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ATP synthases are multi-subunit membrane enzymes, which utilize the energy stored in a transmembrane electrochemical ion gradient to produce adenosine-5´-triphosphate (ATP), the universal energy carrier in biological systems. Research on these important enzymes goes back more than 50 years and has produced innumerable studies. The F-type ATP synthase consists of two functionally distinct, but tightly coupled subcomplexes, the water-soluble F1 and the membrane-embedded Fo complex. In its simplest form, F1 consists of five different subunits with a stoichiometry of α 3β3γδε, and harbors three catalytic centers in the α 3β3-headpiece, while Fo consists of three different subunits in a stoichiometry of ab2cn, where n varies between 8 to 15 depending on the species. From a mechanistic standpoint, the complex can also be divided into two different units, namely a stator, α3β3δ-ab2, and a rotor, γε-cn. The enzyme utilizes the energy stored in a transmembrane electrochemical gradient of protons, or in some cases Na+, to drive ATP synthesis. In particular, the downhill translocation of these ions across the Fo complex drives rotation of the γε-cn unit, which is then transduced to the active centers, catalyzing the phosphorylation of adenosine-5`-diphosphate (ADP) with inorganic phosphate (Pi), and the release of ATP....
The universal biological energy currency adenosine triphosphate (ATP) is synthesized by the F1Fo-ATP synthase in most living organisms. The overall structure and function of F-type ATPases is conserved in the different organisms. The F1Fo-ATP synthase consist of two domains; the soluble F1 complex has the subunit stoichiometry α3β3γδε and the membrane embedded Fo complex consists of subunits ab2c10-15 in its simplest form found in bacteria. F1 and Fo both function as reversible rotary motors that are connected by a central stalk (γε) and a peripheral stalk (b2δ).
For ATP synthesis, the electrochemical energy formed by a proton or sodium ion gradient is required. The ion translocation across the Fo subcomplex induces torque in the motor part of the enzyme (cnγε), which causes conformational changes in the α3β3 domain leading to ATP synthesis from ADP and inorganic phosphate (Pi) catalyzed in the β-subunits. ATP hydrolysis causes a reverse torque in the Fo subcomplex triggering uphill ion translocation from cytoplasm to periplasm, and the enzyme functions as an ion pump.
The ATP synthesis mechanism is well understood, since several high-resolution structures of F1 are available. In contrast, the ion translocation mechanism across the membrane, mediated by the Fo subcomplex, is not understood in its structural detail.
Subunit a and the c-ring form an ion pathway, but subunit b is needed to form an active ion translocation pathway in both H+- and Na+-dependent systems. Several high-resolution structures of c-rings have provided insights in the ion translocation mechanism. The different ion translocation models based on biochemical, biophysical and structural analysis are in agreement in the fact that ions are translocated through a periplasmic ion access pathway in subunit a to the middle of the membrane and there to the binding site of a c-subunit. After almost a whole rotation of the c-ring the ion returns into the a-c interface, where it can be released to the cytoplasm. In the different models the cytoplasmic access pathway has been proposed to be located in subunit a, at the a-c interface or within the c-ring. The driving force of torque generation has been proposed to be the pH gradient or membrane potential. Several biochemical studies show that a conserved arginine in helix four of subunit a (R226 in Ilyobacter tartaricus or R210 in Escherichia coli)plays a critical role in the ion translocation. The arginine has been proposed to function as an electrostatic separator between the cytoplasmic and periplasmic pathways and as a mediator of the ion exchange into the c-ring ion-binding site.
Structural data of a related enzyme (V1Vo-ATPase from Thermus thermophilus) has provided insight into the helical arrangement of the ion translocating subunits I and Lring (related to subunit a and the c-ring). These structures indicated a small interface between subunit I and the L-ring, and two four-helix bundles in the N-terminal domain of subunit I were proposed to build the periplasmic and cytoplasmic ion pathways. To comprehend the ion-translocation and torque generation mechanism in F1Fo-ATP synthase, structural data of an intact a-c complex is needed.
The goal of this work was to obtain structural data of subunit a, most preferably in a complex with the c-ring or additionally with subunit b. Therefore, a new purification procedure for the I. tartaricus Fo-subcomplex, heterologously expressed in E. coli cells, was established. The purified Fo was characterized biochemically and by Laserinduced liquid bead ion desorption mass spectrometry (LILBID-MS). These analyses showed that pure and completely assembled Fo containing all its subunits in the correct stoichiometry (ab2c11) was obtained. The purified Fo complex was stable at 4°C for several months and at room temperature in the presence of lipids for several weeks. A lipid analysis was performed by thin-layer chromatography (TLC) to investigate the qualitative lipid composition of I. tartaricus whole lipid extract and various I. tartaricus F1Fo isolates. The whole lipid extract contained PC, PG and PE lipids and probably cardiolipin. PC, PG and PE lipids were bound to wild type I. tartaricus F1Fo, whereas recombinant I. tartaricus F1Fo did not have any bound lipids, but was able to bind the synthetic lipids POPC and POPG if they were provided during the purification.
For subsequent structural studies the purified Fo was subjected to two-dimensional (2D) crystallization trials. Vesicles and sheets tightly packed with protein and crystals with a rare plane group for I. tartaricus c11 (p121) were obtained. The c-ring was visible in the CCD images, and immunogold-labeling revealed the presence of the His-tagged a-subunit in the reconstituted vesicles. Furthermore, atomic force microscopy (AFM) imaging showed protein densities next to the c-rings, which protruded less from the membrane (0.4±0.1 nm) than the c-ring (0.7±0.1 nm). These protein densities presumably belonged to subunit a.
Cryo-electronmicroscopy (cryo-EM) was used to collect data of the p121 crystals and a merged projection density map was calculated to 7.0 Å resolution. The unit cell of the crystals (81 × 252 Å) contained two asymmetric units with three c-rings in each and next to the c11-rings new prominent densities were visible. In each extra density up to 7 transmembrane helices were visible, belonging to the stator subunit a and/or subunit b. To elucidate whether there are conserved elements in the three extra densities non-crystallographic averaging was applied using a single-particle approach.
Six possible arrangements for the c-rings and the extra densities were identified and used for the averaging. The extra densities were enhanced only in one of the possible arrangements. The average showed a four-helix bundle and a fifth helix in close proximity to the c-ring. Two more helices were present in each position but their position was ambivalent. The data obtained in this work provides the first insight in the helical arrangement in the a-c interface of F1Fo-ATP synthase.
Die Atmungskette in der inneren Membran der Mitochondrien besteht aus fünf großen Enzymkomplexen. Die NADH-Dehydrogenase (I), Succinat-Dehydrogenase (II, indirekt), Cytochrom c-Reduktase (III) und Cytochrom c-Oxidase (IV) nutzen die Energie aus Elektronentransfers zum Aufbau eines Protonengradienten über die innere Mitochondrienmembran. Dieser wird anschließend von der FOF1-ATP-Synthase (V) als Energiequelle zur Phospho-rylierung von ADP verwendet. Für lange Zeit bestand eine Kontroverse, wie diese Proteine in der Membran organisiert sind. Nach dem „random collision“-Modell diffundieren sie frei als Einzelmoleküle und treffen sich nur zufällig, während sie nach dem „solid state“-Modell größere funktionelle Einheiten bilden. In den letzten Jahren gab es vermehrt Hinweise darauf, dass das letztere Modell das zutreffendere ist, da tatsächlich sogenannte Superkomplexe der Atmungskette in aktiver Form isoliert werden konnten. Schließlich konnte 2007 die erste drei-dimensionale Rekonstruktion eines Superkomplexes, bestehend aus Komplex I, dimerem Komplex III und Komplex IV publiziert werden. Aufgrund der Einschränkungen der verwendeten Negativkontrasttechnik hatte dieses Modell allerdings nur eine niedrige Auflösung und repräsentierte durch die Dehydrierung keinen nativen Zustand. Dadurch ließen sich die Strukturen der einzelnen Komplexe nur ungenau einpassen. Um diese Probleme zu umgehen, sollte eine Struktur unter Kryo-Bedingungen rekonstruiert werden. Um die für Kryo-EM benötigte größere Ausbeute und höhere Konzentration zu erzielen, wurde ein neues Reinigungsprotokoll für die Superkomplexe etabliert. Die wesentlichen Punkte darin sind der Austausch des für die Solubilisierung verwendeten Digitonins durch Amphipol A8-35 mittels ?-Cyclodextrin und eine anschließende Dichtegradienten-Ultrazentrifugation. Im BN-PAGE zeigten die auf diese Art gereinigten Superkomplexe das gleiche Banden- und Aktivitätsmuster wie Proben in Digitonin. Auch bei einer Einzelpartikelanalyse nach Negativ-kontrastfärbung konnten keine Unterschiede festgestellt werden und die Partikel zeigten ähnliche Orientierungen wie in der vorherigen Studie. Einige neue Ansichten ließen sich jedoch nicht zuordnen und stellten eventuell eine Verunreinigung mit größeren Superkomplexen dar. Da auch bei der Reinigung mit Amphipol die Proteinkonzentration letztlich nicht wesentlich erhöht werden konnte und sich die Superkomplexe nicht wie für Kryo-EM erforderlich in einen löchrigen Kohlefilm einlagerten, wurden die Proteine auf einem durchgehenden Kohlefilm in einer dünnen Pufferschicht vitrifiziert. Die dabei zu beobachtenden bevorzugten Orientierungen, sollten auch die Unterscheidung von verschiedenen Populationen von Superkomplexen erleichtern. Eine erste 3D-Rekonstruktion wurde mit Hilfe der „random conical tilt“-Methode errechnet. Dieses Modell wurde durch „projection matching“ bis zu einer Auflösung von 19 Å verfeinert, womit die Auflösung fast doppelt so hoch ist, wie bei der Rekonstruktion aus Negativ-kontrastfärbung (36 Å). Die Struktur repräsentiert einen natürlichen Zustand des Proteins und zeigt Details wie einzelne Domänen, Spalten zwischen Domänen und eine starke Krümmung des Membranarms von Komplex I, die zuvor nicht erkenn-bar waren. Die Amphipole bilden einen Gürtel um den Transmembranbereich. Die Röntgenstrukturen von Komplex I, III2 und IV konnten mit großer Präzision in die Dichtekarte eingepasst werden. Die wenigen kleinen Unterschiede zwischen Röntgenstrukturen und EM-Dichtekarte sind auf leichte Konformations-änderungen zurückzuführen. Die Kryo-EM-Rekonstruktion ist erheblich größer als die Rekonstruktion aus Negativfärbung, wodurch die enthaltenen Komplexe nur noch wenige punktuelle Kontakte haben. In den Zwischenräumen könnte eine spezielle Lipidumgebung die kleinen Elektronenüberträger Ubichinon und Cytochrom c in den Superkomplex integrieren. Ihre Bindestellen sind jeweils zueinander orientiert und die geringen Abstände, die zum ersten Mal bestimmt werden konnten, stützen die Hypothese eines gerichteten Substrattransfers über kurze Entfernungen. Von den möglichen Übertragungswegen scheint der kürzere mit weniger Transferreaktionen bevorzugt zu werden. Während der Entwicklung des neuen Reinigungsprotokolls für die Superkomplexe konnte zusätzlich eine neue Methode zur Rekonstitution von Membranproteinen entwickelt werden. Die solubilisierten Proteine werden dabei in Dichtegradienten mit steigenden Konzentrationen von ansolubilisierten Liposomen und Cyclodextrin zentrifugiert, wodurch ihnen langsam das Detergens entzogen und durch Lipid ersetzt wird. Proteoliposomen werden gleichzeitig von überschüssigem Lipid und Cyclodextrin-Detergens-Komplexen getrennt.
TeaABC from the halophilic bacterium Halomonas elongata belongs to the family of tripartite ATP-independent periplasmic (TRAP) transporters. It facilitates the uptake of the compatible solutes ectoine and hydroxyectoine which protect the cell from dehydration by accumulating in the cytoplasm during hyperosmotic stress. It is the only known TRAP transporter activated by osmotic stress. Ectoine and hydroxyectoine accumulation in H. elongata is regulated by the cytoplasmic universal stress protein TeaD. The gene encoding TeaD is located in the same operon as the TeaABC gene. TeaD regulates the cellular homeostasis of ectoine possibly by interacting directly or indirectly with TeaABC. All subunits of TeaABC and TeaD were expressed in E. coli and purified. With TeaD and the solute binding protein (SBP) TeaA high levels of expression suitable for crystallization could be obtained and their 3D structures solved. The small transmembrane protein TeaB and the transporter TeaC showed only moderate and low levels of expression respectively. Functional analysis on TeaA was performed using Isothermal Titration Calorimetry. The measurements demonstrate that TeaA is a high affinity ectoine-binding protein (Kd = 0.19 _M) that also has a significant affinity for hydroxyectoine (Kd = 3.8 _M). The structure of TeaA was solved using ab initio phase determination by MAD (multiple anomalous dispersion). TeaA structures were determined in three conformations: TeaA alone, TeaA in complex with ectoine and TeaA in complex with hydroxyectoine. The resolutions of the structures were 2.2, 1.55 and 1.80 Å, respectively. These represent the first structures of an osmolyte SBP associated to a TRAP transporter. The structures reveal similar ligand binding compared to osmolyte SBPs of ABC transporter pointing to coevolution of the ligand binding modes. Moreover, unique features such as the solvent-mediated specific binding of the ligands ectoine and hydroxyectoine could be observed for TeaA. The structure of TeaD in complex with its cofactor ATP was solved by molecular replacement at a resolution of 1.9 Å. Comparison with other structures of universal stress proteins shows striking oligomerization and ATP binding in TeaD. In conclusion, this work presents the first detailed analysis of the molecular mechanisms underlying ligand recognition of an osmoregulated transporter from the TRAP-transporter family.
The light-harvesting complex of photosystem II (LHC-II) is the major antenna complex in plant photosynthesis. It accounts for roughly 30% of the total protein in plant chloroplasts, which makes it arguably the most abundant membrane protein on Earth, and binds about half of plant chlorophyll (Chl). The complex assembles as a trimer in the thylakoid membrane and binds a total of 54 pigment molecules, including 24 Chl a, 18 Chl b, 6 lutein (Lut), 3 neoxanthin (Neo) and 3 violaxanthin (Vio). LHC-II has five key roles in plant photosynthesis. It: (1) harvests sunlight and transmits excitation energy to the reaction centres of photosystems II and I, (2) regulates the amount of excitation energy reaching each of the two photosystems, (3) has a structural role in the architecture of the photosynthetic supercomplexes, (4) contributes to the tight appression of thylakoid membranes in chloroplast grana, and (5) protects the photosynthetic apparatus from photo damage by non photochemical quenching (NPQ). A major fraction of NPQ is accounted for its energy-dependent component qE. Despite being critical for plant survival and having been studied for decades, the exact details of how excess absorbed light energy is dissipated under qE conditions remain enigmatic. Today it is accepted that qE is regulated by the magnitude of the pH gradient (ΔpH) across the thylakoid membrane. It is also well documented that the drop in pH in the thylakoid lumen during high-light conditions activates the enzyme violaxanthin de-epoxidase (VDE), which converts the carotenoid Vio into zeaxanthin (Zea) as part of the xanthophyll cycle. Additionally, studies with Arabidopsis mutants revealed that the photosystem II subunit PsbS is necessary for qE. How these physiological responses switch LHC-II from the active, energy transmitting to the quenched, energy-dissipating state, in which the solar energy is not transmitted to the photosystems but instead dissipated as heat, remains unclear and is the subject of this thesis. From the results obtained during this doctoral work, five main conclusions can be drawn concerning the mechanism of qE: 1. Substitution of Vio by Zea in LHC-II is not sufficient for efficient dissipation of excess excitation energy. 2. Aggregation quenching of LHC-II does not require Vio, Neo nor a specific Chl pair. 3. With one exception, the pigment structure in LHC-II is rigid. 4. The two X-ray structures of LHC-II show the same energy transmitting state of the complex. 5. Crystalline LHC-II resembles the complex in the thylakoid membrane. Models of the aggregation quenching mechanism in vitro and the qE mechanism in vivo are presented as a corollary of this doctoral work. LHC-II aggregation quenching in vitro is attributed to the formation of energy sinks on the periphery of LHC-II through random interaction with other trimers, free pigments or impurities. A similar but unrelated process is proposed to occur in the thylakoid membrane, by which excess excitation energy is dissipated upon specific interaction between LHC-II and a PsbS monomer carrying Zea. At the end of this thesis, an innovative experimental model for the analysis of all key aspects of qE is proposed in order to finally solve the qE enigma, one of the last unresolved problems in photosynthesis research.
This thesis presents a 5.9 Å map of yeast FAS obtained by cryo-electron microscopy using single particle analysis (SPA). The EM-map has been analyzed both by quantitative and qualitative analysis to aid in understanding of the structure and dynamics of yeast FAS. This study approaches the factors limiting the resolution in EM (>20 Å) and further discusses the possibilities of achieving higher-resolutions (<10 Å) in cryo-EM by single particle analysis. Here, SPA is highlighted as a powerful tool for understanding the structure and dynamics of macro-molecular complexes at near native conditions. Though SPA has been used over the last four decades, the low-resolution range (20-30 Å) of the method has limited its use in structural biology. Over the last decade, sub nanometer resolution (<10 Å) structures solved by SPA have been reported --both in studies involving symmetric particles, such as GroEL (D7) and asymmetric particles, such as ribosomes (C1). Recently, near-atomic resolution in the range of 3.8-4.2 Å has been achieved in cases of highly symmetric icosahedral viral capsid structures as well. The yeast FAS structure (D3) presented here is one of two low symmetry structures submitted to the EM-database in a resolution range of 5-6 Å; the other being GroEL (D7). Fatty acid synthase (FAS) is the key enzyme for the biosynthesis of fatty acids in living organisms. There are two types of FAS, namely the type II FAS system in prokaryotes, consisting of a set of individual enzymes, and type I FAS found in eukaryotes as a multienzyme complex. Yeast fatty acid synthase (FAS) is a 2.6 MDa barrel-shaped multienzyme complex, which carries out cyclic synthesis of fatty acids. By electron cryomicroscopy of single particles we obtained a 3D map of yeast FAS at 5.9 Å resolution. Compared to the crystal structures of fungal FAS, the EM map reveals major differences and new features that indicate a considerably different arrangement of the complex in solution, as well as a high degree of variance inside the barrel. Distinct density regions in the reaction chambers next to each of the catalytic domains fit well with the substratebinding acyl carrier protein (ACP) domain. In each case, this resulted in the expected distance of ~18 Å from the ACP substrate binding site to the active site of the catalytic domains. The multiple, partially occupied positions of the ACP within the reaction chamber provide direct insight into the proposed substrate-shuttling mechanism of fatty acid synthesis in this large cellular machine.
Life-threatening fungal infections are becoming increasingly common for immunocompromised patients such as those with AIDS, or those undergoing organ transplantation or chemotheraphy, as well as for other health-vulnerable patients. Excellent targets for antifungal drugs are chitin synthases, which are essential for survival of the fungus and lacking in humans. To design new antifungal drugs, knowledge of the three-dimensional structure and mechanism of action of chitin synthases are crucial. Chitin synthases are members of an important family of enzymes that synthesize structural polysaccharides, such as cellulose, β(1,3)-glucan, β(1,4)-mannan and hyaluronan. Therefore, chitin synthases could be used as a model system to understand these more complex enzymes, which are also of major medical and commercial importance. Chitin synthase 2 from Saccharomyces cerevisiae (ScChS2), the protein under study, is an integral membrane protein that synthesizes the primary septum between mother and daughter cells in budding yeast. It is essential for proper cell separation and expected to be highly regulated. An important aspect is that ScChS2 shows 55% sequence identity and is functionally analogous to chitin synthase 1 from the human opportunistic pathogen Candida albicans, this enzyme is also essential for cell survival (Munro, Winter et al. 2001). ...
Electron tomography was used to investigate membrane proteins in a variety of contexts. A high-angle tilt holder, suitable for electron tomography was designed, constructed and characterised. 2D crystals of membrane proteins, NhaA and YidC, were examined as a resolution test, and a method established for determining planarity of crystals. A model for specific gold binding to NhaA crystals was also presented. ATP synthase, a membrane protein complex in mitochondria, were imaged in a frozen hydrated state. They were found to form ribbons of dimers at highly curved regions of the membrane. Dimers from bovine heart and rat liver were excised from the tomographic volumes and averaged. Based on the location of the dimers in the mitochondrion, a model was established whereby ATP synthase, a molecular motor driven by the proton motive force, benefits from the high curvature that it induces in the membrane. Whole yeast mitochondria, imaged by electron cryo-tomography, also contained long ribbons of dimeric ATP synthase. Multiple copies of an unknown membrane protein complex were visualised by electron cryo-tomography, excised and averaged. A general method for the identification of unknown proteins was presented to deal with this inevitable issue, as native tissues and organelles are imaged, and the structures of complexes determined in situ.
Transport of proteins into or across cellular membranes is mediated by the conserved and ubiquitous Sec-machinery. The Sec-homologue in the inner membrane of Escherichia coli is SecYEG. Sec-mediated insertion of numerous membrane proteins is aided by YidC, another protein integral to the inner membrane of Escherichia coli. YidC fulfils in addition the integration of a variety of membrane proteins Sec-independently. It belongs to a conserved but structurally uncharacterised family of proteins important for membrane protein biogenesis and comprises homologues in mitochondria and chloroplasts. By modification of a former crystallisation protocol two-dimensional crystals of SecYEG were grown in presence of the signal sequence peptide of LamB. Recording of structural data by electron cryo-microscopy and calculation of a difference structure comparing a former SecYEG projection structure with the one of SecYEG crystallised in presence of the substrate revealed several new and vacant densities. These hint to signal peptide binding close to the translocation pore and to significant rearrangements in proximity to the lateral exit site for transmembrane domains in SecYEG. The difference structure suggests that dimeric SecYEG is an asymmetric molecule consisting of one active and one inactive SecYEG monomer. Detergent removal from a mixture of purified YidC and lipids produced two-dimensional crystals that were highly dependent on the ionic strength and lipid composition for their growth. Electron cryo-microscopy on the frozen-hydrated crystals and image processing visualised structural details at about 10 Å resolution. Averaging two alternative projection structures in p2 and p121_a symmetry, respectively, yielded essentially the same features. Four YidC monomers form one unit cell (dimensions 82 x 71 Å, included angle 85 ° and 90 °, respectively) and seem to be arranged as two sets of dimers integrated in an anti-parallel fashion into the membrane. An area of low density in the centre of each YidC monomer resembles possibly a constriction of the membrane, which could have particular relevance for the integration of substrate proteins into the lipid bilayer.
Natrium/Protonen-Austauscher sind integrale Proteine biologischer Membranen und aufgrund ihrer funktionalen Abhängigkeit von einem elektrochemischen Gradienten der Klasse der Sekundärtransporter zugeordnet. Sie spielen eine essentielle Rolle sowohl in der Adaption von Bakterien an eine saline, alkalische Umgebung, als auch in der Regulation des intrazellulären pH- und Natriumhaushalts in Eukaryonten. Aufgrund der medizinischen Relevanz, unter anderem im Rahmen in der Behandlung des Herzinfarkts, besteht großes Interesse an der Struktur und den biochemischen Charakteristika des im Menschen ubiquitär vorkommenden Natrium/Protonen-Austauschers NHE1. Die heterologe und funktional aktive Produktion eukaryontischer Membranproteine stellt jedoch immer noch eine enorme Herausforderung dar, bei der sich das auf dem Semliki Forest Virus basierende Expressionssystem als gut geeignet erwiesen hat. Da die Überexpression von NHE1 mittels verschiedener eukaryontischer Expressionssysteme bisher kein kristallisationsfähiges Material liefern konnte, sollte in dieser Arbeit die heterologe Gewinnung von NHE1 mit dem Semliki Forest Virus Expressionssystem ermöglicht werden. Das Semliki Forest Virus Expressionssystem wurde auf Basis eines Vektorkonstrukts mit GFP zur späteren Übertragung der Parameter auf die Produktion von NHE1 etabliert. Konstrukte von NHE1 mit N- und C-terminalem Affinitäts-Tag wurden erfolgreich kloniert und zur Infektion von BHK-21 Zellkulturen eingesetzt. Dabei konnte beobachtet werden, dass der N-Terminus abgespalten wird und wahrscheinlich als Signalpeptid zum Einbau in die Membran dient. Das Protein wurde im Endoplasmatischen Retikulum lokalisiert, wo die Glykosylierung zum Transport in die Plasmamembran unterbleibt, was auf eine Interferenz mit der Virusinfektion zurückgeführt wurde. Eine Infektion der Zellen mit dem Semliki Forest Virus hat neben einem bereits bekannten massiven Anstieg des intrazellulären Natriumgehalts eine starke Alkalinisierung des Zytoplasma zur Folge. Ähnliches ist bisher über die Infektion von Zellen mit dem Poliovirus bekannt und stellt dort ein Schlüsselelement in der Sicherstellung der viralen Replikation dar, was auch für das Semliki Forest Virus zu gelten scheint. Die Expression von NHE1 konnte im 8 Liter-Maßstab optimiert und sowohl die Präparation als auch die Solubilisierung mit verschiedenen Detergenzien erfolgreich eingeführt werden. NHE1 erfährt jedoch bereits in vivo einen erheblichen proteolytischen Abbau, der sich während der Membranpräparation und Aufreinigung fortsetzt und zu einer Fragmentierung führt, die trotz des Einsatzes unterschiedlicher Kultivierungszeiten, Detergenzien, Additive oder Proteaseinhibitoren in vivo als auch in vitro nicht in einem Maße reduziert werden konnte, welches zur Gewinnung von kristallisationsfähigem Material erforderlich gewesen wäre. Es muss empfohlen werden einen in vivo Ansatz zu etablieren, um die proteolytische Degradation zu unterdrücken. Da die Virusreplikation nicht erforderlich ist, wäre Bafilomycin als Inhibitor der V-Typ ATPase geeignet, um die intrazelluläre Alkalinisierung und somit wahrscheinlich den Abbau von NHE1 zu verhindern. Ebenso erscheint der Einsatz von MG-132 zur spezifischen Inhibierung des Proteasoms Erfolg versprechend, was aber wegen hoher Kosten praktisch kaum in Frage kommt. Da man trotz individuell gelagerter Unterschiede zwischen den einzelnen Natrium/Protonen-Austauschern von einem ähnlichen Prinzip in Regulation und Transport ausgeht, wurden Strukturuntersuchungen mit Hilfe der Kryo-Elektronenmikroskopie am bakteriellen Natrium/Protonen-Antiporter NhaA aus Escherichia coli durchgeführt, um die strukturelle Basis der pH-Wahrnehmung und die Translokation von Natrium in das Periplasma besser zu verstehen. Die vorliegende Röntgen- und EM-Struktur repräsentieren den inaktiven Zustand, weshalb der eigentliche Ablauf des Transportvorgangs bisher biochemisch herzuleiten war, da bislang keine Kristalle im aktiven Zustand gezüchtet werden konnten. Durch die in situ Inkubation von 2D-Kristallen konnten aktive Zustände des Proteins direkt auf dem EM-Netz induziert und kryo-elektronenmikroskopisch festgehalten werden. Einzelne Datensätzen wiesen Reflexe bis zu 5 Å auf. Aus den angefertigten Projektionsdichte- und Differenzkarten ergaben sich pH- und Natrium-abhängige Konformationsänderungen. Die Röntgenstruktur wurde mit Hilfe des Molekularen Ersatzes in die EM-Struktur eingepasst und diente der Zuordnung und Interpretation der beobachteten Zustände als Basis. Die pH-abhängige Konformationsänderung wurde einem mit der funktional wichtigen Helix 9 assoziierten Bereich zugeordnet, welcher durch die Röntgenstruktur nicht definiert ist und wahrscheinlich die fehlenden Aminosäuren des regulatorisch relevanten N-Terminus enthält. Die beobachtete Konformationsänderung stellt das Entstehen einer besser geordneten Struktur dar und geht mit der pH-regulierten Aktivierung von NhaA zwischen pH 6 und 7 einher, weshalb dieser Bereich des Proteins zumindest als Bestandteil des sogenannten pH-Sensors betrachtet werden kann. Nach der vollständigen Aktivierung durch den pH-Wert, welche der folgenden Natrium-abhängigen Konformationsänderung vorauslaufen muss, konnte beobachtet werden, dass die Präsenz von Natrium im Rahmen der Ionentranslokation eine Bewegung des periplasmatischen Teils von Helix 4 induziert. Es wäre interessant, eine tiefergehende und genauere Charakterisierung der beobachteten Konformationsänderungen durch die Erstellung einer dreidimensionalen EM-Dichtekarte zu ermöglichen. Des Weiteren hat die eingehendere Untersuchung des röntgenkristallographischen Monomers nach der Einpassung in das physiologisch vorliegende Dimer der EM-Struktur sowohl eine für Membranproteine neuartige „Joint β-Sheet“ Dimerisierungsdomäne im Periplasma, als auch eine Verzahnung von Helix 7 und 9 an der Monomer-Monomer-Grenze aufgezeigt. Diesen Charakteristika kommt wahrscheinlich eine tragende Rolle in der Dimerisierung von NhaA zu, was durch weitere Untersuchungen im Rahmen einer Mutagenesestudie unter Einbeziehung der periplasmatischen β-Haarnadelstrukturen überprüft werden sollte.