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1.
Neuron ; 108(5): 843-860.e8, 2020 12 09.
Article in English | MEDLINE | ID: mdl-32991831

ABSTRACT

Electron microscopy can resolve synapse ultrastructure with nanometer precision, but the capture of time-resolved, activity-dependent synaptic membrane-trafficking events has remained challenging, particularly in functionally distinct synapses in a tissue context. We present a method that combines optogenetic stimulation-coupled cryofixation ("flash-and-freeze") and electron microscopy to visualize membrane trafficking events and synapse-state-specific changes in presynaptic vesicle organization with high spatiotemporal resolution in synapses of cultured mouse brain tissue. With our experimental workflow, electrophysiological and "flash-and-freeze" electron microscopy experiments can be performed under identical conditions in artificial cerebrospinal fluid alone, without the addition of external cryoprotectants, which are otherwise needed to allow adequate tissue preservation upon freezing. Using this approach, we reveal depletion of docked vesicles and resolve compensatory membrane recycling events at individual presynaptic active zones at hippocampal mossy fiber synapses upon sustained stimulation.


Subject(s)
Excitatory Postsynaptic Potentials/physiology , Hippocampus/physiology , Hippocampus/ultrastructure , Synaptic Membranes/physiology , Synaptic Membranes/ultrastructure , Animals , Gene Knock-In Techniques/methods , Mice , Mice, Transgenic , Microscopy, Electron/methods , Microtomy/methods , Organ Culture Techniques , Protein Transport/physiology
2.
Cell Rep ; 30(11): 3632-3643.e8, 2020 03 17.
Article in English | MEDLINE | ID: mdl-32187536

ABSTRACT

Although similar in molecular composition, synapses can exhibit strikingly distinct functional transmitter release and plasticity characteristics. To determine whether ultrastructural differences co-define this functional heterogeneity, we combine hippocampal organotypic slice cultures, high-pressure freezing, freeze substitution, and 3D-electron tomography to compare two functionally distinct synapses: hippocampal Schaffer collateral and mossy fiber synapses. We find that mossy fiber synapses, which exhibit a lower release probability and stronger short-term facilitation than Schaffer collateral synapses, harbor lower numbers of docked synaptic vesicles at active zones and a second pool of possibly tethered vesicles in their vicinity. Our data indicate that differences in the ratio of docked versus tethered vesicles at active zones contribute to distinct functional characteristics of synapses.


Subject(s)
Hippocampus/physiology , Hippocampus/ultrastructure , Presynaptic Terminals/physiology , Presynaptic Terminals/ultrastructure , Synapses/physiology , Synapses/ultrastructure , Animals , Cyclic AMP/metabolism , Excitatory Postsynaptic Potentials , Mice, Inbred C57BL , Mice, Knockout , Mossy Fibers, Hippocampal/physiology , Mossy Fibers, Hippocampal/ultrastructure , Neurotransmitter Agents/metabolism , Organ Culture Techniques , Secretory Vesicles/physiology , Secretory Vesicles/ultrastructure , Synaptic Vesicles/ultrastructure , Tissue Fixation
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