bioRxiv · 10.1101/2025.10.27.684894
Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity
Abstract
Synaptic plasticity is crucial for learning and memory. The presynaptic calcium sensor synaptotagmin 7 (syt7) regulates aspects of short-term plasticity (STP), but the underlying mechanisms remain unclear. Here, we show that alternative splicing of the syt7 juxtamembrane linker acts as a molecular switch at both biochemical and functional levels. The and {beta} variants undergo liquid-liquid phase separation to form condensates, while the {gamma} variant forms aggregates. Using iGluSnFR imaging, we found that when expressed at equal levels, these three isoforms also diverge regarding their abilities to regulate two key aspects of STP: paired-pulse facilitation and synaptic depression. STED microscopy showed that all three isoforms form active zone-associated clusters that colocalize with syt1, while MINFLUX super-resolution microscopy resolved syt7 clusters within the active zone, well-positioned to directly control synaptic vesicle dynamics. Thus, alternative splicing might fine-tune STP by differentially impacting syt7 oligomerization.
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Mehta, N., Larson, D. T., Salaka, R. J., Wozney, M., Subramani, S., Mishra, S., Kaur, S., Jain, A., Chapman, E. R.. 2025-10-28. Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity. https://doi.org/10.1101/2025.10.27.684894
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