Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity

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 α and β variants undergo liquid-liquid phase separation to form condensates, while the γ 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. Stimulated emission depletion microscopy showed that all three isoforms form active zone-associated clusters that colocalize with syt1, while minimal photon flux superresolution 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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Journal
Proceedings of the National Academy of Sciences
Published
2026-09-15
DOI
https://doi.org/10.1073/pnas.2601714123
Primary Topic
Neuroscience and Neuropharmacology Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity

Shweta Mishra, Nikunj Mehta, Smrithika Subramani, Simi Kaur et al.
Proceedings of the National Academy of Sciences
Neuroscience and Neuropharmacology Research
article

Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity

Shweta Mishra, Nikunj Mehta, Smrithika Subramani, Simi Kaur, Edwin R. Chapman, Daniel L. Larson, Avani Jain, Mitch Wozney
article en

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 α and β variants undergo liquid-liquid phase separation to form condensates, while the γ 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. Stimulated emission depletion microscopy showed that all three isoforms form active zone-associated clusters that colocalize with syt1, while minimal photon flux superresolution 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.

Proceedings of the National Academy of SciencesVol. 123(38)
University of Wisconsin System (US), University of Wisconsin–Madison (US)
Howard Hughes Medical Institute, National Institutes of Health
Openalex Percentile: Top 16%
Neuroscience and Neuropharmacology Research
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Alternative splicing of synaptotagmin 7 regulates oligomerization and short-term synaptic plasticity — Shweta Mishra, Nikunj Mehta, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS