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突触囊泡引发蛋白 CAPS-1 塑造了小鼠视觉皮层中感觉诱发反应的适应。

The Synaptic Vesicle Priming Protein CAPS-1 Shapes the Adaptation of Sensory Evoked Responses in Mouse Visual Cortex.

机构信息

Department of Molecular Neurobiology, Max Planck Institute of Experimental Medicine, 37075 Göttingen, Germany; International Max Planck Research School for Neuroscience at the University of Göttingen, 37075 Göttingen, Germany.

International Max Planck Research School for Neuroscience at the University of Göttingen, 37075 Göttingen, Germany; Theoretical Neurophysics Group, Max Planck Institute for Dynamics and Self Organization, 37077 Göttingen, Germany; Department of Molecular Biology of Neuronal Signals, Max Planck Institute of Experimental Medicine, 37075 Göttingen, Germany.

出版信息

Cell Rep. 2020 Mar 10;30(10):3261-3269.e4. doi: 10.1016/j.celrep.2020.02.045.

Abstract

Short-term plasticity gates information transfer across neuronal synapses and is thought to be involved in fundamental brain processes, such as cortical gain control and sensory adaptation. Neurons employ synaptic vesicle priming proteins of the CAPS and Munc13 families to shape short-term plasticity in vitro, but the relevance of this phenomenon for information processing in the intact brain is unknown. By combining sensory stimulation with in vivo patch-clamp recordings in anesthetized mice, we show that genetic deletion of CAPS-1 in thalamic neurons results in more rapid adaptation of sensory-evoked subthreshold responses in layer 4 neurons of the primary visual cortex. Optogenetic experiments in acute brain slices further reveal that the enhanced adaptation is caused by more pronounced short-term synaptic depression. Our data indicate that neurons engage CAPS-family priming proteins to shape short-term plasticity for optimal sensory information transfer between thalamic and cortical neurons in the intact brain in vivo.

摘要

短期可塑性可以控制神经元突触之间的信息传递,被认为参与了大脑的基本过程,如皮质增益控制和感觉适应。神经元利用 CAPS 和 Munc13 家族的突触小泡引发蛋白来塑造体外的短期可塑性,但这种现象与完整大脑中的信息处理的相关性尚不清楚。通过在麻醉小鼠中结合感觉刺激和体内膜片钳记录,我们发现,在丘脑神经元中删除 CAPS-1 会导致初级视觉皮层第 4 层神经元中感觉诱发的阈下反应更快适应。急性脑片的光遗传实验进一步表明,增强的适应是由更明显的短期突触抑制引起的。我们的数据表明,神经元利用 CAPS 家族引发蛋白来塑造短期可塑性,以在完整大脑的体内环境中实现丘脑和皮质神经元之间最佳的感觉信息传递。

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