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- CBIO, University of Cape Town, South Africa (1)
- Carl-Ludwig-Institut für Physiologie, Universität Leipzig (1)
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Desmogleine (Dsg1-4) sind transmembranäre Adhäsionsproteine aus der Gruppe der desmosomalen Cadherine, die Zell-Zell-Kontakte zwischen benachbarten Keratinozyten der Epidermis in und außerhalb von Desmosomen vermitteln. Eine durch Autoantikörper induzierte Störung dieser Haftstrukturen (hauptsächlich Dsg1 und Dsg3) resultiert im klinischen Bild der Pemphigus-Erkrankung. Dieses ist makroskopisch durch eine Blasenbildung der Haut gekennzeichnet. Auf zellulärer und molekularbiologischer Ebene lassen sich im Falle von Pemphigus vulgaris (PV) eine Retraktion des Zytoskeletts, eine Reduzierung der Dsg3-Proteinmenge und eine Aktivierung verschiedener Signalwege u.a. der p38MAPK nachweisen. PV eignet sich daher als Modellerkrankung zur Untersuchung der Bedeutung desmosomaler Cadherine für die interzelluläre Adhäsion in Keratinozyten. Durch zahlreiche Studien wurde die wichtige Funktion von Dsg3 als Adhäsionsprotein bestätigt und eine Beteiligung an der Modulation zahlreicher Signalwege, die in Zusammenhang mit der Pemphigus-Pathogenese stehen, untersucht. Im Gegensatz dazu konnte bisher keine spezifische Funktion des desmosomalen Cadherins Dsg2 in der Epidermis identifiziert werden. Dsg2 kommt als einziges Desmoglein in allen Geweben vor, die Desmosomen enthalten, und ist auch an den Zell-Zell-Kontakten im Myokard und Darmepithel vorhanden, wo kein Dsg1 und Dsg3 exprimiert werden. Hier nimmt Dsg2 eine wichtige Rolle als Adhäsionsmolekül und als Regulator interzellulärer Prozesse ein.
In dieser Arbeit wurde daher vergleichend die Bedeutung von Dsg2 und Dsg3 für die interzelluläre Adhäsion in Keratinozyten im Hinblick auf ihre Funktion als Adhäsionsmolekül und als Rezeptormolekül, speziell im p38MAPK-Signalweg, untersucht. Wesentliche Unterschiede zeigten sich zunächst in der Lokalisation beider Proteine. Während sich die in der Literatur beschriebene Lokalisation von Dsg3 im Stratum basale und spinosum der Epidermis bestätigte, konnte Dsg2 nur am Haarfollikel nachgewiesen werden. In differenzierten HaCaT-Zellen, einer Keratinozyten-Zelllinie war Dsg2 eher punktförmig und Dsg3 nahezu linear an der Zellmembran lokalisiert. Dementsprechend ließ sich Dsg2 nach Triton-vermittelter Zellfraktionierung in ähnlicher Verteilung zwischen der Zytoskelett-gebunden und -ungebundenen Fraktion nachweisen wie Desmoplakin, das an der Zellemembran ausschließlich in Desmosomen vorkommt. Durch Dsg-spezifische Antikörper, deren inhibitorische Eigenschaft in zellfreien AFM-Studien nachgewiesen wurde, konnte nur eine Inhibierung der Dsg3- und nicht der Dsg2-vermittelten Adhäsion in HaCaT-Zellen erzielt werden. Im Gegensatz dazu induzierte derselbe Dsg2-spezifische Antikörper einen signifikanten Haftungsverlust in einer Darmepithelzelllinie. Die mittels siRNA induzierte Reduzierung der Dsg2-Proteinmenge führte jedoch nur unter erhöhter mechanischer Belastung der Zellen zu einem Adhäsionsverlust. Die simultane Modulation der Funktion von Dsg2 und Dsg3 mittels siRNA bzw. der Inkubation Dsg2-depletierter Zellen mit AK23, einem inhibitorischen Dsg3-spezifischen Antikörper, resultierte in einem drastischen, teilweise p38MAPK-abhängigen, Adhäsionsverlust. Dieser Befund lieferte erste Hinweise auf eine kompensatorische Funktion von Dsg2 bei eingeschränkter Dsg3-vermittelter Haftung in Keratinozyten. Um dies näher zu untersuchen, wurde die Verteilung von Dsg2 an der Zellemembran Dsg3-depletierter HaCaT-Zellen untersucht. Der Verlust von Dsg3 resultierte hierbei in einer Zunahme und Linearisierung der Dsg2-Membranfärbung, was die Hypothese einer kompensatorischen Funktion im Falle einer Beeinträchtigung der Dsg3-Funktion bekräftigt. Um die Funktion von Dsg2 unter dieser Bedingung gezielter zu untersuchen, wurde das transgene Dsg3-Mausmodell eingesetzt und primäre Keratinozyten aus neonatalen Dsg3-defizienten und nicht-Dsg3-defizienten Geschwistertieren isoliert. Entsprechend der vorhergehenden Befunde zeigten die Dsg3-defizienten Zellen eine deutliche Zunahme der Dsg2-Membranlokalisation sowie zusätzlich eine erhöhte DSG2-mRNA-Expression, allerdings bei unveränderten Dsg2-Proteinmengen.
Weiterhin wurde die Funktion von Dsg2 und Dsg3 als Modulator des p38MAPK-Signalweges näher untersucht. Der für Dsg3 identifizierte Komplex mit der phosphorylierten Form der p38MAPK (p-p38MAPK) konnte für Dsg2 nicht nachgewiesen werden. Ebenso führte eine Reduzierung der Dsg2-Proteinmenge, im Gegensatz zur Reduzierung der Dsg3-Proteinmenge, nicht zur Aktivierung der p38MAPK und einer Retraktion des Zytoskeletts. Der direkte Zusammenhang zwischen einem Dsg3-Funktionsverlust und der p38MAPK-Aktivität ließ sich dadurch bestätigen, dass sowohl die Keratinretraktion als auch der Haftungsverlust nach Dsg3-Depletion durch den Einsatz eines p38MAPK-spezifischen Inhibitors partiell inhibierbar waren. Auch in primären Keratinozyten mit vollständiger Dsg3-Defizienz verbesserte eine p38MAPK-Inhibierung die Zelladhäsion. Ebenso wurde in Dsg3-defizienten Zellen im Vergleich zu Zellen mit endogener Dsg3-Expression eine deutliche Lokalisation der p-p38MAPK an der Zellmembran nachgewiesen, was darauf schließen lässt, dass möglicherweise in Abwesenheit von Dsg3 andere Membranproteine an der Regulation dieses Signalweges beteiligt sind. Zusammenfassend wurde in dieser Arbeit eine bisher nicht beschriebene Funktion von Dsg2 als Kompensationspartner für Dsg3 in Keratinozyten identifiziert und die Rolle von Dsg3 als Modulator des p38MAPK-Signalweges näher charakterisiert.
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.
Kürzlich wurden bei immunvermittelten Neuropathien Autoantikörper gegen Proteine
des paranodalen axoglialen Komplexes beschrieben. Deren Charakteristika,
Prävalenzen, pathophysiologische Relevanz sowie Bedeutung für Diagnostik
und Therapie sind jedoch noch nicht abschließend erforscht.
In dieser Studie wurden daher Seren und Plasmapheresematerial (PE-Material)
von 150 Patienten mit inflammatorischen Neuropathien, nämlich 105 mit chronisch
inflammatorischer demyelinisierender Polyneuropathie (CIDP), 21 mit Guillain-
Barré-Syndrom (GBS) und 24 mit multifokaler motorischer Neuropathie
(MMN), welche etablierte diagnostische Kriterien der jeweiligen Krankheit erfüllen,
sowie 74 Kontrollen mittels immunhistochemischen Färbungen an murinen
Zupfnervenpräparaten und/oder ELISA (Enzyme-linked Immunosorbent Assay)
auf Autoantikörper gegen die paranodalen Proteine Caspr, Contactin-1 und Neurofascin-
155 untersucht. Bei positivem Ergebnis wurde deren Spezifität mittels
immunhistochemischen Färbungen an transfizierten HEK (Human embryonic kidney)-
293-Zellen und Präinkubationsversuchen bestätigt. Es wurden die IgG-Subklassen
und die Antikörpertiter bestimmt und das Komplementbindungsverhalten
unter Zugabe von intravenösen Immunglobulinen (IVIG) mit zellbasierten und
ELISA-basierten Methoden analysiert. Klinische Merkmale und das Therapieansprechen
Antikörper-positiver Patienten wurden ermittelt und mit den experimentellen
Ergebnissen in Zusammenhang gesetzt.
IgG-Autoantikörper gegen Contactin-1 konnten bei vier Patienten mit CIDP nachgewiesen
werden, IgG-Autoantikörper gegen Caspr bei einem Patienten mit
CIDP und einer Patientin mit GBS. Es konnten keine weiteren Autoantikörper bei
CIDP-Patienten, GBS-Patienten, MMN-Patienten oder bei den Kontrollen detektiert
werden. Die Prävalenz von Autoantikörpern gegen axogliale paranodale Proteine
liegt somit in dieser Studie bei jeweils 4,76% bei CIDP und GBS und 0%
bei MMN. Die Antikörper gehörten bei Patienten in der akuten Erkrankungsphase
(zwei der CIDP-Patienten mit Anti-Contactin-1-Autoantikörpern und eine GBS-Patientin mit Anti-Caspr-Autoantikörpern) hauptsächlich den Subklassen IgG1
und IgG3 an, bei Patienten in der chronischen Phase (zwei der CIDP-Patienten
mit Anti-Contactin-1-Autoantikörpern, ein CIDP-Patient mit Anti-Caspr-Autoantikörpern)
überwog die Subklasse IgG4. Experimentell kam es zur Komplementbindung
und -aktivierung abhängig vom Gehalt der Subklassen IgG1-3, nicht
aber IgG4; diese konnte durch die Zugabe von IVIG dosisabhängig gemindert
werden. Alle Autoantikörper-positiven CIDP-Patienten zeigten einen GBS-artigen
Beginn mit einer schweren motorischen Beteiligung. Anti-Contactin-1-positive
Patienten kennzeichnete klinisch zusätzlich das Vorkommen einer Ataxie und eines
Tremors, Anti-Caspr-positive Patienten das Vorkommen starker neuropathischer
Schmerzen. Elektrophysiologisch standen neben Hinweisen auf eine Leitungsstörung
Zeichen einer axonalen Schädigung im Vordergrund. Als histopathologisches
Korrelat lagen eine nodale Architekturstörung und ein Axonverlust
vor. Die Patienten zeigten nur in der Anfangsphase der Erkrankung ein Ansprechen
auf IVIG. Bei drei CIDP-Patienten mit IgG4-Autoantikörpern (zwei Patienten
mit Anti-Contactin-1-Antikörpern und ein Patient mit Anti-Caspr-Antikörpern)
wurde eine Therapie mit Rituximab durchgeführt. Diese führte zu einer Titerreduktion
und zur zeitgleichen klinischen und elektrophysiologischen Befundbesserung
bei zwei Patienten.
Die in dieser Arbeit angewandten Screeningmethoden führten zum erfolgreichen
Nachweis von Autoantikörpern gegen paranodale axogliale Proteine. Die Patienten
mit positivem Autoantikörpernachweis definieren eine kleine Untergruppe mit
ähnlichen klinischen Merkmalen im Kollektiv der Patienten mit inflammatorischen
Polyneuropathien. Histopathologische Merkmale sowie das Therapieansprechen
auf antikörperdepletierende Therapie sprechen in Kombination mit den Ergebnissen
weiterer Studien zu paranodalen Autoantikörpern für eine pathogenetische
Relevanz der Autoantikörper. Mit einem charakteristischen, am Schnürring ansetzenden
Pathomechanismus könnten Neuropathien mit Nachweis von paranodalen
Autoantikörpern der kürzlich eingeführten Entität der Nodo-Paranodopathien
angehören. Die Komplementaktivierung und das Therapieansprechen der Patienten auf IVIG stehen möglicherweise in Zusammenhang mit der prädominanten
IgG-Subklasse. Diese könnte auch in Bezug auf die Chronifizierung eine
Rolle spielen. Der Nachweis von Autoantikörpern gegen paranodale Proteine hat
wohlmöglich in Zukunft direkte Konsequenzen auf das diagnostische und therapeutische
Prozedere bei Patienten mit CIDP und GBS; weitere klinische und experimentelle
Daten aus größeren, prospektiven Studien sind jedoch zum weiteren
Verständnis und zur Charakterisierung dieser Entität notwendig.
Cyclic adenosine monophosphate (cAMP), the ubiquitous second messenger produced upon stimulation of GPCRs which couple to the stimulatory GS protein, orchestrates an array of physiological processes including cardiac function, neuronal plasticity, immune responses, cellular proliferation and apoptosis. By interacting with various effector proteins, among others protein kinase A (PKA) and exchange proteins directly activated by cAMP (Epac), it triggers signaling cascades for the cellular response. Although the functional outcomes of GSPCR-activation are very diverse depending on the extracellular stimulus, they are all mediated exclusively by this single second messenger. Thus, the question arises how specificity in such responses may be attained. A hypothesis to explain signaling specificity is that cellular signaling architecture, and thus precise operation of cAMP in space and time would appear to be essential to achieve signaling specificity. Compartments with elevated cAMP levels would allow specific signal relay from receptors to effectors within a micro- or nanometer range, setting the molecular basis for signaling specificity. Although the paradigm of signaling compartmentation gains continuous recognition and is thoroughly being investigated, the molecular composition of such compartments and how they are maintained remains to be elucidated. In addition, such compartments would require very restricted diffusion of cAMP, but all direct measurements have indicated that it can diffuse in cells almost freely.
In this work, we present the identification and characterize of a cAMP signaling compartment at a GSPCR. We created a Förster resonance energy transfer (FRET)-based receptor-sensor conjugate, allowing us to study cAMP dynamics in direct vicinity of the human glucagone-like peptide 1 receptor (hGLP1R). Additional targeting of analogous sensors to the plasma membrane and the cytosol enables assessment of cAMP dynamics in different subcellular regions. We compare both basal and stimulated cAMP levels and study cAMP crosstalk of different receptors. With the design of novel receptor nanorulers up to 60nm in length, which allow mapping cAMP levels in nanometer distance from the hGLP1R, we identify a cAMP nanodomain surrounding it. Further, we show that phosphodiesterases (PDEs), the only enzymes known to degrade cAMP, are decisive in constraining cAMP diffusion into the cytosol thereby maintaining a cAMP gradient. Following the discovery of this nanodomain, we sought to investigate whether downstream effectors such as PKA are present and active within the domain, additionally studying the role of A-kinase anchoring proteins (AKAPs) in targeting PKA to the receptor compartment. We demonstrate that GLP1-produced cAMP signals translate into local nanodomain-restricted PKA phosphorylation and determine that AKAP-tethering is essential for nanodomain PKA.
Taken together, our results provide evidence for the existence of a dynamic, receptor associated cAMP nanodomain and give prospect for which key proteins are likely to be involved in its formation. These conditions would allow cAMP to exert its function in a spatially and temporally restricted manner, setting the basis for a cell to achieve signaling specificity. Understanding the molecular mechanism of cAMP signaling would allow modulation and thus regulation of GPCR signaling, taking advantage of it for pharmacological treatment.
New experimental methods have drastically accelerated the pace and quantity at which biological data is generated. High-throughput DNA sequencing is one of the pivotal new technologies. It offers a number of novel applications in various fields of biology, including ecology, evolution, and genomics. However, together with those opportunities many new challenges arise. Specialized algorithms and software are required to cope with the amount of data, often requiring substantial training in bioinformatic methods. Another way to make those data accessible to non-bioinformaticians is the development of programs with intuitive user interfaces.
In my thesis I developed analyses and programs to tackle current problems with high-throughput data in biology. In the field of ecology this covers the establishment of the bioinformatic workflow for pollen DNA meta-barcoding. Furthermore, I developed an application that facilitates the analysis of ecological communities in the context of their traits. Information from multiple public databases have been aggregated and can now be mapped automatically to existing community tables for interactive inspection. In evolution the new data are used to reconstruct phylogenetic trees from multiple genes. I developed the tool bcgTree to automate this process for bacteria. Many plant genomes have been sequenced in current years. Sequencing reads of those projects also contain data from the chloroplasts. The tool chloroExtractor supports the targeted extraction and analysis of the chloroplast genome. To compare the structure of multiple genomes specialized software is required for calculation and visualization of the relationships. I developed AliTV to address this. In contrast to existing programs for this task it allows interactive adjustments of produced graphics. Thus, facilitating the discovery of biologically relevant information. Another application I developed helps to analyze transcriptomes even if no reference genome is present. This is achieved by aggregating the different pieces of information, like functional annotation and expression level, for each transcript in a web platform. Scientists can then search, filter, subset, and visualize the transcriptome.
Together the methods and tools expedite insights into biological systems that were not possible before.
LIM and SH3 protein 1 (LASP1) is a nucleocytoplasmic scaffolding protein. LASP1 interacts with various cytoskeletal proteins via its domain structure and is known to participate in physiological processes of cells. In the present study, a detailed investigation of the expression pattern of LASP1 protein in normal skin, melanocytic nevi and melanoma was carried out and the melanocyte–specific function of LASP1 was analyzed. LASP1 protein was identified in stratum basale of skin epidermis and a very high level was detected in nevi, the benign tumor of melanocyte. In the highly proliferative basal cells, an additional distinct nuclear localization of the protein was noted. In different tumor entities, an elevated LASP1 expression and nuclear localization, correlated positively with malignancy and tumor grade. However, LASP1 level was determined to be very low in melanoma and even reduced in metastases. Melanoma is distinguished as the first tumor tested to date – that displayed an absence of elevated LASP1 expression. In addition no significant relation was observed between LASP1 protein expression and clinicopathological parameters in melanoma.
The epidermal melanin unit of skin comprises of melanocytes and keratinocytes. Melanocytes are specialized cells that synthesize the photo protective coloring pigment, melanin inside unique organelles called melanosomes. The presence of LASP1 in melanocytes is reported for the first time through this study and the existence was confirmed by immunoblotting analysis in cultured normal human epidermal melanocyte (NHEM) and in melanoma cell lines, along with the immunohistostaining imaging in normal skin and in melanocytic nevi. LASP1 depletion in MaMel2 cells revealed a moderate increase in the intracellular melanin level independently of de novo melanogenesis, pointing to a partial hindrance in melanin release. Immunofluorescence images of NHEM and MaMel2 cells visualized co-localization of LASP1 with dynamin and tyrosinase concomitant with melanosomes at the dendrite tips of the cells. Melanosome isolation experiments by sucrose density gradient centrifugation clearly demonstrated the presence of LASP1 and the melanosome specific markers tyrosinase and TRP1 in late stage melanosomes.
The study identified LASP1 and dynamin as novel binding partners in melanocytes and provides first evidence for the existence of LASP1 and dynamin (a protein well–known for its involvement in vesicle formation and budding) in melanosomes. Co-localization of LASP1 and dynamin along the dendrites and at the tips of the melanocytes indicates a potential participation of the two proteins in the membrane vesicle fission at the plasma membrane.
In summary, a possible involvement of LASP1 in the actin–dynamin mediated membrane fission and exocytosis of melanin laden melanosome vesicles into the extracellular matrix is suggested.
While beneficial sponge-microbe associations have received much attention in recent years, less effort has been undertaken to investigate the interactions of sponges with potentially pathogenic microorganisms. Thus, the aim of this study was to examine two selected Caribbean disease conditions, termed “Sponge Orange Band” and “Sponge White Patch”, via ecological and molecular methods. Sponge Orange Band (SOB) disease affects the prominent Caribbean barrel sponge Xestospongia muta that is counted among the high-microbial-abundance (HMA) sponges, whereas Sponge White Patch (SWP) disease affects the abundant rope sponge Amphimedon compressa that belongs to the low-microbial-abundance (LMA) sponges. I have documented for both Caribbean sponge diseases a disease progression going along with massive tissue destruction as well as loss of the characteristic microbial signatures. Even though new bacteria were shown to colonize the bleached areas, the infection trials revealed in both cases no indication for the involvement of a microbial pathogen as an etiologic agent of disease leaving us still in the dark about the cause of Sponge Orange Band as well as Sponge White Patch disease.
Effects of dopamine on BDNF / TrkB mediated signaling and plasticity on cortico-striatal synapses
(2021)
Progressive loss of voluntary movement control is the central symptom of Parkinson's disease (PD). Even today, we are not yet able to cure PD. This is mainly due to a lack of understanding the mechanisms of movement control, network activity and plasticity in motor circuits, in particular between the cerebral cortex and the striatum. Brain-derived neurotrophic factor (BDNF) has emerged as one of the most important factors for the development and survival of neurons, as well as for synaptic plasticity. It is thus an important target for the development of new therapeutic strategies against neurodegenerative diseases. Together with its receptor, the Tropomyosin receptor kinase B (TrkB), it is critically involved in development and function of the striatum. Nevertheless, little is known about the localization of BDNF within presynaptic terminals in the striatum, as well as the types of neurons that produce BDNF in the cerebral cortex. Furthermore, the influence of midbrain derived dopamine on the control of BDNF / TrkB interaction in striatal medium spiny neurons (MSNs) remains elusive so far. Dopamine, however, appears to play an important role, as its absence leads to drastic changes in striatal synaptic plasticity. This suggests that dopamine could regulate synaptic activity in the striatum via modulation of BDNF / TrkB function. To answer these questions, we have developed a sensitive and reliable protocol for the immunohistochemical detection of endogenous BDNF. We find that the majority of striatal BDNF is provided by glutamatergic, cortex derived afferents and not dopaminergic inputs from the midbrain. In fact, we found BDNF in cell bodies of neurons in layers II-III and V of the primary and secondary motor cortex as well as layer V of the somatosensory cortex. These are the brain areas that send dense projections to the dorsolateral striatum for control of voluntary movement. Furthermore, we could show that these projection neurons significantly downregulate the expression of BDNF during the juvenile development of mice between 3 and 12 weeks.
In parallel, we found a modulatory effect of dopamine on the translocation of TrkB to the cell surface in postsynaptic striatal Medium Spiny Neurons (MSNs). In MSNs of the direct pathway (dMSNs), which express dopamine receptor 1 (DRD1), we observed the formation of TrkB aggregates in the 6-hydroxydopamine (6-OHDA) model of PD. This suggests that DRD1 activity controls TrkB surface expression in these neurons. In contrast, we found that DRD2 activation has opposite effects in MSNs of the indirect pathway (iMSNs). Activation of DRD2 promotes a rapid decrease in TrkB surface expression which was reversible and depended on cAMP. In parallel, stimulation of DRD2 led to induction of phospho-TrkB (pTrkB). This effect was significantly slower than the effect on TrkB surface expression and indicates that TrkB is transactivated by DRD2. Together, our data provide evidence that dopamine triggers dual modes of plasticity on striatal MSNs by acting on TrkB surface expression in DRD1 and DRD2 expressing MSNs. This surface expression of the receptor is crucial for the binding of BDNF, which is released from corticostriatal afferents. This leads to the induction of TrkB-mediated downstream signal transduction cascades and long-term potentiation (LTP). Therefore, the dopamine-mediated translocation of TrkB could be a mediator that modulates the balance between dopaminergic and glutamatergic signaling to allow synaptic plasticity in a spatiotemporal manner. This information and the fact that TrkB is segregated to persistent aggregates in PD could help to improve our understanding of voluntary movement control and to develop new therapeutic strategies beyond those focusing on dopaminergic supply.
Within this thesis, three main approaches for the assessment and investigation of altered hemodynamics like wall shear stress, oscillatory shear index and the arterial pulse wave velocity in atherosclerosis development and progression were conducted:
1. The establishment of a fast method for the simultaneous assessment of 3D WSS and PWV in the complete murine aortic arch via high-resolution 4D-flow MRI
2. The utilization of serial in vivo measurements in atherosclerotic mouse models using high-resolution 4D-flow MRI, which were divided into studies describing altered hemodynamics in late and early atherosclerosis
3. The development of tissue-engineered artery models for the controllable application and variation of hemodynamic and biologic parameters, divided in native artery models and biofabricated artery models, aiming for the investigation of the relationship between atherogenesis and hemodynamics
Chapter 2 describes the establishment of a method for the simultaneous measurement of 3D WSS and PWV in the murine aortic arch at, using ultra high-field MRI at 17.6T [16], based on the previously published method for fast, self-navigated wall shear stress measurements in the murine aortic arch using radial 4D-phase contrast MRI at 17.6 T [4]. This work is based on the collective work of Dr. Patrick Winter, who developed the method and the author of this thesis, Kristina Andelovic, who performed the experiments and statistical analyses. As the method described in this chapter is basis for the following in vivo studies and undividable into the sub-parts of the contributors without losing important information, this chapter was not split into the single parts to provide fundamental information about the measurement and analysis methods and therefore better understandability for the following studies. The main challenge in this chapter was to overcome the issue of the need for a high spatial resolution to determine the velocity gradients at the vascular wall for the WSS quantification and a high temporal resolution for the assessment of the PWV without prolonging the acquisition time due to the need for two separate measurements. Moreover, for a full coverage of the hemodynamics in the murine aortic arch, a 3D measurement is needed, which was achieved by utilization of retrospective navigation and radial trajectories, enabling a highly flexible reconstruction framework to either reconstruct images at lower spatial resolution and higher frame rates for the acquisition of the PWV or higher spatial resolution and lower frame rates for the acquisition of the 3D WSS in a reasonable measurement time of only 35 minutes. This enabled the in vivo assessment of all relevant hemodynamic parameters related to atherosclerosis development and progression in one experimental session. This method was validated in healthy wild type and atherosclerotic Apoe-/- mice, indicating no differences in robustness between pathological and healthy mice.
The heterogeneous distribution of plaque development and arterial stiffening in atherosclerosis [10, 12], however, points out the importance of local PWV measurements. Therefore, future studies should focus on the 3D acquisition of the local PWV in the murine aortic arch based on the presented method, in order to enable spatially resolved correlations of local arterial stiffness with other hemodynamic parameters and plaque composition.
In Chapter 3, the previously established methods were used for the investigation of changing aortic hemodynamics during ageing and atherosclerosis in healthy wild type and atherosclerotic Apoe-/- mice using the previously established methods [4, 16] based on high-resolution 4D-flow MRI. In this work, serial measurements of healthy and atherosclerotic mice were conducted to track all changes in hemodynamics in the complete aortic arch over time. Moreover, spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated. This important feature allowed for the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and most importantly – at a glance. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe−/− mice, with decreasing longWSS and increasing OSI, while showing constant PWV in healthy mice and increasing longWSS and decreasing OSI, while showing increased PWV in diseased mice. Moreover, spatially resolved correlations between WSS, PWV, plaque and vessel wall characteristics were enabled, giving detailed insights into coherences between hemodynamics and plaque composition. Here, the circWSS was identified as a potential marker of plaque size and composition in advanced atherosclerosis. Moreover, correlations with PWV values identified the maximum radStrain could serve as a potential marker for vascular elasticity. This study demonstrated the feasibility and utility of high-resolution 4D flow MRI to spatially resolve, visualize and analyze statistical differences in all relevant hemodynamic parameters over time and between healthy and diseased mice, which could significantly improve our understanding of plaque progression towards vulnerability. In future studies the relation of vascular elasticity and radial strain should be further investigated and validated with local PWV measurements and CFD.
Moreover, the 2D histological datasets were not reflecting the 3D properties and regional characteristics of the atherosclerotic plaques. Therefore, future studies will include 3D plaque volume and composition analysis like morphological measurements with MRI or light-sheet microscopy to further improve the analysis of the relationship between hemodynamics and atherosclerosis.
Chapter 4 aimed at the description and investigation of hemodynamics in early stages of atherosclerosis. Moreover, this study included measurements of hemodynamics at baseline levels in healthy WT and atherosclerotic mouse models. Due to the lack of hemodynamic-related studies in Ldlr-/- mice, which are the most used mouse models in atherosclerosis research together with the Apoe-/- mouse model, this model was included in this study to describe changing hemodynamics in the aortic arch at baseline levels and during early atherosclerosis development and progression for the first time. In this study, distinct differences in aortic geometries of these mouse models at baseline levels were described for the first time, which result in significantly different flow- and WSS profiles in the Ldlr-/- mouse model. Further basal characterization of different parameters revealed only characteristic differences in lipid profiles, proving that the geometry is highly influencing the local WSS in these models. Most interestingly, calculation of the atherogenic index of plasma revealed a significantly higher risk in Ldlr-/- mice with ongoing atherosclerosis development, but significantly greater plaque areas in the aortic arch of Apoe-/- mice. Due to the given basal WSS and OSI profile in these two mouse models – two parameters highly influencing plaque development and progression – there is evidence that the regional plaque development differs between these mouse models during very early atherogenesis.
Therefore, future studies should focus on the spatiotemporal evaluation of plaque development and composition in the three defined aortic regions using morphological measurements with MRI or 3D histological analyses like LSFM. Moreover, this study offers an excellent basis for future studies incorporating CFD simulations, analyzing the different measured parameter combinations (e.g., aortic geometry of the Ldlr-/- mouse with the lipid profile of the Apoe-/- mouse), simulating the resulting plaque development and composition. This could help to understand the complex interplay between altered hemodynamics, serum lipids and atherosclerosis and significantly improve our basic understanding of key factors initiating atherosclerosis development.
Chapter 5 describes the establishment of a tissue-engineered artery model, which is based on native, decellularized porcine carotid artery scaffolds, cultured in a MRI-suitable bioreactor-system [23] for the investigation of hemodynamic-related atherosclerosis development in a controllable manner, using the previously established methods for WSS and PWV assessment [4, 16]. This in vitro artery model aimed for the reduction of animal experiments, while simultaneously offering a simplified, but completely controllable physical and biological environment. For this, a very fast and gentle decellularization protocol was established in a first step, which resulted in porcine carotid artery scaffolds showing complete acellularity while maintaining the extracellular matrix composition, overall ultrastructure and mechanical strength of native arteries. Moreover, a good cellular adhesion and proliferation was achieved, which was evaluated with isolated human blood outgrowth endothelial cells. Most importantly, an MRI-suitable artery chamber was designed for the simultaneous cultivation and assessment of high-resolution 4D hemodynamics in the described artery models. Using high-resolution 4D-flow MRI, the bioreactor system was proven to be suitable to quantify the volume flow, the two components of the WSS and the radStrain as well as the PWV in artery models, with obtained values being comparable to values found in literature for in vivo measurements. Moreover, the identification of first atherosclerotic processes like intimal thickening is achievable by three-dimensional assessment of the vessel wall morphology in the in vitro models. However, one limitation is the lack of a medial smooth muscle cell layer due to the dense ECM. Here, the utilization of the laser-cutting technology for the generation of holes and / or pits on a microscale, eventually enabling seeding of the media with SMCs showed promising results in a first try and should be further investigated in future studies. Therefore, the proposed artery model possesses all relevant components for the extension to an atherosclerosis model which may pave the way towards a significant improvement of our understanding of the key mechanisms in atherogenesis.
Chapter 6 describes the development of an easy-to-prepare, low cost and fully customizable artery model based on biomaterials. Here, thermoresponsive sacrificial scaffolds, processed with the technique of MEW were used for the creation of variable, biomimetic shapes to mimic the geometric properties of the aortic arch, consisting of both, bifurcations and curvatures. After embedding the sacrificial scaffold into a gelatin-hydrogel containing SMCs, it was crosslinked with bacterial transglutaminase before dissolution and flushing of the sacrificial scaffold. The hereby generated channel was subsequently seeded with ECs, resulting in an easy-to-prepare, fast and low-cost artery model. In contrast to the native artery model, this model is therefore more variable in size and shape and offers the possibility to include smooth muscle cells from the beginning. Moreover, a custom-built and highly adaptable perfusion chamber was designed specifically for the scaffold structure, which enabled a one-step creation and simultaneously offering the possibility for dynamic cultivation of the artery models, making it an excellent basis for the development of in vitro disease test systems for e.g., flow-related atherosclerosis research. Due to time constraints, the extension to an atherosclerosis model could not be achieved within the scope of this thesis. Therefore, future studies will focus on the development and validation of an in vitro atherosclerosis model based on the proposed bi- and three-layered artery models.
In conclusion, this thesis paved the way for a fast acquisition and detailed analyses of changing hemodynamics during atherosclerosis development and progression, including spatially resolved analyses of all relevant hemodynamic parameters over time and in between different groups. Moreover, to reduce animal experiments, while gaining control over various parameters influencing atherosclerosis development, promising artery models were established, which have the potential to serve as a new platform for basic atherosclerosis research.
Tumor necrosis factor (TNF)-like weak inducer of apoptosis (TWEAK) is a member of the TNF superfamily (TNFSF) and is as such initially expressed as type II class transmembrane glycoprotein from which a soluble ligand form can be released by proteolytic processing. While the expression of TWEAK has been detected at the mRNA level in various cell lines and cell types, its cell surface expression has so far only been documented for dendritic cells, monocytes and interferon-γ stimulated NK cells. The fibroblast growth factor-inducible-14 (Fn14) is a TRAF2-interacting receptor of the TNF receptor superfamily (TNFRSF) and is the only receptor for TWEAK. The expression of Fn14 is strongly induced in a variety of non-hematopoietic cell types after tissue injury. The TWEAK/Fn14 system induces pleiotropic cellular activities such as induction of proinflammatory genes, stimulation of cellular angiogenesis, proliferation, differentiation, migration and in rare cases induction of apoptosis. On the other side, Toll-like receptor3 (TLR3) is one of DNA- and RNA-sensing pattern recognition receptors (PRRs), plays a crucial role in the first line of defense against virus and invading foreign pathogens and cancer cells. Polyinosinic-polycytidylic acid poly(I:C) is a synthetic analog of dsRNA, binds to TLR3 which acts through the adapter TRIF/TICAM1, leading to cytokine secretion, NF-B activation, IRF3 nuclear translocation, inflammatory response and may also elicit the cell death. TWEAK sensitizes cells for TNFR1-induced apoptosis and necroptosis by limiting the availability of protective TRAF2-cIAP1 and TRAF2-cIAP2 complexes, which interact with the TNFR1-binding proteins TRADD and RIPK1. In accordance with the fact that poly(I:C)-induced signaling also involves these proteins, we found enhanced necroptosis-induction in HaCaT and HeLa-RIPK3 by poly(I:C) in the presence of TWEAK (Figure 24). Analysis of a panel of TRADD, FADD, RIPK1 and caspase-8 knockout cells revealed furthermore similarities and differences in the way how these molecules act in cell death signaling by poly(I:C)/TWEAK and TNF and TRAIL. RIPK1 turned out to be essential for poly(I:C)/TWEAK-induced caspase-8-mediated apoptosis but was dispensable for these responses in TNF and TRAIL signaling. Lack of FADD protein abrogated TRAIL- but not TNF- and poly(I:C)-induced necroptosis. Moreover, we observed that both long and short FLIP rescued HaCaT and HeLa-RIPK3 cells from poly(I:C)-induced apoptosis or necroptosis.
To sum up, our results demonstrate that TWEAK, which is produced by interferon stimulated myeloid cells, controls the induction of apoptosis and necroptosis by the TLR3 ligand poly(I:C) and may thus contribute to cancer or anti-viral immunity treatment.