@phdthesis{Bacmeister2018, author = {Bacmeister, Lucas}, title = {Effect of Cadherin-13 inactivation on different GABAergic interneuron populations of the mouse hippocampus}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-172693}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {Cadherin-13 (CDH13) is an atypical member of the cadherin superfamily, a group of membrane proteins mediating calcium-dependent cellular adhesion. Although CDH13 shows the classical extracellular cadherin structure, the typical transmembrane and cytoplasmic domains are absent. Instead, CDH13 is attached to the cell membrane via a glycosylphosphatidylinositol (GPI) anchor. These findings and many studies from different fields suggest that CDH13 also plays a role as a cellular receptor. Interestingly, many genome-wide association studies (GWAS) have found CDH13 as a risk gene for attention-deficit/hyperactivity disorder (ADHD) and other neurodevelopmental disorders. In previous work from our research group, strong expression of Cdh13 mRNA in interneurons of the hippocampal stratum oriens (SO) was detected. Therefore, double-immunofluorescence studies were used to evaluate the degree of co-expression of CDH13 with seven markers of GABAergic interneuron subtypes. For this purpose, murine brains were double stained against CDH13 and the respective marker and the degree of colocalization in the SO of the hippocampus was assessed. Based on the result of this immunofluorescence study, quantitative differences in interneuron subtypes of the SO between Cdh13 knockout (ko), heterozygote (het) and wildtype (wt) mice were investigated in this dissertation using stereological methods. In addition, genotype- dependent differences in the expression of genes involved in GABAergic and glutamatergic neurotransmission were analyzed by quantitative real-time PCR (qRT-PCR). Primers targeting different GABA receptor subunits, vesicular GABA and glutamate transporter, GABA synthesizing enzymes and their interaction partners were used for this purpose. The results of the stereological quantification of the interneuron subtypes show no significant differences in cell number, cell density or volume of the SO between Cdh13 ko, het and wt mice. On the other hand, qRT-PCR results indicate significant differences in the expression of tropomyosin-related kinase B gene (TrkB), which encodes the receptor of brain-derived neurotrophic factor (BDNF), a regulator of GABAergic neurons. This finding supports a role for CDH13 in the regulation of BDNF signaling in the hippocampus.}, subject = {Cadherine}, language = {en} } @phdthesis{Heupel2010, author = {Heupel, Wolfgang-Moritz Felix}, title = {Role and modulation of cadherins in pathologic processes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-52716}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Ca2+ dependent cell adhesion molecules (cadherins) are central for a variety of cell and tissue functions such as morphogenesis, epithelial and endothelial barrier formation, synaptic function and cellular signaling. Of paramount importance for cadherin function is their specific extracellular adhesive trans-interaction. Cadherins are embedded in a cellular environment of intracellular and extracellular regulators that modify cadherin binding in response to various physiological and pathological stimuli. Most experimental approaches used for studying cadherin interaction however lack a physiological proof of principle mostly by not investigating cadherins in their physiological environment. In the present cumulative dissertation, experimental approaches were applied to characterize and modulate vascular endothelial (VE)-cadherin and desmocadherin functions in the (patho-)physiological contexts of endothelial permeability regulation and disturbance of epidermal barrier function, which is typical to the blistering skin disease pemphigus, respectively. Whereas VE-cadherin is a key regulator of the endothelial barrier that separates the blood compartment from the interstitial space of tissues, desmosomal cadherins are crucial for maintenance of epidermal integrity and separation of the external environment from the body's internal milieu. Cadherin functions were both investigated in cell-free and cell-based conditions: by using biophysical single molecule techniques like atomic force microscopy (AFM), cadherin function could be investigated in conditions, where contributions of intracellular signaling were excluded. These experiments were, however, compared and combined with cell-based experiments in which cadherins of epidermal or endothelial cell cultures were probed by laser force microscopy (laser tweezers), fluorescence recovery after photobleaching (FRAP) and other techniques. The autoimmune blistering skin diseases pemphigus foliaceus (PF) and pemphigus vulgaris (PV) are caused by autoantibodies directed against the extracellular domains of the desmosomal cadherins desmoglein (Dsg) 1 and 3, which are important for epidermal adhesion. The mechanism of autoantibody-induced cell dissociation (acantholysis) in pemphigus, however, is still not fully understood. For the first time, it is shown by AFM force spectroscopy that pemphigus autoantibodies directly inhibit Dsg3 adhesion by steric hindrance but do not inhibit adhesion of Dsg1. However, the full pathogenicity of the autoantibodies depended on cellular signaling processes, since autoantibodies targeting Dsg1 also resulted in loss of cadherin-mediated adhesion in cell-based experiments. However, two other signaling pathways that have been reported to be involved in pemphigus pathogenesis, i.e. epidermal growth factor receptor (EGFR) and c-Src activation, were not found to be important in this context. Furthermore, peptide-based modulators of cadherin functions were generated for Dsg1/3 and VE-cadherin. By comparing Dsg1, Dsg3 and VE-cadherin sequences to published X-ray structures of cadherin trans-interactions, specific amino acid sequences of the binding pockets of these cadherins were identified. Peptide versions of these motifs were synthesized and the antagonistic functions of these "single peptides" were validated by AFM force spectroscopy as well as by cell-based assays. By linking two single peptides in tandem, stabilization of cadherin bonds because of by cross-bridge formation between trans-interacting cadherins was demonstrated. Protective effects of tandem peptides were shown by partly preventing pemphigus autoantibody-induced acantholysis, or in the case of VE-cadherin, by stabilizing endothelial barrier properties against barrier disrupting agents like the Ca2+ ionophore A23187 and an inhibitory VE-cadherin antibody. Most importantly, VE-cadherin tandem peptides abolished microvascular hyperpermeability induced by the physiologic inflammatory agent tumor necrosis factor-α in the rat mesentery in vivo. Both classes of tandem peptides therefore can be considered as a starting point for the generation of potential therapeutic agents that might prevent cell dissociation in pemphigus and breakdown of the endothelial barrier under inflammatory conditions.}, subject = {Cadherine}, language = {en} } @phdthesis{Kiser2019, author = {Kiser, Dominik Pascal}, title = {Gene x Environment Interactions in Cdh13-deficient Mice: CDH13 as a Factor for Adaptation to the Environment}, doi = {10.25972/OPUS-17959}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-179591}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {Neurodevelopmental disorders, including attention-deficit/hyperactivity disorder (ADHD) and autism spectrum disorder (ASD) are disorders of mostly unknown etiopathogenesis, for which both genetic and environmental influences are expected to contribute to the phenotype observed in patients. Changes at all levels of brain function, from network connectivity between brain areas, over neuronal survival, synaptic connectivity and axonal growth, down to molecular changes and epigenetic modifications are suspected to play a key roles in these diseases, resulting in life-long behavioural changes. Genome-wide association as well as copy-number variation studies have linked cadherin-13 (CDH13) as a novel genetic risk factor to neuropsychiatric and neurodevelopmental disorders. CDH13 is highly expressed during embryonic brain development, as well as in the adult brain, where it is present in regions including the hippocampus, striatum and thalamus (among others) and is upregulated in response to chronic stress exposure. It is however unclear how CDH13 interacts with environmentally relevant cues, including stressful triggers, in the formation of long-lasting behavioural and molecular changes. It is currently unknown how the environment influences CDH13 and which long term changes in behaviour and gene expression are caused by their interaction. This work therefore investigates the interaction between CDH13 deficiency and neonatal maternal separation (MS) in mice with the aim to elucidate the function of CDH13 and its role in the response to early-life stress (ELS). For this purpose, mixed litters of wild-type (Cdh13+/+), heterozygous (Cdh13+/-) and homozygous knockout (Cdh13-/-) mice were maternally separated from postnatal day 1 (PN1) to postnatal day 14 (PN14) for 3 hours each day (180MS; PN1-PN14). In a first series of experiments, these mice were subjected to a battery of behavioural tests starting at 8 weeks of age in order to assess motor activity, memory functions as well as measures of anxiety. Subsequently, expression of RNA in various brain regions was measured using quantitativ real-time polymerase chain reaction (qRT-PCR). A second cohort of mice was exposed to the same MS procedure, but was not behaviourally tested, to assess molecular changes in hippocampus using RNA sequencing. Behavioural analysis revealed that MS had an overall anxiolytic-like effect, with mice after MS spending more time in the open arms of the elevated-plus-maze (EPM) and the light compartment in the light-dark box (LDB). As a notable exception, Cdh13-/- mice did not show an increase of time spent in the light compartment after MS compared to Cdh13+/+ and Cdh13+/- MS mice. During the Barnes-maze learning task, mice of most groups showed a similar ability in learning the location of the escape hole, both in terms of primary latency and primary errors. Cdh13-/- control (CTRL) mice however committed more primary errors than Cdh13-/- MS mice. In the contextual fear conditioning (cFC) test, Cdh13-/- mice showed more freezing responses during the extinction recall, indicating a reduced extinction of fear memory. In the step-down test, an impulsivity task, Cdh13-/- mice had a tendency to wait longer before stepping down from the platform, indicative of more hesitant behaviour. In the same animals, qRT-PCR of several brain areas revealed changes in the GABAergic and glutamatergic systems, while also highlighting changes in the gatekeeper enzyme Glykogensynthase-Kinase 3 (Gsk3a), both in relation to Cdh13 deficiency and MS. Results from the RNA sequencing study and subsequent gene-set enrichment analysis revealed changes in adhesion and developmental genes due to Cdh13 deficiency, while also highlighting a strong link between CDH13 and endoplasmatic reticulum function. In addition, some results suggest that MS increased pro-survival pathways, while a gene x environment analysis showed alterations in apoptotic pathways and migration, as well as immune factors and membrane metabolism. An analysis of the overlap between gene and environment, as well as their interaction, highlighted an effect on cell adhesion factors, underscoring their importance for adaptation to the environment. Overall, the stress model resulted in increased stress resilience in Cdh13+/+ and Cdh13+/- mice, a change absent in Cdh13-/- mice, suggesting a role of CDH13 during programming and adaptation to early-life experiences, that can results in long-lasting consequences on brain functions and associated behaviours. These changes were also visible in the RNA sequencing, where key pathways for cell-cell adhesion, neuronal survival and cell-stress adaptation were altered. In conclusion, these findings further highlight the role of CDH13 during brain development, while also shedding light on its function in the adaptation and response during (early life) environmental challenges.}, subject = {Cadherine}, language = {en} } @phdthesis{Pennington2018, author = {Pennington, Laura Sophie}, title = {The role of Cadherin-13 in serotonergic neurons during different murine developmental stages}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-161331}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {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.}, subject = {Cadherine}, language = {en} }