Refine
Has Fulltext
- yes (3)
Is part of the Bibliography
- yes (3)
Document Type
- Doctoral Thesis (3)
Keywords
- Plastizität (3) (remove)
Institute
- Graduate School of Life Sciences (3) (remove)
Das Cochlea-Implantat (CI) ermöglichte bereits >300 000 hochgradig hörgeschädigten Menschen
weltweit eine grundsätzlich wiederhergestellte Hörfunktion. Es wird angenommen, dass sich das
Sprachverständnis von CI-Trägern verbessert, wenn die funktionale Trennung der CI-Kanäle erhöht
wird. Neben verschiedenen auf die auditorische Peripherie beschränkten Ansätzen gibt es Überlegungen, eine verbesserte Kanaltrennung durch die Rehabilitation taubheitsinduzierter Degenerationen in der spektralen Verarbeitung im zentralen auditorischen System zu erreichen. Es konnte in ertaubten Tieren bislang allerdings kein adäquates CI-Stimulationsmuster beschrieben werden, dass es erlaubte, eine gezielte neuronale Plastizität in der spektralen Verarbeitung zu induzieren.
Die Arbeitsgruppe um M.P. Kilgard (UT Dallas, USA) zeigte in mehreren Studien in hörenden Tieren,
dass auditorische Stimulation gepaart mit elektrischer Vagusnerv-Stimulation (VNS) zu einer gezielten kortikalen Plastizität führt. Diese gepaarte Stimulation konnte die spektrale Verarbeitung von Signalen im auditorischen Kortex (AC) gezielt beeinflussen und so z.B. pathologisch verbreiterte Repräsentationen von Tönen wieder verfeinern. Dieses hochgradige Potential für gezielte Plastizität im AC durch die gepaarte VNS scheint eine vielversprechende Lösung darzustellen, um die durch verbreiterte Repräsentation im ertaubten AC verminderte CI-Kanaltrennung zu verbessern. Vor diesem Hintergrund sollte in der vorliegenden Promotion die Übertragbarkeit dieses hochgradigen Potentials auf das ertaubte und CI-stimulierte auditorische System evaluiert werden.
Um die CI-Kanaltrennung zu untersuchen, wurde ein Multikanal-CI für die Mongolische Wüstenrennmaus (Gerbil) entwickelt. Trotz der kleinen Ausmaße von Cochlea und AC im Gerbil und der generell breiten neuronalen Erregung durch intracochleäre elektrische Stimulation konnte eine tonotop organisierte und selektive Repräsentation der neuronalen Antworten für mehrere CI-Kanäle im AC nachgewiesen werden. Für die gepaarte CI/VN-Stimulation wurden die Tiere zusätzlich mit einer Manschettenelektrode um den linken zervikalen Nervus vagus (VN) implantiert. Die chronischen Implantate erlaubten über mehrere Wochen hinweg eine stabile und zuverlässige elektrische Stimulation im frei-beweglichen Gerbil. Damit kombiniert das in dieser Promotion entwickelte Multikanal-CI-VNS-Modell die Vorteile einer tonotop selektiven und stabilen neuronalen Aktivierung mit den ethischen, kostenrelevanten und entwicklungsbezogenen Vorteilen, die der Einsatz von Kleinnagern bietet.
Als nächster Schritt wurde das grundsätzliche Potential der gepaarten CI/VN-Stimulation für gezielte plastische Veränderungen im AC des Gerbils getestet. Engineer et al. (2011) hatten bereits in akustischen Studien in hörenden Ratten die kortikale Überrepräsentation eines einzelnen chronisch mit VNS gepaarten Tones gezeigt. In der vorliegenden Promotion wurde versucht, die Ergebnisse aus der akustischen Studie in hörenden Ratten in zwei verschiedenen Studien im Gerbil zu reproduzieren. Analog zur gepaarten Ton/VN-Stimulation in der Ratte untersuchten wir zuerst in ertaubten Gerbils die Auswirkungen einkanaliger CI-Stimulation gepaart mit VNS. Im AC des Gerbils konnten keine Veränderung der zentralen Repräsentation des VNS gepaarten CI-Kanals festgestellt werden. Um speziesspezifische (Ratte vs. Gerbil) und stimulusspezifische (akustisch vs. elektrisch) Unterschiede zwischen den Studien als mögliche Gründe für das Ausbleiben der VNS induzierten Plastizität auszuschließen, wurde nun die gepaarte Ton/VN-Stimulation (Engineer et al., 2011) im hörenden Gerbil wiederholt. Eine kortikale Überrepräsentation des VNS gepaarten Signals konnte aber auch im hörenden Gerbil nicht reproduziert werden.
Mögliche Gründe für die Diskrepanz zwischen unseren Ergebnissen im Gerbil und den publizierten
Ergebnissen in der Ratte werden diskutiert. Die generelle Funktionsfähigkeit der VNS in den chronisch stimulierten Tieren wurde durch die Ableitung VNS evozierter Potentiale (VNEP) kontrolliert. Ein speziesspezifischer Unterschied erscheint bei der biologischen Nähe von Ratte und mongolischer Wüstenrennmaus unwahrscheinlich, kann allerdings durch die vorliegenden Studien nicht vollständig ausgeschlossen werden. Eine Abhängigkeit des plastischen Potentials der gepaarten VNS von der Stimulationsintensität ist bekannt. Da Ratten und Gerbils ähnliche VNEP-Schwellen zeigten und mit identischen VNS-Amplituden stimuliert wurden, gehen wir davon aus, dass Unterschiede im plastischen Potential gepaarter VNS zwischen beiden Spezies nicht auf die verwendete Stimulationsintensität zurückzuführen sind.
Die beschriebene Diskrepanz im Potential für kortikale Plastizität durch gepaarte VNS weckt Zweifel an der Übertragbarkeit des für die Ratte publizierten Potentials auf andere Spezies, einschließlich des Menschen.
Desert ants of the genus Cataglyphis have become model systems for the study of insect navigation. An age-related polyethism subdivides their colonies into interior workers and short-lived light-exposed foragers. While foraging in featureless and cluttered terrain over distances up to several hundred meters, the ants are able to precisely return back to their often inconspicuous nest entrance. They accomplish this enormous navigational performance by using a path integration system - including a polarization compass and an odometer - as their main navigational means in addition to landmark-dependent orientation and olfactory cues. C. fortis, being the focus of the present thesis, is endemic to the salt flats of western North Africa, which are completely avoided by other Cataglyphis species. The fact that Cataglyphis ants undergo a behavioral transition associated with drastically changing sensory demands makes these ants particularly interesting for studying synaptic plasticity in visual and olfactory brain centers. This thesis focuses on plastic changes in the mushroom bodies (MBs) - sensory integration centers supposed to be involved in learning and memory presumably including landmark learning - and in synaptic complexes belonging to the lateral accessory lobe (LAL) known to be a relay station in the polarization processing pathway. To investigate structural synaptic plasticity in the MBs of C. fortis, synaptic complexes (microglomeruli, MG) in the visual (collar) and olfactory (lip) input regions of the MB calyx were immunolabeled and their pre- and postsynaptic profiles were quantified. The results show that a volume increase of the MB calyx during behavioral transition is associated with a decrease of MG number - an effect called pruning - in the collar and, less pronounced, in the lip that goes along with dendritic expansion in MB intrinsic Kenyon cells. Light-exposure of dark-reared ants of different age classes revealed similar effects and dark-reared ants age-matched to foragers had MG numbers comparable to those of interior workers. The results indicate that the enormous structural synaptic plasticity of the MB calyx collar is primarily driven by visual experience rather than by an internal program. Ants aged artificially for up to one year expressed a similar plasticity indicating that the system remains flexible over the entire life-span. To investigate whether light-induced synaptic reorganization is reversible, experienced foragers were transferred back to darkness with the result that their MBs exhibit only some reverse-type characteristics, in particular differences in presynaptic synapsin expression. To investigate the structure of large synaptic complexes in the LAL of C. fortis and to detect potential structural changes, pre- and postsynaptic profiles in interior workers and foragers were immunolabeled and quantified by using confocal imaging and 3D-reconstruction. The results show that these complexes consist of postsynaptic processes located in a central region that is surrounded by a cup-like presynaptic profile. Tracer injections identified input and output tracts of the LAL: projection neurons from the anterior optic tubercle build connections with neurons projecting to the central complex. The behavioral transition is associated with an increase by ~13% of synaptic complexes suggesting that the polarization pathway may undergo some sort of calibration process. The structural features of these synaptic contacts indicate that they may serve a fast and reliable signal transmission in the polarization vision pathway. Behavioral analyses of C. fortis in the field revealed that the ants perform exploration runs including pirouette-like turns very close to the nest entrance for a period of up to two days, before they actually start their foraging activity. During these orientation runs the ants gather visual experience and might associate the nest entrance with specific landmarks or get entrained to other visual information like the polarization pattern, and, concomitantly adapt their neuronal circuitries to the upcoming challenges. Moreover, the pirouettes may serve to stimulate and calibrate the neuronal networks involved in the polarization compass pathway. Video recordings and analyses demonstrate that light experience enhanced the ants’ locomotor activity after three days of exposure. The fact that both the light-induced behavioral and neuronal changes in visual brain centers occur in the same time frame suggests that there may be a link between structural synaptic plasticity and the behavioral transition from interior tasks to outdoor foraging. Desert ants of the genus Cataglyphis possess remarkable visual navigation capabilities, but also employ olfactory cues for detecting nest and food sites. Using confocal imaging and 3D-reconstruction, potential adaptations in primary olfactory brain centers were analyzed by comparing the number, size and spatial arrangement of olfactory glomeruli in the antennal lobe of C. fortis, C. albicans, C. bicolor, C. rubra, and C. noda. Workers of all Cataglyphis species have smaller numbers of glomeruli compared to those of more olfactory-guided Formica species - a genus closely related to Cataglyphis - and to those previously found in other olfactory-guided ant species. C. fortis has the lowest number of glomeruli compared to all other species, but possesses a conspicuously enlarged glomerulus that is located close to the antennal nerve entrance. Males of C. fortis have a significantly smaller number of glomeruli compared to female workers and queens and a prominent male-specific macroglomerulus likely to be involved in sex pheromone communication. The behavioral significance of the enlarged glomerulus in female workers remains elusive. The fact that C. fortis inhabits microhabitats that are avoided by all other Cataglyphis species suggests that extreme ecological conditions may not only have resulted in adaptations of visual capabilities, but also in specializations of the olfactory system. The present thesis demonstrates that Cataglyphis is an excellent candidate for studying the neuronal mechanisms underlying navigational features and for studying neuronal plasticity associated with the ant’s lifelong flexibility of individual behavioral repertoires.
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.