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- Theodor-Boveri-Institut für Biowissenschaften (98) (remove)
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- N-2030-2015 (1)
Cells exposed to extreme physicochemical or mechanical stimuli die in an uncontrollable manner, as a result of their immediate structural breakdown. Such an unavoidable variant of cellular demise is generally referred to as 'accidental cell death' (ACD). In most settings, however, cell death is initiated by a genetically encoded apparatus, correlating with the fact that its course can be altered by pharmacologic or genetic interventions. 'Regulated cell death' (RCD) can occur as part of physiologic programs or can be activated once adaptive responses to perturbations of the extracellular or intracellular microenvironment fail. The biochemical phenomena that accompany RCD may be harnessed to classify it into a few subtypes, which often (but not always) exhibit stereotyped morphologic features. Nonetheless, efficiently inhibiting the processes that are commonly thought to cause RCD, such as the activation of executioner caspases in the course of apoptosis, does not exert true cytoprotective effects in the mammalian system, but simply alters the kinetics of cellular demise as it shifts its morphologic and biochemical correlates. Conversely, bona fide cytoprotection can be achieved by inhibiting the transduction of lethal signals in the early phases of the process, when adaptive responses are still operational. Thus, the mechanisms that truly execute RCD may be less understood, less inhibitable and perhaps more homogeneous than previously thought. Here, the Nomenclature Committee on Cell Death formulates a set of recommendations to help scientists and researchers to discriminate between essential and accessory aspects of cell death.
Abstract
Background
HLA-G is a non-classical MHC class I molecule which exerts strong immunosuppressive effects on various immune cells. Several membrane-bound and soluble isoforms are known. Physiologically, HLA-G is predominantly expressed in the placenta, where it contributes to protecting the semi-allogeneic embryo from rejection by the maternal immune system. However, HLA-G is also often upregulated during tumourigenesis, such as in ovarian cancer. The aim of this thesis is to investigate how soluble HLA-G may contribute to local immunosuppression in ovarian carcinomas, and to characterize HLA-G expression in different ovarian carcinoma subtypes and metastases.
Results
As reported by others, physiological HLA-G expression is restricted to few tissues, such as placenta and testes. Here, HLA-G was also detected in the medulla of the adrenal gland. In contrast, HLA-G expression was frequently detected in tumours of all assessed subtypes of ovarian carcinomas (serous, mucinous, endometrioid and clear cell). Highest expression levels were detected in high-grade serous carcinomas. In primary tumours, expression of HLA-G correlated with expression of classical MHC class I molecules HLA-A, -B and -C. Surprisingly, high levels of HLA-G were also detected on dendritic cells in local lymph nodes. As no expression of HLA-G was inducible in monocytes or dendritic cells from healthy donors in response to IL-10 or IL-4, we speculated that tumour-derived soluble HLA-G might be transferred to dendritic cells via the lymphatic system. Accordingly, high levels of tumour-derived soluble HLA-G were detected in ovarian cancer ascites samples. In vitro, dendritic cells expanded in the presence of IL-4, IL-10 and GM-CSF (DC-10) were particularly prone to binding high amounts of soluble HLA-G via ILT receptors. Furthermore, HLA-G loaded DC-10 cells inhibited the proliferation of CD8 effector cells and induced regulatory T cells, even when the DC-10 cells had been fixed with paraformaldehyde.
Conclusion
The immunosuppressive molecule HLA-G is overexpressed in high-grade serous ovarian carcinomas, which account for the majority of ovarian cancers. In particular tumours with a high mutational burden and intact expression of classical, immunogenic MHC class Ia molecules may use HLA-G to escape from immunosurveillance. Additionally, tumour-derived soluble HLA-G may inhibit adaptive immune responses by binding to dendritic cells in local lymph nodes. Dendritic cells usually play a decisive role in the initiation of adaptive anti-tumour immune responses by presenting tumour antigens to cytotoxic T cells. In contrast, dendritic cells loaded with soluble HLA-G inhibit the proliferation of effector T cells and promote the induction of regulatory T cells. Thus, soluble HLA-G that is transferred to dendritic cells via lymphatic vessels may enable ovarian carcinomas to remotely suppress anti-tumour immune responses in local lymph nodes. This novel immune-escape mechanism may also exist in other solid tumours that express HLA-G.
Eine wichtige Standardtherapie in der modernen Behandlung von Krebserkrankungen ist die Strahlentherapie, in welcher Tumorzellen mittels ionisierender Strahlung geschädigt und abgetötet werden. Dabei soll die Schädigung des umgebenden Normalgewebes möglichst gering gehalten und trotzdem eine maximale Schädigung des Tumorgewebes erreicht werden. Deshalb sind neue Strategien zur Steigerung der Radiosensitivität des Tumorgewebes sehr wichtig, die es erlauben, bei gleicher Dosis eine verstärkte Strahlenantwort im Tumorgewebe zu erreichen. Hier kommen zunehmend sog. Radiosensibilisatoren zum Einsatz, die unter anderem onkogene Signalwege in den Tumorzellen inhibieren. Der PI3K/Akt/mTOR Signalweg stellt hierbei einen wichtigen Ansatzpunkt dar, da er in vielen Tumorentitäten dereguliert vorliegt und diese Signalkaskade bekanntermaßen einen Einfluss auf die zelluläre Strahlensensitivität hat. Obwohl es für diesen Signalweg schon eine Reihe von Inhibitoren gibt, für die bereits neben einer anti-proliferativen Wirkung auch ein radiosensibilisierender Effekt nachgewiesen wurde (z.B. Wortmannin und Rapamycin), machten eine geringe Spezifität, starke Nebenwirkungen und negative Rückkopplungsmechanismen im Signalweg, die die Wirkung des Inhibitors kompensieren, die Entwicklung neuer Inhibitoren notwendig. Das Imidazoquinolinderivat NVP-BEZ235 inhibiert den PI3K/Akt/mTOR Signalweg an mehreren Stellen gleichzeitig, indem es kompetitiv zu ATP das katalytische Zentrum von PI3K und mTOR blockiert. Für diesen kleinmolekularen, dualen Inhibitor gibt es bereits erste vielversprechende Forschungsergebnisse hinsichtlich einer radiosensibilisierenden Wirkung, allerdings sind die zugrunde liegenden molekularbiologischen Mechanismen noch nicht vollständig geklärt. Deshalb war das Ziel der vorliegenden Dissertation, in drei Teilprojekten mehrere Aspekte der NVP-BEZ235-induzierten Radiosensibilisierung aufzuklären: a) Einfluss des Behandlungsschemas für NVP-BEZ235 in vier Glioblastomzelllinien mit unterschiedlichem PTEN und TP53 Mutationsstatus, b) Einfluss der Sauerstoffversorgung (Hypoxie, Normoxie, reoxygeniert nach Bestrahlung) auf die strahlensensibilisierende Wirkung von NVP-BEZ235 in zwei Mammakarzinomzelllinien, c) gleichzeitige Inhibierung des MAPK Signalwegs durch AZD6244 und der PI3K/Akt/mTOR Signalkaskade durch NVP-BEZ235 in zwei Zelllinien mit unter-schiedlichem Mutationsstatus aus verschiedenen Tumorentitäten, um synergistische Effekte zu untersuchen. Um diese Fragestellungen zu beantworten, wurde im Rahmen - 142 -
der Dissertation eine Auswahl an humanen Tumorzelllinien mit unterschiedlich deregulierten Signalwegen bearbeitet. Dabei wurde die Expression von Schlüsselproteinen der MAPK/Erk und der PI3K/Akt/mTOR Signalwege analysiert und mit zellbiologischen Daten verschiedener phänotypischer Endpunkte nach Inhibitor Behandlung und Bestrahlung integriert (Proliferationsrate, klonogenes Überleben, Zellzyklusaberrationen, DNS-Schäden und -Reparatur, Zelltod und Autophagie).
Im Teilprojekt zum Behandlungsschema der NVP-BEZ235 Inhibierung und Bestrahlung konnte in vier Glioblastomzelllinien mit Behandlungsschema I (NVP-BEZ235 Behandlung 24 Stunden vor Bestrahlung) kein radiosensibilisierender Effekt hinsichtlich klonogenem Überleben nachgewiesen werden, wohingegen Behandlungsschema II (NVP-BEZ235 Behandlung 1 h vor und im Anschluss an die Bestrahlung) unabhängig vom Mutationsstatus in allen vier Zelllinien eine starke Radiosensibilisierung bewirkte. Auf molekularer Ebene war zwischen beiden Behandlungsschemata für das antiapoptotische Protein Akt ein großer Unterschied zu beobachten, welches bei Behandlung nach Schema I zum Zeitpunkt der Bestrahlung überaktiviert, nach Behandlung mit Schema II hingegen inhibiert war. Weiterhin resultierte Behandlungsschema I in einem erhöhten Anteil der Zellen in der radioresistenteren G1-Phase des Zellzyklus zum Zeit-punkt der Bestrahlung. Behandlungsschema II führte hingegen nach Bestrahlung zu einer verminderten Expression des Reparaturproteins Rad51 und damit zu verminderter DNS-Schadensreparatur und schließlich zu einem stabilen Arrest in der G2/M-Phase des Zellzyklus sowie zu verstärkter Apoptose (erhöhte Spaltung von PARP, erhöhter Anteil hypodiploider Zellen). Somit zeigen diese Ergebnisse, dass unabhängig vom PTEN und TP53 Mutationsstatus eine Radiosensibilisierung nur durch das Behandlungsschema II erreicht werden konnte. Ferner deuten die Ergebnisse der Proteinexpression darauf hin, dass durch NVP-BEZ235 ein negativer Rückkopplungsmechanismus ausgelöst wird, wodurch die PI3K/Akt/mTOR Signalkaskade 24h nach Zugabe des Inhibitors aktiviert und synergistische Effekte mit ionisierender Bestrahlung aufgehoben wurden.
Im Teilprojekt zur Abhängigkeit der NVP-BEZ235 Inhibition vom Sauerstoffgehalt wurden in den beiden Brustkrebszelllinien MCF-7 (ER-positiv) und TN MDA-MB-231 (TP53 mutiert) normoxische, hypoxische und nach Bestrahlung reoxygenierte Kulturbedingungen im Hinblick auf die Koloniebildungsfähigkeit nach NVP-BEZ235 Behandlung und Bestrahlung untersucht. Die beobachtete Radiosensibilisierung war unter allen getesteten Bedingungen auf gleichem Niveau. In beiden Zelllinien bewirkte NVP-BEZ235 eine Inhibition des antiapoptotischen HIF-1α Proteins, eine stabile Inaktivierung des PI3K/Akt/mTOR Signalweges und eine Aktivierung der Autophagie. Nach Bestrahlung waren zudem erhöhte residuale DNS-Schäden und ein stabiler Arrest in der G2/M-Phase des Zellzyklus unter allen Oxygenierungsbedingungen in beiden Zelllinien zu beobachten. Eine Apoptose Induktion (Spaltung von PARP, hypodiploide Zellen) trat nur in der TP53 wildtypischen MCF-7 Zelllinie nach NVP-BEZ235 Behandlung auf. Somit konnte in beiden Zelllinien in allen pathophysiologisch relevanten Oxygenierungszuständen eine sauerstoffunabhängige Radiosensibilisierung durch NVP-BEZ235 gezeigt werden.
Der bisher nicht erforschte Aspekt zur synergistischen Wirkung des MEK Inhibitors AZD6244 und des dualen PI3K/Akt/mTOR Inhibitors NVP-BEZ235 nach Bestrahlung wurde an der Glioblastomzelllinie SNB19 und der Lungenkarzinomzelllinie A549 anhand der Koloniebildungsfähigkeit der behandelten Zellen untersucht. Eine Behandlung mit dem MEK Inhibitor bewirkte lediglich eine moderate Radiosensibilisierung, wohin-gegen der duale PI3K/Akt/mTOR Inhibitor beide Zelllinien in stärkerem Maße sensibilisierte. Eine Kombination beider Inhibitoren resultierte bei keiner Zelllinie in einer Verstärkung der durch NVP-BEZ235 induzierten Radiosensibilisierung. Eine mögliche Erklärung für die fehlende Synergie im Bezug auf die Radiosensibilisierung können die gegensätzlichen Effekte der beiden Inhibitoren auf den Zellzyklus sein. Auf Proteinebene führte eine simultane Behandlung mit beiden Substanzen zur Inhibition beider Signalwege. Darüber hinaus war in SNB19 Zellen eine verstärkte Dephosphorylierung von Rb und ein erhöhter Anteil an G1-Phase Zellen bei kombinierter Gabe der Inhibitoren zu beobachten.
Im Rahmen dieser Arbeit konnte somit die radiosensibilisierende Wirkung von NVP-BEZ235 in Abhängigkeit vom Behandlungsschema gezeigt werden. Ferner wurde nachgewiesen, dass die Radiosensibilisierung unabhängig von der Sauerstoffversorgung sowie von den PTEN und TP53 Mutationsstatus der Tumorzellen ist. Die kombinierte Inhibition der MAPK und PI3K/Akt/mTOR Signalwege resultierte zwar in einem verstärkten zytostatischen, aber nicht in einem verstärkten radiosensibilisierenden Effekt. Da allerdings eine große Anzahl verschiedener Inhibitoren der MAPK/Erk und der PI3K/Akt/mTOR Signalkaskade verfügbar sind, sollte die kombinatorische Inhibition dieser Signalwege systematisch weiter verfolgt werden. Die vorliegende Arbeit liefert auch weitere grundlegende Erkenntnisse zu den molekularen Mechanismen der Radiosensibilisierung durch NVP-BEZ235, die auch auf Verknüpfungen und Wechselwirkungen mit anderen als den bisher bekannten Proteinen hindeuten, die für jeden Inhibitor aufgeklärt werden müssen, um eine effektive radiosensibilisierende Wirkung vorher-sagen zu können.
To trigger innate behavior, sensory neural networks are pre-tuned to extract biologically relevant stimuli. Many male-female or insect-plant interactions depend on this phenomenon. Especially communication among individuals within social groups depends on innate behaviors. One example is the efficient recruitment of nest mates by successful bumblebee foragers. Returning foragers release a recruitment pheromone in the nest while they perform a ‘dance’ behavior to activate unemployed nest mates. A major component of this pheromone is the sesquiterpenoid farnesol. How farnesol is processed and perceived by the olfactory system, has not yet been identified. It is much likely that processing farnesol involves an innate mechanism for the extraction of relevant information to trigger a fast and reliable behavioral response. To test this hypothesis, we used population response analyses of 100 antennal lobe (AL) neurons recorded in alive bumblebee workers under repeated stimulation with four behaviorally different, but chemically related odorants (geraniol, citronellol, citronellal and farnesol). The analysis identified a unique neural representation of the recruitment pheromone component compared to the other odorants that are predominantly emitted by flowers. The farnesol induced population activity in the AL allowed a reliable separation of farnesol from all other chemically related odor stimuli we tested. We conclude that the farnesol induced population activity may reflect a predetermined representation within the AL-neural network allowing efficient and fast extraction of a behaviorally relevant stimulus. Furthermore, the results show that population response analyses of multiple single AL-units may provide a powerful tool to identify distinct representations of behaviorally relevant odors.
More than 100 years ago, Karl von Frisch showed that honeybee workers learn and discriminate colors. Since then, many studies confirmed the color learning capabilities of females from various hymenopteran species. Yet, little is known about visual learning and memory in males despite the fact that in most bee species males must take care of their own needs and must find rewarding flowers to obtain food. Here we used the proboscis extension response (PER) paradigm to study the color learning capacities of workers and drones of the bumblebee, Bombus terrestris. Light stimuli were paired with sucrose reward delivered to the insects’ antennae and inducing a reflexive extension of the proboscis. We evaluated color learning (i.e. conditioned PER to color stimuli) in absolute and differential conditioning protocols and mid-term memory retention was measured two hours after conditioning. Different monochromatic light stimuli in combination with neutral density filters were used to ensure that the bumblebees could only use chromatic and not achromatic (e.g. brightness) information. Furthermore, we tested if bees were able to transfer the learned information from the PER conditioning to a novel discrimination task in a Y-maze. Both workers and drones were capable of learning and discriminating between monochromatic light stimuli and retrieved the learned stimulus after two hours. Drones performed as well as workers during conditioning and in the memory test, but failed in the transfer test in contrast to workers. Our data clearly show that bumblebees can learn to associate a color stimulus with a sugar reward in PER conditioning and that both workers and drones reach similar acquisition and mid-term retention performances. Additionally, we provide evidence that only workers transfer the learned information from a Pavlovian to an operant situation.
The Hey protein family, comprising Hey1, Hey2 and HeyL in mammals, conveys Notch signals in many cell types. The helix-loop-helix (HLH) domain as well as the Orange domain, mediate homo- and heterodimerization of these transcription factors. Although distinct interaction partners have been identified so far, their physiological relevance for Hey functions is still largely unclear. Using a tandem affinity purification approach and mass spectrometry analysis we identified members of an ubiquitin E3-ligase complex consisting of FBXO45, PAM and SKP1 as novel Hey1 associated proteins. There is a direct interaction between Hey1 and FBXO45, whereas FBXO45 is needed to mediate indirect Hey1 binding to SKP1. Expression of Hey1 induces translocation of FBXO45 and PAM into the nucleus. Hey1 is a short-lived protein that is degraded by the proteasome, but there is no evidence for FBXO45-dependent ubiquitination of Hey1. On the contrary, Hey1 mediated nuclear translocation of FBXO45 and its associated ubiquitin ligase complex may extend its spectrum to additional nuclear targets triggering their ubiquitination. This suggests a novel mechanism of action for Hey bHLH factors.
Background
Meta-barcoding of mixed pollen samples constitutes a suitable alternative to conventional pollen identification via light microscopy. Current approaches however have limitations in practicability due to low sample throughput and/or inefficient processing methods, e.g. separate steps for amplification and sample indexing.
Results
We thus developed a new primer-adapter design for high throughput sequencing with the Illumina technology that remedies these issues. It uses a dual-indexing strategy, where sample-specific combinations of forward and reverse identifiers attached to the barcode marker allow high sample throughput with a single sequencing run. It does not require further adapter ligation steps after amplification. We applied this protocol to 384 pollen samples collected by solitary bees and sequenced all samples together on a single Illumina MiSeq v2 flow cell. According to rarefaction curves, 2,000–3,000 high quality reads per sample were sufficient to assess the complete diversity of 95% of the samples. We were able to detect 650 different plant taxa in total, of which 95% were classified at the species level. Together with the laboratory protocol, we also present an update of the reference database used by the classifier software, which increases the total number of covered global plant species included in the database from 37,403 to 72,325 (93% increase).
Conclusions
This study thus offers improvements for the laboratory and bioinformatical workflow to existing approaches regarding data quantity and quality as well as processing effort and cost-effectiveness. Although only tested for pollen samples, it is furthermore applicable to other research questions requiring plant identification in mixed and challenging samples.
Tumor angiogenesis is a process which is traditionally regarded as the tumor’s response to low nutrient supply occurring under hypoxic conditions. However, hypoxia is not a pre-requisite for angiogenesis. The fact that even single tumor cells or small tumor cell aggregates are capable of attracting blood vessels reveals the early metastatic capability of tumor cells. This review sheds light on the hypoxia-independent mechanisms of tumor angiogenesis in melanoma.
The obligate intracellular bacterium Chlamydia trachomatis invades into host cells to replicate inside a membrane-bound vacuole called inclusion. Multiple different host proteins are recruited to the inclusion and are functionally modulated to support chlamydial development. Invaded and replicating Chlamydia induces a long-lasting activation of the PI3 kinase signaling pathway that is required for efficient replication. We identified the cell surface tyrosine kinase EphrinA2 receptor (EphA2) as a chlamydial adherence and invasion receptor that induces PI3 kinase (PI3K) activation, promoting chlamydial replication. Interfering with binding of C. trachomatis serovar L2 (Ctr) to EphA2, downregulation of EphA2 expression or inhibition of EphA2 activity significantly reduced Ctr infection. Ctr interacts with and activates EphA2 on the cell surface resulting in Ctr and receptor internalization. During chlamydial replication, EphA2 remains active accumulating around the inclusion and interacts with the p85 regulatory subunit of PI3K to support the activation of the PI3K/Akt signaling pathway that is required for normal chlamydial development. Overexpression of full length EphA2, but not the mutant form lacking the intracellular cytoplasmic domain, enhanced PI3K activation and Ctr infection. Despite the depletion of EphA2 from the cell surface, Ctr infection induces upregulation of EphA2 through the activation of the ERK pathway, which keeps the infected cell in an apoptosis-resistant state. The significance of EphA2 as an entry and intracellular signaling receptor was also observed with the urogenital C. trachomatis-serovar D. Our findings provide the first evidence for a host cell surface receptor that is exploited for invasion as well as for receptor-mediated intracellular signaling to facilitate chlamydial replication. In addition, the engagement of a cell surface receptor at the inclusion membrane is a new mechanism by which Chlamydia subverts the host cell and induces apoptosis resistance.
Background
Myc proteins are essential regulators of animal growth during normal development, and their deregulation is one of the main driving factors of human malignancies. They function as transcription factors that (in vertebrates) control many growth- and proliferation-associated genes, and in some contexts contribute to global gene regulation.
Results
We combine chromatin immunoprecipitation-sequencing (ChIPseq) and RNAseq approaches in Drosophila tissue culture cells to identify a core set of less than 500 Myc target genes, whose salient function resides in the control of ribosome biogenesis. Among these genes we find the non-coding snoRNA genes as a large novel class of Myc targets. All assayed snoRNAs are affected by Myc, and many of them are subject to direct transcriptional activation by Myc, both in Drosophila and in vertebrates. The loss of snoRNAs impairs growth during normal development, whereas their overexpression increases tumor mass in a model for neuronal tumors.
Conclusions
This work shows that Myc acts as a master regulator of snoRNP biogenesis. In addition, in combination with recent observations of snoRNA involvement in human cancer, it raises the possibility that Myc’s transforming effects are partially mediated by this class of non-coding transcripts.