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As one of the most widespread infectious diseases in the world, it is currently estimated that approximately 296 million people globally are chronically infected with Hepatitis B virus (HBV), the consequences of HBV infection cause more than 620,000 deaths each year. Although safe and effective HBV vaccines have reduced the incidence of new HBV infections in most countries, there are still around 1.5 million new infections each year. HBV remains a major health problem because there is no large-scale effective vaccination strategy in many countries with a high burden of disease, many people with chronic HBV infection are not receiving effective and timely treatment, and a complete cure for chronic infection is still far from being achieved.
Since its discovery, HBV has been identified as an enveloped DNA virus with a diameter of 42 nm. For efficient egress from host cells, HBV is thought to acquire the viral envelope by budding into multivesicular bodies (MVBs) and escape from infected cells via the exosome release pathway. It is clear that HBV hijacks the host vesicle system to complete self-assembly and propagation by interacting with factors that mediate exosome formation. Consequently, the overlap with exosome biogenesis, using MVBs as the release platform, raises the possibility for the release of exosomal HBV particles. Currently, virus containing exosomal vesicles have been described for several viruses. In light of this, this study explored whether intact HBV-virions wrapped in exosomes are released by HBV-producing cells.
First, this study established a robust method for efficient separation of exosomes from HBV virions by a combination of differential ultracentrifugation and iodixanol density gradient centrifugation. Fractionation of the density gradient revealed that two populations of infectious viral particles can be separated from the culture fluids of HBV-producing cells. The population present in the low-density peak co-migrates with the exosome markers. Whereas the population that appeared in the high-density fractions was the classical HBV virions, which are rcDNA-containing nucleocapsids encapsulated by the HBV envelope.
Subsequently, the characterization of this low-density population was performed, namely the highly purified exosome fraction was systematically investigated. Relying on the detergent sensitivity of the exosome membrane and the outer envelope of the HBV virus, disruption of the exosome structure by treatment with limited detergent revealed the presence of HBsAg in the exosomes. At the same time, mild and limited NP-40 treatment of highly purified exosomes and a further combination of density gradient centrifugation resulted in the stepwise release of intact HBV virions and naked capsids from the exosomes generated by HBV-producing cells. This implies the presence of intact HBV particles encapsulated by the host membrane.
The presence of exosome-encapsulated HBV particles was consequently also verified by suppressing the morphogenesis of MVBs or exosomes. Impairment of MVB- or exosome-generation with small molecule inhibitors has significantly inhibited the release of host membrane-encapsulated HBV particles as well. Likewise, silencing of exosome-related proteins caused a diminution of exosome output, which compromised the budding efficiency of wrapped HBV.
Moreover, electron microscopy images of ultra-thin sections combined with immunogold staining visualized the hidden virus in the exosomal structure. Additionally, the presence of LHBs on the surface of exosomes derived from HBV-expressing cells was also observed.
As expected, these exosomal membrane-wrapped HBV particles can spread productive infection in differentiated HepaRG cells. In HBV-susceptible cells, as LHBs on the membrane surface, this type of exosomal HBV appeared to be uptaken in an NTCP receptor-dependent manner.
Taken together these data indicate that a fraction of intact HBV virions can be released as exosomes. This reveals a so far not described release pathway for HBV. Exosomes hijacked by HBV act as a transporter impacting the dissemination of the virus.
mRNS ist einer der wichtigsten Informationsträger in lebenden Zellen. Mit ihr wird die in der DNS gespeicherte Information zu aktiven Zellprozessen umgesetzt. Dabei finden erste regulatorische Prozesse, die den Phänotyp eines Organismus bestimmen können, bereits über Strukturelemente auf der mRNS statt. Diese, als Riboschalter bezeichneten Strukturen, können spezifisch, kleine Moleküle binden und dadurch ihre Struktur ändern. Durch diese dynamische Änderung der Struktur, in An- oder Abwesenheit des Liganden, wird reguliert, ob nachfolgende Gene vom Ribosom abgelesen werden können. Der Cd1-Riboschalter aus Clostridium Difficile ist schon während der Transkription aktiv und ein Teil des regulatorischen Netzwerkes, das bestimmt, ob das Bakterium einen mobilen oder stationären Lebensstil einnimmt. Das zentrale Signalmolekül in diesem Netzwerk ist der sekundäre Botenstoff c-di-GMP, der gleichzeitig auch der Ligand des Cd1-Riboschalters ist. In der folgenden Arbeit wurde der zeitliche und strukturelle Ablauf des Cd1 Regulationsmechanismus und die Bindung von c-di-GMP untersucht. Auch ohne einen Riboschalter in der Sequenz ist strukturierte mRNS ein interessanter Forschungsgegenstand. Wie die Covid-19 Pandemie und die Forschungen, mRNS Abschnitte als Krebsmedikamente zu gebrauchen, zeigen, gewinnt RNS immer mehr an Bedeutung für die medizinische Forschung und Anwendung. Mit dieser Motivation im Hintergrund wurden drei weitere RNS Projekte bearbeitet. Im ersten wurde ein 19F-Screening für die Erkennung von RNS bindenden Fragmenten etabliert. Im zweiten wurde ein RNS Doppelstrang untersucht, der mit Hilfe verschiedener, kovalent gebundener Spiropyrane reversibel gefaltet und entfaltet werden sollte. Im abschließenden Projekt wurden im Rahmen der COVID-19-NMR Initiative zwei Sekundärstrukturelemente der Covid-19 RNS untersucht.
Bei der Untersuchung des Cd1-Riboschalters konnten folgende Ergebnisse erzielt werden. Es wird gezeigt, dass die Bindung von c-di-GMP an das Cd1-Aptamer ein konzentrationsabhängiges Magnesiumverhältnis braucht. Dieses Verhältnis wurde ausgehend von initialen Messungen als 1/40 (RNS/Ligand) bestimmt. Spätere ITC Messungen geben aber Hinweise darauf, dass dieses Verhältnis bei niedrigen RNS Konzentrationen höher liegt und bei größeren RNS Konzentrationen niedriger. Die Bestimmung des Start- und Endpunktes der c-di-GMP Bindung wird in Unterkapitel 3.1.2 behandelt. Es wurde ermittelt, dass Cd1 bei 83 Nukleotiden eine alternative schwach Ligand bindende Konformation einnimmt, die wahrscheinlich durch eine P1 Helix bis zum Erreichen von Cd1-87 stabilisiert wird. Ab Cd1-87 bildet sich die reguläre von der Literatur vorhergesagte Bindetasche. Das Ende der c-di-GMP Bindung wird mit Cd1-148 erreicht, auch wenn hier noch Reste der Reportersignale für Bindung zu sehen sind. Diese Reste werden aber aller Wahrscheinlichkeit nach durch eine Cd1-83 entsprechende Konformation der Bindetasche erzeugt. In Kapitel 3.2 wird gezeigt, wie durch NMR Messungen die Zuordnung der Sekundärstruktur des Cd1-Riboschalters vollzogen wurde. Durch diese Messungen konnte bestätigt werden, dass in allen Längen eine P2 und P3 Helix vorhanden ist. Im Aptamer wird die Ligandbindung durch zwei Interaktionen zwischen P2 und P3 stark stabilisiert und der untere Abschnitt der P3 erst dann nicht mehr dynamisch, wenn c-di-GMP gebunden wird. Durch x-filter Experimente und Mutationen konnte nachgewiesen werden, dass C87 das basenpaarende Nukleotid an einem G des Liganden ist. Die Anwesenheit des HP1 Stamms konnte in den Längen 147, 148 und 160 nachgewiesen werden, wobei besonders der Vergleich der NOESY Spektren von Cd1-147 und Cd1-148 die Änderung der Sekundärstruktur hin zum Antiterminator zeigen. Der Verlauf der Bindungsaffinitäten wurde auch durch ITC Messungen an Cd1-83, 86, 87, 88, 135 und 146 bestätigt. Für die volle Länge (Cd1-160) des Riboschalters konnte gezeigt werden, dass der Terminatorstamm ausgeformt ist. Die erreichten Ergebnisse wurden in einem Modell zusammengefasst und der zeitliche Verlauf der Cd1 Regulation simuliert. Aus der Simulation ist zu erkennen, dass Cd1, wie erwartet, Ligand abhängig schaltet. Dabei ist der Aus-Zustand bei hoher Ligandkonzentration zu 90% populiert und der An-Zustand zu 100% bei niedriger Konzentration. Des Weiteren konnte gezeigt werden, dass die Transkriptionsgeschwindigkeit bei hohen Ligandkonzentrationen einen starken Einfluss auf die Regulationseffizienz des Riboschalters hat. So ist bei einer Transkriptionsgeschwindigkeit von 100 nt/s nach 1 s eine Gleichverteilung von An- und Aus-Zustand zu erkennen. Dieses Verhalten kann durch einen Stopp der Transkription an der potentiellen Pausierstelle U141-145 aufgehoben werden. Unter den Rahmenbedingungen des Modells erwiesen sich Transkriptionsgeschwindkeiten von um die 20 nt/s als optimal und bei niedrigen Ligandkonzentrationen hatte die Transkriptionsgeschwindigkeit faktisch keine Auswirkungen auf die Regulation. Ein interessantes Ergebniss der Modellierung ergab sich aus der Notwendigkeit der Verwendung einer Rate für konkurrenzlose Basenpaarschließungen. Hier konnte gezeigt werden, dass eine Rate von 400 nt/s ausreicht um einen voll funktionsfähigen Riboschalter zu beschreiben.
Beim 19F Bindungsscreenings von 101 Fragmenten, die alle ein oder mehrere 19F Atome besaßen, an Cd1-98 wurden 9 Fragmente gefunden die an Cd1-98 binden. Diese sind größtenteils planar mit Ausnahme von 2 Fragmenten bei denen die eine Hälfte des Moleküls nicht aromatisch ist. Des Weiteren besitzen alle Fragmente, außer einem, mindestens eine Aminogruppe im Molekül. Die daraus resultierende Vermutung, dass die Fragmente in die RNS interkalieren, konnte durch RNS beobachtende NMR Messungen nicht überprüft werden, da keine Signaländerung im Imino-Bereich zu erkennen war. Durch Verdrängungsexperimente konnte gezeigt werden, dass die Fragmente, nicht wie c-di-GMP, die RNS Faltung homogenisieren und auch nicht in der Bindetasche gebunden werden.
Zika-virus (ZIKV), a flavivirus mainly transmitted by Aedes mosquitoes, is a single-stranded, positive-sense RNA virus. The viral genome is surrounded by a nucleocapsid and a lipid bilayer, in which membrane and envelope proteins are embedded. ZIKV disease is mainly characterized by mild symptoms, such as fever, rash as well as pain in head and joints. However, after epidemics it caused in the Americas in 2015/16, ZIKV infections were also associated with severe neurological complications like the Guillain-Barré syndrome (GBS) and microcephaly in fetuses and newborns. So far there are no specific antiviral treatments or vaccines available against ZIKV. This strengthens the need for a detailed understanding of the viral life cycle and virus-host interactions.
The antiviral host factor tetherin (THN) is an interferon-stimulated protein and therefore part of the cellular innate immune response. It comprises an N-terminal cytoplasmic domain, followed by a transmembrane helix, an extracellular coiled-coil domain and a C-terminal glycosylphosphatidylinositol (GPI) anchor. Containing two sites for membrane insertion linked by a flexible structure, THN is able to integrate into the membrane of budding viruses, thereby attaching them to each other and to the cell membrane and preventing their further release and spread.
In this study, the crosstalk of ZIKV and THN was analyzed. Previous gene expression analyses by microarray and quantitative polymerase chain reaction (qPCR) had revealed a strong upregulation of the BST2 gene encoding for THN in ZIKV-infected cells. However, this enhanced expression did not correlate with an enhanced THN protein level. On the contrary, the amount of THN in THN-overexpressing cells was after infection even heavily reduced. Furthermore, immunofluorescence analyses revealed a loss of THN membrane localization in these cells. By performing a cycloheximide assay, this loss could be traced back to a reduced protein half-life of THN in infected versus uninfected cells. Treatment with inhibitors of different protein degradation pathways as well as colocalization analyses with markers of several subcellular compartments indicated an involvement of the endo-lysosomal route. A knock-down of the ESCRT-0 protein HRS however prevented the sorting of THN for lysosomal degradation and led to a stabilization of THN protein levels. After HRS depletion, the release and spread of viral particles was reduced in THN-overexpressing compared to wildtype cells.
Taken together, the data obtained in this study revealed the potential of THN to restrict ZIKV release and spread. The enhanced degradation of THN in ZIKV-infected cells via the endo-lysosomal pathway could therefore be explained as an effective viral escape strategy. This could be circumvented by knockdown of the ESCRT-0 protein HRS, which highlighted HRS as a potential target for the development of antiviral treatments.
Damit in der Schule die Vermittlung eines adäquaten Energieverständnisses gelingen kann, benötigt es eine Lehrkräfteausbildung, die dessen Herausforderungen in den Blick nimmt und die angehenden (Chemie-) Lehrerinnen und Lehrer aus fachwissenschaftlicher und didaktischer Perspektive vorbereitet. Denn in die Unterrichtsvorbereitung fließen neben bildungspolitischen und curricularen Vorgaben auch die Vorstellungen und Überzeugungen der Lehrkräfte mit ein. Zu den Herausforderungen, mit denen Lernende wie Lehrende konfrontiert sind, zählen die verschiedenen mentalen Repräsentationen zum Wort Energie aus Alltag und Naturwissenschaft, die zahlreichen chemischen Fachkontexte, in denen Energie bzw. Energiephänomene eine Rolle spielen, die unterschiedlichen Wissensnetze, die mit dem Begriff in den verschiedenen Naturwissenschaften verknüpft sind und der Einfluss der Fach- bzw. Alltagssprache.
Die (angehenden) Lehrkräfte fühlen sich auf diese Aufgabe oftmals fachlich nicht ausreichend vorbereitet. Um die Lehrkräfteausbildung in ihrem ersten Ausbildungsabschnitt auf die genannten Herausforderungen anzupassen und Lehrformate zu erweitern, benötigt es umfangreiche Kenntnisse über die mentalen Repräsentationen der Studierenden zur Energie sowie die damit verbundenen alternativen Konzepte zu schulrelevanten und lehrplanorientierten Themenschwerpunkten und die sprachlichen Besonderheiten. Die Vielschichtigkeit des Begriffs Energie erfordert eine ganzheitliche Betrachtung aller Aspekte, die es so bislang nicht gibt.
Aus diesem Grund ist es Ziel dieser Studie, die mentalen Repräsentationen der Studierenden, wie auch deren alternative Konzepte zu ausgewählten energiebezogenen Fachbegriffen aus den Bereichen chemische Bindungen, Thermodynamik und chemische Reaktionen zu erheben, in einen gemeinsamen fachlichen und sprachlichen Kontext zu setzen und daraus Rückschlüsse auf das Energieverständnis zu ziehen.
Im Sinne des Modells der didaktischen Rekonstruktion wird eine fachliche Klärung zum Untersuchungsgegenstand Energie durchgeführt. Für die Erhebung der empirischen Daten findet ein Rückgriff auf halbstandardisierte Leitfadeninterviews statt. Zielgruppe sind angehende Chemielehrkräfte, die mindestens im 5. Fachsemester Chemie für das Lehramt an Gymnasien studierten. Die Auswertung der Interviews erfolgt unter Rückgriff auf die qualitative Inhaltsanalyse nach Mayring und wird mit quantifizierenden Elementen trianguliert.
Die Studie zeigt die Erklärungsvielfalt des Begriffs Energie auf, denen sich die Studierenden bedienen. Dabei werden vor allem Beispiele einzelner Energiephänomene oder Energieformen herangezogen. In den verschiedenen Fachkontexten konnten diverse alternative Konzepte detektiert werden. Darüber hinaus konnten übergreifende Herausforderungen detektiert werden. Erkennen die Studierenden Widersprüche in ihrem Energieverständnis, wird Energie als abstrakt und schwer fassbar beschrieben. Zudem wird eine anthropozentrische Sicht eingenommen. Die angehenden Lehrkräfte neigen zu einer starken Kompartmentalisierung und begründen Wissenslücken mit der Zugehörigkeit zu anderen Fachwissenschaften. Eine weitere wichtige Erkenntnis aus der Studie ist, dass in den Fachwissenschaftlichen Veranstaltung die qualitativen Diskussionen angeregt werden müssen. Die zukünftigen Lehrerinnen und Lehrer bewegen sich in einem Spannungsverhältnis zwischen Fachwissenschaft und Didaktik und sind sich dessen sehr deutlich bewusst, indem sie bei Begriffsdefinitionen und Erklärungen die Anschaulichkeit der Exaktheit vorziehen. Es besteht die Notwendigkeit, Fachbegriffe in einem größeren Zusammenhang zu erläutern und die Studierenden zur Kommunikation darüber anzuregen.
Pulsed dipolar (PD) EPR spectroscopy is an established and reliable tool for the investigation of biomolecules. In terms of long distance and orientation measurements, it is one of the leading methods and further fields of application are constantly being explored. The distances that can be detected with PD EPR also correspond to the range in which almost all important biomolecule interactions occur. In the transition from in vitro spectroscopy to in-cell spectroscopy, the power of PD EPR spectroscopy is particularly evident. It is non-invasive, more sensitive than NMR, and does not exhibit background signals from diamagnetic molecules. In particular, the absence of background signals is of great importance given the high density of molecules within cellular environment. However, like any other spectroscopic method, PD EPR has certain limitations. Owing to the intrinsically fast electron spin echo dephasing at higher temperature, these experiments are commonly carried out in frozen solutions at about 50 K. This temperature is far away from the physiological conditions and the freezing additives used, e.g. glycols, can further influence the structure. To enable measurements with and within living organisms, it is therefore necessary to ascend from the cold depths of the frozen state. At the same time, one has to adapt the spin tags for the desired application. Established nitroxides commonly used for EPR studies are typically susceptible to reduction. Thus, for studies under physiological conditions, e.g. in the cell, one has to fight against the reductive environment in the cell and somehow protect the spin labels. Initial published in-cell experiments within the research group and investigations of homogeneously distributed labeled double-stranded (ds) ‐DNA samples in solid matrices showed promising results and enabled pulsed measurement in the temperature range of 50‐ 295 K. It could also be demonstrated that spherical shielded nitroxides have a significantly longer life span in cellular environments than non-protected ones and first nuclear acids were measured in cell. Based on these results, we have gone further to overcome the standing limitations and developed the use of PD EPR spectroscopy. This work addresses these challenges with the overall goal of advancing the applications of PD EPR spectroscopy for studying biomolecules under physiological conditions.
We have focused on four different approaches. The results of these studies were published in various publications. They are presented and discussed together with further studies and put into the context of research conducted before and after the authors' publications.
In approach 1, we fought against the two main obstacles for using pulsed dipolar spectroscopy at ambient conditions – minimizing phase memory time T2 and averaging of the anisotropic dipolar coupling by rotational diffusion. We focused on an immobilization approach, while using rigid spin labels at same time. Besidesto the distance information, the incorporated rigid spin labels will give additional angular constrains and information about the molecular dynamics.
In approach 2, we focused on the on-site and on-demand formation of nitroxide spin labels using light-sensitive alkyl protection groups. This a very mild and efficient procedure that will hardly interfere with sensitive functional groups present in oligonucleotides or peptides. By establishing this method and using coumarin protecting groups plus two-photon excitation, this property may offer the potential to generate spin labels with very high levels of spatial and temporal resolution.
For approach 3, we used paramagnetic Gd3+ -ions as intrinsically stable labels, which are not reducible within a cellular environment. Easy to mix and bound to encodable lanthanide binding tags within the molecule Interleucin 1β, we were able to measure distances between two tags with PELDOR spectroscopy. We tested the extent to which this system is suitable for in-cell measurements.
Finally, we focus on methods for easier labeling by using non-covalentlabeling techniques. One of these is the novel nitroxide G´ for site-directed spin labeling of nucleic acids, especially for RNA. This spin label is sterically hindered, easy to build and binding occurs in seconds by simply mixing the spin label with the target. For large RNAs, another easy-to-mix and noncovalent spin-labeling strategy will be experimentally accompanied and presented.
The approaches and results described here are intended to demonstrate that the study of the biological functions of biomolecules under physiological conditions by pulsed EPR spectroscopy is feasible and operational. In combination, they will enable the life sciences to make further and faster progress in the search for the molecular master plan.
Diseases such as cardiac arrhythmias, CPVT and other issues of the human heart still remain largely unexplored. To contribute to this field of research, it is necessary to create tools to control the spatial and temporal release and reuptake of Ca2+ from the sarcoplasmic/endoplasmic reticulum (SR/ER). Ca2+ release and uptake by the ryanodine receptor (RyR) and Sarcoplasmic/endoplasmic reticulum calcium ATPase (SERCA), respectively, are essential for the function of excitable cells. In this process, the rapid Ca2+ release from the SR/ER and the associated contraction in muscle cells is modulated by RyR. However, diseases due to calcium leakage, such as cardiac arrhythmias, seizures and contractile dysfunction, are also caused by RyR. The resting Ca2+ concentration in the cytosol, which is important for the cell, is kept in balance by Ca2+ release and reuptake into the SR/ER. This reuptake is controlled quite considerably by SERCA. SERCA is important for development and muscle function in both nematodes such as C. elegans and mammals, though there is also a great need for tools that can help study precise function.
To advance towards the goal of developing tools for optogenetic stimulation of intracellular Ca2+ release from the SR/ER, the model organism C. elegans was chosen. Its advantages are the fully sequenced genome and the neural network connectome. In addition, the ease of maintenance, self-fertilisation, transparency and rapid generation cycles, as well as the fact that it is a eutelic animal, are advantages for the application of the optogenetic approach.
So far, tools for light-induced Ca2+ release (LICR) have already been developed, involving the creation of ChR2 versions with higher Ca2+ conductivity based on the "CatCh" variant and further improving their conductivity through several established mutations. In addition, the pharynx of C. elegans was modified to produce an optogenetically stimulated muscle pump that resembles mammalian cardiac muscle cells. In this work, both optoUNC-68 (optically excitable RyR) and SERCA/LOV2 were generated in different variants by CRISPR/Cas9 and plasmid-based genome editing to achieve light-driven manipulation of calcium homeostasis in C. elegans. Here, LICR was triggered by LOV2 domains in an opto-mechanical manipulation of RyR as well as SERCA. This approach was made possible by recently published high-resolution cryoEM structural images. In addition, alternative approaches using Ca2+ conductance-optimised channelrhodopsin variants were tested in C. elegans body wall muscle cells.
By inserting ChR-XXM into C. elegans and subsequent fluorescence microscopy of the co-introduced GFP, an expression in body wall muscle cells could be detected. Furthermore, in contraction assays, ChR-XXM was demonstrated to induce contractions of the animals of up to 16% compared to the original body length in both medium (0.8mW/mm²) and high (1.4mW/mm²) stimulation at 470nm. ChR-XXM was thus identified as an excellent candidate for the development of an optogenetic tool, as it exhibits significantly increased Ca2+ conductivity compared to other ChR2 variants.
The use of CRISPR/Cas9 to insert AsLOV2 domains (L404-L546) into different insertion sites of RyR allowed the generation of a transgenic strain of C. elegans that could be stimulated to elongate during 0.3mW/mm² photostimulation. This demonstrated that RyR can be manipulated by photostimulation, spatiotemporally through conformational changes in the LOV2 domain and the resulting disruption of the pore region.
The CRISPR/Cas9 method was also used to insert LOV2 domains into SERCA. Here it could be demonstrated that a conformational change of the LOV2 domains induced by photostimulation leads to a stop or impairment of Ca2+ ion translocation by SERCA from the cytosol into the SR/ER. In contrast to LOV2 in RyR, this resulted in a contraction of C. elegans body length.
The data presented here indicate that the intracellular Ca2+ cycle involving the SR/ER and cytosol can be successfully manipulated by the introduction of optogenetic tools. It turned out that the manipulation/impairment of individual components of this system, such as RyR or SERCA, is usually insufficient to achieve a clear response. Therefore, simultaneous manipulation of the two main actors RyR and SERCA is arguably the best way to take another step towards creating optogenetic tools for light-stimulated manipulation of Ca2+ release and reuptake from the SR/ER.
Chapter I of this work addressed the piggyBac (PB) transposon system, a non-viral genome engineering tool that is capable of efficiently performing stable integration of DNA sequences into a target cells genome and has already been used in clinical trials. However, the PB transposase has the problematic property of preferentially integrating transposons near transcriptional start sites (TSSs). This increases the likelihood of causing genotoxic effects, limiting its potential use as a tool in clinical applications. It has been shown in the past that the PB transposase shows physical interactions with BET proteins (e.g. BRD4) through Co-IP experiments. Representatives of these proteins are part of the transcriptional activation complex and are abundant at TSSs. Accordingly, it was previously proposed that this interaction is the underlying cause for the biased integration preference. For the first chapter of this thesis, the goal was to disrupt this interaction potentially modifying said integration preference. A secondary structure hypothesized to be mainly responsible for said interaction was extensively mutated resulting in several PB variants that were analyzed for their interaction capacity through a series of Co-IP experiments with BRD4. In total, seven substitutions were identified (E380F, V390K, T392Y, M394R, K407C, K407Q, and K407V) which exhibited reduced interaction capacity with BRD4. Each of the aforementioned mutants were used to generate integration libraries and, through NGS, it was determined if the integration preferences of the respective mutants had changed. In the immediate range 200 base pairs up- and downstream from known TSSs all mutants used exhibited a reduced integration bias. At a wider observation window 3 kbp up- and downstream from TSSs, further mutants with the substitutions M394R, T392Y and V390K showed a reduction in integration frequency of 17.3%, 1.5% and 5.4%, respectively, compared to the wildtype. Of particular note was the M394R mutant, which showed a reduction in all window sizes analyzed with a maximum of 65% less integration preference in the immediate vicinity of TSSs, theoretically generating a safety advantage over the wildtype transposase.
Chapter II was dedicated to the overall safety improvement for transposon-based gene modification and addresses the time point after the transgene has already been integrated and serious side effects may not be preventable. With this in mind, the aim was to develop a novel suicide-switch that can be stably introduced into cells via transposition, and reliably leads to cell death of the modified cells once activated. A system based on CRISPR/Cas9 was developed, where single guide RNAs were used to guide the Cas9 nuclease to Alu elements. These are short, repetitive sequences, which are distributed over the human genome in more than one million copies. Inducing double strand breaks within these elements would lead to genomic fragmentation and cell death. To be inducible, a transcriptional as well as post- translational control mechanism was added. Transcription of the Cas9 nuclease was regulated using a tet-on system, making expression dependent on doxycycline (DOX) supplementation. Furthermore, a version of the Cas9 nuclease called arC9 was used that allows double strand break generation only in the presence of 4-Hydroxytamoxifen (4-HT). Together with an expression cassette for the Alu-specific guide RNA and an expression cassette for the reverse tetracycline controlled transactivator all components were arranged between transposase-specific recognition sequences on a plasmid to allow transposon-system based gene transfer. The system was tested in HeLa cells. First, conditional expression of the arC9 nuclease was confirmed by addition of 1 μg/ml DOX. Second, the suicide-switch was further induced by adding 200 nM 4-HT and protein extracts were assayed for the KAP1 phosphorylation. Only upon induction with DOX and 4-HT phosphorylated KAP1 was detected, indicating DNA damage. Further, extensive growth and survival experiments were conducted to determine the effect of suicide-switch induction on cell proliferation and survival. Between 24 and 48 hours after induction, a halt in cell division was detected, after which extensive cell death was observed. Within 5 days post induction, >99% of all cells were eliminated. In the absence of both inducers, no significant differences in survival were observed compared to control cells line lacking Alu-specific guide RNAs. Microscopic examinations of the <1% surviving cell fraction revealed a senescence-associated phenotype and showed no signs of resumption of the cell division process. Accordingly, the second chapter of this thesis also achieved its goal in developing a functional suicide-switch that can be inserted into human cells via transposition, is highly dependent on the necessary induction signals, and exhibits excellent elimination capabilities in the context tested.
To this day, stroke is the leading cause of death and disability worldwide. Due to increasing age of the world population and poor lifestyle, the incidence is further rising. Besides mechanical thrombectomy as a surgical option, there is a lack of therapeutic options with recombinant tissue plasminogen activator (rt-PA) being the only approved drug for treatment for ischemic stroke. However, there are various problems that make the administration of rt-PA difficult. In particular, it can only be given for ischemic (not hemorrhagic) stroke, and there is a narrow time frame of 4.5 hours after onset of stroke, in which it can be successfully applied. While the success rates of combined thrombectomy with rt-PA are around 60%, less than 5% of patients receive this therapy.
ß-Hydroxybutyrate (BHB) is a ketone body that is formed in high amounts during fasting and lipolysis. Ketone bodes and the ketogenic diet have been shown to have neuroprotective properties in neurodegenerative diseases. In prior work of our group, the ketogenic diet was shown to have beneficial effects in mice after transient ischemia. In the present work, a single dose of BHB was tested for beneficial effects. For this purpose, microdialysis was used to demonstrate that BHB can cross the blood-brain barrier. For the next series of experiments, transient cerebral ischemia was induced in mice for 90 minutes by unilaterally occluding the middle cerebral artery (MCAO) with a silicone-covered filament. Behavioral tests one day after BHB administration showed that the moderate dose of 30 mg/kg, given immediately after reperfusion, improved the neurological score significantly whereas a lower (10 mg/kg) and a higher dose (100 mg/kg) had no effects The main part of the experiments focused on mitochondrial respiration as a potential mechanism of action for BHB. In isolated mitochondria from mouse brain, BHB (1-10 mM) was able to stimulate mitochondrial respiration stronger than pyruvate, but not as strong as succinate.. In the following experiments, MCAO was induced in vivo, and mitochondria were isolated and investigated ex vivo. Experiments were conducted 60 minutes, 24 hours, 72 hours, and 7 days after cerebral ischemia and reperfusion. Besides mitochondrial respiration (normalized to mitochondrial protein content or citrate synthase activity), several other parameters were monitored: the development of bodyweight throughout the experiment, citrate synthase activity, plasma metabolites and behavior to assess motor functions. Three behavioral tests were conducted: first, the Corner test, an experiment for measuring the extent of unilateral movement. Here, if a stroked mouse is put into a narrow corner (30°), it is most likely to turn unilaterally to the right, whereas an unimpaired mouse will turn to both sides randomly. From a total of 10 turns, a laterality index was calculated. Second, in the Chimney test, the mouse walks heads first into a tube. Once it reaches the end, the tube is tipped 90 degrees to stand on the table vertically. Motorically impaired animals have difficulties crawling backwards up to the top of the tube. The experiment was stopped if an animal did not reach the top of the tube within 60 seconds. Third, in the Rotarod test, the mouse is placed on a rotating beam on which it is supposed to walk for at least 60 seconds, and the time when the animal falls off the rotating tube is measured.
All animals that had undergone ischemia showed massive weight loss until 72 hours after reperfusion. Weight loss then stagnated and there was a trend of increasing weight 7 days after reperfusion. The behavioral analysis showed that 24 hours after reperfusion, BHB-treated animals performed significantly better in the Corner test, meaning their moving patterns were more heterogeneous than those of saline-treated animals and in the Chimney test. 72 hours after reperfusion, BHB-treated animals still performed significantly better in the Chimney test, but 7 days after reperfusion, the performances of BHB- and saline-treated animals were no longer different from each other in any of the behavioral tests. In separate experiments, the plasma metabolites glucose, lactate, and pyruvate were changed in the animals that had undergone ischemia but were not affected by BHB administration.
Mitochondrial respiration was tested at four time points after the administration of BHB after reperfusion – 60 minutes, 24 hours, 72 hours, and 7 days after transient cerebral ischemia. 60 minutes later, data showed an increase of oxygen consumption of the complexes I and II. OxPhos was also increased but the effect at this point, did not reach statistical significance. 24 hours after reperfusion, this effect was consolidated: complex I, complex II and OxPhos respiration were significantly improved in the BHB-treated group compared to saline...
Kurz zusammengefasst waren die Ziele dieser Arbeit, die in vivo Untersuchung einer Hyperhomocysteinämie und spezifischer diätetischer Mikronährstoffe im Kontext der Alzheimer-Erkrankung. Zu diesem Zweck wurden zwei Krankheitsmodelle in den Mäusen induziert. Zum einen wurde eine Alzheimer-ähnliche Pathologie genetisch simuliert durch den Einsatz des neuen AppNL-G-F knock-in Modells, das im Zuge dieser Arbeit auch weiter charakterisiert wurde. Zum anderen wurde eine chronische Hyperhomocysteinämie in den Tieren induziert via Langzeit-Fütterung einer Spezialdiät, die defizient an den Vitaminen B6, B12 und Folat war, was sich durch erhöhte Werte der Aminosäuren Homocystein und Homocysteinsäure in verschiedenen biologischen Matrices der Mäuse wie Serum, Urin und Hirngewebe, bemerkbar machte. Durch die Kombination der Krankheitsmodelle wurden sowohl Aspekte einer familiären Alzheimer-Erkrankung (verstärkter Amyloid-β-Anabolismus im knock-in Modell) als auch ein potentielles Charakteristikum der sporadischen Form der Krankheit (erhöhte Homocystein-Spiegel) simuliert. Auswirkungen des AppNL-G-F Genotyps, einer zusätzlichen Hyperhomocysteinämie und potentiell vorteilhafter, oder gar präventiv wirksamer Mikronährstoffe wurden dabei mit Hilfe von diversen Verhaltensversuchen und ergänzenden ex vivo Analysen bewertet.
Trotz massiver cerebraler Amyloidose war lediglich ein milder Einfluss auf die kognitive Leistungsfähigkeit der AppNL-G-F Tiere im Vergleich zur gleichaltrigen Wildtyp-Kontrolle detektierbar. Dies weist zum einen auf die Subtilität des Mausmodells hin und zum anderen befeuert es die kontroverse, häufig geführte Diskussion um die zentrale Bedeutung der „Amyloid-Hypothese“ im Rahmen der komplexen Alzheimer-Pathologie. Die kognitiven Fähigkeiten der entsprechenden Mäuse verschlechterten sich auch nicht bei gleichzeitig signifikant erhöhten Homocystein- und Homocysteinsäurespiegeln, d.h. die Hyperhomocysteinämie hat in diesem Modell für familiären Alzheimer nicht kausal zur Verschlimmerung der induzierten Pathologie beigetragen sowohl hinsichtlich der kognitiven Leistung in diversen Verhaltensversuchen als auch hinsichtlich dem Schweregrad der cerebralen Amyloidose.
Zur Hyperhomocysteinämie, vor allem aber auch zur Rolle bestimmter diätetischer Interventionen in dem Kontext, findet man eine heterogene, teilweise konträre Literatur vor, insbesondere im klinischen Kontext. Die untersuchten diätetischen Ansätze in dieser Arbeit, bestehend aus hochdosierten B-Vitaminen, mehrfach ungesättigten Fettsäuren, Betain und einer komplexeren Mikronährstoffkombination, zeigten ebenfalls keinen konsistenten Effekt auf Phänotyp und Amyloid-β-Menge in den Hirnen der Tiere. Die Ergebnisse der durchgeführten Studien legen daher, zumindest in diesem Krankheitsmodell, keinen Wert als potentiell präventiven Ansatz der kognitiven Verschlechterung bei Alzheimer nahe.
Da die dieser Arbeit zugrundeliegenden in vivo Studien keine per se erhöhten, AppNL-G-F-assoziierten Homocysteinspiegel offenbarten, zeigte sich Homocystein nicht als Biomarker, zumindest für die in diesem Mausmodell simulierten Aspekte der komplexen Alzheimer-Pathologie. Neben den zuvor beschriebenen fehlenden Effekten der Hyperhomocysteinämie, konnten in dieser Arbeit jedoch auch statistisch signifikante Einflüsse sichtbar gemacht werden. Wie in der durchgeführten Kinetikstudie gezeigt, resultierte die Alzheimer-ähnliche Pathologie in einem signifikant höheren Schweregrad der ausgebildeten Hyperhomocysteinämie in den AppNL-G-F Tieren im Vergleich zur gleichaltrigen Wildtyp-Kontrolle. Folglich übte der gestörte Amyloid-β-Metabolismus, neben der B-vitamindefizienten Diät, einen zusätzlich verstärkenden Effekt auf den hyperhomocysteinämischen Status aus. Sowohl für knock-in-, als auch Wildtyp-Tiere konnte gezeigt werden, dass bei Beendigung der Karenz an Vitamin B6, B12 und Folat, die erhöhten Homocystein- und Homocysteinsäurespiegel innerhalb kurzer Zeit wieder auf Baseline-Niveau normalisiert werden können.
Weitere signifikante Effekte wurden detektiert bezüglich Erythrozyten-bezogener Parameter wie den Hämoglobingehalt im Blut der hyperhomocysteinämischen Tiere. Ein reduzierter Sauerstofftransport und die damit einhergehende verringerte Versorgung der Neuronen mit Sauerstoff in den entsprechenden experimentellen Gruppen deuten auf eine vornehmlich vaskuläre Wirkung hin im Hinblick auf Homocystein-bezogene Pathomechanismen, die potentiell zu einer Demenz beitragen. Solche Effekte können zusätzlich verstärkt worden sein durch die, in der durchgeführten Proteomanalyse gezeigte, Herunterregulierung angiogener Marker im Serum und in der Cerebrospinalflüssigkeit dieser Tiere. Eine Verringerung der kapillären Dichte im Hirn und ein verringerter cerebraler Blutfluss haben ein zusätzlich reduziertes Angebot an Sauerstoff und Glucose zur Folge und stellen einen Link zu eingeschränkter kognitiver Leistungsfähigkeit in Älteren und Alzheimer-Patienten dar. Translational relevant ist eine vaskuläre Wirkung von Homocystein auch dadurch, dass vaskuläre Demenz und Alzheimer in etwa 40% der Fälle koinzident sind und Homocystein in früheren Humanuntersuchungen eine größere Bedeutung bei der vaskulären Demenz im Vergleich zur Alzheimer-Erkrankung nahelegte.
Auch wenn in Summe die beschriebenen Effekte der Hyperhomocysteinämie nicht groß genug waren, um sich in phänotypischen Einschränkungen in den Tieren auszudrücken, so konnten in der hier vorliegenden Arbeit dennoch Details zur Rolle erhöhter Homocysteinspiegel für verschiedene biologische Prozesse aufgeklärt werden. Insbesondere die Funde der explorativen Proteomanalyse in Serum und CSF könnten Ansatzpunkte für weitergehende Untersuchungen darstellen und sollten in anderen präklinischen Krankheitsmodellen und/oder einer Humanstudie validiert werden.
KMT2A-rearrangements are causative for 70-80% all infant acute lymphoblastic leukemias (Pieters et al., 2019, 2007). Among these, the translocation t(4;11)(q21;23) generating the oncogenic fusion genes KMT2A::AFF1 and AFF1::KMT2A is the most frequent one, accounting for almost every second case of KMT2A-r infant ALL (Meyer et al., 2018). Despite passing a multimodal chemotherapy, 64% of patients achieve an event including relapse or death within four years from diagnosis, and overall survival three years from relapse remains poor with only 17% (Driessen et al., 2016; Pieters et al., 2019, 2007). Vari-ous studies have shown that relapse and therapy resistance were not mediated by chemotherapy-induced mutagenesis as there was no accumulation of secondary mutations in the dominant leukemic clone between diagnosis and relapse (Agraz-Doblas et al., 2019; Andersson et al., 2015; Bardini et al., 2011; Dobbins et al., 2013; Driessen et al., 2013; Mullighan et al., 2007).
Intriguingly, exclusively infant t(4;11) ALL patients were reported to subdivide in two groups depending on the level of HOXA gene cluster expression (Trentin et al., 2009). The HOXAlo group displayed a high expression of IRX1 and the HOXAhi group a low expression of IRX1 (Symeonidou and Ottersbach, 2021; Trentin et al., 2009). Importantly, the HOXAlo/IRX1hi group was characterized to possess a strongly ele-vated relapse incidence compared to the HOXAhi/IRX1lo group (Kang et al., 2012; Stam et al., 2010). IRX1 was identified to upregulate the Early growth response genes EGR1, EGR2 and EGR3 (Kühn et al., 2016).
The doctoral project “EGR-mediated relapse mechanisms in infant t(4;11) acute lymphoblastic leuke-mia” aimed to investigate a potential correlation between the HOXAlo-IRX1-EGR axis and relapse development in infant t(4;11) ALL. The primary objective was to clarify through which molecular mechanism(s) relapse development despite continuous chemotherapy could be achieved. In this context, the role of the EGR genes has been investigated. In addition, this project aimed to disclose molecular targets which could offer novel therapeutic interventions to interfere with therapy resistance and relapse formation.
Die vorliegende Dissertationsarbeit behandelt eine umfangreiche Studie des nukleären Rezeptors (NR) TLX (engl. tailless homolog, TLX). Als ligandenaktivierbarer Transkriptionsfaktor ist TLX in Differenzierungs- und Proliferationsprozessen involviert und übernimmt somit eine tragende regulatorische Rolle in der Neurogenese von neuronalen Stammzellen87,88. Zahlreiche Studien haben gezeigt, dass eine fehlgesteuerte TLX-Expression mit gravierenden kognitiven, visuellen und neurodegenerativen sowie tumorigenen Erkrankungen assoziiert ist, sodass TLX ein vielversprechendes Wirkstofftarget mit hohem therapeutischem Potential darstellt94,95,99,100 105. Die pharmakologische Validierung von TLX als neues Wirkstofftarget befindet sich allerdings aufgrund limitierter Verfügbarkeit von validierten und potenten synthetischen und natürlichen kleinen organischen Molekülen in einer frühen Phase. Daher ist das Interesse sehr groß neuartige und wünschenswerterweise selektive TLX-Modulatoren zu generieren109,119-121.
Im Rahmen dieser Dissertationsarbeit wurden zu diesem Zweck mehrere Reportergenassays eingeführt, die die in vitro Aktivitätsstudie von TLX sowohl im Gal4-Hybridformat in Kombination mit Gal4-VP16 als starken Transkriptionsaktivator als auch als TLX-Volllängenprotein in HEK293T-Zellen (engl. human embryonic kidney, HEK293T) erlaubten. Zusätzlich wurde Gal4-TLX in Kombination mit VP16-RXRα untersucht, um bisherige unbekannte potentielle Heterodimer-vermittelte Effekte zu studieren. In einem primären Screeningansatz im Gal4-Format unter Verwendung einer kommerziell erhältlichen Wirkstofffragmentbibliothek und ausgewählter strukturähnlicher Wirkstoffe wurden mehrere Wirkstofffragmentkandidaten identifiziert (30, 34, 39, 45 und 47), die einen attraktiven Ausgangspunkt zur Darstellung von TLX-Modulatoren darstellten. Insgesamt wurden in vier Projekten vier strukturdiverse Chemotypen anhand von Struktur-Wirkungs-Beziehungs-Studien anhand der Aktivität an TLX untersucht. Ausgehend von Fragment 34 beinhaltete das erste Projekt die Identifizierung und Charakterisierung von Xanthinderivaten als inverse TLX-Agonisten. Eine systematische Struktur-Wirkungs-Beziehungs-Studie lieferte mehrere hochpotente Derivate, die auf das Grundgerüst von 8-Phenyltheophyllin (97) basierten. Parallel konnte Istradefyllin (116), welches aktuell zur Behandlung der Parkinson-Erkrankung in den USA und Japan Anwendung findet, als potenter inverser TLX-Agonist identifiziert werden. Mehrere orthogonale zelluläre und zellfreie Experimente klassifizierten die Xanthine als neue erste TLX-Modulatoren. Das zweite Projekt umfasste die Identifizierung und Charakterisierung des unselektiven β-Adrenorezeptorblockers Propranolol (54) ausgehend vom Wirkstofffragment 30. Durch eine vorläufige systematische Struktur-Wirkungs-Beziehungs-Untersuchung der aliphatischen Aminoalkoholseitenkette von 54 konnte die sekundäre Aminogruppe als determinierendes Strukturmotiv für eine Aktivität an TLX bestimmt werden. Weitere Migrations- und Zellviabilitätsexperimente demonstrierten erste phänotypische Effekte in T98G-Glioblastomzellen seitens 54, die TLX-vermittelt sein könnten. Das dritte Projekt behandelte die Darstellung eines potenten neuartigen TLX-Agonisten mit Hilfe eines ligandenbasierten Pharmakophormodells. Das verwendete Pharmakophormodell wurde hierbei unter Verwendung des publizierten Referenzliganden ccrp2 (2) und dem identifizierten Wirkstofffragment 45 aus dem vorherigen Screeningansatz generiert. Durch eine anschließende rationale Fragmentfusion von 45 mit weiteren TLX-Agonisten aus dem Wirkstofffragmentscreening konnte der neuartige potente TLX-Agonist 137h synthetisiert werden, welcher eine verbesserte mikrosomale Stabilität im Vergleich zu 45 und 2 aufwies. Das vierte Projekt beinhaltete die Darstellung neuartiger TLX-Modulatoren mit Hilfe eines Scaffold Hopping Ansatzes. Hierbei wurden essentielle Strukturmotive aus der Xanthin-Struktur-Wirkungs-Beziehung (erstes Projekt) auf weitere Wirkstofffragmente übertragen. Die Validierung dieses Scaffold Hoppings anhand der Verbindung 156 führte anhand eines darauf folgenden kombinatorisch-chemischen Ansatzes zur Darstellung einer Substanzbibliothek (255 Amidrohprodukte). Ein Aktivitätsscreening der Amidrohprodukte deutete in den Reportergenassays auf drei aktive TLX-Modulatoren hin (582, 611 und 629), welche nachträglich gezielt synthetisiert, isoliert und erneut auf Aktivität an TLX validiert wurden. Hierbei hob sich besonders 629 hervor, welches in drei orthogonalen zellulären Reportergenassays TLX-vermittelte Effekte aufwies und zusätzlich einen Bindungseffekt an rekombinanter exprimierter TLX-Ligandenbindedomäne zeigte.
Mit dieser Arbeit konnte mit Hilfe der Einführung diverser TLX-basierter Reportergenassays zur Aktivitätsstudie von TLX mehrere strukturdiverse Liganden als potentielle tool compounds identifiziert und charakterisiert werden. Alle abgeleiteten TLX-Modulatoren können somit als wertvolle neue Startpunkte zur Derivatisierung neuartiger potenter Liganden und somit zu einem Fortschritt in der pharmakologischen Validierung von TLX als Wirkstofftarget dienen.
Acute myeloid leukemia (AML) is one of the most frequently occurring and fatal types of leukemia. Initiated by genetic alterations in hematopoietic stem and progenitor cells, rapidly proliferating cancer cells (leukemic blasts) infiltrate the bone marrow and damage healthy hematopoiesis. Subgroups of AML are defined by underlying molecular and cytogenetic abnormalities, which are decisive for treatment and prognosis. For AML patients that can be intensively treated, the first line treatment remains a combination of cytarabine and anthracycline, which was developed in the 1970s. While this treatment regimen clears the disease and reinstates normal hematopoiesis (complete remission, CR) in 60% to 80% of patients below the age of 60, CR rates in patients above the age of 60 are only 40% to 50%. Relapse and refractory disease are the major cause of death of AML patients, despite large efforts to improve risk-adjusted post-remission therapy with further chemotherapy cycles and, if possible, allogeneic bone marrow transplantation. Elderly patients are particularly difficult to treat because of age-related comorbidities and because their disease tends to relapse more often than the disease of younger patients. Thus, the cure rates of AML vary with age, with 5-year survival rates of about 50% in young patients, and less than 20% in patients above the age of 65 years. With the median age of AML patients being 68 years, the need for novel therapeutic options is immense. The recent approval of eight new agents (venetoclax, midostaurin, gilteritinib, glasdegib, ivosidenib, enasidenib, gemtuzumab ozogamicin and CPX-351 (liposomal cytarabine and daunorubicin)) has added considerably to the therapeutic armamentarium of AML and has increased cure rates in specific subgroups of AML. However, the high heterogeneity among patients, clonal evolution and commonly occurring drug resistance, which cause the high relapse rates, remain a substantial problem in the treatment of AML. Therefore, a better understanding of currently used therapeutics and further development of novel therapeutics is urgently needed.
In recent years, attention has increasingly focused on therapeutic strategies to interfere with the metabolic requirements of cancer cells. The last three decades have provided extensive insights into the diversity and flexibility of AML metabolism. AML cells use different sources of nutrients compared to normal hematopoietic progenitor cells and reprogram their metabolic pathways to fulfill their exquisite anabolic and energetic needs. As a result, they develop high metabolic plasticity that enables them to thrive in the bone marrow microenvironment, where oxygen and nutrient availability are subject to constant change.
Cancer cells, specifically AML cells, have a strong dependency for the amino acid glutamine. Glutamine serves in energy production, redox control, cell signaling as well as an important nitrogen source. The only enzyme capable of de novo glutamine synthesis is glutamine synthetase (GS). GS catalyzes glutamine production from glutamate and ammonium. In AML, the metabolic role and dependency of GS is poorly understood. Here, we investigated the effects of GS deletion on AML growth, and its functional relevance in AML metabolism. Genetic deletion of GS resulted in a significant decrease of cell growth in vitro, and impaired leukemia progression in vivo in a xenotransplantation mouse model. Interestingly, the dependency of AML cell growth on GS was shown to be independent of its functional role in glutamine synthesis. Glutamine starvation did not increase the dependency of the AML cells on GS, nor did increased glutamine availability rescue the GS-knockout-associated growth disadvantage. Instead, functional studies revealed the role of GS in the detoxification of ammonium. GS-deficient cells showed elevated ammonium secretion as well as a higher sensitivity towards the toxic metabolite. Exogenous provision of 15N-labeled ammonium was detoxified by GS-driven incorporation into glutamine. Studies on cells that had gained resistance to GS-knockout-mediated growth inhibition indicated enzymes involved in the urea cycle and the arginine biogenesis pathway to compensate for a loss of GS. Together, these findings unveiled GS as an important ammonium scavenger in AML.
Clinical studies on AML patients revealed increased ammonium concentrations in the blast-infiltrated bone marrow compared to peripheral blood. In line with this finding, proteome and transcriptome analysis of AML blasts showed a significant upregulation of GS in AML compared to healthy progenitors, further indicating its importance in ammonium detoxification.
Analyzing pathways that contribute to ammonium production revealed protein uptake followed by amino acid catabolism as a yet not identified mechanism supporting AML growth. Protein endocytosis and subsequent proteolytic degradation were shown to rescue AML cells from otherwise growth-inhibiting glucose or amino acid depletion. Furthermore, protein metabolization led to the reactivation of the mammalian target of rapamycin (mTOR) signaling pathway, which was deactivated upon leucine and glutamine depletion, revealing protein consumption as an important alternative source of amino acids in AML.
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Macroautophagy, herein referred to as autophagy, is an evolutionarily conserved homeostatic process that normally occurs inside eukaryotic cells which involves degradation of cytoplasmic substances via lysosomes. It can be induced by various conditions such as starvation and drug exposure, as well as be inhibited by numerous compounds. Under normal conditions, the doublemembrane autophagosomes engulf the cytosolic substrates and deliver them to lysosomes for digestion. These substrates include unnecessary or dysfunctional cell components, such as faulty macromolecules, organelles and even invading pathogens. Autophagosomes are formed through the co-operative work of various autophagy-related (ATG) proteins organized into complexes. Upon closure of the autophagosomes, they fuse with the acidic lysosomes, resulting in formation of autolysosomes and the delivery of lysosomal hydrolases to degrade the engulfed contents. The fusion of the autophagosome with lysosome is carried out by specific SNARE proteins, small GTPases and their effectors including tethers, adaptors and motor proteins. Autophagy is impaired in many human diseases including cancer, neurodegenerative diseases, aging and inflammation. Therefore, manipulation of autophagy pathway holds a great promise for new therapeutic applications ...
Identifizierung potenzieller Taspase1 Inhibitoren für die Behandlung von t(4,11) akuter Leukämie
(2022)
Leukämie ist die häufigste bösartige Krebserkrankung im Kindes- und Jugendalter. Bei einem Kind von 1120 Kindern wird Leukämie diagnostiziert, dabei trifft diese Diagnose Jungen 30 % häufiger als Mädchen. Die Krankheitssymptome treten bei den Kindern noch vor dem Schulalter auf und am häufigsten haben die Kinder mit der akuten Form zu kämpfen. Bei einer Diagnose mit einer akuten lymphatischen Leukämie (ALL) haben die Kinder meist eine gute Prognose, während bei der akuten myeloischen Leukämie (AML) eine deutlich schlechtere.1
Die t(4;11)(q21;q23) Translokation ist aufgrund ihres häufigen Auftretens und der damit schlechten verbundenen Prognose eines der bekanntesten strukturellen Chromosomen-anomalien bei akuten Leukämien. Diese Translokation wurde das erste Mal 1977 von Oshimura et al. beschrieben.2 Bei einer t(4;11)-Translokation ist das Chromosom 4 und das Chromosom 11 involviert. Auf Chromosom 4 ist das AF4-Gen lokalisiert (AFF1) und auf dem Chromosom 11 liegt das MLL-Gen (ALL-1, HRX, hTRX, KMT2A).
Taspase1 wurde als ein proteolytisch prozessierendes Enzym identifiziert, das sich in Wirbellosen und Vertebraten zusammen mit Mitgliedern der Trithorax/MLL/KMT2A-Protein¬familie koevolviert hat. Taspase1 prozessiert nicht nur das MLL und MLL2, deren Fusions¬proteine AF4-MLL, sondern auch den Transkriptionsfaktor IIA (TFIIA) sowohl in vitro als auch in vivo.3
Die Dimerisierung von Taspase1 löst eine intrinsische Serinproteasefunktion aus, die zum katalytischen Rest Thr234 führt, der die Konsensussequenz Q-3X-2D-1•G1X2D3D4 katalysiert, die in Mitgliedern der MLL-Familie sowie im Transkriptionsfaktor TFIIA vorhanden ist. Taspase1 ist kein klassisches Enzym, da es seine Zielproteine stöchiometrisch hydrolysiert. Diese Eigenschaft macht es nahezu unmöglich, in einem klassischen Screening-Setup nach potenziellen Inhibitoren zu screenen.
In dieser Arbeit wurde ein Homogeneous time-resolved fluorescence HTRF-Reporter-Assays etabliert. Das etablierte Testsystem ermöglicht erstmalig die Untersuchung von Substanzen zusammen mit Taspase1 Monomere, die in einem zellfreien System (cfs) hergestellt wurden. Durch die Expression non monomeren Taspase1 Proteinen sollten Inhibitoren durch das etablierte Screening-Verfahren gefunden werden, die sowohl (1) Dimerisierung, (2) Autoaktivierung oder (3) Substratbindung selektiv blockieren können. Die durchgeführten Experimente führten zur Identifikation eines ersten Taspase1-Inhibitors, Closantel sodium. Closantel sodium ist ein U.S. Food and Drug Administration (FDA) zugelassenes Medikament, das Taspase1 auf nicht-kovalente Weise bindet. Die erzielten Daten zeigen, dass Closantel sodium den Dimerisierungsschritt und/oder die intrinsische Serinproteasefunktion blockiert. Closantel sodium hemmte die Spaltung des eingesetzten CS2-Substratproteins mit einem IC50 zwischen 1,6 und 3,9 µM, je nachdem, welches Taspase1-Präparat in dem HTRF Screening Assay ver¬wendeten (cfs- oder E.coli-produziert). Die Daten weisen darauf hin, dass Closantel sodium als allosterischer Inhibitor gegen die Taspase1 fungiert. Taspase1 wird zur Aktivierung der AF4-MLL-Onkofusionsproteine benötigt und wird auch in mehreren soliden Tumoren überexprimiert. Daher könnte dieser neue Inhibitor für die weitere Validierung von Taspase1 als Ziel für die Krebstherapie und für das Design potenterer Liganden für zukünftige klinische Anwendungen nützlich sein.
Standard cancer therapy research targets tumor cells while not considering the damage on the tumor microenvironment (TME) and its associated implications in impairing therapy response. Employing patients-derived organoids (PDOs) and matched stroma cells or a novel murine preclinical rectal cancer model of local radiotherapy, it was demonstrated that tumor cells-derived IL-1α polarizes cancer-associated fibroblasts towards an inflammatory (iCAFs) phenotype. While numerous studies in different tumor entities highlighted the molecular heterogeneity of CAFs, so far there are no clear findings on their functional heterogeneity and relevance in therapy resistance and response. The present study molecularly characterized iCAFs subpopulation among RCA patients as well as the preclinical mouse model and importantly unraveled the detailed molecular mechanism underlying their contribution to impair therapy response. Mechanistically, iCAFs were demonstrated to be characterized by an upregulation of nitric oxide synthase (iNOS) which triggered accumulation of reactive nitrogen species (RNS) and subsequently an oxidative DNA damage response (DDR). Such a baseline IL-1α-driven DNA damage further sensitized iCAFs to a p53-mediated therapy induced senescence (TIS) causing extensive extracellular matrix (ECM) changes and induction of senescence associated secretory phenotype (SASP) that favored tumor progression and hindered tumor cell death. Moreover, iCAFs reversibility and repolarization into more quiescent like phenotype was demonstrated upon IL-1 signaling inhibition by anakinra, a recombinant IL-1 receptor antagonist (IL1RA). Accordingly, treating mice with anakinra or specific deletion of Il1r1 in CAFs sensitized stroma-rich resistant tumors to chemoradiotherapy (CRT). Similarly, targeting CAFs senescence by senotherapy (venetoclax chemical) or employing Trp53 deficient mice reverted therapy resistance among non-responsive tumors in vivo by reducing ECM deposition and consequently favoring CD8+ T cells intratumoral infiltration posttherapy. Importantly, rectal cancer patients that do not completely respond to neoadjuvant therapy displayed an iCAFs senescence program post-CRT. Moreover, these patients presented a baseline increased CAFs content, a dominant iCAFs signature that correlated with poorer disease-free survival (DFS) and a significantly reduced circulating IL1RA serum levels. While reduced pretherapeutic IL1RN gene expression predicted poor prognosis among RCA patients, IL1RA serum levels were associated with rs4251961 (T/C) single nucleotide polymorphism (SNP) in the IL1RN gene. Finally, functional validation assays revealed that conditioned media of PDOs drove inflammatory polarization of fibroblasts and consequently rendered them sensitive to RNS-mediated DNA damage and TIS. Collectively, the study highlighted a crucial and novel role of a CAFs subset, iCAFs, in therapy resistance among RCA patients, shedding light on their functional relevance by identifying IL-1 signaling as an appealing target for their repolarization and successful targeting. Therefore, it makes sense to combine the newly demonstrated and thoroughly proven therapeutic approach of targeting IL-1 signaling in combination with conventional CRT and possibly immunotherapy. This might have a major impact on RCA therapy and be of immense relevance for other stroma-rich tumors.
This work investigated the influence of the CRISPR/Cas9 mediated knockout of 5-lipoxygenase (5-LO) on different adherent tumour cell lines derived from solid tumours. For this, the 5-LO expressing tumour cell lines HCT-116, HT-29, and U-2 OS were transiently transfected using a plasmid carrying the CRISPR/Cas9 complex sequence to the ALOX5 gene. Subsequently, cells were selected using Puromycin and analysed via Western blotting and DNA Sanger sequencing. Cells that were transfected with a control plasmid missing the guide RNA sequence, were used as a control for all experiments.
Differential gene expression analysis, performed after next-generation RNA sequencing, revealed that the expression of various genes was altered after the knockout of 5-LO. In HCT-116 cells, 28 genes were expressed differentially in all 5-LO knockout single-cell clones, while in HT-29 cells the expression of 18 genes and in U-2 OS cells of 234 genes was influenced by the knockout of 5-LO. These findings were validated by real-time qPCR. A lot of the genes that were influenced by the 5-LO knockout are known to be connected to epithelial-mesenchymal-transition (EMT), a process necessary for tumour metastasis. The results from RNA sequencing were the starting point for further investigations. In the following, different aspects of the tumour cell lines were examined. In HT-29, as
well as in U-2 OS cells, it was shown that knockout of the 5-LO resulted in impaired cell proliferation. Also, the formation of three-dimensional tumour spheroids was altered. In HT-29 cells, the knockout of 5-LO increased the number of cells in spheroids. In contrast, in U-2 OS cells, the number of cells per spheroid was decreased, even though the diameter of the spheroids was increased, due to more loosely packed spheroids. The difference between 5-LO positive and negative U-2 OS cells became even more obvious after embedding the spheroids in an artificial extracellular matrix. In that scenario, cells lacking the 5-LO formed smaller spheroids that did not have the same ability to grow into the extracellular matrix as 5-LO positive cells did. Also, directed cell migration was strongly influenced by the knockout of 5-LO. In both, HCT-116 and U-2 OS cells, directed cell migration towards a serum gradient was increased in 5-LO knockout single-cell clones. Pharmacological inhibition of the enzyme was used to investigate, whether canonical or non-canonical functions were responsible for the previously mentioned effects.
Therefore, vector control cells were treated with the 5-LO inhibitors Zileuton and CJ-13610 in different concentrations. Interestingly, only some of the effects mediated by the complete knockout of 5-LO could be reproduced by inhibiting the enzyme, leading to the suggestion, that canonical, as well as non-canonical functions of 5-LO, play a role in these tumour cells.
To conclude, it was shown in this study, that 5-LO affects various cellular functions when expressed in adherent tumour cell lines. These cell line-dependent effects result in altered gene expression, enhanced proliferation, and spheroid formation, as well as impaired cell motility, and can be mediated by enzymatic activity as well as other non-canonical functions.
Mechanism of the MHC I chaperone TAPBPR and its role in promoting UGGT1-mediated quality control
(2022)
Information about the health status of most nucleated cells is provided through peptides presented on major histocompatibility complex I (pMHC I) on the cell surface. T cell receptors of CD8+ T cells constantly monitor these complexes and allow the immune system to detect and eliminate infected or cancerous cells. Antigenic peptides displayed on MHC I are typically derived from the cellular proteome and are translocated into the lumen of the endoplasmic reticulum (ER) by the ATP-binding cassette (ABC) transporter associated with antigen processing (TAP), which is part of the peptide-loading complex (PLC). In a process called peptide editing, the MHC I-dedicated chaperone tapasin (Tsn) selects peptides for their ability to form stable complexes with MHC I. While initial peptide loading is catalyzed in the confines of the PLC, the second quality control is mediated by TAPBPR, operating in the peptide-depleted cis-Golgi network. TAPBPR was shown to have a more fine-tuning effect on the presented peptide repertoire rather than initial peptide selection. The fundamental mechanism of peptide editing was illuminated by two crystal structures of TAPBPR in complex with peptide-receptive MHC I. Notably, one of these structures reported a structural element that inserted into the peptidebinding pocket. The so-called scoop loop was assumed to be involved in mediating peptide exchange but the underlying mechanism remained undefined. Additionally, latest results suggested that TAPBPR mediates the interaction of the glucosyltransferase UGGT1 with peptide-receptive MHC. To expand the current knowledge of quality control processes in the antigen presentation pathway, the contribution of the scoop loop in peptide editing and the role of TAPBPR in UGGT1-mediated quality control needs to be elucidated. In the first part of this study, TAPBPR proteins with various loop lengths were designed to scrutinize the contribution of the scoop loop in chaperoning peptidereceptive MHC I. In a light-driven approach, the ability of TAPBPR variants to form stable complexes with peptide-free MHC I was tested. These results demonstrated that in a peptide-depleted environment, the scoop loop is of critical importance for TAPBPR to chaperone intrinsically unstable, peptidereceptive MHC I clients. Moreover, fluorescence polarization-based assays allowed the pursuit of peptide exchange in different, native-like environments. Peptide displacement activities of TAPBPR variants illustrated that catalyzed peptide editing is primarily induced by structural elements outside the scoop loop. In a peptide-depleted environment, the scoop loop occupies the position of the peptide C-terminus and acts as an internal peptide surrogate. By combining complex formation and fluorescence polarization experiments, the scoop loop of TAPBPR was shown to be critically important in stabilizing empty MHC I and functions as an internal peptide selector. In the second part of this study, a novel in-vitro glucosylation assay was established to examine the role of TAPBPR in UGGT1-catalyzed re-glucosylation of TAPBPR-bound MHC I clients. Therefore, a peptide-free MHC I-TAPBPR complex with defined glycan species was designed which served as physiological substrate for UGGT1. By subjecting the recombinantly expressed HLA-A*68:02- TAPBPR complex and UGGT1 proteins to the new in-vitro system, UGGT1 was shown to catalyze the transfer of a glucose residue to the N-linked glycan of TAPBPR-bound Man9GlcNAc2-HLA-A*68:02. Moreover, a high-affinity, photocleavable peptide was applied to dissociate the MHC I-chaperone complex. However, in the absence of TAPBPR, no glucosyltransferase activity was observed. Generation of peptide-free MHC I through UV illumination also showed no activity, and only the addition of TAPBPR could restore UGGT1-mediated reglucosylation of the empty MHC I. Independent of the peptide status of HLAA*68:02, the combination of protein glycoengineering and LC-MS analysis implicated that UGGT1 exclusively acts on TAPBPR-chaperoned HLA-A*68:02. The newly established system provided insights into the function of TAPBPR during UGGT1-catalyzed re-glucosylation activity and quality control of MHC I. Taken together, the scoop loop allows TAPBPR to function as MHC I chaperone through stabilizing peptide-receptive MHC I. In a peptide-depleted environment, the loop structure serves as an internal peptide surrogate and can only be dislodged by a high-affinity peptide. Based on these findings, TAPBPR fulfills a dual function in the second level of quality control. On the one hand, TAPBPR functions as peptide editor, shaping the repertoire of presented peptides. On the other hand, TAPBPR mediates peptide-receptive MHC I clients to the folding sensor UGGT1. Here, TAPBPR is essential to promote UGGT1-catalyzed reglucosylation of the N-linked glycan, giving MHC I a second chance to be loaded with an optimal peptide cargo in the peptide loading complex.
Mechanistic and structural insights into the quality control of the MHC I antigen processing pathway
(2022)
The human body is permanently exposed to its environment and thus to viruses and other pathogens, which require a flexible response and defense. Alongside to the innate immune system, the adaptive immune system provides highly specialized protection against these threats. The major histocompatibility complex class I (MHC I) antigen presentation system is a cornerstone of the adaptive immune system and a major constituent of cellular immunity. Pathogens such as viruses that invade a cell will leave traces in the form of proteins and peptides which are degraded and loaded onto MHC I molecules. MHC I peptide loading is performed by peptide loading complex (PLC) in the membrane of the endoplasmic reticulum as part of a multifaceted and comprehensive quality control machinery. Monitored by multiple layers of quality assurance, the MHC I molecules consequently display the immune status of the cell on its surface. In this context, the captured fragment of the virus serves as a call for help issued by the cell, alerting the adaptive immune system to the infection to mount an appropriate immune response.
The three-dimensional structure as well as the mechanistic details of parts of this complex machinery were characterized in the context of this dissertation. Among other tools, light-modulable nanotools were developed in this thesis, which permit external regulation of cellular processes in temporal and spatial resolution. Furthermore, methods and model systems for the biochemical characterization of cellular signaling cascades, proteins, as well as entire cell organelles were developed, which are likely to influence the field of cellular immunity and protein biochemistry in the future.
This cumulative work comprises a total of six publications whose scientific key advances will be briefly outlined in this abstract. In the introduction, the scientific background as well as the current state of research and methodological background knowledge are conveyed. The results section condenses the main aspects of the publications and links them to each other. Further details can be retrieved from the attached original publications.
In “Semisynthetic viral inhibitor for light control of the MHC I peptide loading complex, Winter, Domnick et al., Angew Chem Int Ed 2022” a photocleavable viral inhibitor of the peptide loading complex was produced by semi-synthesis. This nanotool was shown to be suitable for both purifying the PLC from human Raji cells as well as reactivating it in a light-controlled manner. Thus, this tool establishes the isolation of a fully intact and functional peptide loading complex for biochemical characterization. In addition, a novel flow cytometric analysis pipeline for microsomes was developed, allowing cellular vesicles to be characterized with single organelle resolution, similar to cells.
In “Molecular basis of MHC I quality control in the peptide loading complex, Domnick, Winter et al., Nat Commun 2022” the peptide loading complex was reconstituted into large nanodiscs, and a cryo-EM structural model of the editing module at 3.7 Å resolution was generated. By combining the structural model with in vitro glycan editing assays, an allosteric coupling between peptide-MHC I assembly and glycan processing was revealed, extending the known model of MHC I loading and dissociation from the PLC. These mechanisms provide a prototypical example for endoplasmic reticulum quality control.
In a related context, in “Structure of an MHC I–tapasin–ERp57 editing complex defines chaperone promiscuity, Müller, Winter et al., Nat Commun 2022” a recombinantly assembled editing module comprised of MHC I-tapasin-ERp57 was crystallized for X-ray structural biology. The resulting crystal structure at a resolution of 2.7 Å permitted the precise identification of characteristic features of the editing module and particularly of the peptide proofreading mechanism of tapasin. This study provided pivotal insights into the tapasin-mediated peptide editing of different MHC I allomorphs as well as similarities to TAPBPR-based MHC I peptide proofreading.
In “TAPBPR is necessary and sufficient for UGGT1-mediated quality control of MHC I, Sagert, Winter et al. (in preparation)” novel insights concerning the peptide proofreader TAPBPR and its close interplay with the folding sensor and glucosyltransferase UGGT1 were obtained. It was shown that TAPBPR is an integral part of the second level of endoplasmic quality control and is indispensable for effective MHC I coordination by UGGT1.
In “Light-guided intrabodies for on-demand in situ target recognition in human cells, Joest, Winter et al., Chem Sci 2021” intracellular nanobodies were equipped with a photocaged target recognition domain by genetic code expansion via amber suppression. These intrabodies, acting as high-affinity binding partners endowed with a fluorophore, could be used in a light-triggered approach to instantaneously visualize their target molecule...
The peptide loading complex (PLC) is a central machinery in adaptive immunity ensuring antigen presentation by major histocompatibility complex class I (MHC I) molecules to immune cells. If nucleated cells present foreign antigenic peptides from various origins (e.g., viral infected or cancer cells) on their cell surface they are targeted and eliminated by effector cells of the immune system to protect the organism against the hazard. The antigen presentation process starts with proteasomal degradation. Peptide loading and quality control of most, if not all, MHC I is performed by the PLC. Despite the main components, architecture, and general functions of this labile and multi-subunit assembly have been described, knowledge about the inner mechanics of MHC I loading and quality control in the PLC is limited. Detailed structural insights into the interactions and functions of key elements are lacking. In this PhD thesis, structural and functional aspects of the PLC in peptide loading and quality control of MHC I are unraveled, and the PLC was analyzed from an evolutionary perspective.
First, composition and architecture of native PLC isolated from different mammalian species was analyzed. Comparison of detergent-solubilized PLC from cow and sheep spleens with PLC isolated from human source showed a compositional conservation in mammals, with the central components TAP, ERp57, tapasin, calreticulin, and the MHC I heterodimer were conserved in these species. Negative-stain electron microscopy (EM) analyses revealed an identical overall architecture of PLCs from human, sheep, and cow with two major densities at opposing sides of the plane of the detergent micelle corresponding to endoplasmic reticulum (ER) luminal and cytosolic domains. Interestingly, the glucose-regulated protein 78 (GRP78) was associated only with the PLC from sheep and cow as revealed by mass spectrometry. This ER chaperone is involved in initial folding steps of MHC I but was not co-purified with human PLC, rendering it an interesting target for future functional and in-depth structural studies.
The human PLC was stabilized by reconstitution in membrane mimicking systems that replace the detergent, which is necessary to solubilize the complex. This stabilization allowed detailed structural analysis by single-particle cryogenic electron microscopy (cryo-EM). The structure of the MHC I editing module in the PLC, composed of tapasin, ERp57, calreticulin, MHC I, and β-2-microglobulin (β2m), was solved at an overall resolution of 3.7 Å. Within the structure, two important features were visualized: (i) the editing loop of tapasin, which is directly involved in peptide proofreading of MHC I; (ii) the A-branch of the Asn86 tethered N-linked glycan on MHC I. Both features are crucial elements in the quality control and peptide editing process on MHC I. The editing loop interacts with the peptide binding groove in MHC I. It disturbs the interaction between a cargo peptide C terminus and the F-pocket in the binding groove by displacing Tyr84 and the helices α1 and α2. The helix displacement widens the F-pocket which allows a faster peptide exchange on MHC I. The glycan is bound in its monoglucosylated form (Glc1Man9GlcNAc2) by the lectin domain of calreticulin. The A-branch of this glycan is stretched between MHC I Asn86 and the lectin domain, leading to the hypothesis that the glycan will be released from calreticulin once MHC I is loaded with a favored peptide (pMHC I).
For investigation of the glycan status of MHC I, intact protein liquid chromatography coupled mass spectrometry (LC-MS) was performed under denaturating conditions. An allosteric coupling between peptide loading and removal of the terminal glucose by α-Glucosidase II (GluII) was discovered. In addition, the PLC remained fully intact after peptide loading, which demonstrated GluII action on the PLC once MHC I is loaded.
With establishing GluII as transient interaction partner, this work deepens the knowledge of the molecular sociology of the PLC and how the PLC is involved in the endoplasmic reticulum quality control (ERQC). Further investigation of the ER aminopeptidases ERAP1 and ERAP2 showed that these enzymes neither alone nor together stably interact with the PLC. In contrast, both work independent from the PLC on free peptides in the ER.
LC-MS analysis of the PLC components revealed a very unusual glycosylation pattern of tapasin. Tapasin was observed with N-linked glycans ranging from the full glycan (Man9GlcNAc2) to heavily trimmed glycans, where only a single GlcNAc remained attached to Asn233. In the PLC, tapasin is probably shielded from degradation by ERQC and can remain functional and intact without a full N-linked glycan.
Protein biosynthesis is a fundamental process across all domains of life. Polypeptides are produced by translating the genetic information of the messenger RNA (mRNA) into amino acids. This elaborate procedure is divided into the four distinct phases: initiation, elongation, termination, and ribosome recycling. The phases are controlled and regulated by a multitude of translation factors. During initiation, the ribosome assembles on the mRNA. Initiation factors (IFs) bind to the small ribosomal subunit (SSU) and assist the recruitment of mRNA and initiator transfer RNA (tRNA), which delivers the first amino acid methionine. After positioning the SSU at the start codon of the mRNA, additional IFs support the joining of the large ribosomal subunit (LSU). Next, elongation factors (EFs) deliver amino-acylated tRNAs (aa-tRNAs) to the translating ribosome and assist kinetic proofreading and ribosome subunit translocation after the catalytic transfer of the polypeptide onto the aa-tRNA. When a stop codon is reached, translation is terminated by release factors (RFs) that hydrolyze the peptidyl-tRNA to release the nascent protein chain. Afterwards, the ribosome is recycled in Eukaryotes and Archaea by the conserved and essential factor ABCE1, which splits the ribosome into the LSU and SSU. ABCE1 remains bound to the SSU forming the post-splitting complex (post-SC). mRNA translation closes into a cycle by recruitment of IFs to the post-SC and the start of a new round of initiation. The post-SC presents the platform for translation initiation. However, the role of ABCE1 in initiation remains elusive. Therefore, the main goal of my thesis was to unravel the molecular mechanism of ABCE1 on the post-SC and during initiation complex (IC) assembly.
Using a reconstituted system, the high-resolution structure of the archaeal post-SC was solved by cryogenic electron microscopy (cryo-EM) following the native splitting route. It was the first complete model of an archaeal SSU at atomic resolution and revealed a previously undescribed ribosomal protein, which we termed eS21. The hinge 2 region of ABCE1 was identified to be the major interaction interface that anchors to the SSU. Functional characterization of single residue mutations in hinge 2 unraveled essential interactions with the ribosomal RNA backbone of the SSU. Sensing of SSU-binding was found to be allosterically transmitted to the nucleotide-binding sites (NBSs) for integration into the ATPase cycle of ABCE1.
Reconstitution of the archaeal translation apparatus allowed for dissection of IC assembly in the presence of ABCE1. Three different ICs were resolved by cryo-EM. The results were in accordance with recent structural findings of eukaryotic translation initiation and highlighted that the involvement of ABCE1 is conserved.
In a semi-native approach, recombinant ABCE1 was pulled-down from crenarchaeal cell lysates. Mass spectrometric analysis of co-immunoprecipitated ribosomal complexes identified the association of numerous translation factors to the post-SC in a cellular context. The establishment of the genetic toolbox of the acidothermophilic Sulfolobus acidocaldarius allowed the homologous expression of ABCE1. Pull-down of native ABCE1 revealed similar ribosomal complexes as the semi-native and reconstituted approaches. Together, my results gave first physiological relevance of ABCE1 involvement in mRNA translation initiation in Archaea. Native archaeal ABCE1-ICs were vitrified for structural analysis by cryo-EM. Thereby, future structural analysis will allow to analyze the interactions of ABCE1 on native ICs and identify its role in IC assembly.
To address the molecular process of IC assembly, the binding affinity of aIF1 to the SSU was determined by fluorescence polarization. Similar studies will allow for a detailed functional analysis on IF recruitment to the SSU in presence of ABCE1.
mRNA surveillance and ribosome-associated quality control (RQC) mechanisms evolved to ensure cell viability. The pathways overcome ribosome stalling and defective translation components. Stalled ribosomes are terminated by special RFs, which do not hydrolyze the peptidyl-tRNA, but allow dissociation of the ribosome by ABCE1. Faulty messages are degraded via mRNA decay pathways and the LSU is rescued by RQC factors. Recently, the bacterial RQC factor MutS2 was identified to specifically target collided di- and polysomes but its molecular mechanism remains unknown. In this thesis, initial functional analyses showed tri-phosphate specific nucleotide binding of MutS2. While the dissociation of collided disomes by MutS2 could not be observed, the results pave the way for future in vitro studies of bacterial RQC factors acting on specific ribosome populations.
In the future, mRNA translation research must focus on complex quality control processes to comprehensively understand this fundamental cellular process in a holistic context.