突触囊泡启动的不同状态解释了神经递质释放中的目标细胞类型依赖的差异
Mohammad Aldahabi1,2, Erwin Neher3, Zoltan Nusser1
1Laboratory of Cellular Neurophysiology, Hungarian Research Network Institute of Experimental Medicine, Budapest 1083, Hungary.
概括
海马体的金字塔细胞 (PCs) 显示出各种神经递质释放. 突触囊泡启动的差异,而不是融合概率,解释了对O-LM内部神经元 (INs) 的低释放与对快速升的INs (FSINs) 的高释放.
科学领域:
- 神经科学是一个神经科学.
- 细胞生物学 细胞生物学
- 突触传输是突触传输的过程.
背景情况:
- 皮层网络表现出单个前突触神经元从单个前突触神经元释放的目标依赖神经递质.
- 海马体的金字塔细胞 (PCs) 对不同类型的内部神经元 (IN) 呈现出不同的释放概率和后突触反应.
研究的目的:
- 研究PC-IN连接中差异性突触传输背后的机制.
- 确定动能引起的融合或突触囊泡 (SV) 开启的差异是否是释放概率的基础.
主要方法:
- 使用了功能,药理和建模方法的结合方法.
- 配备了一种连续的两步 SV 启动模型,以激发后突触电流 (EPSC) 幅度.
- 在成年小鼠的急性海马片中记录了单元EPSCs.
主要成果:
- PC-FSIN突触具有高的融合概率 (0.6) 和44%的融合能力的SVs.
- PC-O-LM突触显示较低的融合概率 (0.36) 和6.5倍较少的初始化SVs.
- 药理学操纵选择性地改变了融合和原始化,验证了模型.
结论:
- 在PC-O-LM突触的低保真性传输主要是由于释放地点的初始化SVs池减少.
- 突触囊泡的原始化,而不是融合概率,是这些海马突触的差异释放的主要决定因素.
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