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This thesis describes the adaptation of Acinetobacter species to dry environments with the soil bacterium A. baylyi and the opportunistic hospital pathogen A. baumanii in its focus. The adaptation of A. baylyi and A. baumannii to osmotic stress was investigated. Compatible solutes that were uptaken from the environment or synthesized de novo to cope with the loss of water at high salinity were identified. The corresponding transporters and enzymes involved were characzerized. In addition, the desiccation resistance of A. baumannii was analyzed to elucidate its survival in hospital environments. The usage of compatible solutes during desiccation stress was analyzed and proteins that were produced were identified.
The availability of water is essential for bacterial life and if environmental conditions are awkward, bacteria have to cope with high salinitiy to prevent loss of water. In this thesis it was shown that A. baylyi synthesizes glutamate and mannitol de novo as compatible solutes in response to osmotic stress to balance the osmotic potential. The pathway for mannitol biosynthesis from Fructose-6-Phosphate (F-6-P) via Mannitol-1-Phosphate (Mtl-1-P) was elucidated and the isolation and characterization of a novel type of biofunctional enzyme was described. Interestingly, the unique bifunctional enzyme MtlD, acting as dehydrogenase and phosphatase, mediates both steps of the mannitol biosynthesis pathway. This enzyme catalyzes the reduction of F-6-P to Mtl-1-P with NADPH as reducing equivalent. The dehydrogenase activity of MtlD was salt dependent and the phosphatase activity was dependent on Mg2+ as cofactor. Phylogenetic analyses revealed that MtlD is broadly distributed among other Acinetobacter strains but not in other phylogenetic tribes.
In this thesis it is also described that, besides de novo synthesis of compatible solutes, A. baylyi takes up glycine betaine (GB) or its precursor choline by different transport systems and uses this solutes as osmoprotectants. The uptake of GB occurs via a secondary transporter (ACIAD3460) of the BCCT family. Choline is taken up as precursor and oxidized to GB by two dehydrogenases. The uptake and use of choline as GB precursor involves two transporters, whose genes are encoded in the bet cluster (BetT1, BetT2), two dehydrogenases (BetA, BetB) and a regulatory protein (BetI). Both transporters differ from each other in structure and function: BetT1 is osmo-independent and active independently of osmotic stress. BetT2 contains - in contrast to BetT1 - a long C-terminal domain for osmo-sensing and its activity highly increases in the presence of high osmolarity. The oxidation of choline occurs independently of the osmolarity of the medium but in the absence of salt stress, GB is exported. In contrast, in the presence of high salinity, GB is accumulated in the cytoplasm to balance the osmotic potential in order to prevent loss of water. The regulation of both transporters, the uptake of choline independently of the osmolarity and the export of GB under isoosmotic conditions are regulated by the transcriptional regulator BetI.
A. baumannii ATCC 19606 was also shown to cope with high salinity. Analogously to A. baylyi, A. baumannii ATCC19606 synthesizes glutamate and mannitol de novo in response to osmotic stress. The genes for the synthesis of these compatible solutes are identical to those found in A. baylyi. This suggests that the solute biosynthesis pathways of A. baumannii and A. baylyi are identical. A. baumannii was also able to take up GB and choline in response to osmotic stress and growth at high salinity was restored upon addition of GB and its precursor choline. The bet cluster was also present in the genome A. baumannii and also contains the two different choline transporters BetT1 and BetT2.
Our suggestion that choline or GB or the utilization of phosphatidylcholine as carbon source led to an increase in the survival under desiccation stress was not confirmed. However, 2D analysis of proteins produced during desiccation stress in A. baumannii led to elevated amounts of proteins implicated in biofilm formation, regulation, cell morphology and general stress response, such as Hsp60 or superoxide dismutase, both might play a role in general stress protection.
Protein synthesis is a central process within every living cell, where information embodied in the nucleotide sequence of the mRNA is translated into the primary sequence of proteins. The translation procedure comprises four steps: initiation, elongation, termination, and recycling. Ribosome recycling orchestrated by the ATP‐binding cassette (ABC) protein ABCE1, renders mRNA translation into a cyclic process, connecting termination with re initiation. In Archaea and Eukarya, the ABC protein ABCE1 catalyzes ribosome recycling by splitting the ribosome (80S/70S) into the small 40S/30S and large 60S/50S subunits, providing them for the next translation round.
The ABC‐type ATPase one of the most conserved proteins, present in all Archaea and Eukarya, but not in Bacteria, is essential for life in all organisms examined so far. ABCE1 was initially identified as RNase L inhibitor (Rli1), involved in the antiviral RNA immunity, and as host protein 68 (HP68) playing a role in HIV capsid assembly. However, the strong sequence conservation of ABCE1 points towards a more fundamental function within cell homeostasis, which was found by its involvement in various translation processes. ABCE1 turned out to be the major ribosome recycling factor indispensable for life in Eukarya and Archaea, being involved in canonical translation, mRNA surveillance, ribosome biogenesis, and translation initiation.
Recent functional and structural data provided first insights into the mechanism of ABCE1 in ribosome recycling. The nucleotide‐binding domains (NBDs) sandwich two ATP molecules in the NBD1‐NBD2 interface causing an NBD engagement, which is released upon ATP hydrolysis. In case of ABCE1, this ATP‐dependent tweezer‐like motion of the NBDs transfers mechanical energy to the ribosome and tears the subunits apart. The FeS‐cluster domain may swing out of the NBD cleft into the inter‐subunit space of the ribosome, which drives the subunits apart either directly or via the bound a/eRF1. Hence, the subunits are released and the post‐splitting complex (PSC, 40S/30S∙ABCE1∙ATP) is available for re‐initiation events, presumably occurring via the known interactions of ABCE1with initiation factors.
One of the most crucial aspects of this model is the nucleotide‐dependent conformational switch of ABCE1, which drives ribosomal subunit splitting. However, the conformational states, which ABCE1 undergoes during ribosome recycling, including their mechanistic importance for its diverse functions, remain unknown. Further, the exact role and movement of the essential FeScluster domain during ribosome recycling are not yet understood. Additional, it remains elusive where ABCE1 is bound in the post‐splitting complex and how the splitting mechanism is regulated concerning the asymmetric NBDs and the coupling of nucleotide binding with NBD closing and ATP hydrolysis.
Thus, in order to monitor the conformational dynamics of the ribosome recycling factor ABCE1 two complementing methods in structural biology, namely single‐molecule based Förster resonance energy transfer (smFRET) and pulsed electron‐electron double resonance (PELDOR) spectroscopy were applied.
Single‐molecule FRET as an integrated biophysical approach based on Förster resonance energy transfer and single‐molecule detection was used to understand the fundamental molecular principles of ABCE1. Contrary to the anticipated two‐state model of ABC proteins, it was shown in this thesis that both nucleotide‐binding sites of ABCE1 are always in a dynamic equilibrium between conformational states with distinct properties: open, intermediate, and closed. The equilibrium in the two nucleotide‐binding sites is distinctly affected when ABCE1 interacts with ribosomal subunits and nucleotides. While ABCE1 can adopt all three conformational states in its free or 30S bound situation, the closed state has the highest affinity for 30S subunit. Further, dissociation of ABCE1 from the small ribosomal subunit, a step that completes the recycling process, is followed by the opening of the NBSs. Hence, the current findings have important implications not only for ribosome recycling but represent a new paradigm for the molecular mechanisms of twin‐ATPases.
The complementing PELDOR measurements provide the advantage of high distance precision and reliability studying macromolecular complexes. Distance distributions of a number of ABCE1 variants even bound to the 1‐MDa post‐splitting complex (30S∙ABCE1∙AMP‐PNP), composed of the 16S rRNA, 28 ribosomal proteins, and ABCE1, was analyzed. Thus, the available crystal structures of ABCE1 in the open state were validated, since all distances of ABCE1 measured in this study perfectly correspond to this crystallized state. Unfortunately, ABCE1 could not be trapped in the closed state under the experimental conditions applied, although plenty different approaches to stabilize this state were performed.
In the second part of this study the architecture yet unknown of the 1‐MDa post splitting complex (40S/30S∙ABCE1∙ATP), concerning especially the ABCE1 binding site and its interactions with translational proteins, was probed by a method, which combines chemical cross linking with mass‐spectrometry (XL‐MS). Following this approach, it was demonstrated that ABCE1 remains bound at the translational GTPase‐binding site after ribosome splitting, contacting the S24e protein of the small subunit. The platform for the intensive contacts to the small ribosomal subunit is thereby provided by the unique helix‐loop‐helix motif of ABCE1. Notably, the FeScluster domain of ABCE1 undergoes a large rotational and translational rearrangement towards the small ribosomal subunit S12 upon nucleotide‐dependent closure of the NBDs. Thus, a key complex in the translational cycle, resembling the link between translation initiation and ribosome recycling processes, was reconstituted and structurally analyzed.
In view of the diverse functionalities of RNA, the search for tools suitable for regulating and understanding RNA grows continuously. Dysfunction of RNA controlled processes can lead to diseases, calling for external regulation mechanisms – a difficult task in view of the complexity of biological systems. One of the recently developed methods that aim to systematically control RNA relates to photoregulation. Here, the RNA functions are triggered by photochromic molecules – for example, azobenzene or spiropyran – which are bound either covalently or non-covalently to the target RNA. This is a flexible approach, which can be improved by using suitably substituted chromophores. However, many issues regarding the details of photocontrol are still open. A detailed understanding of the mechanism of photocontrol is therefore of crucial importance.
The present thesis explores theoretical approaches to the photocontrol of RNA, focussing upon azobenzene chromophores covalently bound to RNA. The aim of the thesis is to characterize, at a molecular level, the effect of trans-to-cis isomerization of the azobenzene chromophore on RNA, and thus understand the mechanism of RNA unfolding triggered by azobenzene isomerization. In particular, we attempt to answer the following questions:
How does azobenzene isomerization happen in an RNA environment, i.e., how is
the isomerization influenced by the local RNA environment?
Conversely, how is RNA dynamics, on a longer time scale, affected by azobenzene attachment and photoisomerization?
Further, can regulation be enhanced by substituted azobenzenes? And, does simulation yield a picture that is consistent with experiment?
Due to the very different times scales of azobenzene isomerization (femtoseconds to picoseconds) and the much slower RNA response (nanoseconds to milliseconds), complementary techniques have been chosen: (i) hybrid quantum-classical approaches, i.e., on-the-fly Quantum Mechanics/Molecular Mechanics (QM/MM), to characterize the isomerization and RNA response on an ultrafast time scale, and (ii) molecular dynamics with enhanced sampling techniques, in particular, Replica Exchange MD (REMD), to explore longer time scales where the effect of RNA unfolding becomes manifest. Furthermore, substituent effects on azobenzene were separately investigated, in collaboration with two experimental groups.
The first part of this thesis is focused on the conformational influence of azobenzene on a small RNA hairpin on longer time scales using REMD simulations. In accordance with experiment, it is found that both the trans and cis form of azobenzene destabilize the RNA system. Trans azobenzene stays stacked in the double strand, whereas the cis form flips out of the RNA. These stacking interactions are the main reason why a trans azobenzene-RNA-complex is more stable than a cis-azobenzene-RNA-complex. Furthermore, the loop region of the RNA hairpin is highly destabilized by the intercalation of azobenzene.
In the second part, on-the-fly QM/MM simulations of the same azobenzene substituted hairpin are undertaken. These simulations use a surface hopping (SH) algorithm in conjunction with hybrid QM/MM electronic structure calculations to give a complete picture of the isomerization process on a picosecond time scale. It is shown that, due to the constraints of the RNA environment, the isomerization time of the azobenzene chromophore is significantly increased (from 300 femtoseconds in the gas phase to around 20 picoseconds in the RNA environment), and the isomerization yield is low. To the best of our knowledge, these are the first QM/MM simulations reported for azobenzene in a nucleic acid environment.
In the third and final part of this thesis, the properties of substituted azobenzenes have been explored, in collaboration with two experimental groups at the department. In particular, para- and meta-hydroxy substituted azobenzenes were suggested as improved photoswitches for the photoregulation of RNA, but spectroscopic investigations showed that isomerization was inefficient in some of the investigated species. Therefore, we investigated the photoisomerisation pathway of the keto/enol-form of para- and meta-hydroxy-azobenzenes by Time-Dependent Density Functional Theory (TDDFT) calculations. These calculations show that the competing keto/enol-tautomerism can result in an unstable cis form, making these substituted chromophores unsuitable as photoswitches.
Overall, the present thesis has contributed to obtaining a molecular-level understanding of photocontrol in azobenzene substituted RNAs, showing that theory and simulations can provide useful guidance for new experiments.
The transporter associated with antigen processing (TAP) is a heterodimeric ATP-binding cassette (ABC) transport complex, which selects peptides for export into the endoplasmic reticulum (ER) and subsequent loading onto major histocompatibility complex class I (MHC I) molecules to trigger adaptive immune responses against virally or malignantly transformed cells. Due to its pivotal role in adaptive immunity, TAP is a target for infectious diseases and malignant disorders, such as bare lymphocyte syndrome type I and cancer. A detailed knowledge about the TAP structure and transport mechanism is fundamental for the development of therapies or drugs against such diseases, but numerous aspects are insufficiently determined to date. The aim of this PhD thesis was to elucidate several structural details of TAP using powerful biochemical and biophysical methods and thereby to contribute to the understanding of the translocation machinery functionality.
High protein yields, an efficient isolation from the lipid environment and subsequent purification of a stoichiometric, stable, and functional TAP complex are prerequisites to get detailed insights into TAP functionality. The natural product digitonin is typically used as detergent to isolate TAP, but suffered from fluctuating purity and high costs. The novel detergent GDN was selected from a number of potential detergents upon their ability to isolate and purify TAP overcoming the limitations of digitonin without compromising on functional integrity. State-of-the-art biophysical techniques, such as solid-state nuclear magnetic resonance (NMR), require highly concentrated protein samples. A new and mild procedure to concentrate TAP was established within this thesis. Freeze drying is superior to conventional concentration techniques, such as ultrafiltration, resulting in TAP inactivation and aggregation already at concentrations of 10 mg/mL. This new procedure enables stabilizing TAP in a condensed glycerol matrix and to concentrate the transport complex up to 30 mg/mL active transporter. The functional integrity of the freeze-dried TAP complex was verified by determining equilibrium dissociation constants, peptide dissociation and ATP-hydrolysis rates as well as long-term stabilities identical to untreated TAP. The combined application of the detergent GDN and the freeze drying procedure facilitates the cost-efficient isolation of functional and highly concentrated TAP and enables to study the structure and mechanism of the peptide transporter TAP using modern analyses methods.
Information on peptide-TAP interactions at atomic level have not been obtained so far. This lack of knowledge hampered the mechanistic understanding of the initial steps of substrate translocation catalyzed by TAP. Dynamic nuclear polarization (DNP) enhanced magic angle spinning (MAS) solid-state NMR on highly concentrated TAP samples prepared with the freeze-drying procedure was used within this thesis to study this challenging membrane protein-substrate complex. The affinity and specificity of peptide binding by TAP are mediated by multiple recognition sites in the N- and C-terminal regions. Side-chains of positions 1, 3, and 9 are most substantially affected upon binding to TAP, revealing recognition principles of the translocation machinery. The nonamer peptide binds to TAP in an extended conformation with an N-to-C terminus distance of ~2.5 nm. Molecular docking revealed that the peptide substrate is locked with its N and C termini between TAP1 and TAP2 and adopts a tilted pose with respect to the membrane plane. The identified contact sites of TAP are consistent with results from earlier crosslinking and mutational analyses on the TAP complex.
The inadequate structure determination and insufficient knowledge about the dynamics of substrate translocation impedes a detailed comprehension of the TAP transport mechanism. Advanced biophysical methods, such as pulsed electron paramagnetic resonance (EPR) or single-molecule Förster resonance energy transfer (FRET), enable to locate the peptide-binding pocket and to elucidate dwell-times, conformational states and dynamics within the translocation cycle of TAP. The specific introduction of spin or fluorescent labels via single cysteines for such studies requires a cysteine-less TAP complex. The endogenous cysteine 213 in TAP2 remained to create a pseudo Cys-less TAP complex within this thesis due to its altered substrate repertoire when mutated to serine as shown in previous studies. Latter complex was used to introduce single-Cys mutations in the cytosolic extensions of transmembrane helices of TAP1. Their functional integrity with respect to peptide binding and translocation was comparable to pseudo Cys-less TAP. All pseudo single cysteines were efficiently labeled, but unintentionally C213TAP2 was labeled as well and TAP concomitantly inactivated. These unsatisfactory initial experiments required the generation of a functional, entirely Cys-less TAP transporter within this thesis. Therefore, C213TAP2 was replaced by all 19 proteinogenic amino acids. All analyzed mutants were capable to bind a high-affinity peptide of TAP, but with varying affinities and binding capacities. The replacement of C213 by isoleucine enabled the generation of a cysteine-less TAP complex with functional characteristics similar to the wild-type transporter and will promote the elucidation of the translocation mechanism of the peptide transporter TAP in future studies using pulsed EPR and single-molecule FRET.
Magnetoencephalography (MEG) measures neural activity non-invasively and at an excellent temporal resolution. Since its invention (Cohen, 1968, 1972), MEG has proven a most valuable tool in neurocognitive (Salmelin et al., 1994) and clinical research (Stufflebeam et al., 2009; Van ’t Ent et al., 2003). MEG is able to measure rapid changes in electrophysiological neural signals related to sensory and cognitive processes. The magnetic fields measured outside the head by MEG directly reflect the cortical currents generated by the synchronised activity of thousands of neuronal sources. This distinguishes MEG from functional magnetic resonance imaging (fMRI), where measurements are only indirectly related to electrophysiological activity through neurovascular coupling...
Soil fungal communities are an essential element in the terrestrial ecosystem, however their response to ongoing anthropogenic climate change is currently poorly understood. Fungi are one of the most abundant groups of microbes in soil, they are mainly responsible for the decomposition of organic matter (Baldrian et al., 2012; Buée et al., 2009). By binding carbon in soil, fungi thus maintain an important role in the global carbon cycle (Bardgett et al., 2008). Future climates are likely to influence the communities of belowground microbial organisms (Castro et al., 2010; Deacon et al., 2006). However, how these communities are affected in their diversity, composition, and function after environmental perturbation is insufficiently known.
Molecular techniques using high-throughput sequencing are presently revolutionizing the analysis of complex communities, such as soil fungi. High-throughput metabarcoding enables the recovery of DNA sequence data directly from environmental samples, and DNA sequences from entire communities present in these samples can be simultaneously recovered through massively parallel sequencing reactions (Bik et al., 2012; Taberlet et al., 2012b). This results in more accurate estimation of diversity and community composition and thus provides unprecedented insight into cryptic communities (Lindahl and Kuske, 2014). Yet, challenges associated with these novel techniques include the bioinformatic processing, and the ecological analyses of the large amount of sequence data generated. Most biologists without explicit training in bioinformatics spend a fair amount of time learning how to filter raw sequence data, and customize bioinformatics pipelines specific to their project. To improve the quality of data treatment, and decrease the time needed for the analyses, it is desirable to have bioinformatics pipelines that are easy to use, well explained to researchers not trained in bioinformatics, and adaptable to individual research needs...
Im Rahmen dieser Arbeit wurden Anaylsenmethoden zur Quantifizierung von Ceramiden und Prostanoiden in verschiedenen biologischen Matrices unter Verwendung von Nano-LC gekoppelt mit Tandemmassenspektrometrie entwickelt und bei diversen biologischen Fragestellungen angewendet.
Die analytische Methode zu Quantifizierung der Ceramide ermöglichte deren Bestimmung in einem Probenvolumen von 2 μL CSF. Diese neu entwickelte Methode ist die erste publizierte Nano-LC-MS/MS-Methode zur Quantifizierung der Ceramide in biologischen Proben, gleichzeitig ist es auch diejenige analytische Methode mit der höchsten Empfindlichkeit [171]. Die beschriebene Methode umfasste die Substanzen C8:0, C16:0, C18:1, C18:0, C20:0, C24:1 und C24:0 Ceramid, als interner Standard wurde C17:0 Ce-ramid verwendet. Die Probenaufarbeitung bestand in einer einfachen Proteinfällung und Verdünnung mit Methanol, die chromatografische Trennung der Analyten erfolgte mit einer RP-C8 Säule unter Verwendung eines Gradientenprogramms. Die Methode wurde anhand von FDA-Richtlinien bezüglich Linearität, Bestimmungsgrenze, Präzision, Richtigkeit und Autosampler-Stabilität validiert. Die erreichten Bestimmungsgrenzen betrugen 0,225 pg auf der Säule (2,25 pg/μL CSF) für alle Ceramide außer C24:0 Ceramid, für das der Wert von 0,75 pg auf der Säule (7,5 pg/μL CSF) ermittelt wurde. Mit der durchgeführten Validierung wurde die Zuverlässigkeit der Methode für die Quantifizierung der Ceramide in CSF gezeigt. Mit einem Standardadditionsexperiment konnte belegt werden, dass PBS als Ersatzmatrix für CSF geeignet ist und somit die Ergebnisse der Validierung mit dotierten PBS-Proben auf CSF-Proben übertragbar sind. Das entwickelte Verfahren wurde für die Quantifizierung der Analyten in murinen CSF-Proben im Rahmen eines Projekts zur Erforschung der Rolle der Ceramide bei Multipler Sklerose angewendet. Anhand der Ergebnisse wurde die Hypothese bestätigt, dass die Konzentration von C16:0 Ceramid in CSF von EAE-Mäusen erhöht ist.
Die zweite entwickelte Nano-LC-MS/MS-Methode ermöglichte die Quantifizierung der Prostanoide PGE2, PGD2, 6-keto PGF1α, PGF2α und TXB2 in einer geringen Anzahl Immunzellen. Für eine erfolgreiche Bestimmung der Analyt-Konzentrationen waren nur 5.000 T-Zellen oder 40.000 Mastzellen erforderlich. Damit ist die beschriebene Methode geeignet für die Quantifizierung in Zellen, die durch Isolation aus tierischen Geweben oder Organen erhalten werden, ohne dass das Vereinigen mehrerer Proben erforderlich ist. Durch die Messung dieser bestimmten Zellpopulationen kann, im Unterschied zur Vermessung des gesamten Organs, eine differenziertere Analyse der Lokalisation der gemessenen Analyten erfolgen. Mittels der entwickelten Methode konnten die Prostanoide PGE2, PGD2, 6-keto PGF1α, PGF2α und TXB2 quantifiziert werden. Als interner Standard stand für jedes dieser Prostanoide ein vierfach deuteriertes Strukturanalogon zur Verfügung. Die Aufarbeitung der Immunzell-Proben erfolgte durch Flüssig-Flüssig-Extraktion mit Ethylacetat, die Chromatografie wurde mit einer RP-C8-Säule und einem Gradientenprogramm durchgeführt. Eine Validierung erfolgte für die Quantifizierung in T-Lymphozyten und Mastzellen für die Parameter Linearität, Bestimmungsgrenze, Präzision, Richtigkeit, Wiederfindung, Selektivität und Stabilität. Auch ein Standardadditionsexperiment mit beiden Matrices wurde durchgeführt. Die Bestimmungsgrenzen betrugen 75 fg auf der Säule für PGE2 und PGD2 sowie 112,5 fg für 6-keto PGF1α, PGF2α und TXB2, damit zeichnet sich die Methode durch höchste Empfindlichkeit aus. Die Me-thode wurde zur Messung der Prostanoid-Konzentration in T-Zellen, die im Rahmen eines Kontaktallergie-Modells aus dem Blut von unterschiedlich behandelten Mäusen isoliert worden waren, angewendet. Es konnte kein Unterschied in den Prostanoid-Konzentrationen in den T-Zellen sensibilisierter und nicht-sensibilisierter bzw. provozierter und nicht-provozierter Mäuse festgestellt werden. Bei einer zweiten Anwendung wurden die Prostanoide in murinen Mastzellen, die nach Zymosan-Injektion in die Hinterpfote zu verschiedenen Zeitpunkten nach dem Auslösen der Entzündung aus dem entstandenen Ödem isoliert worden waren, gemessen. Zusätzlich für diese Anwendung wurden einige Leukotriene in die Methode integriert. Es wurde festgestellt, dass die Konzentrationen von PGE2, PGD2 und PGF2α in Mastzellen nach der Injektion von Zymosan-Injektion ansteigen, wobei die gemessenen Konzentrationen für PGE2 48 Stunden nach der Injektion verglichen mit denen nach 24 Stunden, bezogen auf die anderen beiden Prostaglandine, am stärksten ansteigen. Außerdem wurde mittels der für die Immunzellen entwickelten Methode die Prostanoide in murinem Urin, humanem Plasma und humaner Tränenflüssigkeit quantifiziert.
Zusammenfassend ermöglichen die entwickelten Methoden die Analyse geringer Ana-lytkonzentrationen in sehr kleinen Probenmengen und damit eine Reduktion von Versuchstierzahlen und Kosten.
Prognostische Faktoren und das Outcome von Patienten mit einem primären Glioblastom sind in der Fachliteratur gut beschrieben. Im Gegensatz dazu gibt es wenige vergleichbare Informationen zu Patienten mit einem sekundären Glioblastom. Das Ziel dieser Arbeit war es, das Outcome von Patienten mit einem sekundären Glioblastom zu beurteilen und prognostische Faktoren in Be-zug auf das Gesamtüberleben zu identifizieren.
Dazu wurde die interne Datenbank des Universitätsklinikums Frankfurt/Main von Patienten mit Hirntumoren retrospektiv nach klinischen Daten durchsucht. Alle Patienten hatten ein histologisch gesichertes WHO Grad II oder III Gliom und anschließend ein WHO Grad IV sekundäres Glioblastom. Paraffiniertes Hirntumorgewebe wurde auf Mutationen der Isocitrat Dehydrogenase-1 (IDH1) mittels einer immunhistochemischen Färbung mit einem R132H (clone H09) spezifischen Antikörper untersucht. Eine uni- und multivariate statistische Analyse wurde durchgeführt, um Faktoren zu ermitteln, die potentiell das Gesamt-überleben beeinflussen könnten.
Es wurden 45 Patienten mit einem histologisch gesicherten sekundären Glioblastom untersucht. Das mediane Alter betrug 41 Jahre. 14 Patienten unterzogen sich einer radiologisch kompletten Resektion des sekundären Glioblastoms, 31 Patienten wurden subtotal reseziert oder biopsiert. Initial ist bei 37 Patienten ein astrozytärer Tumor nachgewiesen worden und die restlichen Patienten litten an Oligodendrogliomen oder gemischten Gliomen; bei der initialen Diagnose wurden 17 WHO Grad II und 28 WHO Grad III Tumoren fest-gestellt. Die mediane Zeit zwischen Ursprungstumor und dem Auftreten des sekundären Glioblastoms betrug 158,9 Wochen. Das mediane Gesamtüberleben betrug 445 Tage nach der Diagnose eines sekundären Glioblastoms. Mutationen des IDH1 (R132H) Proteins wurden bei 24 Patienten festgestellt und fehlten bei 17 Patienten; bei 4 Patienten konnte keine IDH1 immunhistochemische Färbung durchgeführt werden.
In der univariaten Analyse konnte der Zeitraum zwischen initialer Läsion und dem Progress zu einem sekundären Glioblastom als statistisch signifikanter Einflussfaktor identifiziert werden- Patienten mit einem Zeitraum von mehr als 2 Jahren hatten ein besseres Gesamtüberleben (460 vs. 327 Tage, p = 0,011). Außerdem konnte bei Patienten, die eine kombinierte Radiochemotherapie bekamen, ein besseres Gesamtüberleben nachgewiesen werden als bei Patienten, welche ausschließlich eine Therapieform erhielten (611 vs. 380 Tage, p < 0,001). Weiterhin konnten ein WHO Grad II Ursprungstumor (472 vs. 421 Tage, p = 0,05) und eine Frontalllappenlokalisation des Glioblastoms (472 vs. 425 Ta-ge, p = 0,031) das Überleben steigern.
In der multivariaten Analyse konnte gezeigt werden, dass die Mutation des IDH1 (R132H) Proteins in statistisch signifikanter Weise mit einem längeren Gesamtüberleben assoziiert war (p = 0,012); statistische Signifikanz für ein län-geres Gesamtüberleben bei Patienten mit initial einem WHO Grad II (p = 0,047) und einer Frontallappenlokalisation des Glioblastoms (p = 0,042) stellte sich auch ein. In Bezug auf die Patienten spezifischen Daten wurden zwei Prognosegruppen erstellt; Patienten in der guten Prognosegruppe scheinen einen Benefit von einer totalen Tumorresektion zu haben (p = 0,02), während eine Resektion für die andere Prognosegruppe keine große Rolle spielte (p = 0,926).
Trotz des relativ geringen Erkrankungsalters haben sekundäre Glioblastom Patienten eine schlechte Prognose. Die Ergebnisse dieser Arbeit unterstreichen die Wichtigkeit und den prognostischen Wert der IDH1 Diagnostik, die Notwendigkeit einer kombinierten Radiochemotherapie und eine Risikostratifizierung für eine Prognoseabschätzung anhand der Patienten spezifischen Einflussfaktoren.
The Cueva del Azufre in Tabasco, Mexico, is a nutrient-rich cave and its inhabitants need to cope with high levels of dissolved hydrogen sulfide and extreme hypoxia. One of the successful colonizers of this cave is the poeciliid fish Poecilia mexicana, which has received considerable attention as a model organism to examine evolutionary adaptations to extreme environmental conditions. Nonetheless, basic ecological data on the endemic cave molly population are still missing; here we aim to provide data on population densities, size class compositions and use of different microhabitats. We found high overall densities in the cave and highest densities at the middle part of the cave with more than 200 individuals per square meter. These sites have lower H2S concentrations compared to the inner parts where most large sulfide sources are located, but they are annually exposed to a religious harvesting ceremony of local Zoque people called La Pesca. We found a marked shift in size/age compositions towards an overabundance of smaller, juvenile fish at those sites. We discuss these findings in relation to several environmental gradients within the cave (i.e., differences in toxicity and lighting conditions), but we also tentatively argue that the annual fish harvest during a religious ceremony (La Pesca) locally diminishes competition (and possibly, cannibalism by large adults), which is followed by a phase of overcompensation of fish densities.
The article consists in a comparative reading of three novels: Um rio chamado tempo by Mia Couto, Le pain des corbeaux by Lhoussain Azergui and Paw królowej by Dorota Masłowska. In spite of the difference of the historical circumstances of Mozambique, Morocco and Poland, these three books meet at an intersecting point: the emergence of an intelligentsia that uses literacy and writing as an instrument to deconstruct the post-colonial concept of nation and to operate a trans-colonial renegotiation of identity. By the notion of trans-colonial, I understand the opposition against new kinds of symbolic violence that emerged after the end of the colonial period; here this new form of oppression is related to the concept of national unity – an artificial construct that leaves no place for a dualism or pluralism of cultural reality (two shores of the Zambezi river, Arab and Berber dualism in Morocco, "small homelands" in Poland).
The young heroes of the novels grasp the pen in order to break through the falseness or the taboos created by the fathers, establishing, at the same time, the relation of solidarity with the world of the grandfathers. The act of writing becomes an actualization of the ancestral universe of magic. The settlement of accounts with the parental generation concerns the vision of nation built upon the resistance against the colonizer (it also refers to the Polish cultural formation, based on the tradition of uprisings and resistance against the Russians).