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Solute carrier (SLC) are related to various diseases in human and promising pharmaceutical targets but more structural and functional information on SLCs is required to expand their use for drug design and therapy. The 7-transmembrane segment inverted (7-TMIR) fold was identified for the SLC families 4, 23 and 26 in the last decade thus detailed analysis of the structure function relationship of one of these families might also yield insights for the other two. SVCT1 and SVCT2 from the SLC23 family are sodium dependent ascorbic acid transporters in human but structural analysis of the SLC23 family is exclusively based on two homologs – UraA from E. coli and UapA from A. nidulans – yielding two inward-facing and one occluded conformation. In combination with outward-facing conformations from SLC4 transporters, and additional information from the SLC26 family, an elevator transport mechanism for all 7-TMIR proteins was identified but detailed mechanistic features of the transport remain elusive due to the lack of multiple conformations from individual transporters.
To increase the understanding of 7-TMIR protein structure and function in this study, the transport mechanism of SLC23 transporters was analyzed by two strategies including selection of alpaca derived nanobodies and synthetic nanobodies against UraA as prokaryotic model protein of the SLC23 family. The second strategy involved mutagenesis of UraA at functional relevant positions regarding the conformational change during transport. Therefore, available structures of 7-TMIR proteins and less related elevator transporters were analyzed and a common motif identified – the alpha helical inter-domain linkers. The proposed rigid body movement for transport in combination with the characteristic alpha helical secondary structure of the linkers connecting both rigid bodies led to the hypothesis of functional relevance of the linkers and a conformational hinge being located in close proximity to the linkers. These positions were identified and used to modulate the biophysical properties of the transporter. Mutagenesis at three relevant positions led to loss of transport functionality and these UraA variants could be recombinantly produced and purified to further examine the underlying mechanistic effects. The variants UraAG320P and UraAP330G from the periplasmic inter-domain linker showed increased dimerization and thermal stability as well as substrate binding in solution. The substrate affinity of UraAG320P was identified to be 5-fold higher compared to the wildtype. The solvent accessibility of the substrate binding site in UraAG320P and UraAP330G revealed reduced open probability that indicated an altered conformational space compared to UraAWT. This phenomenon was analyzed in more detail by differential hydrogen-deuterium exchange mass spectrometry and the results supported the hypothesis of a reduced open probability and gave further insights into the impact of the two mutations in the periplasmic inter-domain linker in UraA.
This thesis further presents strategies for phage display selection of nanobodies with epitope bias and a post selection analysis pipeline to identify nanobodies with desired binding characteristics. Thereby, whole cell transport inhibition highlighted periplasmic epitope binders and conformational selectivity. A cytoplasmic epitope could be identified by pulldown with inside-out membrane vesicles for one cytoplasmic side binder. Thermal stabilization analysis of the target protein in differential scanning fluorometry was performed in presence of two different nanobodies to identify simultaneous binding by additional thermal stabilization respectively competition by intermediate melting temperatures. Combination of epitope information with simultaneous DSF could be used to identify the stabilization of different UraA conformations by a set of binders and presents a general nanobody selection strategy for other SLCs. Synthetic nanobodies (sybodies) were also included in the analysis pipeline and Sy45 identified as promising candidate for co-crystallization that gave rise to UraAWT crystals in several conditions in presence or absence of uracil. Similar crystals could be obtained in combination with UraAG320P that were further optimized to gain structural information on this mutant. The structure was solved by molecular replacement and the model refined at 3.1 Å resolution confirming the cytoplasmic epitope of Sy45 as predicted by the selection pipeline. The stabilized conformation was inward-facing similar to the reported UapA structure but significantly different to the previously reported inward-facing structure of UraA. The structure further confirmed the structural integrity of the UraA mutant G320P. Despite the monomeric state of UraA in the structure, the gate domain aligned reasonably well with the gate domain of the previously published dimeric UraA structure in the occluded conformation and allowed detailed analysis of the conformational transition in UraA from inward-facing to occluded by a single rigid body movement. Thereby little movement in the gate domain of UraA was observed in contrast to a previously reported transport mechanism. Core domain rotation around a rotation axis parallel to the substrate barrier was found to explain the major part of conformational transition from inward-facing to occluded and experimentally supported the hypothesized mechanism by Chang et al. (2017). Additionally, the conformational hinge around position G320 in UraA could be identified as well as the impact of the backbone rigidity introduced by the highly conserved proline residue at position 330 in UraA on the conformational transition. This position was found to serve as anchoring point the inter-domain linker and determines the coordinated movement of inter-domain linker and core domain. The functional analysis further highlighted the requirement of alpha helical secondary structure within the inter-domain linker that serves as amphipathic structural entity that can adjust to changed core-gate domain distances and angles during transport by extension/compression or bending while preserving the rigid linkage.
The applied strategies to modulate the conformational space of UraA by mutagenesis at the hinge positions in the inter-domain linkers is transferrable to other transporters and might facilitate their structural and functional characterization.
Further, this study discusses the conformational thermostabilization of UraA that is based on increased melting temperatures upon restriction of its conformational freedom. The term ‘conformational thermostabilization’ introduced by Serrano-Vega et al. (2007) could be experimentally supported and the direct correlation between the conformational freedom and thermostabilization was qualitatively analyzed for UraA. The concept of conformational thermostabilization might help in characterization of other dynamic transport systems as well.
Fokus meiner Doktorarbeit ist die Anwendung und Entwicklung NMR-spektroskopischer Methoden zur Charakterisierung zeitabhängiger Strukturänderungen von Biomolekülen – von lokalen dynamischen Veränderungen bis zur vollständigen Rückfaltung von Proteinen – und fasst die Ergebnisse meiner drei wichtigsten PhD-Projekte zusammen.
In meinem ersten Projekt habe ich die Leistung eines Temperatursprung-Probenkopfs – mit dem Proben mit hoher Salzkonzentration schnell erwärmt werden können – mithilfe einer Hochfrequenzspule technisch optimiert. Die optimierten Radiofrequenz-Bestrahlungsparameter, Lösungsmittel-bedingungen und der reduzierte Arbeitszyklus führten zu einem Temperatursprung von 20 °C in 400 ms. Ich habe eine Cystein-freie Mutante von Barstar hergestellt, die nach Zugabe von Harnstoff bei 0 °C kalt denaturiert werden kann, während sie ihren gefalteten Zustand bei 30 °C hält. Dadurch wurde auch ermöglicht, dass der Rückfaltungsprozess hunderte Male ohne Abbau oder Aggregation wiederholt werden kann. Die Kombination von reversibler Rückfaltung und rascher Temperaturänderung des kalt denaturierten Barstars ermöglichte die Entwicklung eines neuen kinetischen Experiments, bei dem der Rückfaltungsprozess von Barstar mit einem zweidimensionalen Echtzeit-NMR in hoher Zeitauflösung untersucht wird. Die vollständige Rückgratresonanzzuweisung wurde sowohl für den gefalteten als auch für den kalt denaturierten Zustand von Barstar durchgeführt und ergab, dass in der denaturierten Form beide Prolin-Reste einen gemischten Konformationszustand aufweisen. Dabei befindet sich die Tyr47-Pro48-Amidbindung im ungefalteten Zustand hauptsächlich in trans-, während im gefalteten Zustand in der seltenen cis-Konformation. Das neue hochauflösende kinetische Experiment zeigte, dass die Rückfaltung von Barstar durch die trans-cis-Isomerisierung der Tyr47-Pro48-Amidbindung verlangsamt wird, was sowohl die Sekundärstruktur als auch die Bildung der Tertiärstruktur beeinflusst. Basierend auf diesen Ergebnissen konnte ich einen plausiblen Faltungsmechanismus für den langsamen Faltungsweg von kalt denaturiertem Barstar skizzieren. Durch Änderung der Zeitparameter des Heizungszyklus wurde erreicht, dass die Tyr47-Pro48-Amidbindung im ungefalteten Zustand in der cis-Konformation bleibt und daher der schnelle Faltungsweg dominant wird. Das Starten des Magnetisierungstransfers vor der Temperaturänderung ermöglichte die Aufzeichnung eines Spektrums, das den entfalteten Zustand mit dem gefalteten Zustand korreliert. Dieses Spektrum ermöglichte quantitative Analysen des schnellen Faltungsweges und lieferte sogar indirekte Hinweise auf einen Zwischenzustand. Diese Methode aus Kombination von schnellem Temperatursprung und Kaltdenaturierung zeigt ein hohes Potenzial, Proteinfaltung auf atomarer Ebene experimentell zu untersuchen und ein tieferes Verständnis verschiedener Faltungswege zu erlangen.
In meinem zweiten Projekt – das Teil einer interdisziplinären Forschung war – konzentrierte ich mich auf die NMR-spektroskopische Charakterisierung von Nukleinsäuren, die mit einer photolabilen Schutzgruppe modifiziert wurden. Zuerst wurde mithilfe homonuklearer Korrelationsexperimente eine vollständige Protonresonanzzuweisung erreicht. Danach wurde die relative Konfiguration der photolabilen Schutzgruppen bestimmt basierend auf einer dreidimensionalen Modellstruktur und spezifischer NOE-Korrelationen. Des Weiteren wurde ein Strukturmodell unter Verwendung von NOE-Einschränkungen berechnet. Dieses Strukturmodell zeigte eine eingeschränkte Rotation um die CN-Bindung zwischen dem Käfig und der Nukleobase. Das Modell zeigte auch, dass der Käfig in der Hauptrille positioniert ist und nicht in das Lösungsmittel herausklappt. Im Vergleich zu einem zuvor charakterisierten NPE-Käfig führte die erhöhte Größe zu einer weiteren Senkung des Schmelzpunkts, zeigte jedoch einen geringeren Schmelzpunktunterschied zwischen der S- und der R-Konfiguration des Käfigs, wobei die S-Konfiguration zu einer größeren Reduktion des Schmelzpunktes führt. Dieser Trend wurde weiter untersucht und durch ein Screening unterstützt. Durch selektive Wasserinversions-Rückgewinnungsexperimente konnte ich auch zeigen, dass der Käfig die lokale Stabilität nur bis zu einer Entfernung von zwei benachbarten Basenpaaren von der Modifikationsstelle verringert. Die NOE-Daten dienten auch als guter Bezugspunkt, um die Qualität molekulardynamischer Simulationen zu testen, mit denen zusätzliche Käfigdesigns untersucht wurden. Die Kombination aus Synthese, NMR-Spektroskopie und MD-Simulationen ermöglichte bis jetzt die detaillierteste Untersuchung des Effekts vom Einbau eines einzelnen Käfigs zur Destabilisierung der DNA-Sekundärstruktur. Dabei wurden Einschränkungen des möglichen Designs aufgedeckt, aber auch die Entwicklung einer neuen, effizienteren Struktur ermöglicht.
Mein drittes Projekt konzentrierte sich auf die Charakterisierung eines RNA-Modellsystems. NMR-spektroskopische Daten von kleinen RNA-Modellsystemen – wie NOE, skalare Kopplungen, kreuzkorrelierte Relaxationsraten und RDC – sind eine unschätzbare Referenz für MD-Simulationen, obwohl die Menge der verfügbaren Literaturdaten – bis jetzt – sehr begrenzt ist. ...
Autophagy, together with the ubiquitin-proteasome system, is the main quality control pathway responsible for maintaining cell homeostasis. There are several types of autophagy distinguished by cargo selectivity and means of induction. This thesis focuses on macroautophagy, hereafter autophagy, where a double-layered membrane is formed originating from the endoplasmatic reticulum (ER) engulfing cargo selectively or unselectively. Subsequently, a vesicle forms around the cargo, an autophagosome, and eventually fuses with the lysosome leading to degradation of the vesicle content and release of the cargo “building blocks”. Basal autophagy continuously occurs, unselectively engulfing a portion of the cytoplasm. However, autophagy can also be induced by stress such as starvation, protein aggregation, damaged organelles, intracellular pathogens etc. In this case, the cargo is selectively targeted, and the fate of the autophagosome is the same as in basal autophagy. In recent years, interest in identifying mechanisms of autophagy regulation has risen due to its importance in neurodegenerative diseases and cancer. Given the complexity of the process, its execution is tightly regulated from initiation, autophagosome formation, expansion, closure, and finally fusion with the lysosome. Each of the steps involves different protein complexes, whose timely activity is orchestrated by post-translational modifications. One of them is ubiquitination. Ubiquitin is a small, 76-amino acid protein conjugated in a 3-step reaction to other proteins, in a reversible manner, meaning undone by deubiquitinases. Originally described as a degradation signal targeting proteins to the proteasome, today it is known it has various additional non-proteolytic functions, such as regulating a protein’s activity, localization, or interaction partners. The role of ubiquitin in autophagy has already been shown. However, given the reversibility and fine-tuning of the ubiquitin signal, many expected regulators remain unidentified. This work aimed to identify novel deubiquitinating enzymes that regulate autophagy. We identified ubiquitin-specific protease 11 (USP11) as a novel, negative regulator of autophagy. Loss of USP11 leads to an increase in autophagic flux, whereas overexpression of USP11 attenuates it. Moreover, this observation was reproducible in model organism Caenorhabditis elegans, emphasizing the importance of USP11 in autophagy regulation. To identify the mechanism of USP11-dependent autophagy regulation, we performed a USP11 interactome screen after 4 hour Torin1 treatment and identified a plethora of autophagy-related proteins. Following the most prominent hits, we have investigated versatile ways in which USP11 regulates autophagy. USP11 interacts with the PI3KC3 complex, the role of which is phosphorylating lipids of the ER, thereby initiating the formation of the autophagosomal membrane. Phosphorylated lipids serve as a recruitment signal for downstream effector proteins necessary for the membrane expansion. The core components of the complex are VPS34, the lipid kinase, ATG14, the protein responsible for targeting the complex to the ER, VPS15, a pseudokinase with a scaffolding role, Beclin1, a regulatory subunit, and NRBF2, the dimer-inducing subunit. We have found USP11 interacts with the complex and, based on its activity, USP11 influences post-translational status of all the aforementioned subunits, except for ATG14. Moreover, we have found that loss of USP11 leads to an increase in NRBF2 levels, whereas it does not change the levels of the other proteins. Given that the dimerization of the complex leads to an increase in complex activity, we investigated if the complex is more tightly formed in the absence of USP11, and if it is more active. We have found both to be the case. Although the exact mechanism of USP11-dependent PI3KC3 complex regulation remains to be identified, we found that loss of USP11 stimulates the complex formation and activity, likely contributing to the general effect of USP11 on autophagy flux. Additionally, we found that USP11 modulates levels of mTOR, the most upstream kinase in autophagy initiation steps and general multifaceted metabolism regulator. Loss of USP11 led to downregulation of mTOR levels, suggesting USP11 may rescue mTOR from proteasome-mediated degradation. Furthermore, we found mTOR to be differentially modified depending on the activity of USP11. However, it remains to be shown if USP11-dependent mTOR regulation contributes to the observed autophagy phenotype. Taken together, USP11 is a novel, versatile, negative regulator of autophagy, and an important addition to our knowledge on the regulation of autophagy by the ubiquitin system.