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NADH:ubiquinone oxidoreductase (Complex Ⅰ) is the first and largest enzyme in the respiratory chain. It catalyzes the transfer of two electrons from NADH to ubiquinone via a series of enzyme-bound redox centers - Flavin mononucleotide (FMN) and iron-sulfur (Fe-S) clusters – and couples the exergonic reaction with the endergonic translocation of four protons across the membranes. Bacteria contain the minimal form of complex I, which is composed of 14 conserved core subunits with a molecular mass of around 550 kDa. Complex Ⅰ has an L-shaped structure which can be subdivided into two major parts (arms). The hydrophilic arm protruding into the bacterial cytosol (or mitochondrial matrix) harbors the binding site for the substrate NADH, the two- to one-electron switch FMN and all one-electron transferring Fe-S clusters and therefore considered as the catalytic unit. The membrane arm consists of the membranespanning subunits and conducts the proton pumping process. The Quinone binding site is located at the interface of both arms. ...
This thesis investigates the structure of the translocase of the outer membrane (TOM) complex in mitochondria, focusing on the TOM holo complex through single-particle electron cryo-microscopy (cryoEM) complemented by mass spectrometry and computational structure prediction. Mitochondria, crucial for energy production in eukaryotic cells, import most of their proteins from the cytoplasm. These proteins enter through the TOM complex, which in its core form consists of a membrane-embedded homodimer of Tom40 pores, two Tom22 cytoplasmic receptors, and six small TOM stabilizing subunits (Tom7, Tom6, and Tom5). The holo complex includes two additional subunits, Tom70 and Tom20, whose stoichiometry and positioning are less understood due to their easy dissociation during isolation of the complex. CryoEM analysis revealed the high-resolution structure of the Neurospora crassa TOM core complex at 3.3 Å, containing all core subunits, and the presence of a central phospholipid causing the Tom40 dimer to tilt to 20°. Furthermore, a 4 Å resolution map indicated the binding of a precursor protein as it transitions through the translocation barrel. Finally, at 6-7 Å resolution, the structure of the TOM holo complex highlighted Tom20's flexibility as it interacts with the core complex, emphasizing its role in protein translocation. This work provides significant insights into the architecture and functioning of the TOM complex, contributing to the understanding of mitochondrial protein import mechanisms.
Die NADPH-Oxidasen stellen eine wichtige Quelle für reaktive Sauerstoffspezies (Reactive oxygen species; ROS) im Organismus dar. Hierbei dienen die NADPH-Oxidasen nicht nur der Pathogenabwehr, sondern haben einen Einfluss auf eine Vielzahl an oxidativen, physiologischen Prozessen. Unter den NADPH-Oxidasen ist NOX4 einzigartig, da es hauptsächlich im endoplasmatischen Retikulum (ER) lokalisiert ist, konstitutiv aktiv ist und Wasserstoffperoxid (H2O2) produziert. Wir vermuten, dass diese besonderen Eigenschaften eine Konsequenz aus der Interaktion mit bislang unentdeckten NOX4-interagiereden Proteinen ist.
Zweidimensionale blau-native Polyacrylamid-Gelelektrophorese (BN-PAGE) kombiniert mit SDS-PAGE zeigte NOX4 in makromolekularen Komplexen. Interagierende Proteine wurden durch eine quantitative SILAC (stable isotope labeling of amino acids in cell culture)-Co-immunopräzipitation (Co-IP) in NOX4-überexprimierenden HEK293-Zellen gescreent. Hierdurch konnten verschiedene interagierende Proteine identifiziert werden, wobei Calnexin die robusteste Interaktion aufwies. Calnexin konnte zudem in NOX4-haltigen Komplexen durch Complexome Profiling der BN-PAGE oder gleichzeitiger Antikörperfärbung nachgewiesen werden. Die Calnexin-NOX4-Interaktion konnte mittels reverser Co-IP und Proximity ligation assay bestätigt werden, während NOX1, NOX2 und NOX5 nicht mit Calnexin interagierten. Calnexin-Defizienz, untersucht in embryonalen Mausfibroblasten oder durch shRNA gegen Calnexin, reduzierte die NOX4-Proteinexpression und ROS-Bildung, wobei die mRNA-Expression unverändert blieb. Des Weiteren wurde untersucht, ob der bekannte Interaktionspartner von NADPH-Oxidasen, p22phox, wirklich essentiell für die Expression oder Aktivität von NOX4 ist, da es nur in manchen der NOX4-Co-IPs nachgewiesen wurde. Um den Einfluss von p22phox für NOX4 aufzuklären wurde ein CRISPR/Cas9 Knockdown in NOX4-überexprimierenden HEK293 Zellen etabliert. p22phox zeigte keinen Einfluss auf die NOX4-Expression, jedoch war die NOX4-abhängige ROS-Produktion in p22phox-Knockout Zellen verschwunden.
Unsere Ergebnisse deuten darauf hin, dass endogenes NOX4 makromolekulare Komplexe mit Calnexin ausbildet, welches für die korrekte Reifung, Prozessierung und Funktion von NOX4 im ER nötig ist. Darüber hinaus ist p22phox nicht für die Reifung von NOX4, aber für dessen Aktivität nötig. Diese Ergebnisse zeigen eine vielfältige Regulation von NOX4 auf Proteinebene.
Rotary adenosine triphosphate (ATP)ases are ubiquitous, membrane-bound enzyme complexes involved in biological energy conversion. The first subtype, the so-called F1Fo ATP synthase, predominantly functions as an ATP synthesizing machinery in most bacteria, mitochondria and chloroplasts. The vacuolar subtype of enzyme, the V1Vo ATPase, operates as an ATP driven ion pump in eukaryotic membranes. The subtype found in archaea and some bacteria is called A1Ao ATP (synth)ase and is capable of working in both directions either to synthesize ATP or to generate an ion motive force by consuming the same.
All the three above-mentioned subtypes of rotary ATPases work as nanomolecular machines sharing a conserved mechanism to perform the energy conservation process. The simplest form of these enzymes is the bacterial F1Fo ATP synthase. Here, ions are channelled via the membrane stator subunit a to the rotor ring of the enzyme. After almost a complete rotation of the ring the ions are released again on the other side of the membrane. This rotation is further transmitted via the central stalk to the soluble part of the enzyme, the F1-complex, where conformational changes within the nucleotide binding sites result in the synthesis of ATP from ADP and Pi.
The rotor or c-ring of the enzyme is the key protein complex in mediating transmembrane ion translocation. Several structural and biochemical methods have been applied in the past years to study the rotor rings from many different organisms. The results revealed that the stoichiometry of a c-ring of a given species is constant while it can vary between different species within a range of 8 to 15 c subunits. The c-ring stoichiometry determines directly the number of ions transported through Fo per rotation whereby three molecules of ATP are concurrently synthesized in the water-soluble F1 headgroup. Hence the number of c subunits has an important influence on the bioenergetics of the corresponding enzyme and thus the entire organism.
The c-ring of a rotary ATPase is able to specifically bind either protons (H+) or sodium ions (Na+) as the coupling ion for the enzyme. Several structures are already available revealing the coordination network of both types of rotor rings. In each case ion binding includes a highly-conserved carboxylic acid residue (glutamate or aspartate), in addition to a more varying combination of amino acid residues, whereby Na+ coordination is structurally more demanding than H+ binding.
In the first part of my PhD thesis, I aimed to characterize the F1Fo ATP synthase rotor ring of the opportunistic pathogenic bacterium Fusobacterium nucleatum on a functional and structural level. F. nucleatum is an anaerobic bacterium which uses peptides and amino acids as a primary energy source. It is one of the most frequently occuring bacteria in human body infections and involved in human periodontal diseases.
The protein complex was heterologously expressed within a hybrid ATP synthase in Escherichia coli and purified without an affinity tag for further analysis. Two high resolution X-ray structures of the c-ring were solved at low (5.3) and high (8.7) pH to 2.2 and 2.64 Å, respectively. In both structures, the conserved glutamate is in an ion-locked conformation, revealing that the conformational state of the ion binding carboxylate is not depending on the pH of the crystallization condition, which is in good agreement with previous structural and biochemical studies of other c-rings.
A Na+ ion is present within the c-ring binding site and directly coordinated by four amino acid residues and a structural water molecule. Remarkably, the Na+ is bound by two glutamate residues instead of one as is the case in the I. tartaricus Na+ binding c-ring, of which the first high resolution X-ray structure of a c-ring has been solved in 2005. Thus, a new type of Na+ coordination in an ATP synthase rotor ring with a two-carboxylate ion binding motif is described here, which also occurs in other bacteria, including several pathogens. Na+ specificity of the investigated c-ring was further confirmed by a competitive biochemical labeling reaction performed with a fluorescent ATP synthase inhibitor molecule (N-cyclohexyl-N`-[4(dimethylamino)-α-naphtyl] carbodiimide, NCD-4).
We furthermore complemented our functional and structural data of the F. nucleatum c-ring by computational studies to explore the ion translocation mechanism of this enzyme in more details. We therefore analyzed the protonation state of the second, additional glutamate in the ion binding site. Molecular dynamics (MD) simulations and free-energy calculations indicated that this glutamate is constitutively protonated, in the ion-locked as well as in a simulated, more hydrated open-conformation of the ion binding glutamate as when it is travelling through the a/c-ring interface upon c-ring rotation.
Infections with multidrug resistant bacterial strains like Escherichia coli, Klebsiella pneumoniae, Pseudomonas aeruginosa or Acinetobacter baumanii that can accumulate resistance mechanisms against different groups of drugs cause increasing problems for the health care system. Multidrug efflux pumps are able to transport different classes of substances, providing a basic resistance to different antibiotics. Especially when they are overexpressed they can keep bacterial cells alive under antibiotic pressure unless other high level resistance mechanisms like expression of β-lactamases are established. One example for a clinically relevant multidrug efflux pump is the AcrAB/TolC tripartite system of E. coli, that transports a variety of different substrates, including besides antibiotics dyes, detergents, bile salts and organic compounds from the periplasm or the inner membrane out of the cell. AcrB is the inner membrane component of the protein complex that determines not only the substrate specificity of the tripartite system but energises the transport through the whole system process via proton transduction as well. TolC is the outer membrane spanning protein that forms a pore in the outer membrane enabling the system to transport drugs over the latter out of the cell. The periplasmic membrane fusion protein AcrA connects AcrB and TolC in the periplasm completing the channel from the periplasm, respective the inner membrane to the extracellular space. AcrB assembles as trimers, in asymmetric crystal structures each of the protomers adapts a different conformation designated L(oose), T(ight) and O(pen). In the protomers tunnels open up and collaps in different conformations. In the L protomer a periplasmic cleft opens up that can initially bind substrates to the periplasmic part of AcrB. In the T conformation the deep binding pocket opens that is assumed to bind substrates tightly that were bound to the access pocket before. As well in the T conformation a second pathway leading to the deep binding pocket opens that can guide substrates from a groove between transmembrane helices TM7, TM8 and TM9, the TM8 groove, that is connected with socalled tunnel 1 that ends in the deep binding pocket. In the O conformation a new tunnel opens that connects the collapsing deep binding pocket with the periplasmic space, respective the channel through the periplasmic space formed from AcrA and TolC. Substrates were cocrystallised in access and deep binding pocket verifying their role in substrate transport. In the TM8 groove in high resolution crystal structures DDM molecules were cocrystallised in L and T conformation, indicating that the AcrB substrate DDM may utilise this entrance to the deep binding pocket. The asymmetry observed in the AcrB trimers trongly suggests a peristaltic pump mechanism. The functional rotation cycle demands communication between the subunits and tight control of substrate load of protomers during the transport to optimise the ration between protons that are transduced and substrates transported. Indeed it was shown that AcrB transport mechanism is positively cooperative for some β-lactam substrates. For the communication between the subunits it was assumed that ionic interaction between ion pairs established between charged amino acids at the interfaces of protomers in different conformations are of special importance. Thus the amino acids engaged in ionic interactions, respective ion pairs D73-K131, E130-K110, D174-K110, R168, R259-E734 were substituted with non-charged amino acids pairwise and phenotypes were determined in plate dilution assays and MIC experiments. No evidence for a general, substrate independent, reduction of AcrB activity, that would be expected when the ionic residues are of special importance for AcrB function, could be found with the methods applied. Substitutions were not only combined pairwise according to the putative ion pairs but as well in combinations of R168A with D174N, E130Q and K131M. AcrB activity is reduced for the variant R168A_D174N significantly, activity decreases further for quadruple variant E130Q_K131M_ R168A_D174N. Because the reduced activity is only observed in this combination of substitutions the phenotype must result from accumulation of small effects of the single substitutions. R168A may destabilise the protomer interfaces, as its side chain is oriented in direction to the neighbouring protomer at all interfaces, enhancing substratespecific effects of substitutions E130Q, K131M, D174N that are not in all conformations oriented towards the neighbouring protomer but as well along the substrate transport pathway. Further investigations to figure out the details of the effects observed were not conducted because fluctuating expression of the variants hindered experimental procedures.
In another approach TM8 was in focus of the interest. As mentioned above it is a possible substrate entrance in the inner membrane. The linker between TM8 and the periplasmic PC2 subdomain undergoes a coil-to-helix transition when AcrB cycles through L, T and O conformations. Linking the transmembrane part of AcrB that provides the energy for the transport process via proton transduction with the periplasmic part harbouring the major part of the substrate pathway assignes TM8 and the periplasmic linker (859-876) an important role in the function of AcrB. Thus it was investigated with an alanine-scan of residues 859 to 884 and G/P respective P/G exchange followed by phenotype characterisation in growth curve and plate dilution assays of selected variants. In the phenotype determinations none of the variants, except G861P that seems to cause massive sterical restriction in an α-helical region, displayed a general, substrate independent decrease of AcrB activity. Thus it is concluded that the individual properties of amino acids in TM8 and the periplasmic linker are not of general importance for the mechanism of AcrB. The substitution of individual amino acids had impact on uptake of different substrates in plate dilution assays in a substrate dependent manner. The uptake of some substrates, like erythromycin or chloramphenicol is more affected than that of others with rhodamine 6G resistance being only reduced for the G861P variant. A relation between the PSA of substrates and reduced activity of AcrB was observed. in Substrates with higher PSA values are more affected by substitutions in TM8 or periplasmic linker, resulting in the conclusion that substrates with higher PSA are more likely to be taken up via the TM8 groove/tunnel 1 pathway than those with lower PSA values.
Die Translokation von gelösten Stoffen über zelluläre Membranen ist ein essentieller biologischer Prozess, der durch eine Vielfalt an integralen Membranproteinen vermittelt wird. Diese sind in den selektiven Austausch verschiedenster Stoffe bzw. Teilchen involviert und ermöglichen somit die Kommunikation zwischen den einzelnen Zellkompartimenten untereinander bzw. mit der extrazellulären Umgebung. Eine der größten Familien paraloger Proteine, die den vektoriellen Transport von Substanzen über Zellmembranen katalysieren, stellen die ATP‐binding cassette (ABC)‐Transporter dar. Mitglieder dieser Proteinfamilie sind in allen bisher untersuchten Organismen von Prokaryoten bis hin zu höheren Eukaryoten vertreten und übernehmen essentielle Funktionen in einer Vielzahl von zellulären Abläufen. ABC‐Transporter zeichnen sich durch eine breite Substratdiversität aus, d.h. sie energetisieren unter ATP‐Verbrauch die Translokation zahlreicher, strukturell und chemisch unterschiedlicher Substanzen wie Zucker, Lipide, Ionen, Aminosäuren, Proteine oder auch zelltoxische Stoffe. In Bakterien können sie sowohl als Importproteine fungieren, welche hauptsächlich die Aufnahme von Nährstoffen vermitteln, als auch als Exportproteine, deren Hauptaufgabe es ist, zelltoxische Substanzen aus der Zelle heraus zu schleusen. Eukaryotische ABC‐Transporter sind sowohl in der Plasmamembran als auch in den intrazellulären Membranen zu finden – beispielsweise in denen des Endoplasmatischen Retikulums, des Golgi Apparats, der Lysosomen, der Peroxisomen und der Mitochondrien. Sie fungieren als Exportproteine und sind z.B. an der Ionen‐Homöostase, der Antigenprozessierung, der Insulinfreisetzung oder am Cholesterol‐ und Lipidtransport beteiligt. ...