IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein interactions within a dense 3D nano-hemisphere. Among the complex protein meshwork the (M)unc-13 family member Unc-13 of Drosophila melanogaster is essential for docking of synaptic vesicles and transmitter release.MethodsWe employ minos-mediated integration cassette (MiMIC)-based gene editing using GFSTF (EGFP-FlAsH-StrepII-TEV-3xFlag) to endogenously tag all annotated Drosophila Unc-13 isoforms enabling visualization of endogenous Unc-13 expression within the central and peripheral nervous system.Results and discussionElectrophysiological characterization using two-electrode voltage clamp (TEVC) reveals that evoked and spontaneous synaptic tr...
Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocyto...
Presynaptic homeostatic plasticity (PHP) compensates for impaired postsynaptic neurotransmitter rece...
Accurate information transfer between neurons governs proper brain function. At chemical synapses, c...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Neural information processing depends on precisely timed, Ca2+-activated synaptic vesicle exocytosis...
The so-called active zones at pre-synaptic terminals are the ultimate filtering devices, which coupl...
Neuronal communication across synapses relies on neurotransmitter release from presynaptic active zo...
High-throughput electron microscopy has started to reveal synaptic connectivity maps of single circu...
The physical distance between presynaptic Ca2+ channels and the Ca2+ sensors triggering the release ...
Brain function relies on fast and precisely timed synaptic vesicle (SV) release at active zones (AZs...
Robust neural information transfer relies on a delicate molecular nano-architecture of chemical syna...
This study provides further insight into the molecular mechanisms that control neurotransmitter rele...
The precise molecular architecture of synaptic active zones (AZs) gives rise to different structural...
Efficient synaptic transmission requires the apposition of neurotransmitter release sites opposite c...
AbstractBackground: The ubiquitin proteasome system (UPS) mediates regulated protein degradation and...
Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocyto...
Presynaptic homeostatic plasticity (PHP) compensates for impaired postsynaptic neurotransmitter rece...
Accurate information transfer between neurons governs proper brain function. At chemical synapses, c...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Neural information processing depends on precisely timed, Ca2+-activated synaptic vesicle exocytosis...
The so-called active zones at pre-synaptic terminals are the ultimate filtering devices, which coupl...
Neuronal communication across synapses relies on neurotransmitter release from presynaptic active zo...
High-throughput electron microscopy has started to reveal synaptic connectivity maps of single circu...
The physical distance between presynaptic Ca2+ channels and the Ca2+ sensors triggering the release ...
Brain function relies on fast and precisely timed synaptic vesicle (SV) release at active zones (AZs...
Robust neural information transfer relies on a delicate molecular nano-architecture of chemical syna...
This study provides further insight into the molecular mechanisms that control neurotransmitter rele...
The precise molecular architecture of synaptic active zones (AZs) gives rise to different structural...
Efficient synaptic transmission requires the apposition of neurotransmitter release sites opposite c...
AbstractBackground: The ubiquitin proteasome system (UPS) mediates regulated protein degradation and...
Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocyto...
Presynaptic homeostatic plasticity (PHP) compensates for impaired postsynaptic neurotransmitter rece...
Accurate information transfer between neurons governs proper brain function. At chemical synapses, c...