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TRPC 通道调节 Ca2+信号和快速谷氨酸能突触的短期可塑性。

TRPC channels regulate Ca2+-signaling and short-term plasticity of fast glutamatergic synapses.

机构信息

Institute for Physiology, Saarland University, CIPMM, Homburg/Saar, Germany.

Experimental and Clinical Pharmacology and Toxicology, PZMS, Saarland University, Homburg/Saar, Germany.

出版信息

PLoS Biol. 2019 Sep 19;17(9):e3000445. doi: 10.1371/journal.pbio.3000445. eCollection 2019 Sep.

Abstract

Transient receptor potential (TRP) proteins form Ca2+-permeable, nonselective cation channels, but their role in neuronal Ca2+ homeostasis is elusive. In the present paper, we show that TRPC channels potently regulate synaptic plasticity by changing the presynaptic Ca2+-homeostasis of hippocampal neurons. Specifically, loss of TRPC1/C4/C5 channels decreases basal-evoked secretion, reduces the pool size of readily releasable vesicles, and accelerates synaptic depression during high-frequency stimulation (HFS). In contrast, primary TRPC5 channel-expressing neurons, identified by a novel TRPC5-τ-green fluorescent protein (τGFP) knockin mouse line, show strong short-term enhancement (STE) of synaptic signaling during HFS, indicating a key role of TRPC5 in short-term plasticity. Lentiviral expression of either TRPC1 or TRPC5 turns classic synaptic depression of wild-type neurons into STE, demonstrating that TRPCs are instrumental in regulating synaptic plasticity. Presynaptic Ca2+ imaging shows that TRPC activity strongly boosts synaptic Ca2+ dynamics, showing that TRPC channels provide an additional presynaptic Ca2+ entry pathway, which efficiently regulates synaptic strength and plasticity.

摘要

瞬时受体电位 (TRP) 蛋白形成 Ca2+ 通透性、非选择性阳离子通道,但它们在神经元 Ca2+ 稳态中的作用尚不清楚。在本文中,我们表明 TRPC 通道通过改变海马神经元的突触前 Ca2+ 稳态来强烈调节突触可塑性。具体而言,TRPC1/C4/C5 通道的缺失会降低基础诱发的分泌,减少易释放囊泡的池大小,并在高频刺激 (HFS) 期间加速突触抑制。相比之下,通过新型 TRPC5-τ-绿色荧光蛋白 (τGFP) 敲入小鼠品系鉴定的原代 TRPC5 通道表达神经元在 HFS 期间显示出强烈的突触信号短期增强 (STE),表明 TRPC5 在短期可塑性中起关键作用。慢病毒表达的 TRPC1 或 TRPC5 将野生型神经元的经典突触抑制转变为 STE,表明 TRPC 在调节突触可塑性方面起着重要作用。突触前 Ca2+ 成像显示 TRPC 活性强烈增强了突触 Ca2+ 动力学,表明 TRPC 通道提供了额外的突触前 Ca2+ 进入途径,有效地调节了突触强度和可塑性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed7f/6773422/63f8fc065650/pbio.3000445.g001.jpg

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