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The Analysis of Purkinje Cell Dendritic Morphology in Organotypic Slice Cultures
Published on: March 21, 2012
Preferential Localization of STIM1 to Dendritic Subsurface ER Structures in Mouse Purkinje Cells
Sakyo Nomura1, Miwako Yamasaki2, Taisuke Miyazaki3
1Departments of Anatomy, Graduate School of Medicine, Hokkaido University, Sapporo 060-8638, Japan.
Abstract:
The endoplasmic reticulum (ER) is the largest intracellular Ca2+ store, serving as the source and sink of intracellular Ca2+ The ER Ca2+ store is continuous yet organized into distinct subcompartments with spatial and functional heterogeneity. In cerebellar Purkinje cells (PCs), glutamatergic inputs trigger Ca2+ release from specific ER domains via inositol 1,4,5-trisphosphate receptors (IP3Rs) or ryanodine receptors (RyRs). Upon ER store depletion, refilling occurs through store-operated Ca2+ entry mediated by stromal interaction molecule-1 (STIM1). Although the significance of STIM1-mediated Ca2+ regulation within PCs is established, STIM1 localization in ER subcompartments in PCs for Ca2+ release and refilling remains elusive. Using validated antibodies, we demonstrated that STIM1 was predominantly localized as intense puncta along dendritic shafts in male and female mice, colocalizing with IP3R1 but not with RyR1. Immunoelectron microscopy revealed that STIM1 was accumulated in the subsurface ER in the dendritic shaft but excluded from those in the dendritic spine, the primary site of metabotropic glutamate receptor 1 (mGluR1)-IP3R-mediated Ca2+ signaling. Ca2+ imaging from control and STIM1-knockdown (STIM1-KD) PCs demonstrated that mGluR1-mediated Ca2+ release is more critically dependent on STIM1 than RyR-mediated Ca2+ release. These findings reveal a spatially organized ER network in PCs, where specialized ER subcompartments differentially regulate Ca2+ release and refilling. These findings suggest that STIM1 preferentially regulates Ca2+ dynamics associated with mGluR1-IP3R signaling, supporting specialized ER subcompartments for Ca2+ release and refilling. These findings highlight the intricate molecular-anatomical organization of dendritic ER Ca2+ signaling in PCs, crucial for synaptic plasticity and motor learning.

