Biologische Hochschulschriften (Goethe-Universität)
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This cumulative thesis discusses the development of optimized force field parameters for Magnesium and resulting improved simulations of Magnesium-RNA interactions, including the in silico exploration of binding sites. This thesis is based on four publications as well as unpublished data. A fifth publication that was written during the time of the Ph.D. is discussed in the Appendix. This publication analyzes monovalent ion-specific effects at mica surfaces.
Nucleic acids in general and RNA in particular are fundamental to life itself. Especially in the folding and function of RNA, metal cations are crucial to screen the negatively charged nucleic acid backbones to allow for complex functional structures. They stabilize the tertiary structure of RNA and even drive its folding. Furthermore, similarly to proteins, RNAs can catalyze multiple reactions, rather than consisting of the 20 amino acids of a protein, RNA constitues of only four different building blocks. Metal cations play an important role here as additional cofactors. One essential ion is Magnesium (Mg2+), commonly referred to as the most important cofactor for nucleic acids. Mg2+ carries two positive charges. Its comparably small size and high charge result in a high charge density that has strong polarizing effects on its surroundings. Furthermore, Mg2+ forms a sharply defined first hydration shell with an integer number of coordinating water molecules. As a result, an exclusion zone exists around the ion within which no water molecules are observed. Moreover, Mg2+ displays a high solvation free energy and a low exchange rate of waters from its first hydration shell. Finally, it contains a strong preference towards oxygens . Together, this makes Mg2+ a particularly well suited interaction partner for the charged non-bridging phosphate oxygens on nucleic acid backbones and explains its crucial biological role.
The immense number of physiological and technological functions and applications indicates the significant scientific attention Mg2+ received. In experimental studies, however, severe difficulties arise for multiple reasons: Mg2+ is spectroscopically silent and cannot be detected directly by resonance techniques like NMR or EPR. Indirect observation is possible, either by detecting changes in the overall RNA structure with and without bound Mg2+, or by replacing the Mg2+ ion with another spectroscopically visible ion. In the latter, however, it cannot be guaranteed that the altered ion does not also alter the interaction site or even the whole structure. Another detection method is X-ray crystallography, but here challenges arise from Mg2+ being almost indistinguish- able from other ions as well as from water if not for very high resolutions and precise stereochemical considerations.
Alternatively, molecular dynamics (MD) simulations can be performed, with the power of adding atomistic insight to the interplay of metal cations and nucleic acids. MD simulations, however, are only as accurate as their underlying interaction models and the development of accurate models for the description of Mg2+ faces challenges especially in describing three properties:
(i) Polarizability. Commonly used simple models like the 12-6 type Lennard-Jones model typically fail to reproduce simultaneously thermodynamic and structural properties of a single ion in water. Alternative strategies include the use of a 12-6-4 type Lennard-Jones potential as proposed by Li and Merz, where the additional r−4 term explicitly accounts for polarization effects. The resulting Lennard-Jones potential is thereby more attractive and more long-ranged than for typical models of the 12-6 type.
(ii) Kinetics. Most Mg2+ models either fully ignore considerations about the timescales on which water exchanges from the first hydration shell of the ion or use inappropriate methodology to calculate the underlying kinetics. A realistic characterization of the involved timescales is imperative to be able to describe a seemingly simple process like the transition from inner-to-outer sphere binding and vice versa. This transition governs most biochemical reactions involving Mg2+ and therefore subsequent processes can only by as fast as the transition itself. However, already the previous step – the exchange of a water from the first hydration shell of the ion – is described my current Mg2+ models up to four orders of magnitude too slowly, which makes the observation of such events on the timescale of a typical simulation difficult or even impossible. Alln ́er et al. [48] as well as Lemkul and MacKerell explicitly considered the exchange rate into their parameter optimization procedure. To compute the rate, both studies applied Transition State Theory along a single reaction coordinate – the distance towards one of the exchanging waters. However, it could be shown that the water exchange from the first hydration shell requires at least the consideration of both exchanging water molecules in order to be able to realistically record the underlying rate using Transition State Theory. Furthermore, the model of Alln ́er et al. significantly underestimates the free energy of solvation of the ion.
(iii) Interactions between Mg2+ and nucleic acids. Typically, ionic force field parame- terization concentrates on the optimization of solution properties. The trans- ferability of these solution optimized parameters towards interactions with biomolecules, however, often fails.
Riboswitches are an important class of regulatory RNA elements that respond to cellular metabolite concentrations to regulate gene expression in a highly selective manner. 2’-deoxyguanosine-sensing (2’dG) riboswitches represent a unique riboswitch subclass only found in the bacterium Mesoplasma florum and are closely related to adenine- and guanine-sensing riboswitches. The I-A type 2’dG-sensing riboswitch represses the expression of ribonucleotide reductase genes at high cellular concentrations of 2’dG as a result of premature transcription termination.
Increasing evidence within the last decade suggests that transcriptional regulation by riboswitches is controlled kinetically and emphasizes the importance of co-transcriptional folding.2–4 Addition of single nucleotides to nascent transcripts causes a continuous shift in structural equilibrium, where refolding rates are competing with the rate of transcription.5,6
For transcriptional riboswitches, both ligand binding and structural rearrangements within the expression platform are precisely coordinated in time with the rate of transcription. The current thesis investigates the mechanistic details of transcriptional riboswitch regulation using the I-A 2’dG-sensing riboswitch as an example for a riboswitch that acts under kinetic control.
Proteinen die ExHepatitis C ist eine entzündliche Erkrankung der Leber, die durch das Hepatitis-C-Virus (HCV) verursacht wird. Trotz vieler Bemühungen ist heutzutage immer noch keine prophylaktische Vakzinierung verfügbar. Neuartige Therapien versprechen eine hohe Heilungsrate, sind aber mit hohen Kosten verbunden. HCV induziert oxidativen Stress, welcher für das Auftreten und die Progression der Pathogenese eine zentrale Rolle spielt. Um zellulären Stress (z.B. durch ROS) entgegenzuwirken, haben Zellen cytoprotective und detoxifizierende Mechanismen entwickelt, die die zelluläre Homöostase aufrechterhalten. Dabei kontrolliert der redoxsensitive Transkriptionsfaktor Nrf2 als Heterodimer zusammen mit sMaf- pression von cytoprotective und ROS-detoxifizierenden Genen. Vorherige Studien haben gezeigt, dass HCV den Nrf2/ARE-Signalweg beeinträchtigt. Dabei induziert HCV eine Translokation der sMaf-Proteine aus dem Zellkern in das Cytoplasma, wo diese das virale Protein NS3 binden. Im Cytoplasma lokalisierte sMaf-Proteine verhindern dadurch eine Translokation von Nrf2 in den Zellkern. Folglich ist die Expression von Nrf2/ARE-abhängigen cytoprotective Genen inhibiert und intrazelluläre ROS-Spiegel dauerhaft erhöht. Ein weiterer zentraler cytoprotective Mechanismus ist die Autophagie. Sie dient der Aufrechterhaltung der zellulären Homöostase durch den Abbau von defekten Proteinen und Organellen. Des Weiteren ist bekannt, dass Autophagie nicht nur im Laufe von Nährstoffmangel induziert wird, sondern auch durch erhöhte Mengen an ROS. In sämtlichen Studien konnte beobachtet werden, dass Autophagie für die Aufrechterhaltung des viralen Lebenszyklus eine wesentliche Rolle spielt, da sie mit der Ausbildung des membranous web, der Translation, der Replikation und der Freisetzung des Virus interferiert. Ausgehend davon sollte in dieser Arbeit zunächst die Relevanz von HCV-induziertem oxidativen Stress, resultierend aus der Nrf2/ARE-Signalweginhibition, als möglicher Aktivator der Autophagie untersucht werden. Dabei wurde in HCV-positiven Zellen eine Akkumulation von LC3-II beobachtet, was auf eine Induktion der Autophagie schließen lässt. In Übereinstimmung damit wurde eine erhöhte Expression von Autophagie-Markerproteinen in HCV-infizierten PHHs detektiert. Im Laufe der Autophagie wird p62 abgebaut. Somit sollte eine Induktion der Autophagie in einer Verminderung der Menge an p62 resultieren. Nichtsdestotrotz ist eine Akkumulation von p62 in HCV-positiven Zellen nachzuweisen. Dies erscheint zunächst widersprüchlich. Aufgrund der Tatsache, dass die Expression der katalytischen Untereinheit des Proteasoms (PSMB5) Nrf2-abhängig ist, führt die beeinträchtigte Nrf2-Aktivität in HCV-positiven Zellen jedoch zu einer verringerten Aktivität des konstitutiven Proteasoms. Dieser Befund kann auch die erhöhte Halbwertzeit von p62 in HCV-positiven Zellen erklären. Kürzlich wurde ein Zusammenspiel des Nrf2/ARE-Signalwegs und der Autophagie beobachtet. Dabei kann Nrf2 nicht nur über den kanonischen Signalweg aktiviert werden, sondern auch durch eine direkte Interaktion des phosphorylierten Autophagie-Adaptorproteins p62 (pS[349] p62) mit Keap1. In HCV-positiven Zellen können nicht nur eine Zunahme der Gesamtmenge von p62 beobachtet werden, sondern auch erhöhte Mengen an pS[349] p62. Die Berechnung des Quotienten aus pS[349] p62 und p62 zeigt in etwa eine Verdopplung der Menge an pS[349] p62 , was auf eine vermehrte Phosphorylierung von p62 in HCV-positiven Zellen rückschließen lässt. Des Weiteren konnte beobachtet werden, dass erhöhte Mengen an ROS, wie sie auch in HCV-positiven Zellen vorkommen, Autophagie induzieren können, die durch eine Akkumulation von LC3-II und die Zunahme von LC3 Puncta charakterisiert ist. Auch eine Zunahme von pS[349] p62 konnte beobachtet werden. Ferner resultierte die Überexpression der phosphomimetischen Mutante (p62 [S351E]) in einer Akkumulation von LC3-II, was auf die Fähigkeit von pS[349] p62 rückschließen lässt, Autophagie zu induzieren. Eine Modulation der Autophagie mittels der Inhibitoren 3-Methyladenin und Bafilomycin führte zu einer inhibierten Freisetzung von infektiösen viralen Partikeln und unterstreicht damit, dass der Autophagie eine essentielle Bedeutung bei der Freisetzung viraler Partikel zukommt. Eine HCV-Infektion wird sowohl von erhöhten Mengen an ROS als auch von einer Induktion der Autophagie begleitet. Dementsprechend führte eine Verminderung des intrazellulären Radikalspiegels durch eine Inkubation mit den Radikalfängern PDTC und NAC zu geringeren Mengen an LC3-II und pS[349] p62. Dabei konnte auch eine Abnahme der freigesetzten infektiösen viralen Partikel beobachtet werden, was ein Zusammenspiel zwischen erhöhten Mengen an ROS, Induktion der Autophagie und Virusfreisetzung nahelegt. Vorschlag: Erhöhte Mengen an ROS werden durch eine Aktivierung des Nrf2/ARE-Signalwegs detoxifiziert und würden somit den zuvor beschriebenen viralen Mechanismus verhindern. HCV die Aktivierung Nrf2/ARE-regulierter Gene beeinträchtigt, wurde die Hypothese aufgestellt, dass in HCV-positiven Zellen dieser komplexe Mechanismus dazu dient, die Translokation des pS[349] p62-abhängig freigesetzte Nrf2 in den Zellkern zu verhindern. Das wiederum hat eine eingeschränkte Expression von Nrf2/ARE-abhängigen Genen und Detoxifizierung von ROS zur Folge. Um diese Hypothese experimentell zu untersuchen, wurden HCV-positive und negative Zellen cotransfiziert mit dem p62 Wildtyp (p62 [wt]), der p62 phosphomimetischen Mutante (p62 [S351E]) oder einem Kontrollplasmid in Kombination mit einem Reporterkonstrukt, welches die Nrf2-Aktivierung darstellt (OKD48). Während in HCV-negativen Zellen im Vergleich zum p62 [wt] eine Transfektion mit p62 [S351E] zu einer signifikanten Aktivierung des Nrf2-abhängigen Reportergens führt konnte dies in HCV-positiven Zellen nicht beobachtet werden. Zusammengenommen beschreiben diese Ergebnisse einen neuartigen Mechanismus wie HCV das Zusammenspiel zwischen dem Nrf2/ARE-Signalweg, erhöhten Mengen an ROS und Autophagie beeinflusst. Dabei übt HCV einen negativen Effekt auf den Nrf2/ARE-Signalweg aus, um dem pS[349] p62-abhängig freigesetzten Nrf2 zu entkommen. Folglich werden erhöhte Mengen an ROS aufrechterhalten, die eine Induktion der Autophagie ermöglichen, welche für die Freisetzung viraler Partikel essentiell ist.
Rhabdomyosarcoma is the most common paediatric soft-tissue sarcoma, and for tumour recurrence, the prognosis is still unfavourable. The current standard therapy consisting of surgery, radiation and combined chemotherapy does not consider the specific biology of this tumour.
Histone deacetylases (HDACs) and the Lysine-specific demethylase-1 (LSD1) are two epigenetic modifiers which are both part of repressor complexes leading to transcriptional silencing of target genes. Whereas HDACs lead to deacetylation of several lysine-residues within the histone tail, LSD1 is specific for demethylation of H3K4me2 and H3K4me1, as well as in a different context for H3K9me2. Rhabdomyosarcoma is reported to harbour high levels of LSD1, but the functional relevance is yet unclear. HDAC inhibition proved to be effective as single agent treatment, however, the proximity of HDAC1/2 and LSD1 in repressor complexes at the DNA implies a suitable rationale for a combination therapy potentially leading to cooperative effects on target gene transcription. In this study, we aimed to evaluate the potential of a combined LSD1 and HDAC inhibition for cell death induction in rhabdomyosarcoma cell lines. Whereas LSD1 inhibitors failed to induce cell death on their own, the combined inhibition of HDACs and LSD1 resulted in highly synergistic cell death induction. This effect extended to several combinations of LSD1 and HDAC inhibitors as well as to four different rhabdomyosarcoma cell lines, two of embryonal and two of alveolar histology.
With the use of the HDAC inhibitor JNJ-26481585 and the reversible LSD1 inhibitor GSK690, we demonstrated that the cell death induced by the combination matches with the details of intrinsic mitochondrial apoptosis. JNJ-26481585/GSK690-induced cell death is partially caspase-dependent and leads to caspase cleavage, followed by substrate cleavage as shown for PARP, as well as loss of the mitochondrial membrane potential.
Furthermore, JNJ-26481585 and GSK690 acted together to transcriptionally upregulate the proapoptotic proteins NOXA, BIM and BMF, which resulted in respective changes on protein level for both cell lines. However, the antiapoptotic BCL-2 family proteins BCL-2, MCL-1 and BCL-xL displayed only minor changes in protein levels upon treatment with GSK690 and JNJ-26481585, which did not rely on transcriptional activity. Therefore, the increase in proapoptotic proteins induces a shift towards proapoptotic signalling at the mitochondrial membrane. This shift is functionally relevant since knockdown of a proapoptotic protein or overexpression of one of the antiapoptotic proteins BCL-2 and MCL-1, as well as a stabilized mutant MCL-1, can significantly protect from GSK690/JNJ-26481585-induced cell death.
Knockdown of the mitochondrial membrane protein BAK, which is directly guarding the mitochondrial membrane integrity, potently protected from GSK690/JNJ-26481585- induced cell death, directly linking the shift in the BCL-2 family proteins to the observed loss of mitochondrial membrane potential and the further downstream activation of caspases. Furthermore, treatment with JNJ-26481585 and GSK690 resulted in a cell cycle arrest in G2/M phase, indicating additional effects on the tumour cells beside apoptosis induction. Taken together, the combined inhibition of LSD1 and HDACs is a promising strategy for rhabdomyosarcoma treatment.
Pulsed electron-electron double resonance (PELDOR), also called Double Electron-Electron Resonance, (DEER) is a pulsed EPR technique that can provide structural information of biomolecules, such as proteins or nucleic acids, complementary to other structure determination methods by measuring long distances (from 1.5 up to 10 nm) between two paramagnetic labels. Incorporation of the rigid Ç-label pairwise into DNA or RNA molecules enables the determination not only of the distance but also of the mutual orientation between the two Ç-labels by multi-frequency orientation-selective PELDOR data (X-, Q- and G-band frequencies). Thus, information about the orientation of secondary structure elements of nucleic acids can be revealed and used as additional angular information for structure determination. Since Ç does not have motion independent from the helix where it resides, the conformational flexibility of the nucleic acid molecule can be directly determined. This thesis demonstrates the advancement of PELDOR spectroscopy, beyond its original scope of distance measurements, to determine the mutual orientation between two rigid spin labels towards the characterization of the conformational space sampled by highly flexible nucleic acid molecules. Applications of the methodology are shown on two systems: a three-way junction, namely a cocaine aptamer in its bound-state, and a two-way junction, namely a bent DNA.
More in detail, the conformational changes of the cocaine aptamer upon cocaine binding were investigated by analysis of the distance distributions. The cocaine-bound and the unbound states could be differentiated by their conformational flexibility, which decreases in the presence of the ligand. Moreover, the obtained distance distributions revealed a small change in the mean distance between the two spin labels upon cocaine binding. This indicates a ligand-induced conformational change, which presumably originates at the junction where cocaine is known to bind. The investigation of the relative orientation between the two spin-labeled helices of the aptamer revealed further structural insights into the conformational dynamics of the cocaine-bound state. The angular information from the orientation-selective PELDOR data and the a priori knowledge about the secondary structure of the aptamer were helpful in obtaining a molecular model describing its global folding and flexibility. In spite of a large flexible aptamer, the kink angle between the Ç-labeled helices was found to be rather well-defined.
As for the bent DNA molecule, a two-step protocol was proposed to investigate the conformational flexibility. In the first step, a database with all the possible conformers was created, using available restraints from NMR and distance restraints derived from PELDOR. In a second step, a weighted ensemble of these conformers fitting the multi-frequency PELDOR data was built. The uniqueness of the obtained structural ensemble was checked by validation against an independent PELDOR data set recorded at a higher magnetic field strength. In addition, the kink and twist angle pairs were determined and the resulting structural ensemble was compared with the conformational space deduced both from FRET experiments and from the structure determined by the NMR restraints alone.
Overall, this thesis underlines the potential of using PELDOR spectroscopy combined with rigid spin labels in the context of structure determination of nucleic acids in order to determine the relative orientation between two helices, the conformational flexibility and the conformational changes of nucleic acid molecules upon ligand binding.
Recently, two of the most common types of bone cancers in children and young adults have been proven to exhibit vulnerability to poly(ADP)-ribose polymerase, (PARP) inhibitors (e.g. olaparib, talazoparib). Ewing’s sarcoma (ES) are reported to harbor a fusion gene EWS-FLI1 (85%), inducing tumorigenesis. Additional, as the fusion gene acts as aberrant transcription factor, it similarly induces elevated PARP expression levels sensitizing ES to PARP inhibition. Second, by an exome sequencing approach in a set of primary osteosarcomas (OS) we identified mutation signatures being reminiscent of BRCA deficiency. Therefore, the sensitivity of a panel of OS cell lines to either talazoparib single treatment or in combination with several chemotherapeutic drugs was investigated.
To screen ES tumor cell lines against PARP inhibitors we applied four different PARP inhibitors (talazoparib, olaparib, niraparib and veliparib) that are frequently being used for clinical studies. We combined those PARP inhibitors with a set of chemotherapeutics (temozolomide (TMZ), SN-38, etoposide, ifosfamide, doxorubicin, vincristine and actinomycin D) that are part of the first-line therapy of ES patients. Here, we demonstrate how PARP inhibitors synergize with TMZ or SN-38 to induce apoptosis, whereas the combination of PARP inhibitors with the other drugs are not favorable. By investigation of key checkpoints in the molecular mechanisms of cell death, the pivotal role of the mitochondrial pathway of apoptosis mediating the synergy between olaparib and TMZ was revealed.
Employing talazoparib monotherapy in combination with or without several chemotherapeutic drugs (TMZ, SN-38, cisplatin, doxorubicin, methotrexate and etoposide/carboplatin), the correlation between homologous recombination (HR) repair deficiency (BRCAness) and the response to talazoparib as prototypical PARP inhibitor was validated in different OS cell lines. By calculation of combination indices (CI) and fraction affected (Fa) values, we identified TMZ as the most potent chemotherapeutic drug in combination with talazoparib inducing the mitochondrial apoptotic pathway in OS.
In our studies of two independent tumor entities with contrary genetic background we identified the combination of PARP inhibitor and TMZ as being most effective. Our studies point out that after TMZ induced DNA methylation and concomitant PARP trapping, DNA damage-imposed checkpoint kinase activation consequently induces G2-cell cycle arrest. Subsequent, PARP inhibitor/TMZ causes MCL-1 degradation, followed by activation of BAK and BAX, succeeding in loss of mitochondrial outer membrane potential (LMMP) and activation of downstream effector-caspases in mitochondrial apoptosis. Our findings emphasize the importance of PARP inhibition in order to chemosensitize ES, which express high PARP levels, or OS that bear features of BRCAness.
Das Enzym 5-Lipoxygenase (5-LO) spielt eine entscheidende Rolle in der Generierung von Leukotrienen. Diese fungieren als wichtige proinflammatorische Mediatoren. Darüber hinaus ist die 5-LO anhand ihrer N-terminalen Domäne in der Lage mit verschiedenen Proteinen zu interagieren. Unter den Interaktionspartnern befindet sich Dicer, ein Enzym welches für den finalen Schritt der microRNA (miRNA)-Biosynthese verantwortlich ist. MiRNA sind kurze, nicht kodierende RNA Stränge mit einer typischen Länge von etwa 23 Nukleotiden, die an der posttranskriptionalen Regulierung der Proteinbiosynthese beteiligt sind.
Ziel dieser Arbeit war es den Einfluss der 5-LO auf die miRNA-Prozessierung im zellulären Kontext zu untersuchen. Als Modellsystem wurde die MonoMac6 (MM6) Zelllinie ausgewählt. MM6-Zellen exprimieren im undifferenzierten Grundzustand nur geringe Mengen an 5-LO. Erst nach Differenzierung mittels transformierenden Wachstumsfaktors ß (TGFß) und Calcitriol kommt es zur Induktion der 5-LO Proteinbiosynthese. Darüber hinaus war es Basavarajappa et al. möglich die 5-LO-Expression in diesen Zellen mittels RNA-Interferenz stark herunter zu regulieren (Δ5-LO).
Um die Frage der Auswirkungen des 5-LO knockdowns auf die miRNA-Expression analysieren zu können, wurde ein Microarray in differenzierten Kontroll-und Δ5-LO-Zellen durchgeführt.Es wurden 37 miRNAs identifiziert deren Expression 5-LO abhängig ist. Dabei war das Niveau von 30 Vertretern in Abwesenheit der 5-LO erhöht, wohingegen die Expression von sieben miRNAs reduziert war. Unter diesen sieben herunter regulierten miRNAs befanden sich miR-99b-5p und miR-125a-5p, die einem gemeinsamen Cluster entstammen. Als Cluster wird eine Gruppe von miRNAs bezeichnet, die aus einem gemeinsamen primären Transkript (pri-miRNA) hervorgeht. Diese Eigenschaft führte zur Vermutung, dass bereits die Expression dieser pri-miRNA durch die 5-LO reguliert wird. Allerdings zeigte sichim Verlauf dieser Arbeit, dass die Expression der pri-miRNA 5-LO unabhängig verläuft. Im Gegensatz dazu wies die Zwischenstufe zwischen pri-miRNA und reifer miRNA eine reduzierte Expression in Δ5-LO Zellen auf. Für die Prozessierung dieser sogenannten precursor miRNAs (pre-miRNA) ist die Ribonuklease III Drosha verantwortlich, welche die pre-miRNA aus der jeweiligen pri-miRNAs chneidet. Das verringerte pre-miR-99b-und pre-miR-125a-Niveau ist daher ein Hinweis darauf, dass überDicerhinausmöglicherweise ebenfalls die Drosha Aktivität mittels 5-LO reguliert wird.
Des Weiteren wurde untersucht iniefern Leukotriene beziehungsweise 5-LO-Inhibitoren die Expression von miR-99b-5p und miR-125a-5p beeinflussen. Dabei stellte sich heraus, dass das miRNA-Niveau unabhängig von der vorhandenen Leukotrien-Menge ist. Das 5-LO aktivierende Protein (FLAP) besitzt dahingegen einen mit der 5-LO vergleichbaren Einfluss auf die reife miRNA. FLAP ist ein weiterer Interaktionspartner der 5-LO und essentiell für die Leukotrien-Biosynthese in vivo. Anhand von Protein-Lokalisationsstudien mittels Immunofluoreszenz konnte gezeigt werden, dass FLAP außerdem in der Lage zu sein scheint die Relokalisation der 5-LO aus dem Zytoplasma in den Nukleus einzuschränken. Im Zytoplasma ist die 5-LO in der Lage mit Dicer zu interagieren. Daten bezüglich einer Interaktion zwischen Drosha und 5-LO im Zellkern liegen bisher nicht vor. Eine etwaige Interaktion könnte allerdings helfen die reduzierten pre-miRNA Spiegel in Abwesenheit der 5-LO zu erklären.
Im Laufe dieser Arbeit wurden weiterhin die Auswirkungen von proinflammatorischen Lipopolysacchariden (LPS) auf die Prozessierung von miR-99b-5p und miR-125a-5p analysiert. Ausschließlich in Anwesenheit von 5-LO zeigte sich eine differenzierungsunabhängig gesteigerte Biosynthese der pri-und der reifen miRNA. Allerdings konnte kein Einfluss von LPS auf die 5-LO-Lokalisation beziehungsweise Expression festgestellt werden. Aufgrund dessen sind weiterführende Studien, die den Zusammenhang zwischen LPS induzierter miR-99b-5p- beziehungsweise miR-125a-5p-Biosynthese und 5-LO herstellen, nötig.
Abschließend hat sich diese Arbeit mit den Zielgenen der durch 5-LO regulierten miRNAs auseinandergesetzt. Es konnte gezeigt werden, dass in Abwesenheit von miR-99b-5p und miR-125a-5p die Freisetzung der beiden durch LPS stimulierten Zytokine Interleukin 6 (IL-6) und Tumornekrosefaktor α (TNFα) gesteigert ist. Interessanterweise besitzt TNFα einen stimulierenden Effekt auf die Leukotrien-Biosynthese. Allerdings konnte kein direkter Zusammenhang zwischen miR-99b-5p/miR-125a-5p Expression, TNFα und der 5-LO Aktivität hergestellt werden. Der Einsatz von miR-99b-5p-und miR-125a-5p-Inhibitoren zeigte keine Auswirkungen auf die Leukotrien-Biosynthese nach LPS Stimulation. Im Gegensatz dazu konnte in unstimulierten Zellen eine signifikante Aktivitätssteigerung in Abwesenheit von miR-125a-5p festgestellt werden. Diese Beobachtungen legen nahe, dass miR-125a-5p einen TNFα unabhängigen Einfluss auf die 5-LO Aktivität besitzt. In LPS stimulierten Zellen kommt es möglicherweise zu Überlagerungen dieses Effektes.
Zusammenfassend konnte in dieser Arbeit gezeigt werden, dass 5-LO eine regulierende Funktion auf die Reifung der beiden miRNAs miR-99b-5p und miR-125a-5p aufweist. Dieser Effekt könnte einer direkten Interaktion zwischen 5-LO und Dicer zuzuschreiben sein. Des Weiteren konnte gezeigt werden, dass die Regulierung der Expression bestimmter miRNAs mittels 5-LO nicht auf deren kanonischer enzymatischer Aktivität beruht. Diese Ergebnisse schlagen eine neue Richtung der 5-LO-Forschung ein und können in Zukunft dazu beitragen 5-LO vermittelte Effekte besser charakterisieren zu können.
Rotary adenosine triphosphate (ATP)ases are ubiquitous, membrane-bound enzyme complexes involved in biological energy conversion. The first subtype, the so-called F1Fo ATP synthase, predominantly functions as an ATP synthesizing machinery in most bacteria, mitochondria and chloroplasts. The vacuolar subtype of enzyme, the V1Vo ATPase, operates as an ATP driven ion pump in eukaryotic membranes. The subtype found in archaea and some bacteria is called A1Ao ATP (synth)ase and is capable of working in both directions either to synthesize ATP or to generate an ion motive force by consuming the same.
All the three above-mentioned subtypes of rotary ATPases work as nanomolecular machines sharing a conserved mechanism to perform the energy conservation process. The simplest form of these enzymes is the bacterial F1Fo ATP synthase. Here, ions are channelled via the membrane stator subunit a to the rotor ring of the enzyme. After almost a complete rotation of the ring the ions are released again on the other side of the membrane. This rotation is further transmitted via the central stalk to the soluble part of the enzyme, the F1-complex, where conformational changes within the nucleotide binding sites result in the synthesis of ATP from ADP and Pi.
The rotor or c-ring of the enzyme is the key protein complex in mediating transmembrane ion translocation. Several structural and biochemical methods have been applied in the past years to study the rotor rings from many different organisms. The results revealed that the stoichiometry of a c-ring of a given species is constant while it can vary between different species within a range of 8 to 15 c subunits. The c-ring stoichiometry determines directly the number of ions transported through Fo per rotation whereby three molecules of ATP are concurrently synthesized in the water-soluble F1 headgroup. Hence the number of c subunits has an important influence on the bioenergetics of the corresponding enzyme and thus the entire organism.
The c-ring of a rotary ATPase is able to specifically bind either protons (H+) or sodium ions (Na+) as the coupling ion for the enzyme. Several structures are already available revealing the coordination network of both types of rotor rings. In each case ion binding includes a highly-conserved carboxylic acid residue (glutamate or aspartate), in addition to a more varying combination of amino acid residues, whereby Na+ coordination is structurally more demanding than H+ binding.
In the first part of my PhD thesis, I aimed to characterize the F1Fo ATP synthase rotor ring of the opportunistic pathogenic bacterium Fusobacterium nucleatum on a functional and structural level. F. nucleatum is an anaerobic bacterium which uses peptides and amino acids as a primary energy source. It is one of the most frequently occuring bacteria in human body infections and involved in human periodontal diseases.
The protein complex was heterologously expressed within a hybrid ATP synthase in Escherichia coli and purified without an affinity tag for further analysis. Two high resolution X-ray structures of the c-ring were solved at low (5.3) and high (8.7) pH to 2.2 and 2.64 Å, respectively. In both structures, the conserved glutamate is in an ion-locked conformation, revealing that the conformational state of the ion binding carboxylate is not depending on the pH of the crystallization condition, which is in good agreement with previous structural and biochemical studies of other c-rings.
A Na+ ion is present within the c-ring binding site and directly coordinated by four amino acid residues and a structural water molecule. Remarkably, the Na+ is bound by two glutamate residues instead of one as is the case in the I. tartaricus Na+ binding c-ring, of which the first high resolution X-ray structure of a c-ring has been solved in 2005. Thus, a new type of Na+ coordination in an ATP synthase rotor ring with a two-carboxylate ion binding motif is described here, which also occurs in other bacteria, including several pathogens. Na+ specificity of the investigated c-ring was further confirmed by a competitive biochemical labeling reaction performed with a fluorescent ATP synthase inhibitor molecule (N-cyclohexyl-N`-[4(dimethylamino)-α-naphtyl] carbodiimide, NCD-4).
We furthermore complemented our functional and structural data of the F. nucleatum c-ring by computational studies to explore the ion translocation mechanism of this enzyme in more details. We therefore analyzed the protonation state of the second, additional glutamate in the ion binding site. Molecular dynamics (MD) simulations and free-energy calculations indicated that this glutamate is constitutively protonated, in the ion-locked as well as in a simulated, more hydrated open-conformation of the ion binding glutamate as when it is travelling through the a/c-ring interface upon c-ring rotation.
The RAF family of kinases constitutes the members A, B and CRAF. They mediate RAS signaling by linking it to the MEK/ERK transduction module, which regulates cellular processes such as cell proliferation, migration, survival and cell death. As the RAS/RAF/MEK/ERK (MAPK) pathway is found to be activated in human cancers, the RAF kinases have been exploited as valuable therapeutic targets and RAF inhibitors show promising results in the clinic, esp. with tumors harboring an activating BRAFV600E mutation. However, RAF inhibitors paradoxically accelerate metastasis in RAS mutant and BRAF wildtype tumors. They also become ineffective over time in BRAFV600E tumors because of reactivation of downstream mitogen-activated protein kinase (MAPK) signaling by promoting RAF dimerization. Aims of the present work were 1) to investigate the role of ARAF kinase in the paradoxical activation of the enzymatic cascade by RAF inhibitors downstream of mutated RAS and 2) to study the consequences of the loss of ARAF function on signal transduction in vitro and in vivo (nude mice). We have engineered several cell lines that would allow the study of basal and RAF inhibitor induced effects on MAPK activation, tumor cell migration and invasion.
In summary, we were able to show that the RAF isoform ARAF has an obligatory role in promoting MAPK activity and tumor cell invasion in a cell type dependent manner. In these cell types, ARAF depletion prevented the activation of MAPK kinase 1 (MEK1) and extracellular signal-regulated kinase 1 and 2 (ERK1/2) and led to a significant decrease of protrusions growing out of tumor cell spheroids in a three-dimensional (3D) culture that were otherwise induced by BRAFV600E-specific or BRAF/CRAF inhibitors (GDC-0879 and sorafenib, respectively). RAF inhibitors stimulated homodimerization of ARAF and heteromerization of BRAF with CRAF and the scaffolding protein KSR1. However, induced oligomerization was not sufficient to activate MAPK signaling if ARAF was depleted. By employing full length recombinant kinases, we were able to show for the first time that the three RAF isoforms competed for the binding to MEK1. In cell culture models, the overexpression of dimer-deficient ARAF mutants impaired the interaction between ARAF and endogenous MEK1 and thus prevented the subsequent phosphorylation of MEK1 and ERK1/2. Our findings reveal a new role for ARAF in directly activating the MAPK cascade through homodimerization and thereby promoting tumor cell invasion, suggesting the conserved RAF-dimer interface as a target for RAS- and RAF mediated cancer therapy.
Collectively, we provide evidence for the dual role ARAF plays in controlling MAPK signaling and cancer as loss of ARAF promoted strong lung metastasis formation in nude mice. Preliminary data describing the underlying mechanisms behind ARAF-regulated metastases have been presented and discussed.
To overcome poor treatment response of pediatric high-risk acute lymphoblastic leukemia (ALL), novel treatment strategies are required to reactivate programmed cell death in this malignancy. Therefore, we take advantage of using small-molecule antagonists of Inhibitor of apoptosis (IAP) proteins, so called Smac mimetics such as BV6, which are described to overcome apoptosis resistance and thereby sensitize tumor cells for several apoptotic stimuli. To address the question whether redox alterations can sensitize leukemic cells for Smac mimetic-mediated cell death, we interfered with the cellular redox status in different ALL cell lines. Here, we show for the first time that redox alterations, mediated by the glutathione depleting agent Buthioninesulfoximine (BSO), prime ALL cells for BV6-induced apoptosis. Besides ALL cell lines, BV6/BSO cotreatment similarly synergizes in cell death induction in patient-derived primary leukemic samples. In contrast, the combination treatment does not exert any cytotoxicity against peripheral blood lymphocytes (PBLs) or mesenchymal stroma cells (MSCs) from healthy donors, suggesting some tumor selectivity of this treatment. We also identify the underlying molecular mechanism of the novel synergistic drug interaction of BSO and BV6. We demonstrate that both agents act in concert to increase reactive oxygen species (ROS) production, lipid peroxidation and finally apoptotic cell death. Enhanced ROS levels in the combination treatment account for cell death induction, since several ROS scavengers, like NAC, MnTBAP and Trolox attenuate BSO/BV6-induced apoptosis. BSO/BV6-induced ROS can be mainly classified as lipid peroxides, since the vitamin E derivate α-Tocopherol as well as Glutathione peroxidase 4 (GPX4), which both specifically reduce lipid-membrane peroxides, prevent lipid peroxidation, caspase activation and cell death induction. Vice versa, GPX4 knockdown and pharmacological inhibition of GPX4 by RSL3 or Erastin enhance BV6-induced cell death. Importantly, cell death induction critically depends on the formation of a complex consisting of RIP1/FADD/Caspase-8, since all complex components are required for ROS production, lipid peroxidation and cell death induction. Taken together, we demonstrate that BSO and BV6 cooperate to induce ROS production and lipid peroxidation which are eventually required for caspase activation and cell death execution. Collectively, findings of this study indicate that BV6-induced apoptosis is mediated via redox alterations offering promising new treatment strategy to overcome apoptosis resistance in ALL.