The so-called active zones at pre-synaptic terminals are the ultimate filtering devices, which couple between action potential frequency and shape, and the information transferred to the post-synaptic neurons, finally tuning behaviors. Within active zones, the release of the synaptic vesicle operates from specialized “release sites.” The (M)Unc13 class of proteins is meant to define release sites topologically and biochemically, and diversity between Unc13-type release factor isoforms is suspected to steer diversity at active zones. The two major Unc13-type isoforms, namely, Unc13A and Unc13B, have recently been described from the molecular to the behavioral level, exploiting Drosophila being uniquely suited to causally link between these l...
Presynaptic short-term plasticity is an important adaptive mechanism regulating synaptic transmitter...
Neurotransmitters are released by synaptic vesicle exocytosis at the active zone of a presynaptic ne...
This study provides further insight into the molecular mechanisms that control neurotransmitter rele...
High-throughput electron microscopy has started to reveal synaptic connectivity maps of single circu...
Neural information processing depends on precisely timed, Ca2+-activated synaptic vesicle exocytosis...
The physical distance between presynaptic Ca2+ channels and the Ca2+ sensors triggering the release ...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Neurons communicate through neurotransmitter release at specialized synaptic regions known as active...
Neuronal communication across synapses relies on neurotransmitter release from presynaptic active zo...
Brain function relies on fast and precisely timed synaptic vesicle (SV) release at active zones (AZs...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocyto...
Efficient synaptic transmission requires the apposition of neurotransmitter release sites opposite c...
SummarySynaptic transmission requires the localization of presynaptic release machinery to active zo...
Voltage-gated Ca²⁺ channels (VGCCs) mediate Ca²⁺ influx to trigger neurotransmitter release at speci...
Presynaptic short-term plasticity is an important adaptive mechanism regulating synaptic transmitter...
Neurotransmitters are released by synaptic vesicle exocytosis at the active zone of a presynaptic ne...
This study provides further insight into the molecular mechanisms that control neurotransmitter rele...
High-throughput electron microscopy has started to reveal synaptic connectivity maps of single circu...
Neural information processing depends on precisely timed, Ca2+-activated synaptic vesicle exocytosis...
The physical distance between presynaptic Ca2+ channels and the Ca2+ sensors triggering the release ...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Neurons communicate through neurotransmitter release at specialized synaptic regions known as active...
Neuronal communication across synapses relies on neurotransmitter release from presynaptic active zo...
Brain function relies on fast and precisely timed synaptic vesicle (SV) release at active zones (AZs...
IntroductionNeurotransmitter release at presynaptic active zones (AZs) requires concerted protein in...
Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocyto...
Efficient synaptic transmission requires the apposition of neurotransmitter release sites opposite c...
SummarySynaptic transmission requires the localization of presynaptic release machinery to active zo...
Voltage-gated Ca²⁺ channels (VGCCs) mediate Ca²⁺ influx to trigger neurotransmitter release at speci...
Presynaptic short-term plasticity is an important adaptive mechanism regulating synaptic transmitter...
Neurotransmitters are released by synaptic vesicle exocytosis at the active zone of a presynaptic ne...
This study provides further insight into the molecular mechanisms that control neurotransmitter rele...