Spatially non-overlapping Ca2+ signals drive distinct forms of neurotransmission

Cell Rep. 2023 Oct 31;42(10):113201. doi: 10.1016/j.celrep.2023.113201. Epub 2023 Sep 30.

Abstract

Calcium (Ca2+) signaling is tightly regulated within a presynaptic bouton. Here, we visualize Ca2+ signals within hippocampal presynaptic boutons using GCaMP8s tagged to synaptobrevin, a synaptic vesicle protein. We identify evoked presynaptic Ca2+ transients (ePreCTs) that derive from synchronized voltage-gated Ca2+ channel openings, spontaneous presynaptic Ca2+ transients (sPreCTs) that originate from ryanodine sensitive Ca2+ stores, and a baseline Ca2+ signal that arises from stochastic voltage-gated Ca2+ channel openings. We find that baseline Ca2+, but not sPreCTs, contributes to spontaneous glutamate release. We employ photobleaching as a use-dependent tool to probe nano-organization of Ca2+ signals and observe that all three occur in non-overlapping domains within the synapse at near-resting conditions. However, increased depolarization induces intermixing of these Ca2+ domains via both local and non-local synaptic vesicle turnover. Our findings reveal nanosegregation of Ca2+ signals within a presynaptic terminal that derive from multiple sources and in turn drive specific modes of neurotransmission.

Keywords: CP: Cell biology; CP: Neuroscience; GCaMP8s; calcium imaging; hippocampal neurons; neurotransmission; synaptic transmission; synaptobrevin-2; vesicle turnover; voltage-gated calcium channel.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Calcium / metabolism
  • Hippocampus / metabolism
  • Presynaptic Terminals / metabolism
  • Synapses* / metabolism
  • Synaptic Transmission* / physiology
  • Synaptic Vesicles / metabolism

Substances

  • Calcium