Optical Neuroimaging Unit, Okinawa Institute of Science and Technology Graduate University (OIST), Okinawa, Japan.
Elife. 2020 Dec 21;9:e59619. doi: 10.7554/eLife.59619.
Dendritic coincidence detection is fundamental to neuronal processing yet remains largely unexplored in awake animals. Specifically, the underlying dendritic voltage-calcium relationship has not been directly addressed. Here, using simultaneous voltage and calcium two-photon imaging of Purkinje neuron spiny dendrites, we show how coincident synaptic inputs and resulting dendritic spikes modulate dendritic calcium signaling during sensory stimulation in awake mice. Sensory stimulation increased the rate of postsynaptic potentials and dendritic calcium spikes evoked by climbing fiber and parallel fiber synaptic input. These inputs are integrated in a time-dependent and nonlinear fashion to enhance the sensory-evoked dendritic calcium signal. Intrinsic supralinear dendritic mechanisms, including voltage-gated calcium channels and metabotropic glutamate receptors, are recruited cooperatively to expand the dynamic range of sensory-evoked dendritic calcium signals. This establishes how dendrites can use multiple interplaying mechanisms to perform coincidence detection, as a fundamental and ongoing feature of dendritic integration in behaving animals.
树突巧合检测对神经元处理至关重要,但在清醒动物中仍在很大程度上未被探索。具体来说,潜在的树突电压-钙关系尚未被直接解决。在这里,我们使用浦肯野神经元棘突树突的同时电压和钙双光子成像,展示了在清醒小鼠的感觉刺激过程中,偶合的突触输入和由此产生的树突尖峰如何调节树突钙信号。感觉刺激增加了由 climbing fiber 和 parallel fiber 突触输入引起的突触后电位和树突钙尖峰的频率。这些输入以时间依赖和非线性的方式进行整合,以增强感觉诱发的树突钙信号。内在的超线性树突机制,包括电压门控钙通道和代谢型谷氨酸受体,以协作的方式被招募,以扩大感觉诱发的树突钙信号的动态范围。这确立了树突如何能够使用多种相互作用的机制来进行巧合检测,作为行为动物中树突整合的一个基本和持续的特征。