Department of Neurobiology and Neuroscience Institute, University of Chicago, Chicago, IL, USA.
Nat Commun. 2024 May 31;15(1):4645. doi: 10.1038/s41467-024-48373-3.
Non-synaptic (intrinsic) plasticity of membrane excitability contributes to aspects of memory formation, but it remains unclear whether it merely facilitates synaptic long-term potentiation or plays a permissive role in determining the impact of synaptic weight increase. We use tactile stimulation and electrical activation of parallel fibers to probe intrinsic and synaptic contributions to receptive field plasticity in awake mice during two-photon calcium imaging of cerebellar Purkinje cells. Repetitive activation of both stimuli induced response potentiation that is impaired in mice with selective deficits in either synaptic or intrinsic plasticity. Spatial analysis of calcium signals demonstrated that intrinsic, but not synaptic plasticity, enhances the spread of dendritic parallel fiber response potentiation. Simultaneous dendrite and axon initial segment recordings confirm these dendritic events affect axonal output. Our findings support the hypothesis that intrinsic plasticity provides an amplification mechanism that exerts a permissive control over the impact of long-term potentiation on neuronal responsiveness.
非突触(内在)膜兴奋性的可塑性有助于记忆形成的各个方面,但尚不清楚它是否仅仅有助于突触长时程增强,或者在确定突触权重增加的影响方面起允许作用。我们在清醒小鼠的小脑浦肯野细胞的双光子钙成像中,使用触觉刺激和平行纤维的电激活来探测内在和突触对感受野可塑性的贡献。两种刺激的重复激活诱导反应增强,而选择性缺乏突触或内在可塑性的小鼠则会受到损害。钙信号的空间分析表明,内在但不是突触可塑性增强了树突状平行纤维反应增强的扩散。同时进行树突和轴突起始段记录证实了这些树突事件会影响轴突输出。我们的发现支持这样一种假设,即内在可塑性提供了一种放大机制,对长时程增强对神经元反应性的影响施加允许性控制。
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