内质网
刺激1
细胞生物学
选择性拼接
突触可塑性
平衡
生物
RNA剪接
门控
基因亚型
化学
生物化学
受体
神经科学
核糖核酸
基因
作者
Girish Ramesh,Lukas Jarzembowski,Yvonne Schwarz,Vanessa Poth,Maik Konrad,Mona L. Knapp,Gertrud Schwär,Anna Andrea Lauer,Marcus O.W. Grimm,Dalia Alansary,Dieter Bruns,Barbara A. Niemeyer
出处
期刊:Cell Reports
[Elsevier]
日期:2021-03-01
卷期号:34 (11): 108844-108844
被引量:40
标识
DOI:10.1016/j.celrep.2021.108844
摘要
Store-operated Ca2+-entry (SOCE) regulates basal and receptor-triggered Ca2+ signaling with STIM proteins sensing the endoplasmic reticulum (ER) Ca2+ content and triggering Ca2+ entry by gating Orai channels. Although crucial for immune cells, STIM1's role in neuronal Ca2+ homeostasis is controversial. Here, we characterize a splice variant, STIM1B, which shows exclusive neuronal expression and protein content surpassing conventional STIM1 in cerebellum and of significant abundance in other brain regions. STIM1B expression results in a truncated protein with slower kinetics of ER-plasma membrane (PM) cluster formation and ICRAC, as well as reduced inactivation. In primary wild-type neurons, STIM1B is targeted by its spliced-in domain B to presynaptic sites where it converts classic synaptic depression into Ca2+- and Orai-dependent short-term synaptic enhancement (STE) at high-frequency stimulation (HFS). In conjunction with altered STIM1 splicing in human Alzheimer disease, our findings highlight STIM1 splicing as an important regulator of neuronal calcium homeostasis and of synaptic plasticity.
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