@phdthesis{AppeltMenzel2016, author = {Appelt-Menzel, Antje}, title = {Etablierung und Qualifizierung eines humanen Blut-Hirn-Schranken-Modells unter Verwendung von induziert pluripotenten und multipotenten Stammzellen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-134646}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Die Blut-Hirn-Schranke (BHS) stellt eine der dichtesten und wichtigsten Barrieren zwischen Blutzirkulation und Zentralnervensystem (ZNS) dar. Sie besteht aus spezialisierten Endothelzellen, welche die zerebralen Kapillaren auskleiden und durch sehr dichte Tight Junctions (TJs) miteinander verbunden sind. Weitere Komponenten der dynamischen Blut-Hirn-Schrankenbarriere stellen Perizyten, Astrozyten, Neurone und Mikrogliazellen dar, welche zusammen mit der extrazellul{\"a}ren Matrix der Basalmembran der Gehirnkapillaren und den zuvor genannten Endothelzellen ein komplexes regulatorisches System, die so genannte neurovaskul{\"a}re Einheit bilden (Hawkins und Davis 2005). Die Hauptfunktionen der BHS lassen sich in drei Untergruppen untergliedern, die physikalische, metabolische und Transport-Barriere (Neuhaus und Noe 2010). Haupts{\"a}chlich dient die BHS der Aufrechterhaltung der Hom{\"o}ostase des ZNS und dem Schutz vor neurotoxischen Substanzen sowie Pathogenen, wie Bakterien und Viren. Zudem ist sie auch f{\"u}r die Versorgung der Neuronen mit N{\"a}hrstoffen und regulierenden Substanzen sowie den Efflux von Stoffwechselendprodukten des ZNS zur{\"u}ck ins Blut verantwortlich. F{\"u}r die Entwicklung von Medikamenten zur Behandlung von neurodegenerativen Erkrankungen, wie Morbus Alzheimer, Morbus Parkinson und Multiple Sklerose oder Gehirntumoren, stellt die Dichtigkeit der BHS gegen{\"u}ber Substanzen und die hohe metabolische Aktivit{\"a}t der Endothelzellen aber ein großes Problem dar. Viele Medikamente sind nicht in der Lage in ausreichender Konzentration die BHS zu {\"u}berwinden, um an ihren Wirkort zu gelangen oder werden vor dem Transport metabolisiert und die Wirksamkeit dadurch eingeschr{\"a}nkt. Weiterhin spielen auch Defekte der BHS eine entscheidende Rolle in der Beeinflussung der Pathogenese vieler ZNS-Erkrankungen. Aufgrund des hohen Bedarfs an geeigneten Testsystemen in der Grundlagen- sowie pr{\"a}klinischen Forschung f{\"u}r Medikamentenentwicklung und Infektionsstudien wurden eine Vielzahl unterschiedlicher BHS-Modelle entwickelt. Neben in silico-, azellul{\"a}ren in vitro- und in vivo-Modellen sind auch zahlreiche zellbasierte Modelle der BHS entwickelt worden. Standardisierte Modelle auf Basis immortalisierter Zelllinien jedoch weisen nur eine inhomogene TJ-Expression auf und verf{\"u}gen meist {\"u}ber eine geringe Barriereintegrit{\"a}t, erfasst {\"u}ber transendotheliale elektrische Widerst{\"a}nde (TEER) unter 150 · cm2 (Deli et al. 2005). Im Vergleich dazu wurden in Tierexperimenten TEER-Werte von mehr als 1500 · cm2 an der BHS gemessen (Butt et al. 1990; Crone und Olesen 1982). Die Verf{\"u}gbarkeit humaner prim{\"a}rer BHS-Zellen ist sehr limitiert und ihr Einsatz nicht nur im Hinblick auf ethische Aspekte bedenklich. Humane Gehirnzellen k{\"o}nnen z. B. aus Biopsie- oder Autopsiematerial von Patienten mit Epilepsie oder Gehirntumoren isoliert werden. Allerdings besteht hier das Risiko, dass die isolierten Zellen krankheitsbedingt ver{\"a}ndert sind, was die Eigenschaften der BHS-Modelle erheblich beeinflussen kann. Eine Alternative, die diese Probleme umgeht, ist die Verwendung von humanen induziert pluripotenten Stammzellen (hiPSCs), um standardisierte humane BHS-Modelle unter reproduzierbaren Bedingungen bereitzustellen. Im Rahmen dieser Arbeit ist es gelungen, hiPSCs in vitro nach etablierten und standardisierten Methoden in Endothelzellen der BHS, neurale Stammzellen (hiPS-NSCs) sowie Astrozyten (hiPS-A) zu differenzieren (Lippmann et al. 2012; Lippmann et al. 2014; Wilson et al. 2015; Yan et al. 2013;Reinhardt et al. 2013) und zum Aufbau der Modelle einzusetzen. Die Endothelzellen wurden mit Hilfe protein- und genbasierter Nachweismethoden auf das Vorhandensein von endothelzellspezifischen TJ-Markern sowie spezifischen Transportern untersucht und funktionell charakterisiert. Die Kryokonservierung der hiPS-EC-Progenitoren, die im Rahmen der vorliegenden Arbeit entwickelt wurde, erm{\"o}glicht eine gr{\"o}ßere r{\"a}umliche und zeitliche Flexibilit{\"a}t beim Arbeiten mit den stammzellbasierten Modellen sowie das Anlegen standardisierter Zellbanken. Weiterhin wurden multipotente NSCs aus fetalen Gehirnbiopsien isoliert (fNSCs) und als Kontrollkulturen zu den hiPS-NSCs f{\"u}r den Aufbau von BHS-Modellen eingesetzt. Mit dem Ziel die in vivo-BHS bestm{\"o}glich zu imitieren und die Modelleigenschaften zu optimieren, wurde ein Set aus zehn unterschiedlichen BHS-Modellen basierend auf prim{\"a}ren Zellen, hiPSCs und fNSCs analysiert. Der Aufbau der BHS-Modelle erfolgte unter Verwendung von Transwellsystemen. Durch die systematische Untersuchung des Einflusses der unterschiedlichen Zelltypen der neurovaskul{\"a}ren Einheit auf die Barriereintegrit{\"a}t und Genexpression des BHS-Endothels, konnten die Quadrupel-Kulturen mit Perizyten, Astrozyten und hiPS-NSCs als die Kultur mit den physiologischsten Eigenschaften identifiziert werden. Auf Grund der signifikant erh{\"o}hten TEER-Werte von bis zu 2500 · cm2 und einer um mindestens 1,5-fachen Steigerung der Genexpression BHSrelevanter Transporter und TJ-Molek{\"u}le gegen{\"u}ber den Monokulturen, wurden diese Modelle f{\"u}r weiterf{\"u}hrende Studien ausgew{\"a}hlt. Das Vorhandensein eines komplexen, in vivo-{\"a}hnlichen TJ-Netzwerkes, bestehend aus Occludin, Claudin 1, 3, 4 und 5, konnte mittels quantitativer Realtime-PCR, Western Blot sowie ultrastruktureller Analyse in der Gefrierbruch- und Raster-Elektronenmikroskopie nachgewiesen werden. Neben der Begrenzung der parazellul{\"a}ren Permeabilit{\"a}t, welche {\"u}ber die geringe Permeation von FITC-Dextran (4 kDa und 40 kDa), Fluoreszein und Lucifer Yellow nachgewiesen wurde, stellt die BHS ebenfalls eine Barriere f{\"u}r den transzellul{\"a}ren Transport von Substanzen dar. Eine Beurteilung der Modelle hinsichtlich der Qualifikation f{\"u}r die Nutzung im Wirkstoffscreening wurde mit Hilfe von Transportversuchen unter dem Einsatz von BHS-relevanten Referenzsubstanzen durchgef{\"u}hrt. Die Klassifikation der Testsubstanzen erfolgte analog ihrer Permeationsgeschwindigkeiten: Diazepam und Koffein gelten als schnell transportierte Wirkstoffe, Ibuprofen, Celecoxib und Diclofenac werden mit einer mittleren Geschwindigkeit {\"u}ber die BHS transportiert und Loratadin sowie Rhodamin 123 sind langsam permeierende Substanzen. Innerhalb der Versuche mit den Quadrupelkulturen wurde diese Reihenfolge best{\"a}tigt, lediglich f{\"u}r Koffein wurde ein signifikant niedrigerer Permeationskoeffizient verglichen mit der Monokultur erzielt. Der Einsatz der hiPSC-Technologie erm{\"o}glicht es zudem, aus einer Stammzelllinie große Mengen an humanen somatischen Zelltypen zu generieren und f{\"u}r gezielte Anwendungen bereitzustellen. Es konnte im Rahmen dieser Arbeit gezeigt werden, dass mit Hilfe eines eigens f{\"u}r diese Zwecke konstruierten R{\"u}hrreaktorsystems eine reproduzierbare Expansion der hiPSCs unter definierten Bedingungen erm{\"o}glicht wurde. Basierend auf dieser Grundlage ist nun ein Hochdurchsatz-Screening von Medikamenten denkbar. Die in dieser Arbeit pr{\"a}sentierten Daten belegen die Etablierung eines stammzellbasierten in vitro- Quadrupelmodels der humanen BHS, welches {\"u}ber in vivo-{\"a}hnliche Eigenschaften verf{\"u}gt. Die Anforderungen, die an humane BHS-Modelle gestellt werden, wie die Reproduzierbarkeit der Ergebnisse, eine angemessene Charakterisierung, welche die Untersuchung der Permeabilit{\"a}t von Referenzsubstanzen einschließt, die Analyse der Expression von BHS-relevanten Transportermolek{\"u}len sowie die solide und physiologische Morphologie der Zellen, wurden erf{\"u}llt. Das etablierte BHS-Modell kann in der Pharmaindustrie f{\"u}r die Entwicklung von Medikamenten eingesetzt werden. Ausreichend qualifizierte Modelle k{\"o}nnen hier in der pr{\"a}klinischen Forschung genutzt werden, um Toxizit{\"a}ts- und Transportstudien an neu entwickelten Substanzen durchzuf{\"u}hren und eine bessere in vitro-in vivo-Korrelation der Ergebnisse zu erm{\"o}glichen oder Mechanismen zu entwickeln, um die BHS-Barriere gezielt zu {\"u}berwinden.}, subject = {Blut-Hirn-Schranke}, language = {de} } @phdthesis{Beck2016, author = {Beck, Katherina}, title = {Einfluss von RSK auf die Aktivit{\"a}t von ERK, den axonalen Transport und die synaptische Funktion in Motoneuronen von \(Drosophila\) \(melanogaster\)}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-130717}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {In dieser Arbeit sollte die Funktion von RSK in Motoneuronen von Drosophila untersucht werden. Mutationen im RSK2-Gen verursachen das Coffin-Lowry-Syndrom (CLS), das durch mentale Retardierung charakterisiert ist. RSK2 ist haupts{\"a}chlich in Regionen des Gehirns exprimiert, in denen Lernen und Ged{\"a}chtnisbildung stattfinden. In M{\"a}usen und Drosophila, die als Modellorganismen f{\"u}r CLS dienen, konnten auf makroskopischer Ebene keine Ver{\"a}nderungen in den Hirnstrukturen gefunden werden, dennoch wurden in verschiedenen Verhaltensstudien Defekte im Lernen und der Ged{\"a}chtnisbildung beobachtet. Die synaptische Plastizit{\"a}t und die einhergehenden Ver{\"a}nderungen in den Eigenschaften der Synapse sind fundamental f{\"u}r adaptives Verhalten. Zur Analyse der synaptischen Plastizit{\"a}t eignet sich das neuromuskul{\"a}re System von Drosophila als Modell wegen des stereotypen Innervierungsmusters und der Verwendung ionotroper Glutamatrezeptoren, deren Untereinheiten homolog sind zu den Untereinheiten der Glutamatrezeptoren des AMPA-Typs aus S{\"a}ugern, die wesentlich f{\"u}r die Bildung von LTP im Hippocampus sind. Zun{\"a}chst konnte gezeigt werden, dass RSK in den Motoneuronen von Drosophila an der pr{\"a}synaptischen Seite lokalisiert ist, wodurch RSK eine Synapsen-spezifische Funktion aus{\"u}ben k{\"o}nnte. Morphologische Untersuchungen der Struktur der neuromuskul{\"a}ren Synapsen konnten aufzeigen, dass durch den Verlust von RSK die Gr{\"o}ße der neuromuskul{\"a}ren Synapse, der Boutons sowie der Aktiven Zonen und Glutamatrezeptorfelder reduziert ist. Obwohl mehr Boutons gebildet werden, sind weniger Aktive Zonen und Glutamatrezeptorfelder in der neuromuskul{\"a}ren Synapse enthalten. RSK reguliert die synaptische Transmission, indem es die postsynaptische Sensitivit{\"a}t, nicht aber die Freisetzung der Neurotransmitter an der pr{\"a}synaptischen Seite beeinflusst, obwohl in immunhistochemischen Analysen eine postsynaptische Lokalisierung von RSK nicht nachgewiesen werden konnte. RSK ist demnach an der Regulation der synaptischen Plastizit{\"a}t glutamaterger Synapsen beteiligt. Durch immunhistochemische Untersuchungen konnte erstmals gezeigt werden, dass aktiviertes ERK an der pr{\"a}synaptischen Seite lokalisiert ist und diese synaptische Lokalisierung von RSK reguliert wird. Dar{\"u}ber hinaus konnte in dieser Arbeit nachgewiesen werden, dass durch den Verlust von RSK hyperaktiviertes ERK in den Zellk{\"o}rpern der Motoneurone vorliegt. RSK wird durch den ERK/MAPK-Signalweg aktiviert und {\"u}bernimmt eine Funktion sowohl als Effektorkinase als auch in der Negativregulation des Signalwegs. Demnach dient RSK in den Zellk{\"o}rpern der Motoneurone als Negativregulator des ERK/MAPK-Signalwegs. Dar{\"u}ber hinaus k{\"o}nnte RSK die Verteilung von aktivem ERK in den Subkompartimenten der Motoneurone regulieren. Da in vorangegangenen Studien gezeigt werden konnte, dass ERK an der Regulation der synaptischen Plastizit{\"a}t beteiligt ist, indem es die Insertion der AMPA-Rezeptoren zur Bildung der LTP reguliert, sollte in dieser Arbeit aufgekl{\"a}rt werden, ob der Einfluss von RSK auf die synaptische Plastizit{\"a}t durch seine Funktion als Negativregulator von ERK zustande kommt. Untersuchungen der genetischen Interaktion von rsk und rolled, dem Homolog von ERK in Drosophila, zeigten, dass die durch den Verlust von RSK beobachtete reduzierte Gesamtzahl der Aktiven Zonen und Glutamatrezeptorfelder der neuromuskul{\"a}ren Synapse auf die Funktion von RSK als Negativregulator von ERK zur{\"u}ckzuf{\"u}hren ist. Die Gr{\"o}ße der neuromuskul{\"a}ren Synapse sowie die Gr{\"o}ße der Aktiven Zonen und Glutamatrezeptorfelder beeinflusst RSK allerdings durch seine Funktion als Effektorkinase des ERK/MAPK-Signalwegs. Studien des axonalen Transports von Mitochondrien zeigten, dass dieser in vielen neuropathologischen Erkrankungen beeintr{\"a}chtigt ist. Die durchgef{\"u}hrten Untersuchungen des axonalen Transports in Motoneuronen konnten eine neue Funktion von RSK in der Regulation des axonalen Transports aufdecken. In den Axonen der Motoneurone von RSK-Nullmutanten wurden BRP- und CSP-Agglomerate nachgewiesen. RSK k{\"o}nnte an der Regulation des axonalen Transports von pr{\"a}synaptischem Material beteiligt sein. Durch den Verlust von RSK wurden weniger Mitochondrien in anterograder Richtung entlang dem Axon transportiert, daf{\"u}r verweilten mehr Mitochondrien in station{\"a}ren Phasen. Diese Ergebnisse zeigen, dass auch der anterograde Transport von Mitochondrien durch den Verlust von RSK beeintr{\"a}chtigt ist.}, subject = {Taufliege}, language = {de} } @phdthesis{Bertho2016, author = {Bertho, Sylvain}, title = {Biochemical and molecular characterization of an original master sex determining gene in Salmonids}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-139130}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Sexual development is a fundamental and versatile process that shapes animal morphology, physiology and behavior. The underlying developmental process is composed of the sex determination and the sex differentiation. Sex determination mechanisms are extremely labile among taxa. The initial triggers of the sex determination process are often genetics called sex determining genes. These genes are expressed in the bipotential gonad and tilt the balance to a developmental program allowing the differentiation of either a testis or an ovary. Fish represent a large and fascinating vertebrate group to study both sex determination and sex differentiation mechanisms. To date, among the known sex determining genes, three gene families namely sox, dmrt and TGF-β factors govern this developmental program. As exception to this rule, sdY "sexually dimorphic on the Y" does not belong to one of these families as it comes from the duplication / evolution of an ancestor gene related to immunity, i.e., the interferon related factor 9, irf9. sdY is the master sex determining gene in salmonids, a group of fishes that include species such as rainbow trout and Atlantic salmon. The present study was aimed to firstly characterize the features of SdY protein. Results indicate that SdY is predominantly localized in the cytoplasm tested in various fish and mammalian cell lines and confirmed by different methods. Predictive in silico analysis revealed that SdY is composed of a β-sandwich core surrounded by three α-helices as well specific characteristics conferring a putative protein-protein interaction site. Secondly, the study was aimed to understand how SdY could trigger testicular differentiation. SdY is a truncated divergent version of Irf9 that has a conserved protein-protein domain but lost the DNA interaction domain of its ancestor gene. It was then hypothesized that SdY could initiate testicular differentiation by protein-protein interactions. To evaluate this we first conducted a yeast-two-hybrid screen that revealed a high proportion of transcription factors including fox proteins. Using various biochemical and cellular methods we confirm an interaction between SdY and Foxl2, a major transcription factor involved in ovarian differentiation and identity maintenance. Interestingly, the interaction of SdY with Foxl2 leads to nuclear translocation of SdY from the cytoplasm. Furthermore, this SdY translocation mechanism was found to be specific to fish Foxl2 and to a lesser extend Foxl3 and not other Fox proteins or mammalian FoxL2. In addition, we found that this interaction allows the stabilization of SdY and prevents its degradation. Finally, to better decipher SdY action we used as a model a mutated version of SdY that was identified in XY females of Chinook salmon natural population. Results show that this mutation induces a local conformation defect obviously leading to a misfolded protein and a quick degradation. Moreover, the mutated version compromised the interaction with Foxl2 defining a minimal threshold to induce testicular differentiation. Altogether results from my thesis propose that SdY would trigger testicular differentiation in salmonids by preventing Foxl2 to promote ovarian differentiation. Further research should be now carried out on how this interaction of SdY and Foxl2 acts in-vivo.}, subject = {Lachsartige }, language = {en} } @phdthesis{Blaettner2016, author = {Bl{\"a}ttner, Sebastian}, title = {The role of the non-ribosomal peptide synthetase AusAB and its product phevalin in intracellular virulence of Staphylococcus aureus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-146662}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Staphylococcus aureus is a prevalent commensal bacterium which represents one of the leading causes in health care-associated bacterial infections worldwide and can cause a variety of different diseases ranging from simple abscesses to severe and life threatening infections including pneumonia, osteomyelitis and sepsis. In recent times multi-resistant strains have emerged, causing severe problems in nosocomial as well as community-acquired (CA) infection settings, especially in the United States (USA). Therefore S. aureus has been termed as a superbug by the WHO, underlining the severe health risk originating from it. Today, infections in the USA are dominated by S. aureus genotypes which are classified as USA300 and USA400, respectively. Strains of genotype USA300 are responsible for about 70\% of the CA infections. The molecular mechanisms which render S. aureus such an effective pathogen are still not understood in its entirety. For decades S. aureus was thought to be a strictly extracellular pathogen relying on pore-forming toxins like α-hemolysin to damage human cells and tissue. Only recently it has been shown that S. aureus can enter non-professional phagocytes, using adhesins like the fibronectin-binding proteins which mediate an endocytotic uptake into the host cells. The bacteria are consequently localized to endosomes, where the degradation of enclosed bacterial cells through phagosome maturation would eventually occur. S. aureus can avoid degradation, and translocate to the cellular cytoplasm, where it can replicate. The ability to cause this so-called phagosomal escape has mainly been attributed to a family of amphiphilic peptides called phenol soluble modulins (PSMs), but as studies have shown, they are not sufficient. In this work I used a transposon mutant library in combination with automated fluorescence microscopy to screen for genes involved in the phagosomal escape process and intracellular survival of S. aureus. I thereby identified a number of genes, including a non-ribosomal peptide synthetase (NRPS). The NRPS, encoded by the genes ausA and ausB, produces two types of small peptides, phevalin and tyrvalin. Mutations in the ausAB genes lead to a drastic decrease in phagosomal escape rates in epithelial cells, which were readily restored by genetic complementation in trans as well as by supplementation of synthetic phevalin. In leukocytes, phevalin interferes with calcium fluxes and activation of neutrophils and promotes cytotoxicity of intracellular bacteria in both, macrophages and neutrophils. Further ausAB is involved in survival and virulence of the bacterium during mouse lung pneumoniae. The here presented data demonstrates the contribution of the bacterial cyclic dipeptide phevalin to S. aureus virulence and suggests, that phevalin directly acts on a host cell target to promote cytotoxicity of intracellular bacteria.}, subject = {Staphylococcus aureus}, language = {en} } @phdthesis{Cicova2016, author = {Cicova, Zdenka}, title = {Characterization of a novel putative factor involved in host adaptation in Trypanosoma brucei}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-142462}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Trypanosomes are masters of adaptation to different host environments during their complex life cycle. Large-scale proteomic approaches provide information on changes at the cellular level in a systematic way. However, a detailed work on single components is necessary to understand the adaptation mechanisms on a molecular level. Here we have performed a detailed characterization of a bloodstream form (BSF) stage-specific putative flagellar host adaptation factor (Tb927.11.2400) identified previously in a SILAC-based comparative proteome study. Tb927.11.2400 shares 38\% amino acid identity with TbFlabarin (Tb927.11.2410), a procyclic form (PCF) stage specific flagellar BAR domain protein. We named Tb927.11.2400 TbFlabarin like (TbFlabarinL) and demonstrate that it is a result of a gene duplication event, which occurred in African trypanosomes. TbFlabarinL is not essential for growth of the parasites under cell culture conditions and it is dispensable for developmental differentiation from BSF to the PCF in vitro. We generated a TbFlabarinL-specific antibody and showed that it localizes in the flagellum. The co-immunoprecipitation experiment together with a biochemical cell fractionation indicated a dual association of TbFlabarinL with the flagellar membrane and the components of the paraflagellar rod.}, subject = {Trypanosoma brucei}, language = {en} } @phdthesis{Costea2016, author = {Costea, Paul Igor}, title = {Stratification and variation of the human gut microbiota}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-139649}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {The microbial communities that live inside the human gastrointestinal tract -the human gut microbiome- are important for host health and wellbeing. Characterizing this new "organ", made up of as many cells as the human body itself, has recently become possible through technological advances. Metagenomics, the high-throughput sequencing of DNA directly from microbial communities, enables us to take genomic snapshots of thousands of microbes living together in this complex ecosystem, without the need for isolating and growing them. Quantifying the composition of the human gut microbiome allows us to investigate its properties and connect it to host physiology and disease. The wealth of such connections was unexpected and is probably still underestimated. Due to the fact that most of our dietary as well as medicinal intake affects the microbiome and that the microbiome itself interacts with our immune system through a multitude of pathways, many mechanisms have been proposed to explain the observed correlations, though most have yet to be understood in depth. An obvious prerequisite to characterizing the microbiome and its interactions with the host is the accurate quantification of its composition, i.e. determining which microbes are present and in what numbers they occur. Historically, standard practices have existed for sample handling, DNA extraction and data analysis for many years. However, these were generally developed for single microbe cultures and it is not always feasible to implement them in large scale metagenomic studies. Partly because of this and partly because of the excitement that new technology brings about, the first metagenomic studies each took the liberty to define their own approach and protocols. From early meta-analysis of these studies it became clear that the differences in sample handling, as well as differences in computational approaches, made comparisons across studies very difficult. This restricts our ability to cross-validate findings of individual studies and to pool samples from larger cohorts. To address the pressing need for standardization, we undertook an extensive comparison of 21 different DNA extraction methods as well as a series of other sample manipulations that affect quantification. We developed a number of criteria for determining the measurement quality in the absence of a mock community and used these to propose best practices for sampling, DNA extraction and library preparation. If these were to be accepted as standards in the field, it would greatly improve comparability across studies, which would dramatically increase the power of our inferences and our ability to draw general conclusions about the microbiome. Most metagenomics studies involve comparisons between microbial communities, for example between fecal samples from cases and controls. A multitude of approaches have been proposed to calculate community dissimilarities (beta diversity) and they are often combined with various preprocessing techniques. Direct metagenomics quantification usually counts sequencing reads mapped to specific taxonomic units, which can be species, genera, etc. Due to technology-inherent differences in sampling depth, normalizing counts is necessary, for instance by dividing each count by the sum of all counts in a sample (i.e. total sum scaling), or by subsampling. To derive a single value for community (dis-)similarity, multiple distance measures have been proposed. Although it is theoretically difficult to benchmark these approaches, we developed a biologically motivated framework in which distance measures can be evaluated. This highlights the importance of data transformations and their impact on the measured distances. Building on our experience with accurate abundance estimation and data preprocessing techniques, we can now try and understand some of the basic properties of microbial communities. In 2011, it was proposed that the space of genus level variation of the human gut microbial community is structured into three basic types, termed enterotypes. These were described in a multi-country cohort, so as to be independent of geography, age and other host properties. Operationally defined through a clustering approach, they are "densely populated areas in a multidimensional space of community composition"(source) and were proposed as a general stratifier for the human population. Later studies that applied this concept to other datasets raised concerns about the optimum number of clusters and robustness of the clustering approach. This heralded a long standing debate about the existence of structure and the best ways to determine and capture it. Here, we reconsider the concept of enterotypes, in the context of the vastly increased amounts of available data. We propose a refined framework in which the different types should be thought of as weak attractors in compositional space and we try to implement an approach to determining which attractor a sample is closest to. To this end, we train a classifier on a reference dataset to assign membership to new samples. This way, enterotypes assignment is no longer dataset dependent and effects due to biased sampling are minimized. Using a model in which we assume the existence of three enterotypes characterized by the same driver genera, as originally postulated, we show the relevance of this stratification and propose it to be used in a clinical setting as a potential marker for disease development. Moreover, we believe that these attractors underline different rules of community assembly and we recommend they be accounted for when analyzing gut microbiome samples. While enterotypes describe structure in the community at genus level, metagenomic sequencing can in principle achieve single-nucleotide resolution, allowing us to identify single nucleotide polymorphisms (SNPs) and other genomic variants in the gut microbiome. Analysis methodology for this level of resolution has only recently been developed and little exploration has been done to date. Assessing SNPs in a large, multinational cohort, we discovered that the landscape of genomic variation seems highly structured even beyond species resolution, indicating that clearly distinguishable subspecies are prevalent among gut microbes. In several cases, these subspecies exhibit geo-stratification, with some subspecies only found in the Chinese population. Generally however, they present only minor dispersion limitations and are seen across most of our study populations. Within one individual, one subspecies is commonly found to dominate and only rarely are several subspecies observed to co-occur in the same ecosystem. Analysis of longitudinal data indicates that the dominant subspecies remains stable over periods of more than three years. When interrogating their functional properties we find many differences, with specific ones appearing relevant to the host. For example, we identify a subspecies of E. rectale that is lacking the flagellum operon and find its presence to be significantly associated with lower body mass index and lower insulin resistance of their hosts; it also correlates with higher microbial community diversity. These associations could not be seen at the species level (where multiple subspecies are convoluted), which illustrates the importance of this increased resolution for a more comprehensive understanding of microbial interactions within the microbiome and with the host. Taken together, our results provide a rigorous basis for performing comparative metagenomics of the human gut, encompassing recommendations for both experimental sample processing and computational analysis. We furthermore refine the concept of community stratification into enterotypes, develop a reference-based approach for enterotype assignment and provide compelling evidence for their relevance. Lastly, by harnessing the full resolution of metagenomics, we discover a highly structured genomic variation landscape below the microbial species level and identify common subspecies of the human gut microbiome. By developing these high-precision metagenomics analysis tools, we thus hope to contribute to a greatly improved understanding of the properties and dynamics of the human gut microbiome.}, subject = {Mensch}, language = {en} } @phdthesis{Eck2016, author = {Eck, Saskia}, title = {The impact of thermogenetic depolarizations of specific clock neurons on Drosophila melanogaster's circadian clock}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-137118}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {The rotation of the earth around its own axis determines periodically changing environmental conditions, like alterations in light and temperature. For the purpose of adapting all organisms' behavior, physiology and metabolism to recurring changes, endogenous clocks have evolved, which allow the organisms to anticipate environmental changes. In chronobiology, the scientific field dealing with the investigation of the underlying mechanisms of the endogenous clock, the fruit fly Drosophila melanogaster serves as a beneficial model organism. The fruit fly's circadian clock exhibits a rather simple anatomical organization, but nevertheless constitutes homologies to the mammalian system. Thus also in this PhD-thesis the fruit fly was used to decipher general features of the circadian clock's interneuronal communication. Drosophila melanogaster's circadian clock consists of about 150 clock neurons, which are located in the central nervous system of the fly. These clock neurons can be subdivided regarding to their anatomical position in the brain into the dorsal neurons (DN1s, DN2s, DN3s), as well as into the lateral neurons (LPNs, LNds, s-LNvs, l-LNvs). Functionally these clock neuron clusters can be classified as Morning- and Evening oscillators (M- and E- oscillators), driving different parts of the fly's locomotor activity in light-dark conditions (LD). The Morning-oscillators are represented by the s-LNvs and are known to be the main pacemakers, driving the pace of the clock in constant conditions (constant darkness; DD). The group of Evening-oscillators consists of the LNds, the DN1s and the 5th s-LNv and is important for the proper timing of the evening activity in LD. All of these clock neurons are not functionally independent, but form complex neuronal connections, which are highly plastic in their response to different environmental stimuli (Zeitgebers), like light or temperature. Even though a lot is known about the function and the importance of some clock neuron clusters, the exact interplay between the neurons is not fully known yet. To investigate the mechanisms, which are involved in communication processes among different clock neurons, we depolarized specific clock cells in a temporally and cell-type restricted manner using dTrpA1, a thermosensitive cation channel, which allows the depolarization of neurons by application of temperature pulses (TP) above 29°C to the intact and freely moving fly. Using different clock specific GAL4-driver lines and applying TPs at different time points within the circadian cycle in DD enabled us with the help of phase shift experiments to draw conclusions on the properties of the endogenous clock. The obtained phase shifts in locomotor behavior elicited by specific clock neuronal activation were plotted as phase response curves (PRCs). The depolarization of all clock neurons shifted the phase of activity the strongest, especially in the delay zone of the PRC. The exclusive depolarization of the M oscillators together with the l-LNvs (PDF+ neurons: s-LNvs \& l-LNvs) caused shifts in the delay and in the advance zone as well, however the advances were severely enhanced in their temporal occurrence ranging into the subjective day. We concluded that light might have inhibitory effects on the PDF+ cells in that particular part of the PRC, as typical light PRCs do not exhibit that kind of distinctive advances. By completely excluding light in the PRC-experiments of this PhD-thesis, this photic inhibitory input to the PDF+ neurons is missing, probably causing the broadened advance zone. These findings suggest the existence of an inhibitory light-input pathway to the PDF+ cells from the photoreceptive organs (Hofbauer-Buchner eyelet, photoreceptor cells of compound eyes, ocelli) or from other clock neurons, which might inhibit phase advances during the subjective day. To get an impression of the molecular state of the clock in the delay and advance zone, staining experiments against Period (PER), one of the most important core clock components, and against the neuropeptide Pigment Dispersing Factor (PDF) were performed. The cycling of PER levels mirrored the behavioral phase shifts in experimental flies, whereas the controls were widely unaffected. As just those neurons, which had been depolarized, exhibited immediate shifted PER oscillations, this effect has to be rapidly regulated in a cell-autonomous manner. However, the molecular link between clock neuron depolarization and shifts in the molecular clock's cycling is still missing. This issue was addressed by CREB (cAMP responsive element binding protein) quantification in the large ventrolateral neurons (l-LNvs), as these neurons responded unexpectedly and strongest to the artificial depolarization exhibiting a huge increase in PER levels. It had been previously suggested that CREB is involved in circadian rhythms by binding to regulatory sequences of the period gene (Belvin et al., 1999), thus activating its transcription. We were able to show, that CREB levels in the l-LNvs are under circadian regulation, as they exhibit higher CREB levels at the end of the subjective night relative to the end of the subjective day. That effect was further reinforced by artificial depolarization, independently of the time point of depolarization. Furthermore the data indicate that rises in CREB levels are coinciding with the time point of increases of PER levels in the l-LNvs, suggesting CREB being the molecular link between the neuronal electrical state and the molecular clock. Taking together, the results indicate that a temporal depolarization using dTrpA1 is able to significantly phase shift the clock on the behavioral and protein level. An artificial depolarization at the beginning of the subjective night caused phase delays, whereas a depolarization at the end of the subjective night resulted in advances. The activation of all clock neurons caused a PRC that roughly resembled a light-PRC. However, the depolarization of the PDF+ neurons led to a PRC exhibiting a shape that did not resemble that of a light-mediated PRC, indicating the complex processing ability of excitatory and inhibitory input by the circadian clock. Even though this experimental approach is highly artificial, just the exclusion of light-inputs enabled us to draw novel conclusions on the network communication and its light input pathways.}, subject = {Chronobiologie}, language = {en} } @phdthesis{Hackl2016, author = {Hackl, Thomas}, title = {A draft genome for the Venus flytrap, Dionaea muscipula : Evaluation of assembly strategies for a complex Genome - Development of novel approaches and bioinformatics solutions}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-133149}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {The Venus flytrap, \textit{Dionaea muscipula}, with its carnivorous life-style and its highly specialized snap-traps has fascinated biologist since the days of Charles Darwin. The goal of the \textit{D. muscipula} genome project is to gain comprehensive insights into the genomic landscape of this remarkable plant. The genome of the diploid Venus flytrap with an estimated size between 2.6 Gbp to 3.0 Gbp is comparatively large and comprises more than 70 \% of repetitive regions. Sequencing and assembly of genomes of this scale are even with state-of-the-art technology and software challenging. Initial sequencing and assembly of the genome was performed by the BGI (Beijing Genomics Institute) in 2011 resulting in a 3.7 Gbp draft assembly. I started my work with thorough assessment of the delivered assembly and data. My analysis showed that the BGI assembly is highly fragmented and at the same time artificially inflated due to overassembly of repetitive sequences. Furthermore, it only comprises about on third of the expected genes in full-length, rendering it inadequate for downstream analysis. In the following I sought to optimize the sequencing and assembly strategy to obtain an assembly of higher completeness and contiguity by improving data quality and assembly procedure and by developing tailored bioinformatics tools. Issues with technical biases and high levels of heterogeneity in the original data set were solved by sequencing additional short read libraries from high quality non-polymorphic DNA samples. To address contiguity and heterozygosity I examined numerous alternative assembly software packages and strategies and eventually identified ALLPATHS-LG as the most suited program for assembling the data at hand. Moreover, by utilizing digital normalization to reduce repetitive reads, I was able to substantially reduce computational demands while at the same time significantly increasing contiguity of the assembly. To improve repeat resolution and scaffolding, I started to explore the novel PacBio long read sequencing technology. Raw PacBio reads exhibit high error rates of 15 \% impeding their use for assembly. To overcome this issue, I developed the PacBio hybrid correction pipeline proovread (Hackl et al., 2014). proovread uses high coverage Illumina read data in an iterative mapping-based consensus procedure to identify and remove errors present in raw PacBio reads. In terms of sensitivity and accuracy, proovread outperforms existing software. In contrast to other correction programs, which are incapable of handling data sets of the size of D. muscipula project, proovread's flexible design allows for the efficient distribution of work load on high-performance computing clusters, thus enabling the correction of the Venus flytrap PacBio data set. Next to the assembly process itself, also the assessment of the large de novo draft assemblies, particularly with respect to coverage by available sequencing data, is difficult. While typical evaluation procedures rely on computationally extensive mapping approaches, I developed and implemented a set of tools that utilize k-mer coverage and derived values to efficiently compute coverage landscapes of large-scale assemblies and in addition allow for automated visualization of the of the obtained information in comprehensive plots. Using the developed tools to analyze preliminary assemblies and by combining my findings regarding optimizations of the assembly process, I was ultimately able to generate a high quality draft assembly for D. muscipula. I further refined the assembly by removal of redundant contigs resulting from separate assembly of heterozygous regions and additional scaffolding and gapclosing using corrected PacBio data. The final draft assembly comprises 86 × 10 3 scaffolds and has a total size of 1.45 Gbp. The difference to the estimated genomes size is well explained by collapsed repeats. At the same time, the assembly exhibits high fractions full-length gene models, corroborating the interpretation that the obtained draft assembly provides a complete and comprehensive reference for further exploration of the fascinating biology of the Venus flytrap.}, subject = {Venusfliegenfalle}, language = {en} } @phdthesis{Imes2016, author = {Imes, Dennis}, title = {Aufkl{\"a}rung der molekularen Struktur und Funktion des R-Typ Anionenkanals QUAC1 in Schließzellen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-136860}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {Zum Gasaustausch mit Ihrer Umgebung besitzen h{\"o}here Pflanzen stomat{\"a}re Komplexe. Die Turgor-getrieben Atmungs{\"o}ffnungen in der Epidermis der Bl{\"a}tter werden von zwei Schließzellen ums{\"a}umt. Um bei Trockenheit einen exzessiven Verlust von Wasser zu verhindern, synthetisieren/importieren Schließzellen das Stresshormon ABA (Abszisins{\"a}ure), das {\"u}ber eine schnelle ABA-Signalkaskade plasmamembrangebundene Ionenkan{\"a}le steuert. Dabei wird der Stomaschluss durch die Aktivit{\"a}t von R-(rapid) und S-(slow)Typ Anionenkan{\"a}len initiiert. Obwohl die R- und S-Typ Anionenstr{\"o}me in Schließzellen seit Jahrzehnten bekannt waren, konnte erst k{\"u}rzlich das Gen identifiziert werden, das f{\"u}r den S-Typ Anionenkanal (SLAC1, Slow activating Anion Channel 1) kodiert. Daraufhin wurde schnell der Zusammenhang zwischen dem Stresshormon ABA, der ABA-Signalkette und der Aktivit{\"a}t des SLAC1 Anionenkanals im heterologen Expressionssystem der X. laevis Oozyten als auch in Schließzellprotoplasten aufgekl{\"a}rt. Es konnte gezeigt werden, dass ABA durch einen zytosolischen Rezeptor/Phosphatasekomplex (RCAR1/ABI1) erkannt wird und die Aktivit{\"a}t von kalziumabh{\"a}ngigen Kinasen (CPK-Familie) sowie kalziumunabh{\"a}ngigen Kinasen der SnRK2-Familie (OST1) steuert. In Anwesenheit von ABA phosphorylieren diese Kinasen SLAC1 und sorgen so f{\"u}r die Aktivierung von Anionenstr{\"o}men und damit f{\"u}r die Initiierung des Stomaschlusses. Die genetische Herkunft der ABA-induzierten R-Typ Str{\"o}me in Schließzellen war zu Beginn der vorliegenden Arbeit noch nicht bekannt. R-Typ Str{\"o}me zeichnen sich durch eine strikte Spannungsabh{\"a}ngigkeit und sehr schnellen Aktivierungs- sowie Deaktivierungskinetiken aus. Die Charakterisierung von Verlustmutanten des Schließzell-exprimierten Gens ALMT12 (Aluminium-aktivierter Malattransporter 12) konnte in Zusammenarbeit mit der Arbeitsgruppe Martinoia (Z{\"u}rich) erste Hinweise auf die Beteiligung dieses Gens an der Stomabewegung demonstrieren. Anschließende Patch-Clamp Untersuchungen an Schließzellprotoplasten aus Wildtyppflanzen und ALMT12-Verlustmutanten zeigten, dass ALMT12 f{\"u}r die Malat-aktivierte R-Typ Anionenstromkomponente verantwortlich ist. Deshalb wurde der Anionenkanal QUAC1 (Quickly activating Anion Channel 1) benannt - in Anlehnung an die Benennung des Anionenkanals SLAC1. Mit der Identifizierung von QUAC1 in planta war es nun meine Aufgabe, die elektrischen Eigenschaften von ALMT12/QUAC1 und dessen Aktivit{\"a}tskontrolle durch die ABA-Signalkaskade im heterologen Expressionssystem der Xenopus Oozyten zu untersuchen. Protein-Protein Interaktionsstudien mit der Hilfe der Bimolekularen Fluoreszenz-Technik, sowie die Beobachtung von markant erh{\"o}hten QUAC1 Anionenstr{\"o}men in Anwesenheit der SnRK2 Kinase OST1 und den Calcium-abh{\"a}ngigen Kinasen CPK2 und CPK20, ließen den Schluss zu, dass QUAC1, ebenso wie SLAC1, unter der Kontrolle des schnellen ABA-Signalwegs steht. Eine zus{\"a}tzliche Expression des negativen Regulators ABI1 unterdr{\"u}ckte die aktivierenden Eigenschaften der QUAC1-aktivierenden Kinasen, was die Hypothese der Koregulation von S- und R-Typ Anionenkan{\"a}len durch die gleiche ABA-Signalkaskade weiter unterst{\"u}tzt. Zur weiteren Aufkl{\"a}rung der elektrischen Eigenschaften von QUAC1 wurden tiefgreifende elektrophysiologische Untersuchungen mit der Zwei-Elektroden-Spannungsklemmen Technik durchgef{\"u}hrt. Durch die Wahl von geschickten Spannungsprotokollen konnte sowohl die schnelle Aktivierungskinetik als auch die schnelle Deaktivierungskinetik von QUAC1 bestimmt und quantifiziert werden. Diese Stromantworten waren sehr {\"a}hnlich zu den R-Typ Str{\"o}men, die man von Patch-Clamp Untersuchungen an Schließzellprotoplasten kannte, was ein weiteres Indiz daf{\"u}r war, dass es sich bei QUAC1 tats{\"a}chlich um eine Komponente des R-Typ Kanals aus Schließzellen handelt. Weiterf{\"u}hrende Untersuchungen bez{\"u}glich der Spannungsabh{\"a}ngigkeit und der Selektivit{\"a}t von QUAC1 charakterisierten das Protein als einen Depolarisations-aktivierten Anionenkanal mit einer starken Pr{\"a}ferenz f{\"u}r Dicarbons{\"a}uren wie Malat und Fumarat. Zudem konnte auch eine Leitf{\"a}higkeit f{\"u}r Sulfat und Chlorid nachgewiesen werden. Interessanterweise erwies sich Malat nicht nur als ein permeierendes Ion, sondern auch als ein regulierendes Ion, welches das spannungsabh{\"a}ngige Schalten von QUAC1 maßgeblich beeinflusst. Extrazellul{\"a}res Malat verschob die Offenwahrscheinlichkeit von QUAC1 sehr stark zu negativeren Membranspannungen, so dass der Anionenkanal bereits bei typischen Ruhespannungen von Schließzellen (ca. -150 mV) aktiviert werden konnte. Eine Beladung von QUAC1-exprimierender Oozyten mit Malat bewirkte zum einen h{\"o}here Anioneneffluxstr{\"o}me, aber auch eine Verschiebung der spannungsabh{\"a}ngigen Offenwahrscheinlichkeit zu negativeren Membranpotentialen. Struktur-Funktionsanalysen sollten die umstrittene Topologie von ALMT-{\"a}hnlichen Proteinen beleuchten und die molekulare Herkunft der Phosphorylierungsaktivierung aufzeigen, sowie die Malatabh{\"a}ngigkeit und die starke Spannungsabh{\"a}ngigkeit von QUAC1 aufkl{\"a}ren. Es zeigte sich jedoch schnell, dass Punktmutationen und Deletionen im C-Terminus von QUAC1 sehr h{\"a}ufig zu nicht-funktionellen Mutanten f{\"u}hrten. Diese Tatsache weist darauf hin, dass es sich um einen hoch-strukturierten und funktionell sehr wichtigen Bereich des Anionenkanals handelt. Auch die Topologie des Anionenkanalproteins wird in der Literatur kontrovers diskutiert. Sowohl die Lage des N- und C-Terminus (extrazellul{\"a}r oder intrazellul{\"a}r), als auch die Anzahl der membrandurchspannenden Dom{\"a}nen war nicht abschließend gekl{\"a}rt. Deshalb wurde in einem Fluoreszenz-basiertem Ansatz die Lage der Termini bestimmt. Im Rahmen meiner Arbeit konnte somit eindeutig gezeigt werden, dass sich beide Termini im Zytosol der Zelle befinden. Auf Grundlage von Modellen aus der Literatur und meiner Topologiebestimmungen konnte schließlich ein erweitertes Modell zur Struktur von QUAC1 entwickelt werden. Dieses Modell kann in Zukunft als Ausgangspunkt f{\"u}r weiterf{\"u}hrende Struktur-Funktionsanalysen dienen. Diese Arbeit hat somit gezeigt, dass das Gen QUAC1 tats{\"a}chlich eine Komponente der R-Typ Str{\"o}me in Schließzellen kodiert. Ebenso wie SLAC1 steht der Malat-induzierte Anionenkanal QUAC1 unter der Kontrolle der schnellen ABA-Signalkaskade. In Zukunft bleibt zu kl{\"a}ren, welche weiteren Gene f{\"u}r die R-Typ Kanalproteine in Schließzellen kodieren und welche strukturelle Grundlage f{\"u}r die besonderen Eigenschaften von QUAC1 hinsichtlich seiner schnellen Kinetiken, seiner Selektivit{\"a}t und Aktivierbarkeit durch Malat.}, subject = {Ackerschmalwand}, language = {de} } @phdthesis{Jung2016, author = {Jung, Lisa Anna}, title = {Targeting MYC Function as a Strategy for Tumor Therapy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-146993}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2016}, abstract = {A large fraction of human tumors exhibits aberrant expression of the oncoprotein MYC. As a transcription factor regulating various cellular processes, MYC is also crucially involved in normal development. Direct targeting of MYC has been a major challenge for molecular cancer drug discovery. The proof of principle that its inhibition is nevertheless feasible came from in vivo studies using a dominant-negative allele of MYC termed OmoMYC. Systemic expression of OmoMYC triggered long-term tumor regression with mild and fully reversible side effects on normal tissues. In this study, OmoMYC's mode of action was investigated combining methods of structural biology and functional genomics to elucidate how it is able to preferentially affect oncogenic functions of MYC. The crystal structure of the OmoMYC homodimer, both in the free and the E-box-bound state, was determined, which revealed that OmoMYC forms a stable homodimer, and as such, recognizes DNA via the same base-specific DNA contacts as the MYC/MAX heterodimer. OmoMYC binds DNA with an equally high affinity as MYC/MAX complexes. RNA-sequencing showed that OmoMYC blunts both MYC-dependent transcriptional activation and repression. Genome-wide DNA-binding studies using chromatin immunoprecipitation followed by high-throughput sequencing revealed that OmoMYC competes with MYC/MAX complexes on chromatin, thereby reducing their occupancy at consensus DNA binding sites. The most prominent decrease in MYC binding was seen at low-affinity promoters, which were invaded by MYC at oncogenic levels. Strikingly, gene set enrichment analyses using OmoMYC-regulated genes enabled the identification of tumor subgroups with high MYC levels in multiple tumor entities. Together with a targeted shRNA screen, this identified novel targets for the eradication of MYC-driven tumors, such as ATAD3A, BOP1, and ADRM1. In summary, the findings suggest that OmoMYC specifically inhibits tumor cell growth by attenuating the expression of rate-limiting proteins in cellular processes that respond to elevated levels of MYC protein using a DNA-competitive mechanism. This opens up novel strategies to target oncogenic MYC functions for tumor therapy.}, subject = {Myc}, language = {en} }