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Diese Arbeit ist ein detaillierter Bericht über die Forschungsaktivitäten, die ich während meiner Promotion am Max-Planck-Institut für Biophysik durchgeführt habe. Mit dem Aufkommen der direkten Elektronendetektoren erlebte die Transmissionselektronenmikroskopie von gefrorenen hydratisierten Proben (Kryo-EM) einen epochalen Wandel, die sogenannte “Auflösungsrevolution”. Ab den 2010er Jahren ermöglichte die Kommerzialisierung der ersten direkten Detektoren die Erforschung biologischer Phänomene in beispiellosem Detail und machte Kryo-EM zu einer der leistungsstärksten (und gefragtesten) Forschungsmethoden in den Biowissenschaften. Meine Forschung konzentrierte sich auf die Verwendung der Elektronen-Kryotomographie, um zwei herausfordernde Ziele zu erreichen. Das erste bestand darin, die Denaturierung von Proteinen an der Luft-Wasser-Grenzfläche zu untersuchen, und das zweite die molekulare Landschaft eines lichtempfindlichen Chloroplastenvorläufers, des Etioplasten, zu beschreiben. Um die Relevanz, Herausforderungen und Auswirkungen meiner Arbeit zu vermitteln, habe ich diese Arbeit in drei Kapitel unterteilt.
Kapitel eins enthält eine Einführung in die Transmission-Elektronenmikroskopie.
Nach einer kurzen Zusammenfassung der historischen Meilensteine in der Disziplin beschreibe ich die wesentlichen Komponenten des TEM und deren Funktionsweise. Hier lege ich besonderen Wert auf die Struktur elektromagnetischer Linsensysteme, wie sie den Weg der Elektronen beim Durchlaufen der Säule beeinflussen und wie Bilder entstehen. Der hardwarebezogene Teil der Einführung wird durch eine vereinfachte Beschreibung der Elektronendetektoren abgeschlossen, in der ich die revolutionären Aspekte der direkten Elektronendetektoren, mit der Struktur und Funktion von CCD-Detektoren (Charge Coupled Device detector) vergleiche. Als nächstes konzentriere ich mich auf die theoretischen Prinzipien der Bilderzeugung. Um die Hauptphänomene im Zusammenhang mit der Bildqualität in TEM hervorzuheben, stelle ich grundlegende Konzepte wie den Einfluss von Elektronenenergie und optischen Aberrationen vor, gefolgt von einer ausführlicheren Beschreibung des Ursprungs von Kontrast und Rauschen. Der Unterabschnitt schließt mit einigen Überlegungen darüber, wie - und vor allem wie effizient - Detektoren kontinuierliche Elektronenwellen in diskrete Bereiche (Pixel) abtasten. Der folgende Unterabschnitt ist der Erfassung und Verarbeitung tomografischer Daten gewidmet. Hier gebe ich eine vereinfachte Beschreibung, wie Kippserien mit dem Mikroskop erfasst werden und wie die Rohdaten zu einer dreidimensionalen Darstellung der Probe verarbeitet werden. Der Einfluss der Neigungsgeometrie und der Dosisverteilung auf die Rekonstruktionsqualität wird ebenfalls diskutiert. Der zweite Teil des Unterabschnitts befasst sich mit der Strukturbestimmung durch Subtomogramm-Mittelung und der Errechnung der Auflösung von Kryo-EM-Rekonstruktion. Zuletzt schließe ich das Kapitel mit einer Beschreibung der Vorbereitung biologischer Proben für die Kryo-EM-Bildgebung mit einigen abschließenden Bemerkungen zur Dynamik und den Grenzen der Vitrifizierung ab.
Kapitel zwei folgt dem Thema der Kryo-Präparation biologischer Proben mit der Untersuchung der Denaturierung von Proteinen an der Luft-Wasser-Grenzfläche.
Im Einführungsabschnitt skizziere ich die wichtigsten Aspekte dieses Phänomens. Frühe Experimente zum Verhalten von Proteinen in Lösung zeigten ihre Neigung, aus der Lösung zu ihrer Grenzfläche mit der Atmosphäre zu diffundieren. Hier bilden sie meist unlösliche Schichten denaturierter Fibrillen Es wurde vorgeschlagen, dass die Korrelation zwischen Proteindenaturierung und Kontakt mit der Grenzfläche auf einen allmählichen Entfaltungsprozess zurückzuführen ist, bei dem Tausende von Wechselwirkungen pro Sekunde zu einer immer größeren strukturellen Schädigung führen würden. Ein direkter Beweis für diesen Mechanismus wurde jedoch nie dokumentiert. Um einen tieferen Einblick in die Dynamik an der Luft-Wasser-Grenzfläche zu erhalten, sammelte ich Kryotomogramme vitrifizierter Präparate der Fettsäuresynthase (FAS, Fatty Acid Synthase) aus Hefe. Im ersten Unterabschnitt der Ergebnisse beschreibe ich, wie die biochemische und Negativkontrastierung-TEM-Analyse von FAS-Fraktionen zeigte, dass der Komplex während des gesamten Reinigungsverfahrens intakt und katalytisch aktiv blieb. Nach der Vitrifizierung ergab die Einzelpartikelanalyse jedoch, dass 90% aller Komplexe stark beschädigt waren. Die tomographische Rekonstruktion derselben Proben zeigte, dass alle FAS-Komplexe an die Luft-Wasser-Grenzfläche gebunden waren. Die Seite des Moleküls, die der Grenzfläche ausgesetzt war, schien abgeflacht zu sein, während die Seite, in der wässrigen Phase, ihre native Struktur beibehielt. Die Mittelung der Subtomogramme bestätigte, dass eine Seite von fast 90% der Partikel stark beschädigt war. Durch den Vergleich der Ausrichtung dieser beschädigten Seite mit der Position eines Rechenmodells der Luft-Wasser-Grenzfläche konnte ich nachweisen, dass sie perfekt übereinstimmen, was den ersten direkten Beweis dafür liefert, dass die Wechselwirkung mit der Luft-Wasser-Grenzfläche die lokale Denaturierung großer Proteinkomplexe herbeiführt.
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Membrane proteins are a diverse group of proteins that serve a multitude of purposes with one of the most important ones being transport. All kinds of substrates are shuffled over biological membranes with the help of dedicated proteins enabling the transport along and against a concentration gradient. Within the group of actively transporting proteins a diverse set of proteins that rely on an electrochemical gradient to facilitate transport of a substrate against its concentration gradient can be found. Those so-called secondary active
transporters are a group on integral membrane proteins ubiquitous to all cells. They allow the transport of all kinds of substrates like nutrients, ions, other metabolites and drugs over the hydrophobic barrier created by the cellular and organellar membrane. The gradients that provide the main driving force for most of the transporters are either sodium ions or protons, although transporters utilizing other ions or organic compounds are found as well. In case of exchangers two very similar substrates are transported in opposing direction over the membrane, one against its electrochemical gradient driven by the other.
Along with a structural diversity of the transporters concerning overall shape, oligomerization and number of transmembrane elements comes a mechanistic variety though still following the principle of alternating access. In humans the malfunction of secondary active transporters can lead to a physiological disorders such as epilepsy, depression or obesity.
The focus of this thesis was the structural and functional characterization of the secondary active transporter SeCitS from Salmonella enterica, a symporter of the 2-hydroxycarboxylate family. The transport of citrate as a bivalent ion is facilitated by the flux of sodium ions that have an inward-facing gradient over the inner membrane of Salmonella enterica. Transport experiments showed that the transport ratio is two sodium ions per citrate molecule, netting in an electroneutral transport. Compared to other members of the family the specificity of the transporter towards its main substrate is very high.
Structural information on the protein was initially obtained through 2D electron crystallography, which allowed the identification of the oval shaped dimer and a first hint towards a significant conformational change that the protein undergoes during its transport cycle. Using 3D crystallography, the X-ray structure of the transporter was solved. The protein crystalizes as a stable, but conformationally asymmetric dimer. As bound citrate can be readily identified in both protomers they can be assigned into an outward- and an inward-facing conformation, with the main citrate binding site in the outward-facing conformation.
One interesting feature of the crystal structure was the large surface available for multimerization, providing a platform for tight dimerization of the two protomers. On the other hand, SeCitS did not show a true cooperativity of transport. With those two aspects taken into account the question arose if any potential crosstalk between the monomers within the dimer takes place and influences transport (negative cooperativity) or the conformational distribution within the dimer (stabilization of the protein within the membrane).
The functional approach in answering this question was the use of mutated variants of the protein for cross-linking within one monomer. Two residues were chosen respectively to lock one of either conformation to be able to test for transport activity in the remaining protomer. The suitability of the residues was derived from the crystal structure (D112 – R205 to lock the inward-facing conformation and L337 – S412 for the outward-facing conformation). After initial promising results the final variants were not stable enough to be analyzed in transport assays.
To analyze the distribution of relative conformations within the dimer the protein was reconstituted into native-like lipid environment such as nanodiscs or saposin nanoparticles to be analyzed by cryo-electron microscopy. The first images were recorded and did yield promising 2D classes where the general features of the transporter were identified. Yet, an improved preparation is required to obtain a high resolution structure.
The key functional aspects of a transporter are its ability to bind and transport its substrates. In a set of experiments those features were investigated by a radioligand transport assay and by isothermal titration calorimetry (ITC). The transport properties of the protein were assessed in a filter assay using a radioactively labeled citrate as a read-out. The protein was reconstituted into proteoliposomes and subjected to different substrate conditions. Different ions were tested in its ability to drive or inhibit transport, but only sodium ions were able to drive transport and also not hindered by the presence of other ions...
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.
Inorganic phosphate is one of the most abundant and essential nutrients in living organisms. It plays an indispensable role in energy metabolism and serves as a building block for major cellular components such as the backbones of DNA and RNA, headgroups of phospholipids and in posttranslational modifcations of many proteins. Disturbances in cellular phosphate homeostasis have a detrimental effect on the viability of cells. There- fore, both the import and export of phosphate is strictly regulated in eukaryotic cells. In the eukaryotic model organism Saccharomyces cerevisiae, the uptake of phosphate is carried out either by transporters with high affinity or by transporters with low affinity, depending on the cytosolic phosphate concentration. While structures are available for homologues of the high-affinity transporters, no structures of low-affinity transporters have been solved so far. Interestingly, only the low-affinity transporters have a regulatory SPX domain, which is found in various proteins involved in phosphate homeostasis.
In this work, structures of Pho90 from Saccharomyces cerevisiae, a low-affinity phosphate transporter, were solved by cryo-EM, providing insights into its transport mechanism. The dimeric structure resembles the structures of proteins of the divalent anion symporter superfamily (DASS) and of mammalian transporters of the solute carrier 13 (SLC13) family. The transmembrane domain of each protomer consists of 13 helical elements and can be subdivided into scaffold and transport domains. The structure of ScPho90 in the presence of phosphate shows the phosphate binding site within the transporter domain in an outward-open conformation with a bound phosphate ion and two sodium ions. In the absence of phosphate, an asymmetric dimer structure was determined, with one protomer adopting an inward-open conformation. While the dimer contact and the scaffold domain are identical in both conformations, the transport domain is rotated by about 30° and shifted by 11 Å towards the cytoplasmic side, leading to the accessibility of the binding pocket from the cytoplasm. Based on these findings and by comparison with known structures, a phosphate transport mechanism is proposed in the present work that involves substrate binding on the extracellular side, conformational change by a rigid-body motion of the transport domain, in an "elevator-like" motion, and substrate release into the cytoplasm. The regulatory SPX domain is not well resolved in the ScPho90 structures, so that no direct conclusions were drawn about its regulatory mechanism. The findings provide new insights into the function and mechanism of eukaryotic low-affinity phosphate transporters.
While eukaryotic cells express various phosphate import proteins, most eukaryotes have only a single highly conserved and essential phosphate exporter. These exporters show no sequence homology to other transporters of known structure, but also possess a regulatory SPX domain. In this work, the structural basis for eukaryotic phosphate export is investigated by elucidating the structures of the homologous phosphate exporters Syg1 from Saccharomyces cerevisiae and Xpr1 from Homo sapiens, using cryo-EM. The structures of ScSyg1 and HsXpr1 show a conserved homodimeric structure and the transmembrane part of each protomer consists of 10 TM helices. Helix TM1 establishes the dimer contact by means of a glycine zipper motif, which is a known oligomerization motif. Helices TM2-5 form a hydrophobic pocket that has density for a lipid molecule. Whether the lipid binding into the hydrophobic pocket has an allosteric effect on the phosphate export activity or only serves protein stabilization is not known. Helices TM5-10 form a six-helix bundle, which constitutes a putative phosphate translocation pathway in its center. This bundle is formed by the protein sequence annotated as EXS domain.
The respective phosphate translocation pathways of ScSyg1 and HsXpr1 show structural differences. While the translocation pathway in HsXpr1 is accessible from the cytoplasm, in ScSyg1 it is closed by a large loop of the SPX domain. Interestingly, this loop is not conserved in higher eukaryotes and is therefore not present in HsXpr1. Another difference are distinct conformations of helix TM9. In ScSyg1, TM9 adopts a kinked conformation, which results in the translocation pathway being open to the extracellular side. In contrast, TM9 adopts a straight conformation in HsXpr1, resulting in the placement of a highly conserved tryptophane residue in the middle of the translocation pathway. As a result, the translocation pathway in HsXpr1 is closed to the extracellular side.