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Die Rolle der Hirnrinde als Zentrum komplexer Funktionen wie Lernen und Ge-dächtnis wird nicht zuletzt durch deren komplexe, in Schichten organisierte Architek-tur ermöglicht. Von entscheidender Bedeutung ist die präzise Positionierung von Nervenzellen, die im Laufe der Embryonalentwicklung in der Ventrikularzone (VZ) geboren werden und anschließend in radialer Richtung zu ihrem Bestimmungsort wandern. Die Funktion des Neurotrophin-Rezeptors TrkB an der Entwicklung des zerebralen Kortex war Gegenstand dieser Arbeit. Am Tag 12,5 der Embryonalentwicklung konnte die Expression von TrkB so-wohl in den Zellen der VZ als auch in neu geborenen Neuronen der Präplatte nach-gewiesen werden. Die Phosphorylierung des Rezeptors erfolgte dabei unabhängig von den beiden Liganden BDNF und NT-3. Ebenso führten BDNF oder NT-3 zu keiner zellulären Antwort in isolierten kortikalen Vorläuferzellen, wohingegen die Stimulation mit EGF eine Phosphorylierung von TrkB an der PLCγ- und der Shc-Bindungsstelle hervorrief. Durch pharmakologische Inhibition und die Überexpression dominant negativer Src-Mutanten konnte die Beteiligung des EGF-Rezeptors und zweier neuronal exprimierter Src-Kinasen, cSrc und Fyn, an dieser Transaktivierung von TrkB durch EGF gezeigt werden. Durch die Zugabe von EGF kam es im Zuge der Aktivierung von TrkB auch zur Umverteilung des Rezeptors von intrazellulären Kompartimenten zur Zellmem-bran. Die Retention des Rezeptors im Zytoplasma wurde über post-translationelle Modifikation reguliert. Die Verhinderung von N-Glykosylierung durch Tunicamycin-Behandlung kortikaler Vorläuferzellen führte zur Exposition von TrkB an der Zellober-fläche und konnte so Responsivität gegenüber BDNF herstellen. Die physiologische Bedeutung einer Transaktivierung von TrkB durch EGF wurde durch das Fehlen der TrkB-Aktivierung in EGFR KO-Mäusen am Embryonal-tag 12,5 gezeigt. Dies hatte eine fehlerhafte Positionierung kortikaler Nervenzellen zum Zeitpunkt E15,5 zur Folge. Anhand eines Migrationsassays konnte schließlich gezeigt werden, dass die EGF-induzierte Wanderung kortikaler Vorläuferzellen in vitro mit einer asymmetrischen Translokation von TrkB einhergeht. Über die Transaktivierung von TrkB in frühen Phasen der Kortexentwicklung spielt EGF eine wichtige Rolle bei der Induktion neuronaler Differenzierung und ist an der Regulation der Wanderung postmitotischer Neurone in der Hirnrinde beteiligt.
The tropomysin receptor kinase B (TrkB), the receptor for the neurotrophin brain-derived neurotrophic factor (BDNF), plays an important role in neuronal survival, neuronal differentiation, and cellular plasticity. Conventionally, TrkB activation is induced by binding of BDNF at extracellular sites and subsequent dimerization of receptor monomers. Classical Trk signaling concepts have failed to explain ligand-independent signaling of intracellular TrkB or oncogenic NTRK-fusion proteins. The intracellular activation domain of TrkB consists of a tyrosine kinase core, with three tyrosine (Y) residues at positions 701, 705 and 706, that catalyzes the phosphorylation reaction between ATPγ and tyrosine. The release of cisautoinhibition of the kinase domain activates the kinase domain and tyrosine residues outside of the catalytic domain become phosphorylated. The aim of this study was to find out how ligand-independent activation of TrkB is brought about. With the help of phosphorylation mutants of TrkB, it has been found that a high, local abundance of the receptor is sufficient to activate TrkB in a ligand-independent manner. This self-activation of TrkB was blocked when either the ATP-binding site or Y705 in the core domain was mutated. The vast majority of this self-active TrkB was found at intracellular locations and was preferentially seen in roundish cells, lacking filopodia. Live cell imaging of actin dynamics showed that self-active TrkB changed the cellular morphology by reducing actin filopodia formation. Signaling cascade analysis confirmed that self-active TrkB is a powerful activator of focal adhesion kinase (FAK). This might be the reason why self-active TrkB is able to disrupt actin filopodia formation. The signaling axis from Y705 to FAK could be mimicked by expression of the soluble, cytosolic TrkB kinase domain. However, the signaling pathway was inactive, when the TrkB kinase domain was targeted to the plasmamembrane with the help of artificial myristoylation membrane anchors. A cancer-related intracellular NTRK2-fusion protein (SQSTM1-NTRK2) also underwent constitutive kinase activation. In glioblastoma-like U87MG cells, self-active TrkB kinase reduced cell migration. These constitutive signaling pathways could be fully blocked within minutes by clinically approved, anti-tumorigenic Trk inhibitors. Moreover, this study found evidences for constitutively active, intracellular TrkB in tissue of human grade IV glioblastoma. In conclusion, the data provide an explanation and biological function for selfactive, constitutive TrkB kinase domain signaling, in the absence of a ligand.
Highlights
• Dopamine receptor-1 activation induces TrkB cell-surface expression in striatal neurons
• Dopaminergic deficits cause TrkB accumulation and clustering in the ER
• TrkB clusters colocalize with cargo receptor SORCS-2 in direct pathway striatal neurons
• Intracellular TrkB clusters fail to fuse with lysosomes after dopamine depletion
Summary
Disturbed motor control is a hallmark of Parkinson’s disease (PD). Cortico-striatal synapses play a central role in motor learning and adaption, and brain-derived neurotrophic factor (BDNF) from cortico-striatal afferents modulates their plasticity via TrkB in striatal medium spiny projection neurons (SPNs). We studied the role of dopamine in modulating the sensitivity of direct pathway SPNs (dSPNs) to BDNF in cultures of fluorescence-activated cell sorting (FACS)-enriched D1-expressing SPNs and 6-hydroxydopamine (6-OHDA)-treated rats. DRD1 activation causes enhanced TrkB translocation to the cell surface and increased sensitivity for BDNF. In contrast, dopamine depletion in cultured dSPN neurons, 6-OHDA-treated rats, and postmortem brain of patients with PD reduces BDNF responsiveness and causes formation of intracellular TrkB clusters. These clusters associate with sortilin related VPS10 domain containing receptor 2 (SORCS-2) in multivesicular-like structures, which apparently protects them from lysosomal degradation. Thus, impaired TrkB processing might contribute to disturbed motor function in PD.
Neurotrophin signaling via receptor tyrosine kinases is essential for the development and function of the nervous system in vertebrates. TrkB activation and signaling show substantial differences to other receptor tyrosine kinases of the Trk family that mediate the responses to nerve growth factor and neurotrophin-3. Growing evidence suggests that TrkB cell surface expression is highly regulated and determines the sensitivity of neurons to brain-derived neurotrophic factor (BDNF). This translocation of TrkB depends on co-factors and modulators of cAMP levels, N-glycosylation, and receptor transactivation. This process can occur in very short time periods and the resulting rapid modulation of target cell sensitivity to BDNF could represent a mechanism for fine-tuning of synaptic plasticity and communication in complex neuronal networks. This review focuses on those modulatory mechanisms in neurons that regulate responsiveness to BDNF via control of TrkB surface expression.