphäroiden mittels eines Protein Arrays untersucht. Überraschenderweise zeigte der Großteil der veränderten Proteins einen negativen Zusammenhang mit HuR, welches eigentlich eher als positiv regulierendes Protein beschrieben ist. Bemerkenswerterweise befand sich unter den mit am stärksten regulierten Faktoren das Chemokin CCL5 (auch RANTES genannt), welches einerseits als einer der beiden zentralen Faktoren für die Makrophageninfiltration in Brustkrebs gilt, andererseits bisher noch nicht in Verbindung mit HuR gebracht wurde.
Im Folgenden untersuchte ich zuerst den mechanistischen Hintergrund dieser Regulation. Da diese sich auch in adhärenten Zellrasen zeigte, wechselte ich für die entsprechenden Experimente zu zweidimensionaler Zellkultur. Eine negative regulatorische Funktion von HuR wird meist in Verbindung mit verminderter Translation von Zielfaktoren gebracht. Da die mRNA Level von CCL5 dem Effekt auf Proteinebene entsprachen, konnten entsprechende Mechanismen als Grund für die veränderten CCL5 Level ausgeschlossen werden. Desweiteren blieb die mRNA Stabilität ungeachtet der HuR Level konstant; dabei zeigte sich zudem, dass mRNA Abbau generell keinen relevanten Einfluss auf die Expression von CCL5 in MCF-7 hatte. Da diese Ergebnisse auf eine transkriptionelle Regulation hindeuteten, untersuchte ich im Folgenden den Einfluss von HuR auf die Promoteraktivität von CCL5. Hierfür isolierte ich zunächst die CCL5-Promoterregion aus genomischer DNA von MCF-7 Zellen und inserierte diese dann in einen zuvor promoterlosen Luciferase-Expressionsvektor. In den folgenden Reporteranalysen zeigte sich, dass HuR tatsächlich einen negativen Einfluss auf die Promoteraktivität von CCL5 ausübt. Durch sukzessive Verkürzung ließ sich der entscheidende DNA-Bereich auf die letzten 140 Nukleotide vor dem Transkriptionsstartpunkt eingrenzen. Dieser Bereich enthält vier prominente und sehr gut charakterisierte regulatorische Abschnitte: zwei benachbarte NF-κB Bindestellen sowie je ein Interferon-stimulated Response Element (ISRE) und ein C/EBPβ Erkennungsmotiv. Während das C/EBP Element keine funktionelle Relevanz in den Reporteranalysen hatte, reduzierte sich durch Deletion sowohl der ISRE als auch der NF-κB Elemente die Promoteraktivität um mehr als 50%, allerdings nur im ISRE-Deletionskonstrukt unter Nivellierung des HuR-abhängigen Unterschiedes. Somit ließ sich der Einfluss von HuR auf die CCL5 Promoteraktivität vollständig und ausschließlich auf das ISRE zurückführen. Im Gegensatz zu dem in Tumorzellen häufig basal überaktiven NF-κB Signalweg sind die kanonischen, ISRE-assoziierten Typ I Interferon Signalkaskaden und ihre vermittelnden Transkriptionsfaktoren, die sogenannten Interferon Regulatory Factors (IRFs) nicht konstitutiv überaktiviert. Eine Sonderstellung nehmen dabei die Faktoren IRF1 und IRF2 ein, da sie, für Proteine abseits der Stimulus-getriebenen ISRE-Interferon Achse, auch als konstitutive Transkriptionsfaktoren beschrieben sind, wobei IRF2 in diesem Kontext als IRF1-Antagonist und somit Transkriptionsrepressor fungiert. Überraschenderweise ließ sich mittels Chromatin Immunopräzipitation eine Assoziation von IRF1 mit dem CCL5 Promoter nur in Wildtyp-, jedoch nicht in HuR-knockdown Zellen nachweisen. Im Gegensatz dazu ergaben mRNA Expressionsanalysen der Tumor-relevanten IRFs, dass die CCL5 Induktion in HuR-depletierten Zellen mit einer allgemeinen, jedoch niedrigschwelligen Erhöhung von Typ I Interferon-assoziierten Signalen einhergeht. Interessanterweise korrelierte Interferon β zwar mit CCL5 auf mRNA Ebene, jedoch hatte eine Blockade des Interferon-α/β Rezeptors in HuR-depletierten Zellen keinen akuten Effekt auf CCL5. Umgekehrt zeigte sich auch keine erhöhten CCL5 Level in Wildtypzellen unter Kokultur mit HuR-knockdown Zellen, wie es bei parakriner Induktion durch Interferon β zu erwarten wäre. Ebenso konnte alternatives ISRE Signaling durch einen Komplex aus unphosphoryliertem Stat1 und IRF9, wie es in vitro unter länger anhaltender Niedriglevel Exposition mit Interferon β beobachtet wurde, ausgeschlossen werden. Um sicher zu stellen, dass diese Erhöhung kein sequenzabhängiges off-target Artefakt ist, wie es in der Vergangenheit für einzelne small hairpin RNAs (shRNAs) beobachtet wurde, wurde eine entsprechende Aktivierung von IRF3 und damit des IRF3/IRF7 Aktivierungsweges untersucht und ausgeschlossen. Zusätzlich konnte durch Tests unterschiedlicher shRNA Sequenzen sowie Zellsysteme demonstriert werden, dass die CCL5 Aktivierung tatsächlich ein spezifischer und in einer größeren Bandbreite an Krebszelllinien unterschiedlicher Herkunft, darunter Brust- und Lungenkarzinom, Glioblastom- sowie Melanom- Zelllinien, reproduzierbarer Effekt von HuR-Defizienz ist.
Da CCL5 als eines der zentralen Chemokine bei der Rekrutierung von Monozyten/Makrophagen in Tumore beschrieben ist, stellte sich die Frage, ob HuR mit diesem Vorgang in Verbindung zu bringen ist. Brusttumore weisen oft eine hohe Zahl von Tumor-assoziierten Makrophagen auf, welche von eingewanderten Blutmonozyten abstammen. Ein Einfluss von HuR auf diesen Vorgang in vitro konnte mittels einer Kokultur von Sphäroiden mit zuvor frisch aus Humanblut isolierten Primärmonozyten nachgewiesen werden. Hierbei wiesen HuR-knockdown Sphäroide trotz ihres geringeren Durchmessers eine erhöhte Anzahl von Monozyten/Makrophagen auf. Da sich in diesen Zellen weder Proliferation noch relevante Apoptose zeigte, ließ sich die erhöhte Anzahl auf verstärkte Einwanderung in das Sphäroid zurückführen. Hierbei erwies sich der direkte Zellkontakt zwischen Monozyten und Tumorzellen als erforderlich, da Monozyten keine unterschiedliche Chemotaxis gegenüber entsprechenden Sphäroidüberständen zeigten. Dass die erhöhte Infiltration in HuR-defizienten Sphäroiden tatsächlich auf CCL5 zurückzuführen ist, konnte in Kokulturexperimenten durch Inhibierung von CCL5 gezeigt werden. Unterstütztend wurde ein Zusammenhang zwischen HuR, CCL5 und Tumor assoziierten Makrophagen in silico unter Zuhilfenahme des TCGA Datensets für Estrogenrezeptor-positive Brusttumore untersucht. Im Einklang mit meinen Ergebnissen zeigte sich eine negative Korrelation zwischen HuR und CCL5. Außerdem ließ sich ein negativer Zusammenhang zwischen HuR und einer Makrophagensignatur feststellen, während CCL5 wie erwartet mit dieser Signatur positiv korrelierte.
Zusammenfassend zeigte sich in dieser Arbeit, dass HuR eine Rolle bei der zellulären Zusammensetzung des inflammatorischen Tumor-Mikromilieus spielt. Der Verlust von HuR in Tumorzellen führte zu einer erhöhten Expression des Chemokins CCL5. Dies ließ sich in Brust- und Lungenkarzinom-, Glioblastom- sowie Melanom- Zelllinien beobachten. In Brustkrebszellen zeigte sich, dass diese Regulation auf verstärkte Transkription, vermittelt durch ein ISRE innerhalb des CCL5 Promoters, zurückzuführen ist. Funktionell konnte die erhöhte CCL5 Produktion in HuR-defizienten Tumorsphäroiden in Verbindung mit verstärkter Infiltration von Monozyten/Makrophagen gebracht werden. Unterstützend zeigte sich auch bei einer in silico Analyse von Estrogenrezeptor-positiven Brusttumoren eine negative Korrelation zwischen HuR und CCL5, was mit einer entsprechend veränderten Makrophagensignatur einherging. Im Hinblick auf derzeit diskutierte Ansätze, das Wachstum von Tumoren mittels HuR Blockade zu inhibieren, sind meine Ergebnisse potenziell von therapeutischer Relevanz. Basierend auf meiner Arbeit sollte dabei in zukünftigen Studien näher untersucht werden, wie sich Inhibierung von HuR in Tumoren auf die Zusammensetzung und Funktion des Tumormikromilieus auswirkt und daraus resultierende Effekte auf das Tumorwachstum in Relation zu der allgemein wachstumsfördernden Rolle von HuR in Tumorzellen gesetzt werden.
The Kinase Chemogenomic Set (KCGS): An open science resource for kinase vulnerability identification
(2019)
We describe the assembly and annotation of a chemogenomic set of protein kinase inhibitors as an open science resource for studying kinase biology. The set only includes inhibitors that show potent kinase inhibition and a narrow spectrum of activity when screened across a large panel of kinase biochemical assays. Currently, the set contains 187 inhibitors that cover 215 human kinases. The kinase chemogenomic set (KCGS) is the most highly annotated set of selective kinase inhibitors available to researchers for use in cell-based screens.
Double reduction of the THF adduct of 9H-9-borafluorene (1⋅THF) with excess alkali metal affords the dianion salts M2[1] in essentially quantitative yields (M=Li–K). Even though the added charge is stabilized through π delocalization, [1]2− acts as a formal boron nucleophile toward organoboron (1⋅THF) and tetrel halide electrophiles (MeCl, Et3SiCl, Me3SnCl) to form B−B/C/Si/Sn bonds. The substrate dependence of open-shell versus closed-shell pathways has been investigated.
Autophagy is a highly conserved catabolic process through which defective or otherwise harmful cellular components are targeted for degradation via the lysosomal route. Regulatory pathways, involving post-translational modifications such as phosphorylation, play a critical role in controlling this tightly orchestrated process. Here, we demonstrate that TBK1 regulates autophagy by phosphorylating autophagy modifiers LC3C and GABARAP-L2 on surface-exposed serine residues (LC3C S93 and S96; GABARAP-L2 S87 and S88). This phosphorylation event impedes their binding to the processing enzyme ATG4 by destabilizing the complex. Phosphorylated LC3C/GABARAP-L2 cannot be removed from liposomes by ATG4 and are thus protected from ATG4-mediated premature removal from nascent autophagosomes. This ensures a steady coat of lipidated LC3C/GABARAP-L2 throughout the early steps in autophagosome formation and aids in maintaining a unidirectional flow of the autophagosome to the lysosome. Taken together, we present a new regulatory mechanism of autophagy, which influences the conjugation and de-conjugation of LC3C and GABARAP-L2 to autophagosomes by TBK1-mediated phosphorylation.
The enzyme 5-lipoxygenase (5-LO) occupies a central role in the biosynthesis of inflammatory leukotrienes and thus takes part in the pathogenesis of related diseases. Its occurrence is mainly restricted to cells of the immune system including granulocytes, monocytes/macrophages or B-lymphocytes and can be induced by cell differentiation of myeloid cells after treatment with differentiating agents, such as DMSO, retinoic acid or the combination of TGFβ/1,25(OH)2D3. The latter contribute to the highest level of induction of mRNA and protein expression. Its cell specific occurrence is at least partly due to DNA methylation in cells that do not exhibit 5-LO activity and genetic regulation is further dependent on histone acetylation. 5-LO expression is controlled by transcription factors binding to the promoter sequence of the ALOX5 gene that induce basal promoter activity, as well as promoter independent effects including transcript initiation and elongation, which are mostly attributed to TGFβ/1,25(OH)2D3 signaling. The ALOX5 gene resembles a typical housekeeping gene, hence lacks TATA- or CAAT-boxes for transcriptional regulation, but displays a high GC-content with eight GC-boxes, five of which are arranged in tandem, that provide binding sites for transcription factors Sp1, Sp3 and Egr-1.
The proximal ALOX5 promoter is furthermore a target for additional factors, such as TGFβ effector proteins SMADs or the vitamin D receptor and possesses additional consensus sequences for transcriptional regulators, including NF-κB or PU.1. However, as yet no actual binding of these proteins to the promoter sequence was demonstrated and an unbiased screening for identifying further ALOX5 promoter interacting proteins, which might have impact on 5-LO expression, is still lacking. For this purpose, the present study focused on the identification of significantly interacting proteins, employing DNA-affinity enrichment coupled to label-free quantitative proteomics, spanning a sequence of about 270 base pairs of the proximal ALOX5 promoter. For the elucidation of potential cell specific differences in protein patterns and compositions, DNA pulldowns were performed by using oligonucleotide stretches comprising the core promoter sequence including the 5-fold GC-box, which were incubated with different cell lines and differentiation states of myeloid, as well as B-lymphocytic lineages. In order to compare different mass spectrometric quantification strategies that would allow for identification of interactors, dimethyl labeling and label-free techniques were used. Since the label-free approach outperformed the label-based one in initial experiments, it was established as standard quantification strategy in all DNA pulldowns performed. The pulldowns of myeloid cell lines in both undifferentiated and differentiated state and B-lymphocytes resulted in a cell-unspecific protein pattern whose composition was similar, regardless of cell lineage. Additionally, further DNA sequences comprising either a vitamin D response element or a SMAD binding element were investigated in the promyelocytic model cell line HL-60 in both undifferentiated and differentiated state. The identified proteins confirmed known interaction partners and furthermore revealed novel potential regulators of the 5-LO promoter. Out of these, the most prominently identified and promising proteins included transcription factors of the KLF- and CCAAT/enhancer binding protein-family. In this context, KLF5 and KLF13 are both involved in the regulation of inflammatory processes, the former additionally being an effector protein of TGFβ-signaling, whose functional characterization is of utmost interest in terms of regulation of 5-LO expression. Further protein characterization will be inevitable for the CCAAT/enhancer binding proteins C/EBPα, C/EBPβ and C/EBPε. These transcription factors are involved in the regulation of inflammatory processes and heterodimers thereof (C/EBPα/β) are known to control TGFβ/1,25(OH)2D3-mediated effects of the CD14 gene.
Several of the identified proteins of the pulldowns containing the tandem GC-box represented interactors of G-quadruplex DNA, including the helicases BLM and DHX36, the ribonucleoproteins hnRNP D and hnRNP K and transcription factor MAZ. Since G-quadruplexes form in G-rich DNA sequences as secondary DNA structures and exhibit substantial regulatory effects on the transcription of their target genes, the potential formation thereof in the ALOX5 core promoter sequence was investigated in a second project. Out of the proteins mentioned above, MAZ is shown to exert resolving effects on G4-DNA and synergistically induce Sp1-dependent gene activation of oncogene h-RAS, which displays analogous promoter characteristics to the ALOX5 gene. A DNA stretch comprising the tandem GC-box was used for elucidating the potential of secondary DNA structure formation. Intriguingly, both immune-based and spectroscopic methods provided clear evidence for the in vitro G-quadruplex formation of the proximal promoter sequence for the first time. In order to provide additional information on a possible regulatory effect of existing G-quadruplex structures on 5-LO transcription, differentiated HL-60 cells were subsequently treated with two distinct G4-DNA stabilizing agents. A porphyrin analogon (TMPyP4) did not exhibit any effects on 5-LO mRNA and protein expression after cell treatment. A second G4-DNA stabilizing agent (pyridostatin) on the other hand revealed significant reduction on 5-LO protein expression after cellular treatment. These mixed results render further experiments inevitable, in order to provide a clear assertion as to whether 5-LO expression is regulated by G-quadruplex structures or not.
Altogether, this study enlarges the knowledge of ALOX5 proximal promoter interacting proteins by corroborating the binding of already known transcription factors and identifying novel interactors. It yields essential groundwork for subsequent functional studies of proteins involved in 5-LO transcription and introduces G-quadruplexes as a new potential mechanism in ALOX5 gene regulation.
ATP-binding cassette (ABC) transporters constitute an omnipresent superfamily of integral membrane proteins, which catalyze the translocation of a multitude of chemically diverse substrates across biological membranes. In humans, ABC transporters typically act as highly promiscuous exporters, responsible for many physiological processes, multi-drug resistance, and severe diseases, such as hypercholesterolemia, lipid trafficking disorders, and immune deficiency. In all ABC transporters, ATP-driven movements within two highly conserved nucleotide-binding domains (NBDs) are coupled to conformational changes of two transmembrane domains (TMDs), which provide a framework for substrate binding and release on the opposite side of the membrane and enable the transporter to cycle between inward-facing and outward-facing orientations. Several structures of ABC transporters determined either by X-ray crystallography or single-particle electron cryo-microscopy (cryo-EM) have been reported, mostly exhibiting a variation of the inward-facing state, which highlights their dynamic behavior. However, for a complete understanding of the conformational dynamics, further structural information on intermediates is needed – especially for heterodimeric ABC transporters, which are predominant in humans and for which only limited structural information is available.
One prime example of such human heterodimeric ABC transport complexes is the transporter associated with antigen processing (TAP). TAP is a key player of the adaptive immune response, because it translocates proteasomal degradation products into the ER lumen for loading of MHC I molecules. Many functional aspects of TAP have been disclosed in recent years. However, structural information is lacking far behind and a major challenge in the field of medical relevant transporters. Recently, the heterodimeric ABC export system TmrAB (Thermus thermophilus multidrug resistance proteins A and B) was identified as an ortholog of TAP, by sharing structural homology with TAP and, intriguingly, being able to restore antigen presentation in human TAP-deficient cells. Thus, TmrAB is a biochemically well-characterized ABC exporter that can be regarded as a functional ortholog of TAP and serves as a model system for (heterodimeric) ABC export systems in general.
Thus, to illuminate the molecular basis of substrate translocation by single-particle cryo-EM, one of the main objectives of this work was the generation of stabilizing chaperones (synthetic antibodies, nanobodies, cyclic peptides) to reduce the conformational heterogeneity of TAP and TmrAB. Selected antibodies were analyzed with respect to stable complex formation, conformational trapping, and the ability to serve as alignment tools for structural studies by single-particle cryo-EM. Both antibody types were shown to form sufficiently stable complexes to serve as a rigid body for EM analyses. However, all selected antibodies bound to the inward-facing state exclusively.
Hence, for EM studies, various ligands were added to elucidate the full spectrum of conformational states during the catalytic cycle. For TAP, first attempts by negative-stain EM revealed a homogenous distribution of particles on the grid. Surprisingly, no transporter-like features were observed although various attempts were applied to increase the overall sample quality.
For TmrAB, in contrast, the complete conformational space in a native-like lipid environment under turnover conditions was mapped. Cryo-EM analysis of TmrAB incubated with ATP-Mg2+ and substrate revealed two distinct inward-facing conformations (IFwide and IFnarrow) as well as two asymmetric conformations with dimerized NBDs, which were markedly different from all previously reported structures. Here, the catalytically active site was slightly wider and contained ADP, while ATP was still bound at the catalytically-inactive site within the NBDs, demonstrating an asymmetric post-hydrolysis state. Intriguingly for the inward-facing conformations, a weak additional density close to residues M139TmrB and W297TmrB was observed in the inward-facing conformation, which displayed a higher degree of cytosolic gate opening (IFwide) indicating the presence of substrate. To verify that this density corresponds to substrate, single alanine mutations of M139TmrB and W297TmrB were introduced, leading to a strong reduction in substrate binding and transport. Since substrate release requires the opening of the extracellular gate, the absence of an outward-facing open conformation indicated that the opening must be highly transient. In order to explore the outward-facing open conformation, a cryo-EM analysis of the catalytically-inactive TmrAE523QB mutant upon incubation with ATP-Mg2+ was performed. Remarkably, within the same dataset, two different outward-facing conformations (occluded and open) were resolved, both in an ATP-bound state, which indicated that binding of ATP is sufficient to drive the large-scale conformational transition from inward-facing to outward-facing open. To explore the effect of nucleotide hydrolysis, TmrAB was trapped by vanadate. Again, two populations were observed, representing the outward-facing open and outward-facing occluded conformation.
Based on several structures of key intermediates, determined under turnover conditions or trapped in the pre-hydrolysis and hydrolysis transition state, for the first time the complete description of the ATP hydrolysis and translocation cycle of a heterodimeric ABC transport complex was elucidated in one single study. By mapping the conformational landscape during active turnover, aided by mutational and chemical modulation of kinetic rates, fundamental and so-far hidden steps of the substrate translocation cycle of asymmetric ABC transporters were resolved and a general template for (heterodimeric) ABC exporter-catalyzed substrate translocation was provided.
YEATS-domain-containing MLLT1 is an acetyl/acyl-lysine reader domain, which is structurally distinct from well-studied bromodomains and has been strongly associated in development of cancer. Here, we characterized piperazine-urea derivatives as an acetyl/acyl-lysine mimetic moiety for MLLT1. Crystal structures revealed distinct interaction mechanisms of this chemotype compared to the recently described benzimidazole-amide based inhibitors, exploiting different binding pockets within the protein. Thus, the piperazine-urea scaffold offers an alternative strategy for targeting the YEATS domain family.
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.
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The SLC26 family of transporters maintains anion equilibria in all kingdoms of life. The family shares a 7 + 7 transmembrane segments inverted repeat architecture with the SLC4 and SLC23 families, but holds a regulatory STAS domain in addition. While the only experimental SLC26 structure is monomeric, SLC26 proteins form structural and functional dimers in the lipid membrane. Here we resolve the structure of an SLC26 dimer embedded in a lipid membrane and characterize its functional relevance by combining PELDOR/DEER distance measurements and biochemical studies with MD simulations and spin-label ensemble refinement. Our structural model reveals a unique interface different from the SLC4 and SLC23 families. The functionally relevant STAS domain is no prerequisite for dimerization. Characterization of heterodimers indicates that protomers in the dimer functionally interact. The combined structural and functional data define the framework for a mechanistic understanding of functional cooperativity in SLC26 dimers.
Proteostasis stressors that destabilize the cellular proteome, like heat shock, trigger transcription and translational reactions leading to the accumulation of heat shock proteins, also called molecular chaperones. During stress, induction of stress response genes is prioritized so that molecular chaperones and other stress response proteins are synthesized to cope with proteome misfolding and aggregation. In order to promote the selective translation of stress-specific genes, translation of others genes that are nonessential for cell survival has to stop. Nonessential protein-coding mRNAs accumulate in the cytosol with the associated proteins to form granular structures called stress granules (SG). These membrane-less organelles are thought to be involved in cell survival, mRNA stabilization and mRNA triage. They were proposed to form via the liquid-liquid phase separation which can be triggered by the high local concentration of RNA-binding proteins. mRNAs were long thought to simply play a scaffolding role by bringing RNA-binding proteins together and allowing their concentration and local aggregation. Recently, the active role of mRNAs in the SG assembly became apparent, too. For example, the spontaneous assembly of total yeast RNA into granules was observed, and these RNA granules showed a large overlap with SG transcriptome. Furthermore, cytosolic mRNAs can be released from polyribosomes under stress and be exposed to the cytosolic contents as free mRNAs. It has been suggested that this massive increase of free mRNA in the cytosol might overload the capacities of RNA-stabilizing proteins. The remaining free mRNA molecules would then become exposed to misfolded and aggregation-prone proteins and trigger granulation.
We investigated the role of free mRNAs in different stress conditions during the early and chronic phases of stress response and explored their involvement in SGs assembly and amlyoidogenesis. We identified and studied the interactome of a free mRNA probe incubated with heat shocked cell lysate by means of quantitative mass spectrometry. Proteomics analysis allowed us to identify 79 interactors of free mRNA. Among these interactors, we focused on the translation initiation factor eIF2α and on the RNA methyltransferase TRMT6/61A. Both interactions were verified biochemically, which confirmed that the association is enhanced in heat shocked lysate. In vitro reconstitution showed that free mRNA and TRMT6 interact directly. Ex vivo pulldowns revealed that eIF2α and TRMT6/61A interact under stress conditions and that this interaction is RNA-dependent.
TRMT6/61A is a tRNA methytransferase responsible for the methylation of the adenosine 58 at the position 1 producing m1A. However, also mRNAs have been recently found to be methylated by TRMT6/61A. Our bioinformatics analyses revealed that significantly more mRNAs enriched in SG contain the motif for methylation than SG-depleted mRNAs. We hypothesized that m1A methylation of mRNAs could constitute a tag for the mRNAs targeting to SGs. TRMT61A knock-down (KD) cell lines were generated using the CRISPR-Cas9 technique. In TRMT61A KD cells, m1A was significantly reduced on mRNAs, which correlated with an increased sensitivity of the cells to proteostasis stress. KD cells also showed defects in SG assembly. In heat shocked cells, an m1A motif-containing mRNA recovered better after returning to normal temperature than a control mRNA with mutated motif. In addition, we could isolate SGs and analyze their m1A and m6A content by mass spectrometry. While m6A content in SG mRNAs was very similar to cytosolic mRNAs, m1A was almost 8 times enriched in SGs. Thus, we could confirm experimentally the results of the bioinformatics analysis and directly support the hypothesis that m1A is a tag to direct mRNAs for sequestration. Finally, we compared amyloidogenesis in wild-type and TRMT61A KD cell lines. Cells with reduced levels of TRMT61A demonstrated an increased accumulation of transfected Aβ and an impaired aggregate clearance. Various assays led us to conclude that the lack of m1A deposition on mRNAs enhanced RNA co-aggregation with amyloids.
Based on our results, we propose a model explaining the fate of free mRNA during proteostasis stress. Upon polysome disassembly, free mRNA is released and becomes free to interact with other proteins, including the methyltransferase TRMT6/61A. TRMT6/61A methylates the freed mRNAs containing the cognate motif. The m1A tag then targets mRNAs to SGs promoting sequestration. Upon stress release, SGs disassemble, thus releasing rescued mRNAs which could now reenter translation and support cell recovery. On the other hand, non-sequestered mRNAs increasingly co-aggregate with aggregating proteins. Thus, deficiency of the N1-adenine methylation of mRNAs due to the lack of TRMT6/61A increases the amount of unpacked mRNAs. The deposition of m1A on mRNAs could then be a way to protect them during exposure to stress, to limit their co-aggregation with misfolded proteins and to allow a faster recovery upon stress release.
The electron transport chain (ETC) is used by cells to create an electrochemical proton gradient which can be used by the ATP synthase to produce ATP. ETC, also called respiratory chain, is formed in mitochondria by four complexes (complex I-IV) and mediated by two electron carriers: cytochrome c and ubiquinone. Electrons are passed from one complex to another in a series of redox reactions coupling proton pumping from the negative (N) side of the membrane to the positive (P) side. Complex I can introduce electrons into the ETC by oxidizing NADH to NAD+ and reducing quinone (Q) to quinol (QH2). The process accomplishes pumping of four protons across the membrane. Complex II is another electrons entry point. It catalyzes the oxidation of succinate to fumarate while reducing Q to QH2. Complex III, also called cytochrome bc1 complex, can transfer the electrons from QH2 to cytochrome c and couple to proton pumping. In complex III the Q-cycle contributes four proton translocations: two protons are required for the reduction of one quinone to a quinol and two protons are released to the P side. Complex IV (cytochrome c oxidase), the terminal complex of the ETC, catalyzes the electron transfer to oxygen and pumps four protons to the P side. Structures of ETC complexes are available. However, the structure of a hyperthermophilic cytochrome bc1 complex has not been elucidated till now. Additionally, the dimeric crystal structure of cytochrome c oxidase from bovine has been discussed controversially.
To build up a functional complex, cofactors are required. The active site of A- and B-type cytochrome c oxidases contain the high spin heme a which is synthesized by the integral membrane protein heme A synthase (HAS). HAS can form homooligomeric complexes and its oligomerization is essential for the biological function of HAS. HAS is evolutionarily conserved among prokaryotes and eukaryotes. Despite its importance, little is known about the detailed structural properties of HAS oligomers.
During my PhD studies, I focused on the cytochrome c oxidase (AaCcO), the cytochrome bc1 complex (Aabc1) and the heme A synthase (AaHAS) from Aquifex aeolicus. This organism is one of the most hyperthermophilic ones and can live at extremely high temperatures, even up to 95 °C. Respiratory chain complexes provide energy for the metabolism of organisms, and their structures have been studied extensively in the past few years. However, there has been a lack of atomic structures of complexes from hyperthermophilic and ancient bacteria, so little is known about the mechanism of these macromolecular machines under hyperthermophilic conditions. Therefore, my PhD studies had four main objectives: 1) to structurally and functionally characterize AaCcO, 2) to reveal the mechanism of Aabc1 thermal stability based on its structure, 3) to determine the oligomerization of AaHAS, 4) to provide valuable insights into the relationship between function and oligomerization of AaHAS.
1) Structure of AaCcO
Heme-copper oxidases (HCOs) catalyze the oxygen reduction reaction being the terminal enzymes in the plasma membranes in many prokaryotes or of the aerobic respiratory chain in the inner mitochondrial membrane. By coupling this exothermic reaction to proton pumping across the membrane to the P side, they contribute to the establishment of an electrochemical proton gradient. The energy in the proton electrochemical proton gradient is used by the ATP synthase to generate ATP. HCOs are classified into three major families: A, B and C, based on phylogenetic comparisons. The well-studied aa3-type cytochrome c oxidase from Paracoccus denitrificans (P. denitrificans) represents A-family HCOs. So far, the only available structure of the ba3-type cytochrome c oxidase from Thermus thermophilus represents the B-family of HCOs. This family contains a number of bacterial and archaeal oxidases. The C-family contains only cbb3-type cytochrome c oxidases.
The AaCcO is one of the ba3-type cytochrome c oxidases. Based on the genomic DNA sequence analysis, it has been revealed that A. aeolicus possesses two operons coding for cytochrome c oxidases (two different subunit I genes, two different subunit II genes and one subunit III gene). So far, only subunits CoxB2 and CoxA2 were identified. The presence of the additional subunit IIa was reported in 2012. Moreover, a previous paper reported that AaCcO can use horse heart cytochrome c and decylubiquinol as electron donors and the typical cytochrome c oxidase inhibitor cyanide does not block the reaction completely.
In the course of my PhD studies, I performed heterologous expression of AaCcO in Pseudomonas stutzeri (P. stutzeri) and co-expression with AsHAS in Escherichia coli, respectively. The subcomplex CoxA2 and CoxB2 can be purified from P. stutzeri, however, it lacks heme A. Additionally, a protocol for the heterologous production of cytochrome c555 from A. aeolicus was established. In parallel, I also purified the AaCcO from native membranes according to previously reported methods with some modifications. The activity of AaCcO with its native substrate, cytochrome c555, was 14 times higher than with horse heart cytochrome c.
To enable a detailed investigation and comparison of AaCcO and other cytochrome c oxidases, the cryo-EM structure of AaCcO was determined to 3.4 Å resolution. It shows that the three subunits CoxA2, CoxB2, and IIa are tightly bound together to form a dimer in the membrane. Surprisingly, CoxA2 contains two additional TMHs (TMH13 and TMH14) to enhance the protein stability. The cofactors heme a3, heme b, CuA and CuB are also identified. Interestingly, two molecules of 1,4-naphthoquinone and cardiolipin were observed in the dimer interface. Based on the structure analysis, the AaCcO possesses only the K-pathway for proton delivery to the active site and proton pumping.
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