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Coffin-Lowry syndrome is a rare syndromic form of X-linked mental retardation caused by heterogeneous loss-of-function mutations in the gene RPS6KA3 that encodes the RSK2 protein. Clinical features are delayed motor development, small height, progressive skeletal malformations and mental retardation.
Rsk2 deficiency affects behavioral, cellular and molecular functions. To characterize and investigate how this deficiency affects these functions, we made a series of experiments using Rsk2-deficient mice as the animal model for Coffin-Lowry syndrome.
We applied a battery of behavioral tests and included the use of the IntelliCage for the first time as a behavioral paradigm to study anxiety-like behavior and depression-like behavior in Rsk2-deficient mice. Results from the conventional behavioral tests and from the IntelliCage indicate that Rsk2-deficient mice may have an anti-anxiety and anti-depressive phenotype.
We evaluated in Rsk2 deficient mice the relative gene expression of a set of genes coding for proteins related to RSK2 which are involved in fear memory, synaptic plasticity, neurogenesis, learning, emotional behavior and stress. We found gene expression alterations in the prefrontal cortex and striatum. These results suggest that RSK2 may be involved in the expression of the genes.
RSK2 is known to be related to monoamine neurotransmitter function. We measured the levels of dopamine, serotonin and noradrenaline/norepinephrine and their metabolites in different brain regions of Rsk2-deficient mice. We found differences in the dopaminergic and noradrenergic systems suggesting an increased or decreased activity of these neurotransmission systems as a result of Rsk2 deficiency.
Adult neurogenesis is a form of neuronal plasticity and a multi-step process of cell development. We explored if this form of neuronal plasticity was affected by Rsk2-deficiency. Our results indicate that adult hippocampal neurogenesis is not influenced by lifelong Rsk2 deficiency. It would be worth to analyze in the future other aspects of neuroplasticity.
We have confirmed, that behavioral characteristics of Rsk2-deficient mice make them an interesting model to study the Coffin-Lowry syndrome by extending the behavioral characterization on the emotional level. Furthermore, we have extended the characterization of the model on a molecular level, opening new opportunities to study and understand the pathophysiological basis of the Coffin-Lowry syndrome.
Kardialer Phänotyp und SUDEP durch Knockout des Nav1.1 Kanalgens (SCN1A) in einem Dravet-Mausmodell
(2018)
SUDEP bezeichnet den plötzlichen und unerwarteten Epilepsietod ohne offensichtliche kausale Todesursache. Junge Patienten, die an der schweren infantilen enzephalo-pathischen Epilepsieform des Dravet-Syndroms (SMEI) leiden, tragen besonderes
Risiko an SUDEP zu versterben. Die pathophysiologische Ursache für das Dravet-Syndrom liegt in einem Defekt des brain-type Natriumkanals Nav1.1. Neuere Studien zeigen, dass der ursprünglich als hirnspezifisch geltende Kanal nicht explizit in
neuronalem Gewebe, sondern auch im Herzen exprimiert wird.
Ziel dieser Arbeit war es daher, die Auswirkungen des Nav1.1-Defektes auf kardialer Ebene zu evaluieren, um eine mögliche Beteiligung von Herzrhythmusstörungen an der Ätiologie des SUDEP aufzudecken. Dazu wurde ein Knockout-Mausmodell hinsichtlich seines kardialen Phänotyps charakterisiert. Mit Hilfe elektrokardiographischer
Untersuchungen (EKG) konnte eine gesteigerte Herzfrequenz unter Stressbedingungen festgestellt werden. Die Frequenz lag sowohl bei den Versuchen unter pharmakologischem Stress mittels Isoproterenol als auch unter induziertem Stress mittels
Hyperthermie bei den Dravet-Syndrom-Mäusen höher als in dem wildtypischen
Kontrollkollektiv. Elektrophysiologische Untersuchungen (EPU) zeigten neben einem erhöhten Schweregrad der induzierbaren Arrhythmien, gemessen anhand eines
Arrhythmie-Scores, auch eine erhöhte Quantität ausgelöster Herzrhythmusstörungen. Sowohl unter Ruhebedingungen als auch nach Induktion von Hyperthermie überwogen die aufgezeichneten Arrhythmien bei Dravet-Syndrom-Mäusen.
Die Erkenntnisse dieser Studie helfen die Rolle des Nav1.1-Defektes an einer kardialen Beteiligung im Rahmen von SUDEP bei Dravet-Patienten zu beschreiben. Sie zeigen ver-schiedene kardiale Auswirkungen bei Knockout des primär neuronalen Natrium¬kanalgens SCN1A. Weitere Einsichten in diesen Bereich werden angemessene Risikostratifizierung für Epilepsie-Patienten hinsichtlich Ihres SUDEP-Risikos ermöglichen und moderne The-rapieansätze anregen.
SPRED proteins are inhibitors of the Ras/ERK/MAPK signaling pathway, an evolutionary highly conserved and very widespread signaling cascade regulating cell proliferation, differentiation, and growth. To elucidate physiological consequences of SPRED2 deficiency, SPRED2 KO mice were generated by a gene trap approach. An initial phenotypical characterization of KO mice aged up to five months identified SPRED2 as a regulator of chondrocyte differentiation and bone growth. Here, the loss of SPRED2 leads to an augmented FGFR-dependent ERK activity, which in turn causes hypochondroplasia-like dwarfism. However, long term observations of older KO mice revealed a generally bad state of health and manifold further symptoms, including excessive grooming associated with severe self-inflicted wounds, an abnormally high water uptake, clear morphological signs of kidney deterioration, and a reduced survival due to sudden death. Based on these observations, the aim of this study was to discover an elicitor of this complex and versatile phenotype.
The observed kidney degeneration in our SPRED2 KO mice was ascribed to hydronephrosis characterized by severe kidney atrophy and apoptosis of renal tubular cells. Kidney damage prompted us to analyze drinking behavior and routine serum parameters. Despite polydipsia, which was characterized by a nearly doubled daily water uptake, the significantly elevated Na+ and Cl- levels and the resulting serum hyperosmolality could not be compensated in SPRED2 KOs. Since salt and water balance is primarily under hormonal control of aldosterone and AVP, we analyzed both hormone levels. While serum AVP was similar in WTs and KOs, even after experimental water deprivation and an extreme loss of body fluid, serum aldosterone was doubled in SPRED2 KO mice. Systematic investigation of contributing upstream hormone axes demonstrated that hyperaldosteronism developed independently of an overactivated Renin-Angiotensin system as indicated by halved serum Ang II levels in KO mice. However, aldosterone synthase expression in the adrenal gland was substantially augmented. Serum corticosterone, which is like aldosterone released from the adrenal cortex, was more than doubled in SPRED2 KOs, too. Similar to corticosterone, the production of aldosterone is at least in part under control of pituitary ACTH, which is further regulated by upstream hypothalamic CRH release. In fact, stress hormone secretion from this complete hypothalamic-pituitary-adrenal axis was upregulated because serum ACTH, the mid acting pituitary hormone, and hypothalamic CRH, the upstream hormonal inductor of HPA axis activity, were also elevated by 30% in SPRED2 KO mice. This was accompanied by an upregulated ERK activity in paraventricular nucleus-containing hypothalamic brain regions and by augmented hypothalamic CRH mRNA levels in our SPRED2 KO mice. In vitro studies using the hypothalamic cell line mHypoE-44 further demonstrated that both SPRED1 and SPRED2 were able to downregulate CRH promoter activity, CRH secretion, and Ets factor-dependent CRH transcription. This was in line with the presence of various Ets factor binding sites in the CRH promoter region, especially for Ets1.
Thus, this study shows for the first time that SPRED2-dependent inhibition of Ras/ERK/MAPK signaling by suppression of ERK activity leads to a downregulation of Ets1 factor-dependent transcription, which further results in inhibition of CRH promoter activity, CRH transcription, and CRH release from the hypothalamus. The consecutive hyperactivity of the complete HPA axis in our SPRED2 KO mice reflects an elevated endogenous stress response becoming manifest by excessive grooming behavior and self-inflicted skin lesions on the one hand; on the other hand, in combination with elevated aldosterone synthase expression, this upregulated HPA hormone release explains hyperaldosteronism and the associated salt and water imbalances. Both hyperaldosteronism and polydipsia very likely contribute further to the observed kidney damage.
Taken together, this study initially demonstrates that SPRED2 is essential for the appropriate regulation of HPA axis activity and of body homeostasis.
To further enlighten and compare consequences of SPRED2 deficiency in mice and particularly in humans, two follow-up studies investigating SPRED2 function especially in heart and brain, and a genetic screen to identify human SPRED2 loss-of-function mutations are already in progress.
Untersuchung zur NO/cGMP-Signaltransduktion in der glatten Muskulatur von NO-GC-defizienten Mäusen
(2013)
Die Stickstoffmonoxid (NO)/cGMP-Signaltransduktion besitzt eine entscheidende Rolle bei der Tonusregulation der glatten Muskulatur. Dabei ist NO neben seiner herausragenden Bedeutung für das vaskuläre System einer der wichtigsten inhibitorischen Neurotransmitter im Gastrointestinaltrakt. Die Wirkung von NO beruht hauptsächlich auf der Aktivierung der NO-sensitiven Guanylyl-Cyclase (NO-GC), die aus zwei Untereinheiten aufgebaut ist (α und ß). Die Deletion der ß1-Untereinheit in Mäusen resultiert in einem vollständigen NO-GC-Knockout (GCKO). Im Gastrointestinaltrakt ist die Expression von NO-GC in glatten Muskelzellen (SMC), interstitiellen Zellen von Cajal (ICC) und Fibroblasten-ähnlichen Zellen (FLC) nachgewiesen. In dieser Arbeit wurde die Bedeutung des NO/cGMP-Signalweges für die Regulation von Kontraktion und Relaxation innerhalb dieser drei Zelltypen anhand von zellspezifischen GCKO-Tieren untersucht. SMC- und ICC-spezifische GCKO-Tiere waren bereits vorhanden. FLC-spezifische GCKO-Tiere wurden generiert und mit den vorhandenen ICC- und SMC-GCKO-Linien gekreuzt, um Doppel- und Tripel-Knockout-Tiere zu erhalten. FLC-GCKO-Tiere zeigen eine NO-induzierte Relaxation glattmuskulären Gewebes, die der von WT-Tieren gleicht. Auch Gewebe von FLC/ICC- und FLC/SM-GCKO-Tieren kann durch NO relaxiert werden. Erst die Deletion der NO-GC in allen drei Zelltypen (Tripel-GCKO) führt zu einer Unterbrechung der NO-Relaxation, wie sie aus GCKO-Tieren bekannt ist. Überraschenderweise zeigt sich bei FLC-GCKO-Tieren eine beschleunigte Darmpassagezeit. Die Ergebnisse dieser Arbeit lassen darauf schließen, dass die NO-GC in allen drei Zelltypen des Gastrointestinaltrakts an der nitrergen Signaltransduktion beteiligt ist, wenn auch auf unterschiedliche Weise. Es besteht demnach eine Interaktion zwischen den verschiedenen Zelltypen, die durch weiterführende Versuche mit den vorhandenen Doppel-Knockout-Tieren sowie der Tripel-GCKO-Linie nähergehend untersucht werden muss. Der zweite Teil der Arbeit beschäftigte sich mit der Rolle der NO-GC im unteren Harntrakt. Dort liegt die NO-GC in verschieden Zelltypen vor. In Urethra-Gewebe wird die NO-GC ausschließlich in SMC exprimiert, während sie in der Harnblase einzig in interstitiellen Zellen, nicht aber in SMC, befindet. Funktionell hat dies zur Folge, dass die NO-induzierte Urethra-Relaxation ausschließlich von glatten Muskelzellen vermittelt wird. Die Harnblasenmuskulatur hingegen zeigt keine Relaxation auf NO-Gabe hin. Die Identifizierung der NO-GC-exprimierenden interstitiellen Zellen sowie ihre Funktion sind bislang ungeklärt. In einem dritten Projekt wurden Untersuchungen zur Effektivität der NO-GC-Inhibitoren ODQ und NS2028 durchgeführt. Die Ergebnisse zeigen, dass bei einem Einsatz der Inhibitoren nicht von einer vollständigen Hemmung der NO-GC ausgegangen werden sollte. Drei Faktoren beeinflussen nachhaltig die Inhibitor-Effektivität: (1) die Klasse des NO-Donors, (2) die Inkubationszeit mit dem Inhibitor und dem NO-Donor sowie (3) die Stärke der Vorkontraktion bei Versuchen mit Glattmuskelgewebe. Die Wahl dieser Parameter bestimmt, in welchem Ausmaß ODQ und NS2028 die NO-stimulierte NO GC inhibieren können. Aus diesem Projektteil resultiert, dass man den Einsatz dieser Inhibitoren nicht, wie vielfach in der Literatur vorzufinden, als Beweis für cGMP unabhängige Effekte nutzen sollte.
To unravel the role of single genes underlying certain biological processes, scientists often use amorphic or hypomorphic alleles. In the past, such mutants were often created by chance. Enormous approaches with many animals and massive screening effort for striking phenotypes were necessary to find a needle in the haystack. Therefore at the beginning chemical mutagens or radiation were used to induce mutations in the genome. Later P-element insertions and inaccurate jump-outs enabled the advantage of potential larger deletions or inversions. The mutations were characterized and subsequently kept in smaller populations in the laboratories. Thus additional mutations with unknown background effects could accumulate.
The precision of the knockout through homologous recombination and the additional advantage of being able to generate many useful rescue constructs that can be easily reintegrated into the target locus made us trying an ends-out targeting procedure of the two core clock genes period and timeless in Drosophila melanogaster. Instead of the endogenous region, a small fragment of approximately 100 base pairs remains including an attP-site that can be used as integration site for in vitro created rescue constructs. After a successful ends-out targeting procedure, the locus will be restored with e.g. flies expressing the endogenous gene under the native promoter at the original locus coupled to a fluorescence tag or expressing luciferase.
We also linked this project to other research interests of our work group, like the epigenetic related ADAR-editing project of the Timeless protein, a promising newly discovered feature of time point specific timeless mRNA modification after transcription with yet unexplored consequences. The editing position within the Timeless protein is likewise interesting and not only noticed for the first time. This will render new insights into the otherwise not-satisfying investigation and quest for functional important sequences of the Timeless protein, which anyway shows less homology to other yet characterized proteins.
Last but not least, we bothered with the question of the role of Shaggy on the circadian clock. The impact of an overexpression or downregulation of Shaggy on the pace of the clock is obvious and often described. The influence of Shaggy on Period and Timeless was also shown, but for the latter it is still controversially discussed. Some are talking of a Cryptochrome stabilization effect and rhythmic animals in constant light due to Shaggy overexpression, others show a decrease of Cryptochrome levels under these conditions. Also the constant light rhythmicity of the flies, as it was published, could not be repeated so far. We were able to expose the conditions behind the Cryptochrome stabilization and discuss possibilities for the phenomenon of rhythmicity under constant light due to Shaggy overexpression.
Hey1, Hey2 and HeyL are downstream effectors of the Notch signalling pathway. Hey genes play decisive roles during embryonic development for example in cardiovascular development. However, the precise transcriptional programmes and genes, which are affected by each single Hey gene, are still poorly understood. One drawback for the analysis of Hey1, Hey2 or HeyL single gene function is that these genes are co-expressed in many tissues and share a high degree of functional redundancy. Thus, it was necessary to establish a system, which is either devoid of Hey expression, or just comprises one single Hey gene family member. For this, Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- as well as Hey-triple- knock out (KO)-ES cells (embryonic stem cells) were generated in this work, because ES cells and their differentiation as EBs (embryoid bodies) represent a valuable tool for the in vitro analysis of embryonic developmental processes. After the establishment of Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells, it could be seen by ALP staining and pluripotency marker expression that loss of Hey expression did not affect ES cell pluripotency features. Thus, these ES cells represent bona fide ES cells and could be further used for the differentiation as EBs. Here, differences in gene expression between Hey1(fl/fl)/Hey2(-/-)/HeyL(-/-)- and Hey-triple- KO-ES cells (after the loss of Hey1) could be observed in realtime-RT-PCR analysis for the endodermal marker AFP as well as for neural and myogenic markers in d10 EBs. However, the establishment of inducible Hey1, Hey2 or HeyL ES cell lines will be essential to confirm these findings and to search for novel Hey target genes. To get further insight into the mode of Hey action, the analysis of Hey interaction partners is necessary. One such binding partner, the Bre protein, has previously been found in a yeast-two-hybrid screen. Bre has been described to be a member of two distinct complexes (i.e. the nuclear BRCA1-A complex with a function in DNA damage response and the cytoplasmic BRISC complex), to directly interact with the TNF-receptor and Fas and to interfere with apoptotic signalling. The Hey-Bre interaction could be further corroborated in this work; yet, it was not possible to narrow down the interaction site of Bre with Hey1. It rather seems that non-overlapping parts of the Bre protein may bind to Hey. This interaction may be direct– pointing to more than one interaction site inside the Bre protein – or via a common binding partner such as the endogenous Bre protein itself. Besides the interaction studies, functional assays were performed for a more detailed characterisation of Hey1 and Bre interaction. Here, it could be shown that Hey1 over-expression did not have any influence on Bre sub-cellular localisation. Interestingly, it could be demonstrated that Bre positively interfered with Hey1 repressive function in luciferase assays at three of four promoters analysed. Moreover, interaction with Bre seems to lead to a stabilisation of Hey1. As Bre has been described to modulate the E3-ligase activity intrinsic to the BRCC complex it was analysed whether Bre over-expression results in an ubiquitination of Hey1. Yet, this could not be observed in the present work. Furthermore, an interaction of Bre with ubiquitinated proteins could not be demonstrated in an ubiquitin binding assay. To obtain a better insight into Bre function, Bre LacZ gene trap-ES cells and animals were generated. However, realtime-RT-analyses revealed that these cells and mice did not show a loss of Bre expression on mRNA level indicating that insertion mutagenesis did not occur as expected. However, embryos derived from these mice could nevertheless be used for the detection of tissues with Bre expression by β-galactosidase staining. Bre deficiency on mRNA levels was only achieved after the deletion of the floxed exon 3 resulting in the generation of Bre del-mice. Bre del-mice were fertile and without any obvious phenotype and they were used for the generation of Bre del- and wt-MEFs (murine embryonic fibroblasts). Characterisation of these cells showed that proliferation was not affected after loss of Bre (neither under normal nor under stress conditions). However, loss of Bre notably resulted in a reduction in the BRCA1 DNA damage response, in a slightly increased sensitivity towards apoptosis induction by FasL treatment and in an increase in the K63-poly-ubiquitin content in Bre del-cytoplasmic fractions, probably linked to a change in the BRISC de-ubiquitinase activity. Even though these results have the same tendencies as observed in former studies, the effects in the present work are less striking. Further studies as well as intercrossing of Bre del- to Hey KO-animals will be necessary to further understand the functional relevance of Hey and Bre interaction.
Serotonin (5-HT) has been implicated in the regulation of emotions as well as in its pathological states, such as anxiety disorders and depression. Mice with targeted deletion of genes encoding various mediators of central serotonergic neurotransmission therefore provides a powerful tool in understanding contributions of such mediators to homeostatic mechanisms as well as to the development of human emotional disorders. Within this thesis a battery of electrophysiological recordings were conducted in the dorsal raphe nucleus (DRN) and the hippocampus of two murine knockout lines with deficient serotonergic systems. Serotonin transporter knockout mice (5-Htt KO), which lack protein responsible for reuptake of 5-HT from the extracellular space and tryptophan hydroxylase 2 knockout (Tph2 KO) mice, which lack the gene encoding the neuronal 5-HT-synthesising enzyme. First, 5-HT1A receptor-mediated autoinhibition of serotonergic neuron firing in the DRN was assessed using the loose-seal cell-attached configuration. Stimulation of 5-HT1A receptors by a selective agonist, R-8-hydroxy-2-(di-n-propylamino)tetralin (R-8-OH-DPAT), showed a mild sensitisation and a marked desensitisation of these receptors in Tph2 KO and 5-Htt KO mice, respectively. While application of tryptophan, a precursor of 5-HT and a substrate of Tph2, did not cause autoinhibition in Tph2 KO mice due to the lack of endogenously produced 5-HT, data from 5-Htt KO mice as well as heterozygous mice of both KO mice lines demonstrated the presence of autoinhibitory mechanisms as normal as seen in wildtype (WT) controls. When the Tph2-dependent step in the 5-HT synthesis pathway was bypassed by application of 5-hydroxytryptophan (5-HTP), serotonergic neurons of both Tph2 KO and 5-Htt KO mice showed decrease in firing rates at lower concentrations of 5-HTP than in WT controls. Elevated responsiveness of serotonergic neurons from Tph2 KO mice correspond to mild sensitisation of 5-HT1A receptors, while responses from 5-Htt KO mice suggest that excess levels of extracellular 5-HT, created by the lack of 5-Htt, stimulates 5-HT1A receptors strong enough to overcome desensitisation of these receptors. Second, the whole-cell patch clamp recording data from serotonergic neurons in the DRN showed no differences in basic electrophysiological properties between Tph2 KO and WT mice, except lower membrane resistances of neurons from KO mice. Moreover, the whole-cell patch clamp recording from CA1 pyramidal neurons in the hippocampus of 5-Htt KO mice showed increased conductance both at a steady state and at action potential generation. Lastly, magnitude of long-term potentiation (LTP) induced by the Schaffer collateral/commissural pathway stimulation in the ventral hippocampus showed no differences among Tph2 KO, 5-Htt KO, and WT counterparts. Taken together, lack and excess of extracellular 5-HT caused sensitisation and desensitisation of autoinhibitory 5-HT1A receptors, respectively. However, this may not directly translate to the level of autoinhibitory regulation of serotonergic neuron firing when these receptors are stimulated by endogenously synthesised 5-HT. In general, KO mice studied here showed an astonishing level of resilience to genetic manipulations of the central serotonergic system, maintaining overall electrophysiological properties and normal LTP inducibility. This may further suggest existence of as-yet-unknown compensatory mechanisms buffering potential alterations induced by genetic manipulations.
Die Stickstoffmonoxid (NO)-cGMP-Signalkaskade spielt eine entscheidende Rolle in der Kontrolle des glatten Muskeltonus. NO ist einer der wichtigsten vaskulären Faktoren für die Relaxation der Blutgefäße sowie für die Regulation des Blutdruckes und fungiert ebenfalls als wichtigster inhibitorischer Neurotransmitter im gastrointestinalen Trakt. Es wirkt hauptsächlich über die NO-sensitive Guanylyl-Cyclase (NO-GC), die aus zwei Untereinheiten aufgebaut ist (α und ß). Deletion der ß1-Untereinheit in Mäusen führt zu einem vollständigen NO-GC-Knockout (GCKO). GCKO-Mäuse zeigen keine NO-induzierte Relaxation der vaskulären und gastrointestinalen glatten Muskulatur. Die Mäuse zeigen eine arterielle Hypertonie und eine verlängerte Magen-Darm-Transportzeit, die in eine gastrointestinale Dysfunktion mündet. Allerdings erlaubt eine vollständige Deletion der NO-GC in den Mäusen keine Identifikation des Zell- bzw. Gewebe-Typs, der für den erhöhten Blutdruck und die gastrointestinale Dysfunktion verantwortlich ist. Um die relative Beteiligung der glatten Muskelzellen an der Hypertonie und der gestörten Darm-Motilität zu bestimmen, wurden Glattmuskel-spezifische Knockout-Mäuse für die ß1-Untereinheit der NO-GC (SM-GCKO) generiert. Die SM-GCKO-Mäuse entwickelten im Verlauf der Deletion eine arterielle Hypertonie in Kombination mit einem Verlust der NO-induzierten Glattmuskelrelaxation. Diese Daten zeigen, dass die Deletion der NO-GC in den glatten Muskelzellen völlig ausreichend ist, eine Hypertonie zu erzeugen. Überraschenderweise ist die Darm-Motilität der SM-GCKO-Mäuse im Vergleich zu den WT-Mäusen unverändert. In gastrointestinaler Muskulatur exprimieren neben den glatten Muskelzellen auch die interstitiellen Zellen von Cajal (ICC) die NO-GC. Mithilfe einer Cre-spezifischen Maus für ICC wurde eine Mauslinie generiert, der die NO-GC in beiden Zelltypen fehlt. Der gastrointestinale Phänotyp dieser Doppel-Knockouts ähnelt dem der totalen GCKO-Tiere: Die nitrerge Relaxation fehlt und die Magen-Darm-Transportzeit ist verlängert. Zusammenfassend führt eine Deletion der NO-GC in glatten Muskelzellen und gleichzeitig in den ICC zu einer vollständigen Unterbrechung der nitrergen Relaxation in GI Trakt.
Um eine mögliche elektrophysiologische, kardiale Ursache für den plötzlichen Tod von STIM2 Knock-Out Mäusen zu prüfen, wurde eine elektrophysiologische Charakterisierung mittels Ruhe- und Stress-EKG, telemetrischem Langzeit-EKG sowie Elektrophysiologischer Untersuchung durchgeführt. Hierbei konnte keine kardial-elektrophysiologische Grundlage für den plötzlichen Tod dieser Tiere gefunden werden.
Based on genetic association and functional imaging studies, reduced function of tryptophan hydroxylase-2 (TPH2) has been shown to be critically involved in the pathophysiology of anxiety-disorders and depression. In order to elucidate the impact of a complete neuronal 5-HT deficiency, mice with a targeted inactivation of the gene encoding Tph2 were generated. Interestingly, survival of Tph2-/- mice, the formation of serotonergic neurons and the pathfinding of their projections was not impaired. Within this thesis, I investigated the influence of 5-HT deficiency on the γ-amino butyric acid (GABA) system. The GABAergic system is implicated in the pathophysiology of anxiety disorders. Therefore, measurement of GABA concentrations in different limbic brain regions was carried out. These measurements were combined with immunohistochemical estimation of GABAergic cell subpopulations in the dorsal hippocampus and amygdala. In Tph2-/- mice GABA concentrations were increased exclusively in the dorsal hippocampus. In heterozygous Tph2+/- mice concentrations of GABA were increased in the amygdala compared to Tph2-/- and wt control mice, while the reverse was found in the prefrontal cortex. The changes in GABA concentrations were accompanied by altered cell density of GABAergic neurons within the basolateral complex of the amygdala and parvalbumin (PV) neurons of the dorsal hippocampus and by adaptational changes of 5-HT receptors. Thus, adaptive changes during the development on the GABA system may reflect altered anxiety-like and depressive-like behavior in adulthood. Moreover, chronic mild stress (CMS) rescues the depressive-like effects induced by 5-HT deficiency. In contrast, 5-HT is important in mediating an increased innate anxiety-like behavior under CMS conditions. This is in line with a proposed dual role of 5-HT acting through different mechanisms on anxiety and depressive-like behavior, which is influenced by gene-environment interaction effects. Further research is needed to disentangle these complex networks in the future.