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Brain function relies on accurate information transfer at chemical synapses. At the presynaptic active zone (AZ) a variety of specialized proteins are assembled to complex architectures, which set the basis for speed, precision and plasticity of synaptic transmission. Calcium channels are pivotal for the initiation of excitation-secretion coupling and, correspondingly, capture a central position at the AZ. Combining quantitative functional studies with modeling approaches has provided predictions of channel properties, numbers and even positions on the nanometer scale. However, elucidating the nanoscopic organization of the surrounding protein network requires direct ultrastructural access. Without this information, knowledge of molecular synaptic structure-function relationships remains incomplete. Recently, super-resolution microscopy (SRM) techniques have begun to enter the neurosciences. These approaches combine high spatial resolution with the molecular specificity of fluorescence microscopy. Here, we discuss how SRM can be used to obtain information on the organization of AZ proteins
Herpes simplex virus type-1 (HSV-1) is one of the most widespread pathogens among humans. Although the structure of HSV-1 has been extensively investigated, the precise organization of tegument and envelope proteins remains elusive. Here we use super-resolution imaging by direct stochastic optical reconstruction microscopy (dSTORM) in combination with a model-based analysis of single-molecule localization data, to determine the position of protein layers within virus particles. We resolve different protein layers within individual HSV-1 particles using multi-colour dSTORM imaging and discriminate envelope-anchored glycoproteins from tegument proteins, both in purified virions and in virions present in infected cells. Precise characterization of HSV-1 structure was achieved by particle averaging of purified viruses and model-based analysis of the radial distribution of the tegument proteins VP16, VP1/2 and pUL37, and envelope protein gD. From this data, we propose a model of the protein organization inside the tegument.
Der Kehlkopf ist ein stimmerzeugendes knorpelhaltiges Organ und spielt eine wichtige Rolle in der Atemfunktion und beim aspirationsfreien Schluckakt. Funktionsstörungen des Kehlkopfs wie Stimmbandlähmungen werden durch Schädigungen des Kehlkopfnervs nach operativen Eingriffen und Halsverletzungen hervorgerufen. Des Weiteren führen durch Traumen, Teil- und komplette Resektionen verursachte Substanzdefekte des Kehlkopfs zu Funktionsverlusten. Die hierfür notwendigen und komplexen Rekonstruktionen werden durch das schlechte Regenerationspotential von Knorpelgewebe eingeschränkt und können nur bedingt durch synthetische Ersatzmaterialen oder körpereigenes Ersatzgewebe bewerkstelligt werden. Ist es möglich, mit Hilfe des Tissue Engineerings aus körpereigenen Stammzellen und biokompatiblen Trägermaterialien implantierbares Knorpelersatzgewebe herzustellen, welches zur dauerhaften Wiederherstellung der Kehlkopffunktionen eingesetzt werden kann? Die zusätzliche Markierung von Stammzellen mit superparamagnetischen Eisenoxidnanopartikeln (VSOP) als Zellmarker bietet die Möglichkeit der Detektion und der Verfolgung der Zellen mittels nicht-invasiver Nachweismethoden nach deren Implantation. Ist die Verwendung dieser Nanopartikel ohne negative Folgen für die Stammzellen möglich und sind diese für den Einsatz in der Laryngologie geeignet?
Fettgewebsstammzellen (ASC) wurden aus humanem Liposuktionsmaterial und Kaninchen-Nackenfett isoliert und expandiert. Die Zellen wurden in Hydrogelkombinationen aus Kollagen Typ-I, Agarose, Fibrin und Hyaluronsäure eingebettet und mit den chondrogenen Wachstumsfaktoren TGF-β3, BMP-6 und IGF-I über 14 Tage differenziert. Anschließend wurden diese Zell-Hydrogelkonstrukte bezüglich Morphologie, extrazellulärer Matrixanreicherung und knorpelspezifischer Genexpression histologisch, immunhistochemisch und molekularbiologisch analysiert. In einem weiteren Schritt wurden die Integration der Zell-Hydrogelkonstrukte in natives Knorpelgewebe sowie die Defektdeckung in einem in vitro- und einem in vivo-Knorpeldefektmodell mit vor- und nicht-vordifferenzierten Zell-Hydrogelkonstrukten untersucht. Die Analyse möglicher zyto- und genotoxischer Effekte von VSOP sowie des Einflusses der Markierung von ASC mit VSOP auf die Proliferation, Migration und das Multidifferenzierungspotential erfolgte nach der Markierung der Zellen mit unterschiedlichen VSOP-Konzentrationen. Außerdem wurden VSOP-markierte ASC in Kaninchenstimmlippen injiziert und die Nachweisbarkeit dieser Zellen im Injektionsareal histologisch und mittels Magnetresonanztomographie (MRT) untersucht.
Nach 14-tägiger chondrogener Differenzierung wurde in den Zell-Hydrogelkonstrukten eine knorpelähnliche Morphologie, die Anreicherung knorpelspezifischer Matrixproteine und die Expression chondrogener Markergene nachgewiesen. Die Kombination der chondrogenen Wachstumsfaktoren zeigte keinen verstärkenden Einfluss auf die Chondrogenese von ASC. Hydrogele aus Kollagen Typ I und Hyaluronsäure wiesen die stärkste extrazelluläre Matrixanreicherung auf. Bei den agarosefreien Hydrogelen war eine ausgeprägte Gelschrumpfung auffällig. In den beiden Knorpeldefektmodellen konnte weder eine Integration der Zell-Hydrogelkonstrukte in den Nativknorpel noch eine vollständige Defektdeckung nachgewiesen werden. Nach der Markierung von ASC mit VSOP zeigte sich bei der höchsten Konzentration von 1,5 mM eine genotoxische Wirkung. Zytotoxische Effekte sowie Einflüsse der Markierung auf die Proliferation, Migration und das Multidifferenzierungspotential von ASC waren nicht nachweisbar. VSOP-markierte ASC konnten nach deren Injektion in Kaninchenstimmlippen im Injektionsareal nur vereinzelt mittels MRT und histologisch nachgewiesen werden.
Es ist möglich, mit Hilfe des Tissue Engineerings aus körpereigenen Stammzellen und biokompatiblen Trägermaterialien implantierbares knorpelähnliches Gewebe herzustellen. Dabei begünstigen agarosefreie Trägermaterialien die chondrogene Differenzierung von ASC. Diese könnte durch die jeweilige Erhöhung der Zelldichte und Wachstumsfaktorkonzentrationen sowie die Verlängerung der Induktionszeit verstärkt werden. Eine mögliche klinische Anwendung dieser knorpelähnlichen Gewebe in der Laryngologie ist jedoch durch deren Schrumpfung wie auch mangelnde Integration und Defektdeckung noch weit entfernt. Aufgrund ihrer genotoxischen Wirkung kann eine Verwendung von VSOP als Zellmarker auch unterhalb von 1,5 mM ohne negative Folgen für den Organismus nicht sicher ausgeschlossen werden. Der inhomogene Gewebekontrast im Kehlkopf, die schlechte Auflösung im MRT und die geringe Größe von VSOP erschweren die Nachweisbarkeit und Verfolgung markierter Zellen mittels MRT. Daher sind andere nicht-invasive Nachweismethoden für die Verwendung von VSOP im Kehlkopf zu evaluieren. Der möglichen Anwendung dieser knorpelähnlichen Gewebe und VSOP in der rekonstruktiven Laryngologie muss eine erfolgreiche Optimierung und ausführliche positive Validierung in klinischen Tests vorausgehen.
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.
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.
The flagellate Trypanosoma brucei, which causes the sleeping sickness when infecting a mammalian host, goes through an intricate life cycle. It has a rather complex propulsion mechanism and swims in diverse microenvironments. These continuously exert selective pressure, to which the trypanosome adjusts with its architecture and behavior. As a result, the trypanosome assumes a diversity of complex morphotypes during its life cycle. However, although cell biology has detailed form and function of most of them, experimental data on the dynamic behavior and development of most morphotypes is lacking. Here we show that simulation science can predict intermediate cell designs by conducting specific and controlled modifications of an accurate, nature-inspired cell model, which we developed using information from live cell analyses. The cell models account for several important characteristics of the real trypanosomal morphotypes, such as the geometry and elastic properties of the cell body, and their swimming mechanism using an eukaryotic flagellum. We introduce an elastic network model for the cell body, including bending rigidity and simulate swimming in a fluid environment, using the mesoscale simulation technique called multi-particle collision dynamics. The in silico trypanosome of the bloodstream form displays the characteristic in vivo rotational and translational motility pattern that is crucial for survival and virulence in the vertebrate host. Moreover, our model accurately simulates the trypanosome's tumbling and backward motion. We show that the distinctive course of the attached flagellum around the cell body is one important aspect to produce the observed swimming behavior in a viscous fluid, and also required to reach the maximal swimming velocity. Changing details of the flagellar attachment generates less efficient swimmers. We also simulate different morphotypes that occur during the parasite's development in the tsetse fly, and predict a flagellar course we have not been able to measure in experiments so far.
Sigma factor SigB is crucial to mediate Staphylococcus aureus adaptation during chronic infections
(2015)
Staphylococcus aureus is a major human pathogen that causes a range of infections from acute invasive to chronic and difficult-to-treat. Infection strategies associated with persisting S. aureus infections are bacterial host cell invasion and the bacterial ability to dynamically change phenotypes from the aggressive wild-type to small colony variants (SCVs), which are adapted for intracellular long-term persistence. The underlying mechanisms of the bacterial switching and adaptation mechanisms appear to be very dynamic, but are largely unknown. Here, we analyzed the role and the crosstalk of the global S. aureus regulators agr, sarA and SigB by generating single, double and triple mutants, and testing them with proteome analysis and in different in vitro and in vivo infection models. We were able to demonstrate that SigB is the crucial factor for adaptation in chronic infections. During acute infection, the bacteria require the simultaneous action of the agr and sarA loci to defend against invading immune cells by causing inflammation and cytotoxicity and to escape from phagosomes in their host cells that enable them to settle an infection at high bacterial density. To persist intracellularly the bacteria subsequently need to silence agr and sarA. Indeed agr and sarA deletion mutants expressed a much lower number of virulence factors and could persist at high numbers intracellularly. SigB plays a crucial function to promote bacterial intracellular persistence. In fact, \(\Delta\)sigB-mutants did not generate SCVs and were completely cleared by the host cells within a few days. In this study we identified SigB as an essential factor that enables the bacteria to switch from the highly aggressive phenotype that settles an acute infection to a silent SCV-phenotype that allows for long-term intracellular persistence. Consequently, the SigB-operon represents a possible target to develop preventive and therapeutic strategies against chronic and therapy-refractory infections.
Deregulated MYC expression contributes to cellular transformation as well as progression and
maintenance of human tumours. Interestingly, in the absence of additional genetic alterations,
potentially oncogenic levels of MYC sensitise cells to a variety of apoptotic stimuli. Hence, MYC-induced
apoptosis has long been recognised as a major barrier against cancer development.
However, it is largely unknown how cells discriminate physiological from supraphysiological levels
of MYC in order to execute an appropriate biological response.
The experiments described in this thesis demonstrate that induction of apoptosis in mammary
epithelial cells depends on the repressive actions of MYC/MIZ1 complexes. Analysis of gene
expression profiles and ChIP-sequencing experiments reveals that high levels of MYC are required
to invade low-affinity binding sites and repress target genes of the serum response factor SRF.
These genes are involved in cytoskeletal dynamics as well as cell adhesion processes and are likely
needed to transmit survival signals to the AKT kinase. Restoration of SRF activity rescues MIZ1-
dependent gene repression and increases AKT phosphorylation and downstream function.
Collectively, these results indicate that association with MIZ1 leads to an expansion of MYC’s
transcriptional response that allows sensing of oncogenic levels, which points towards a tumour-suppressive
role for the MYC/MIZ1 complex in epithelial cells.
Background
Defence mechanisms of organisms are shaped by their lifestyle, environment and pathogen pressure. Carpenter ants are social insects which live in huge colonies comprising genetically closely related individuals in high densities within nests. This lifestyle potentially facilitates the rapid spread of pathogens between individuals. In concert with their innate immune system, social insects may apply external immune defences to manipulate the microbial community among individuals and within nests. Additionally, carpenter ants carry a mutualistic intracellular and obligate endosymbiotic bacterium, possibly maintained and regulated by the innate immune system. Thus, different selective forces could shape internal immune defences of Camponotus floridanus.
Results
The immune gene repertoire of C. floridanus was investigated by re-evaluating its genome sequence combined with a full transcriptome analysis of immune challenged and control animals using Illumina sequencing. The genome was re-annotated by mapping transcriptome reads and masking repeats. A total of 978 protein sequences were characterised further by annotating functional domains, leading to a change in their original annotation regarding function and domain composition in about 8 % of all proteins. Based on homology analysis with key components of major immune pathways of insects, the C. floridanus immune-related genes were compared to those of Drosophila melanogaster, Apis mellifera, and other hymenoptera. This analysis revealed that overall the immune system of carpenter ants comprises many components found in these insects. In addition, several C. floridanus specific genes of yet unknown functions but which are strongly induced after immune challenge were discovered. In contrast to solitary insects like Drosophila or the hymenopteran Nasonia vitripennis, the number of genes encoding pattern recognition receptors specific for bacterial peptidoglycan (PGN) and a variety of known antimicrobial peptide (AMP) genes is lower in C. floridanus. The comparative analysis of gene expression post immune-challenge in different developmental stages of C. floridanus suggests a stronger induction of immune gene expression in larvae in comparison to adults.
Conclusions
The comparison of the immune system of C. floridanus with that of other insects revealed the presence of a broad immune repertoire. However, the relatively low number of PGN recognition proteins and AMPs, the identification of Camponotus specific putative immune genes, and stage specific differences in immune gene regulation reflects Camponotus specific evolution including adaptations to its lifestyle.
The human-pathogenic bacterium Salmonella enterica adjusts and adapts to different environments while attempting colonization. In the course of infection nutrient availabilities change drastically. New techniques, "-omics" data and subsequent integration by systems biology improve our understanding of these changes. We review changes in metabolism focusing on amino acid and carbohydrate metabolism. Furthermore, the adaptation process is associated with the activation of genes of the Salmonella pathogenicity islands (SPIs). Anti-infective strategies have to take these insights into account and include metabolic and other strategies. Salmonella infections will remain a challenge for infection biology.