Underpinning heterogeneity in synaptic transmission by presynaptic ensembles of distinct morphological modules.

Fekete, Adam; Nakamura, Yukihiro; Yang, Yi-Mei; Herlitze, Stefan; Mark, Melanie D; DiGregorio, David A; Wang, Lu-Yang · Nat Commun · 2019

basic_science · Level V

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Abstract

Synaptic heterogeneity is widely observed but its underpinnings remain elusive. We addressed this issue using mature calyx of Held synapses whose numbers of bouton-like swellings on stalks of the nerve terminals inversely correlate with release probability (Pr). We examined presynaptic Ca<sup>2+</sup> currents and transients, topology of fluorescently tagged knock-in Ca<sup>2+</sup> channels, and Ca<sup>2+</sup> channel-synaptic vesicle (SV) coupling distance using Ca<sup>2+</sup> chelator and inhibitor of septin cytomatrix in morphologically diverse synapses. We found that larger clusters of Ca<sup>2+</sup> channels with tighter coupling distance to SVs elevate Pr in stalks, while smaller clusters with looser coupling distance lower Pr in swellings. Septin is a molecular determinant of the differences in coupling distance. Supported by numerical simulations, we propose that varying the ensemble of two morphological modules containing distinct Ca<sup>2+</sup> channel-SV topographies diversifies Pr in the terminal, thereby establishing a morpho-functional continuum that expands the coding capacity within a single synapse population.