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The synaptonemal complex (SC) is a highly conserved structure in sexually reproducing organism. It has a tripartite, ladder-like organization and mediates the stable pairing, called synapsis, of the homologous chromosomes during prophase of meiosis I. Failure in homolog synapsis result in aneuploidy and/or apoptosis of the developing germ cells.
Since 1956, the SC is subject of intense research and its presence was described in various species from yeast to human. Its structure was maintained during millions of years of evolution consist-ing of two parallel lateral elements (LEs), joined by numerous transverse filaments (TFs) which run perpendicular to the LEs and an electron dense central element (CE) in the middle of the SC. Individual protein components, however, were characterized only in few available model organ-isms, as for example Saccharomyces cerevisiae, Arabidopsis thaliana, Drosophila melanogaster, Ceanorhabditis elegans and Mus musculus. Rather unexpectedly, these characterizations failed to detect an evolutionary homology between the protein components of the different SCs. This fact challenged the general idea of a single origin of the SC in the evolution of meiosis and sexual reproduction.
This thesis now addressed itself to the task to unravel the discrepancy between the high conser-vation of the SC structure and its diverse and apparently non-homologous protein composition, focusing on the animal kingdom. It is the first study dealing with the evolution of the SC in Meta-zoa and demonstrates the monophyly of the mammalian SC components in metazoan species. The thesis demonstrates that at least four out of seven murine SC proteins emerged in Eumeta-zoa at the latest and have been likewise part of an ancient SC as it can be found in the present-day cnidarian species Hydra. This SC displays the common organization and already possesses the minimal protein kit corresponding to the three different structural domains: LEs, TFs and the CE. Additionally, the individual phylogenies of the murine SC proteins revealed the dynamic evolu-tionary history of the ancient SC. Further components were added during the diversification of Bilateria and vertebrates while ancestral proteins likely duplicated in the vertebrate lineage and diversified or got lost in the branch leading to ecdysozoan species. It is hypothesized that the apparently non-homologous SC proteins in D. melanogaster and C. elegans actually do derive from the ancient SC proteins but diversified beyond recognition during the fast evolution of Ar-thropoda and Nematoda.
The study proposes Hydra as an alternative invertebrate model system for meiosis and SC re-search to the standard organisms D. melanogaster and C. elegans. Recent results about the cni-darian SC as well as the possible application of standard methods is discussed and summarized in the concluding section.
In this work we wanted to investigate the role of NFATc1 in lymphocyte physiology and in pathological conditions (eg. psoriasis). NFATc1 is part of the signal transduction
pathways that regulates B cells activation and function. NFATc1 has different isoforms that are due to different promoters (P1 and P2), polyadenylation and alternative splicing. Moreover, we tried to elucidate the points of interactions between the NFAT and the NF-κB pathways in
activated B-cell fate. NFAT and NF-κB factors share several properties, such as a similar mode of induction and architecture in their DNA binding domain. We used mice which over-express a constitutive active version of NFATc1/α in their B cells with -or without- an ablated IRF4. IRF4 inhibits cell cycle progression of germinal center B cell-derived Burkitt’s lymphoma cells and
induces terminal differentiation toward plasma cells. Our experiments showed that a ‘double hit’ in factors affecting B cell activation (NFATc1 in this case) and late B cell Differentiation (IRF4 in this case) alter the development of the B cells, lead to increase in their numbers and increase in stimulation induced proliferation. Therefore, the overall picture indicates a link between these 2 genes and probable carcinogenic alterations that may occur in B cells.
We also show that in splenic B cells, c-Rel (of the NF-κB canonical pathway) Support the induction of NFATc1/αA through BCR signals. We also found evidence that the lack of NFATc1 affects the expression of Rel-B (of the NF-κB non-canonical pathway). These data suggest a tight interplay between NFATc1 and NF-κB in B cells, influencing the competence of B cells and their functions in peripheral tissues.
We also used IMQ-induced psoriasis-like inflammation on mice which either lack NFATc1 from B cell. Psoriasis is a systemic chronic immunological disease characterized
primarily by abnormal accelerated proliferation of the skin keratinocytes. In psoriasis, the precipitating event leads to immune cell activation. Our experiments showed that NFATc1 is needed for the development of psoriasis. It also showed that IL-10 is the link that enables NFAT
from altering the B cell compartment (eg Bregs) in order to affect inflammation. The important role of B cell in psoriasis is supported by the flared up psoriasis-like inflammation in mice that lack B cells. Bregs is a special type of B cells that regulate other B cells and T cells; tuning the immunological response through immunomodulatory cytokines.
Early life stress, including exposure to prenatal stress (PS), has been shown to affect the developing brain and induce severe effects on emotional health in later life, concomitant with an increased risk for psychopathology. However, some individuals are more vulnerable to early-life stress, while others adapt successfully, i.e. they are resilient and do not succumb to adversity. The molecular substrates promoting resilience in some individuals and vulnerability in other individuals are as yet poorly investigated. A polymorphism in the serotonin transporter gene (5HTT/SLC6A4) has been suggested to play a modulatory role in mediating the effects of early-life adversity on psychopathology, thereby rendering carriers of the lower-expressing short (s)-allele more vulnerable to developmental adversity, while long (l)-allele carriers are relatively resilient. The molecular mechanisms underlying this gene x environment interaction (GxE) are not well understood, however, epigenetic mechanisms such as DNA methylation and histone modifications have been discussed to contribute as they are at the interface of environment and the genome. Moreover, developmental epigenetic programming has also been postulated to underlie differential vulnerability/resilience independent of genetic variation.
The present work comprises two projects investigating the effects of prenatal maternal restraint stress in 5-HTT deficient mice. In the first study, we examined to which extent previously observed changes in behavior and hippocampal gene expression of female 5-Htt+/- prenatally stressed (PS) offspring were associated with changes in DNA methylation patterns. Additionally, we investigated the expression of genes involved in myelination in hippocampus and amygdala of those animals using RT-qPCR. The genome-wide hippocampal DNA methylation screening was performed using methylated-DNA immunoprecipitation (MeDIP) on Affymetrix GeneChip® Mouse Promoter 1.0R arrays. In order to correlate individual gene-specific DNA methylation, mRNA expression and behavior, we used hippocampal DNA from the same mice as assessed before. 5-Htt genotype, PS and their interaction differentially affected the DNA methylation signature of numerous genes, a part of which were also differentially expressed. More specifically, we identified a differentially methylated region in the Myelin basic protein (Mbp) gene, which was associated with Mbp expression in a 5-Htt-, PS- and 5-Htt x PS-dependent manner. Subsequent fine-mapping linked the methylation status of two specific CpG sites in this region to Mbp expression and anxiety-related behavior. We furthermore found that not only the expression of Mbp but of large gene set associated with myelination was affected by a 5-Htt x PS interaction in a brain-region specific manner. In conclusion, hippocampal DNA methylation patterns and expression profiles of female PS 5-Htt+/- mice suggest that distinct molecular mechanisms, some of which are associated with changes in gene promoter methylation, and processes associated with myelination contribute to the behavioral effects of the 5-Htt genotype, PS exposure, and their interaction.
In the second study, we aimed at investing the molecular substrates underlying resilience to PS. For this purpose, we exposed 5-Htt+/+ dams to the same restraint stress paradigm and investigated the effects of PS on depression- and anxiety-like behavior and corticosterone (CORT) secretion at baseline and after acute restraint stress in female 5-Htt+/+ and 5-Htt+/- offspring. We found that PS affected the offspring’s social behavior in a negative manner. When specifically examining those PS animals, we grouped the PS offspring of each genotype into a social, resilient and an unsocial, vulnerable group. While anxiety-like behavior in the EPM was reduced in unsocial, but not social, PS 5-Htt+/+ animals when compared to controls, this pattern could not be found in animals of the other genotype, indicating that social anxiety and state anxiety in the EPM were independent of each other. We then assessed genome-wide hippocampal gene expression profiles using mRNA sequencing in order to identify pathways and gene ontology (GO) terms enriched due to 5-Htt genotype (G), PS exposure (E) and their interaction (GxE) as well as enriched in social, but not unsocial, PS offspring, and vice versa. Numerous genes were affected by 5-Htt genotype, PS and most of all a GxE-interaction. Enrichment analysis using enrichr identified that the genotype affected mitochondrial respiration, while GxE-interaction-affected processes associated primarily with myelination and chromatin remodeling. We furthermore found that 5-Htt+/- mice showed profound expression changes of numerous genes in a genomic region located 10 mio kb upstream of the 5 Htt locus on the same chromosome. When looking at social vs. unsocial mice, we found that a much higher number of genes was regulated in 5 Htt+/- animals than in 5-Htt+/+ animals, reflecting the impact of GxE-interaction. Double the number of genes was regulated in social PS vs. control mice when compared to unsocial PS vs. control in both genotypes, suggesting that the successful adaption to PS might have required more active processes from the social group than the reaction to PS from the unsocial group. This notion is supported by the up-regulation of mitochondrial respiration in social, but not in unsocial, PS 5-Htt+/- mice when compared to controls, as those animals might have been able to raise energy resources the unsocial group was not. Next to this, processes associated with myelination seemed to be down-regulated in social 5-Htt+/- mice, but not in unsocial animals, when compared to controls. Taken together, PS exposure affected sociability and anxiety-like behavior dependent on the 5-Htt genotype in female offspring. Processes associated with myelination and epigenetic mechanisms involved in chromatin remodeling seemed be affected in a GxE-dependent manner in the hippocampus of these offspring. Our transcriptome data furthermore suggest that mitochondrial respiration and, with this, energy metabolism might be altered in 5-Htt+/- offspring when compared to 5-Htt+/+ offspring. Moreover, myelination and mitochondrial respiration might contribute to resilience towards PS exposure in 5-Htt+/- offspring, possibly by affecting brain connectivity and energy capabilities.
The pathogenic role of endogenous antibodies in a mouse model for Charcot-Marie-Tooth 1B neuropathy
(2015)
Charcot-Marie-Tooth (CMT) type 1 neuropathies are a genetically heterogeneous group of non-treatable inherited disorders affecting the peripheral nervous system that lead to sensory and motor dysfunction. Secondary low grade inflammation, implicating the innate and adaptive immune system, could previously be identified as a substantial disease modifier in two mouse models for CMT1, CMT1B and 1X, respectively. However, the exact mechanism how the adaptive immune system contributes to disease pathogenesis is not completely understood. Based on observations that the accumulation of endogenous antibodies to myelin components is important for rapid myelin clearance after nerve injury during Wallerian degeneration, a possibly similar mechanism was considered for endogenous antibodies as disease amplifier in mice heterozygously deficient for P0 (P0het), mimicking some typical features of CMT1B.
In this study an increased antibody deposition was detected in the affected peripheral nerves of P0het myelin mutant mice. By crossbreeding P0het mutants with mice specifically lacking B-lymphocytes, and therefore antibodies (JHD-/-), a decline of endoneurial macrophages together with a substantially ameliorated demyelination could be demonstrated in 6-month-old mutant mice. Moreover, reconstitution with murine IgGs reverted the neuropathic phenotype, substantiating that endogenous antibodies are potentially pathogenic at this early stage of disease. Unexpectedly, in 12-months-old P0het mutants, JHD deficiency resulted in disease aggravation accompanied by an increased inflammatory reaction and M2-polarized macrophage response.
These observations suggest that in a mouse model for CMT1B, the lack of endogenous antibodies has a dichotomous effect: ameliorating early macrophage-mediated demyelination, as opposed to increasing inflammatory reactions leading to disease aggravation at older ages.
1. Zusammenfassung
Während der Embryogenese und nach Verletzungen von Nerven regulieren neurotrophe Faktoren Signalwege für Apoptose, Differenzierung, Wachstum und Regeneration von Neuronen. In vivo Experimente an neugeborenen Nagern haben gezeigt, dass der Verlust von Motoneuronen nach peripherer Nervenläsion durch die Behandlung mit GDNF, BDNF, und CNTF reduziert werden kann In der pmn-Mausmutante, einem Modell für die Amyotrophe Lateralsklerose, führt die Gabe von CNTF, nicht aber von GDNF zu einem verzögerten Krankheitsbeginn und einem verlangsamten Fortschreiten der Motoneuronendegeneration. Auslöser der Motoneuronendegeneration in der pmn-Maus ist eine Mutation im Tubulin spezifischen Chaperon E (Tbce) Gen, das für eines von fünf Tubulin spezifischen Chaperonen (TBCA-TBCE) kodiert und an der Bildung von -Tubulinheterodimeren beteiligt ist. Diese Arbeit sollte dazu beitragen, die CNTF-induzierten Signalwege zu entschlüsseln, die sich lindernd auf den progredienten Verlauf der Motoneuronendegeneration in der pmn-Maus auswirken.
Primäre pmn mutierte Motoneurone zeigen ein reduziertes Axonwachstum und eine erhöhte Anzahl axonaler Schwellungen mit einer anomalen Häufung von Mitochondrien - ein frühes Erkennungsmerkmal bei ALS-Patienten. Die Applikation von CNTF nicht aber von BDNF oder GDNF, kann in vitro die beobachteten Wachstumsdefekte und das bidirektionale axonale Transportdefizit in pmn mutierten Motoneurone verhindern.
Aus älteren Untersuchungen war bekannt, dass CNTF über den dreiteiligen transmembranen Rezeptorkomplex, bestehend aus CNTFR, LIFR und gp130, Januskinasen aktiviert, die STAT3 an Tyrosin 705 phosphorylieren (pSTAT3Y705). Ich konnte beobachten, dass axonales fluoreszenzmarkiertes pSTAT3Y705 nach CNTF-Gabe nicht retrograd in den Nukleus transportiert wird. Stattdessen führt die CNTF-induzierte Phosphorylierung von STAT3 an Tyrosin 705 zu einer transkriptionsunabhängigen lokalen Reaktion im Axon. Diese pSTAT3Y705 abhängige Reaktion ist notwendig und ausreichend, um das reduzierte Axonwachstum pmn mutierter Motoneurone zu beheben. Wie die Kombination einer CNTF Behandlung mit dem shRNA vermittelten knock-down von Stathmin in pmn mutierten Motoneuronen zeigt, zielt die CNTF-STAT3 Signalkaskade auf die Stabilisierung axonaler Mikrotubuli ab und wirkt sich positiv auf die anterograde und retrograde Mobilität von axonalen Mitochondrien aus.
Interessanter Weise konnte ich außerdem feststellen, dass eine akute Gabe von CNTF das mitochondriale Membranpotential in Axonen primärer pmn mutierter und wildtypischer
Motoneurone erhöht und einen Anstieg von ATP auslöst. Meine Beobachtungen legen nahe, dass CNTF unerwarteter Weise auch eine transiente Phosphorylierung an STAT3 Serin 727 (pSTAT3S727) auslöst, die zur anschließenden Translokation von pSTAT3S727 in Mitochondrien führt. Diese Ergebnisse zeigen, dass STAT3 mehrere lokale Ziele im Axon besitzt, nämlich axonale Mikrotubuli und Mitochondrien.
Die NO/cGMP-vermittelte Signalkaskade ist im vaskulären System entscheidend an der Regulation des Blutdrucks beteiligt. Innerhalb der Kaskade nimmt die NO-sensitive Guanylyl-Cyclase (NO-GC) eine Schlüsselfunktion als wichtigster Rezeptor für das Signalmolekül Stickstoffmonoxids (NO) ein. NO wird endogen von verschiedenen Isoformen der NO Synthase produziert. Die Bindung von NO an die NO GC führt zur Produktion des sekundären Botenstoffs cyclisches Guanosinmonophosphat (cGMP). Dieser Botenstoff aktiviert verschiedene Effektor-Moleküle und bewirkt letztlich eine Relaxation der glatten Muskulatur. Ein weiterer sekundärer Botenstoff, das Signalmolekül cyclisches Adenosinmonophosphat (cAMP), ist ebenfalls an der Regulation des Tonus der glatten Muskulatur und dadurch an der Blutdruckregulation beteiligt. Unterschiedliche Phosphodiesterasen (PDE) bauen die sekundären Botenstoffe ab und beenden dadurch die Signalkaskaden. Die PDE3 spielt hierbei eine besondere Rolle, da sie eine gemischte Substratspezifität besitzt. Um den Einfluss der NO-GC auf das kardiovaskuläre System zu untersuchen, wurden NO-GC Knockout(KO)-Mäuse mit globaler (GCKO) oder Glattmuskel-spezifischer (SMC-GCKO) Deletion der NO-GC generiert.
Um das Zusammenspiel von cAMP und cGMP näher zu beleuchten, wurde im ersten Teil dieser Arbeit die PDE3 genauer untersucht. Im Gefäßsystem wird lediglich die PDE3A und nicht die PDE3B exprimiert. Die Aorten von GCKO- und SMC-GCKO-Tieren reagieren sensitiver auf PDE3A-Blockade als die Kontroll-Tiere. Auch die akute Blockade der NO-GC führt zu diesem Sensitivitätseffekt. Die PDE3A ist in Folge der NO-GC-Deletion sowohl in ihrer Expression, als auch ihrer Aktivität um die Hälfte reduziert. Dies dient vermutlich kompensatorisch dazu, das cAMP-Signal weitgehend zu erhalten und so eine cAMP-induzierte Relaxation der Gefäße zu gewährleisten. Ohne Rückkopplung zwischen den beiden Signalwegen käme es vermutlich zu weiteren negativen Konsequenzen für das Herz-Kreislaufsystem. Diese Daten weisen auf eine direkte Regulation der PDE3 in glatten Muskelzellen durch die NO/cGMP-Signalkaskade und einen PDE3-vermittelten cAMP/cGMP-Crosstalk hin. Der genaue Mechanismus dieser Expressionsregulation ist noch unklar. Denkbar wäre eine cGMP-vermittelte Transkriptionsregulation oder eine Modulation der Translation der PDE3A.
Der Verlust der NO-GC führt in GCKO- und SMC-GCKO-Mäusen zu einem erhöhten systolischen Blutdruck von ~30 mmHg. Bei der Entwicklung der arteriellen Hypertonie könnte eine erhöhte Aortensteifigkeit beteiligt sein, die im zweiten Teil dieser Arbeit näher untersucht wurde. In GCKO-Mäusen ist die aortale Steifigkeit und daraus resultierend die Pulswellengeschwindigkeit (PWV) deutlich erhöht. Die Steigerung der PWV wird in den GCKO-Tieren zusätzlich durch den verminderten Aorten-Durchmesser bedingt. Außerdem weisen die Aorten dieser Tiere eine veränderte Wandstruktur auf, die zu einer Verminderung der aortalen Windkesselfunktion führt. Diese Veränderungen könnten die Blutdruckerhöhung in GCKO-Mäusen erklären. In SMC-GCKO-Tieren tritt keine dieser Gefäß-Modifikationen auf. Eine Aortensteifigkeit als mögliche Ursache für den erhöhten systolischen Blutdruck in den SMC-GCKO-Tieren kann somit ausgeschlossen werden. Zur Aufklärung müssen weitere Versuche zum Aufbau der Gefäßwände und zur Bestimmung des peripheren Widerstands gemacht werden. Auch der Einfluss anderer Zelltypen, wie z.B. Perizyten oder Fibroblasten, auf die Blutdruckregulation sollte untersucht werden.
Spermiogenesis describes the differentiation of haploid germ cells into motile, fertilization-competent spermatozoa. During this fundamental transition the species-specific sperm head is formed, which necessitates profound nuclear restructuring coincident with the assembly of sperm-specific structures and chromatin compaction. In the case of the mouse, it is characterized by reshaping of the early round spermatid nucleus into an elongated sickle-shaped sperm head. This tremendous shape change requires the transduction of cytoskeletal forces onto the nuclear envelope (NE) or even further into the nuclear interior. LINC (linkers of nucleoskeleton and cytoskeleton) complexes might be involved in this process, due to their general function in bridging the NE and thereby physically connecting the nucleus to the peripheral cytoskeleton.
LINC complexes consist of inner nuclear membrane integral SUN-domain proteins and outer nuclear membrane KASH-domain counterparts. SUN- and KASH-domain proteins are directly connected to each other within the perinuclear space, and are thus capable of transferring forces across the NE. To date, these protein complexes are known for their essential functions in nuclear migration, anchoring and positioning of the nucleus, and even for chromosome movements and the maintenance of cell polarity and nuclear shape.
In this study LINC complexes were investigated with regard to their potential role in sperm head formation, in order to gain further insight into the processes occurring during spermiogenesis. To this end, the behavior and function of the testis-specific SUN4 protein was studied. The SUN-domain protein SUN4, which had received limited characterization prior to this work, was found to be exclusively expressed in haploid stages during germ cell development. In these cell stages, it specifically localized to the posterior NE at regions decorated by the manchette, a spermatid-specific structure which was previously shown to be involved in nuclear shaping. Mice deficient for SUN4 exhibited severely disorganized manchette residues and gravely misshapen sperm heads. These defects resulted in a globozoospermia-like phenotype and male mice infertility. Therefore, SUN4 was not only found to be mandatory for the correct assembly and anchorage of the manchette, but also for the correct localization of SUN3 and Nesprin1, as well as of other NE components. Interaction studies revealed that SUN4 had the potential to interact with SUN3, Nesprin1, and itself, and as such is likely to build functional LINC complexes that anchor the manchette and transfer cytoskeletal forces onto the nucleus.
Taken together, the severe impact of SUN4 deficiency on the nucleocytoplasmic junction during sperm development provided direct evidence for a crucial role of SUN4 and other LINC complex components in mammalian sperm head formation and fertility.
Abstract
Background: Attention-deficit/ hyperactivity disorder (ADHD) ranges among the most common neurodevelopmental disorders worldwide with a prevalence of 3-12% in childhood and 1-5% for adults. Over the last decade extensive genetic research has been conducted in order to determine its causative genetic factors. None of the so far identified susceptibility genes, however, could explain the estimated ADHD heritability of 76%. In this thesis one of the most promising candidates -Cadherin 13 (Cdh13) - was examined in terms of its influence on the central serotonergic (5-HT) system. In addition to that, the Cdh13 protein distribution pattern was analysed over time.
Methods: The developing serotonergic system was compared over three embryonic and postnatal stages (E13.5, E17.5 and P7) in different Cdh13 genotypes (WT, HZ and KO) using immunohistochemistry and various double staining protocols.
Results: The raphe nuclei of the 5-HT system develop in spite of Cdh13 absence and show a comparable mature constellation. The cells in the KO, however, are slightly more scattered than in the WT. Furthermore the dynamics of their formation is altered, with a transient delay in migration at E13.5. In early developmental stages the total amount of serotonergic cells is reduced in KO and HZ, though their proportional distribution to the raphe nuclei stays constant. Strikingly, at P7 the absolute numbers are comparable again.
Concerning the Cdh13 protein, it shows high concentrations on fibres running through hindbrain and midbrain areas at E13.5. This, however, changes over time, and it becomes more evenly spread until P7. Furthermore, its presence in serotonergic cells could be visualised using confocal microscopy. Since the described pattern is only in parts congruent to the localisation of serotonergic neurons, it is most likely that Cdh13 is present in other developing neurotransmitter systems, such as the dopaminergic one, as well.
Conclusion: It could be proven that Cdh13 is expressed in serotonergic cells and that its knockout does affect the developing serotonergic system to some degree. Its absence, however, only slightly and transiently affects the measured parameters of serotonergic system development, indicating a possible compensation of CDH13 function by other molecules in the case of Cdh13 deficiency. In addition further indicators could be found for an influence of Cdh13 on outgrowth and path finding of neuronal processes.
Gehirntumore stellen die zweithäufigste Tumorart im Kindesalter dar. Trotz zahlreicher medizinischer Fortschritte verstirbt auch heute noch ca. 1/3 der Betroffenen und die Überlebenden leiden häufig unter geistigen und körperlichen Langzeitfolgen. Zwei Entitäten, die auch heute noch zu den großen Herausforderungen der pädiatrischen Onkologie zählen, sind das Glioblastom und das Medulloblastom. Um beide Tumorarten weiter erforschen und neue Therapiekonzepte entwickeln zu können, wurden im Zuge dieser Arbeit zwei orthotope Mausmodelle etabliert: ein syngenes Glioblastom- und ein xenogenes Medulloblastom-Modell:
GL261-FLuc Glioblastom-Modell:
Das Glioblastom ist ein seltener Tumor im Kindesalter. Die extrem schlechte Prognose macht neue Behandlungsstrategien jedoch dringend erforderlich. Immuntherapien könnten hier ein rationaler Ansatz sein. Durch orthotope Inokulation lentiviral transduzierter GL261-FLuc Zellen wurde im Rahmen dieser Arbeit das syngene GL261 Modell etabliert und hinsichtlich seiner biomorphologischen und immunologischen Eigenschaften evaluiert: Ähnlich wie humane Glioblastome zeigen GL261-FLuc Zellen in vivo ein aggressives Wachstum, welches von einer schnellen Proliferation und deutlichen Invasionsneigung geprägt ist. Histologisch bestehen GL261-FLuc Tumore aus astrozytär differenzierten Zellen, die neben typischen Nekrosen auch eine starke, funktionell pathologische Vaskularisierung zeigen. Interessanterweise offenbarte das in vivo BLI nach orthotoper Inokulation eine Phase der „Tumoradaptation“ (Tag 6-14), die immunologischer Natur zu sein scheint. Die Tatsache, dass das Tumorwachstum wie beim Menschen in einer prinzipiell immunkompetenten Umgebung stattfindet und dass GL261-FLuc Zellen eine konstitutionelle und durch IFN γ stimulierbare MHC Klasse I Expression aufweisen, qualifiziert das Modell für immuntherapeutische Untersuchungen. Insgesamt handelt es sich nicht nur um ein gut voraussag- und reproduzierbares Modell, das die immunologischen und bio-morphologischen Kennzeichen des humanen Vorbildes suffizient rekapituliert, sondern es liefert auch dank der Möglichkeit, das Zellwachstum mittels BLI zu verfolgen, interessante Einblicke in das in vivo Verhalten der Zellen.
MB3W1 Medulloblastom-Modell:
Das Medulloblastom ist der häufigste maligne Gehirntumor des Kindesalters und kann, wie neue Genexpressionsstudien zeigen, in verschiedene molekulare Subgruppen unterteilt werden. Für Gruppe 3 Medulloblastome, die mit Abstand die schlechteste klinische Prognose besitzen, gibt es aktuell nur limitierte Daten, unter anderem auch deshalb, weil kaum geeignete Mausmodelle existieren. Der außergewöhnliche Fall eines zweijährigen Jungen, der an einem äußerst aggressiven anaplastischen Medulloblastom verstorben war, führte zur Etablierung des zweiten Hirntumormodells. Mit Zellen dieses Tumors (MB3W1 Zellen), die nach extrakranieller Metastasierung aus malignen Pleuraergüssen isoliert werden konnten, wurde ein orthotopes Xenograftmodell etabliert. Erstaunlicherweise ließen die Zellen sowohl Tumorstammzell- als auch Gruppe 3-Charakteristika erkennen: In vitro wachsen MB3W1 Zellen wie für Stammzellen typisch in Form von Neurosphären und zeigen neben der Fähigkeit zur exponentiellen Langzeitproliferation auch eine hohe ALDH Aktivität. Die Expression typischer Oberflächenmarker wie CD15 und CD133 ist ebenfalls suggestiv für Tumorstammzelleigenschaften. Die hohe Tumorigenität von MB3W1 Zellen in immuninkompetenten Mäusen (bereits 500 Zellen führten zu 100 % Tumorraten) ist neben der Tatsache, dass die induzierten Tumore exakt die histopathologischen Eigenschaften des Primärtumors rekapitulierten und eine multilineäre Differenzierung zeigten, als weiteres Stammzell-kennzeichen zu werten. Ergänzend zum genetischen Profil (MYC Amplifikation, Gruppe 3 spezifisches Genexpressionsmuster, Tetraploidie, 17q Zugewinne), das MB3W1 Zellen klar als Gruppe 3 Medulloblastom identifiziert, spiegeln MB3W1 Zellen auch das aggressive und disseminierende Verhalten, welches Gruppe 3 Tumore auszeichnet, wider. Die Xenotransplantate zeigten nicht nur ein rapides invasives Wachstum in vivo, sondern es konnte interessanterweise auch am Versuchsende regelhaft eine Metastasierung der Zellen in den zerebrospinalen Liquor beobachtet werden. Das im Zuge dieser Arbeit etablierte Xenograftmodell komplementiert die beiden einzigen derzeit veröffentlichten syngenen Gruppe 3 Modelle, da es im Gegensatz zu diesen ohne zusätzliche genetische Manipulation auskommt. Die einzige Modifikation der Zellen (die lentivirale Transduktion mit eGFP und FLuc) diente dem besseren in vivo „Monitoring“, war optional und veränderte auch das biologische Verhalten der Zellen nicht. Insgesamt ist es ein einfaches und gut reproduzierbares Tumormodell, das die gleichzeitige Erforschung von Tumorstammzell- und Gruppe 3-Eigenschaften erlaubt. Vor allem vor dem Hintergrund des außergewöhnlichen klinischen Verlaufs des Primärtumors ist es ein extrem wertvolles Werkzeug, das in Zukunft hoffentlich dazu beitragen wird, neue gezielte Therapiestrategien für die Behandlung solch aggressiver Tumore entwickeln zu können.
Fabry disease (FD) is an X-linked lysosomal storage disorder with intracellular accumulation of globotriaosylceramide (Gb3) due to α-galactosidase A deficiency. We studied α-galactosidase A knockout mice (GLA KO) as a model for sensory disturbance and pain in FD.
Pain associated behavior of young (3 months) and old (≥18 months) GLA KO mice and wildtype (WT) littermates in an inflammatory and a neuropathic pain model was investigated. Furthermore, affective and cognitive behavior was assessed in the naïve state and in an inflammatory pain model. Gene and protein expression of pain associated ion channels and Gb3 accumulation in dorsal root ganglion (DRG) neurons was determined. We also performed patch clamp analysis on cultivated DRG neurons and human embryonic kidney 293 (HEK) cells expressing voltage-gated-sodium channel 1.7 (Nav1.7) as an in vitro model of FD. Intracellular Gb3 deposits were modulated using shRNA silencing of α-galactosidase A.
After intraplantar injection of complete Freund`s adjuvant (CFA) and chronic constriction injury (CCI) of the right sciatic nerve, old GLA KO mice did not develop heat and mechanical hypersensitivity in contrast to young GLA KO and old WT mice. Additionally, we found no relevant differences between genotypes and age-groups in affective and cognitive behavior in the naïve state and after CFA injection. Gene and protein expression analysis provided no explanation for the observed sensory impairment. However, cultured DRG neurons of old GLA KO mice revealed a marked decrease of sodium and Ih-currents compared to young GLA KO and old WT mice. DRG neurons of old GLA KO mice displayed substantial intracellular accumulation of Gb3 compared to young GLA KO and old WT mice. Similar to cultured neurons, sodium currents were also decreased in HEK cells treated with shRNA and consecutively increased intracellular Gb3 deposits compared to the control condition, but could be rescued by treatment with agalsidase-alpha.
Our study unveils that, similar to patients with FD, GLA KO mice display age-dependent sensory deficits. However, contrary to patients, GLA KO mice are also protected from hypersensitivity induced by inflammation and nerve lesion due to Gb3-dependent and reversible reduction of neuronal sodium- and Ih-currents. Our data provide evidence for direct Gb3-dependent ion channel impairment in sensory DRG neurons as a potential contributor to sensory dysfunction and pain in FD.