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活性区蛋白 RIM1αβ 对于正常皮质纹状体传递和动作控制是必需的。

Active Zone Proteins RIM1αβ Are Required for Normal Corticostriatal Transmission and Action Control.

机构信息

Section on Synaptic Pharmacology & In Vivo Neural Function, Laboratory for Integrative Neuroscience, National Institute on Alcohol Abuse and Alcoholism, National Institutes of Health, Rockville, Maryland 20852, and.

Integrative Neuroscience Section, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, Maryland 20892.

出版信息

J Neurosci. 2019 Feb 20;39(8):1457-1470. doi: 10.1523/JNEUROSCI.1940-18.2018. Epub 2018 Dec 17.

Abstract

Dynamic regulation of synaptic transmission at cortical inputs to the dorsal striatum is considered critical for flexible and efficient action learning and control. Presynaptic mechanisms governing the properties and plasticity of glutamate release from these inputs are not fully understood, and the corticostriatal synaptic processes that support normal action learning and control remain unclear. Here we show in male and female mice that conditional deletion of presynaptic proteins RIM1αβ (RIM1) from excitatory cortical neurons impairs corticostriatal synaptic transmission in the dorsolateral striatum. Key forms of presynaptic G-protein-coupled receptor-mediated short- and long-term striatal plasticity are spared following RIM1 deletion. Conditional RIM1 KO mice show heightened novelty-induced locomotion and impaired motor learning on the accelerating rotarod. They further show heightened self-paced instrumental responding for food and impaired learning of a habitual instrumental response strategy. Together, these findings reveal a selective role for presynaptic RIM1 in neurotransmitter release at prominent basal ganglia synapses, and provide evidence that RIM1-dependent processes help to promote the refinement of skilled actions, constrain goal-directed behaviors, and support the learning and use of habits. Our daily functioning hinges on the ability to flexibly and efficiently learn and control our actions. How the brain encodes these capacities is unclear. Here we identified a selective role for presynaptic proteins RIM1αβ in controlling glutamate release from cortical inputs to the dorsolateral striatum, a brain structure critical for action learning and control. Behavioral analysis of mice with restricted genetic deletion of RIM1αβ further revealed roles for RIM1αβ-dependent processes in the learning and refinement of motor skills and the balanced expression of goal-directed and habitual actions.

摘要

皮质传入到背侧纹状体的突触传递的动态调节被认为对灵活有效的动作学习和控制至关重要。 尚不完全了解调节这些传入的谷氨酸释放的特性和可塑性的突触前机制,也不清楚支持正常动作学习和控制的皮质纹状体突触过程。 在这里,我们在雄性和雌性小鼠中表明,从兴奋性皮质神经元条件性缺失突触前蛋白 RIM1αβ(RIM1)会损害背外侧纹状体的皮质纹状体突触传递。 RIM1 缺失后,关键形式的突触前 G 蛋白偶联受体介导的短期和长期纹状体可塑性得以保留。 条件性 RIM1 KO 小鼠在新奇诱导的运动中表现出更高的运动性和在加速旋转棒上的运动学习障碍。 它们进一步显示出更高的自我调节仪器反应能力,用于食物,并损害习惯性仪器反应策略的学习。 总之,这些发现揭示了突触前 RIM1 在突出的基底神经节突触中神经递质释放中的选择性作用,并提供了证据表明 RIM1 依赖性过程有助于促进熟练动作的细化,约束目标导向行为,并支持习惯的学习和使用。 我们的日常功能取决于灵活有效地学习和控制我们的动作的能力。 大脑如何对这些能力进行编码尚不清楚。 在这里,我们确定了突触前蛋白 RIM1αβ在控制皮质传入到背侧纹状体的谷氨酸释放中的选择性作用,背侧纹状体是动作学习和控制的关键脑结构。 对 RIM1αβ 基因缺失限制的小鼠的行为分析进一步揭示了 RIM1αβ 依赖性过程在运动技能的学习和细化以及目标导向和习惯性动作的平衡表达中的作用。

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