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Learning-Induced Gene Expression in the Hippocampus Reveals a Role of Neuron -Astrocyte Metabolic Coupling in Long Term Memory

机译:学习诱导的海马基因表达揭示了神经元-星形胶质细胞代谢耦合在长期记忆中的作用。

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摘要

We examined the expression of genes related to brain energy metabolism and particularly those encoding glia (astrocyte)-specific functions in the dorsal hippocampus subsequent to learning. Context-dependent avoidance behavior was tested in mice using the step-through Inhibitory Avoidance (IA) paradigm. Animals were sacrificed 3, 9, 24, or 72 hours after training or 3 hours after retention testing. The quantitative determination of mRNA levels revealed learning-induced changes in the expression of genes thought to be involved in astrocyte-neuron metabolic coupling in a time dependent manner. Twenty four hours following IA training, an enhanced gene expression was seen, particularly for genes encoding monocarboxylate transporters 1 and 4 (MCT1, MCT4), alpha2 subunit of the Na/K-ATPase and glucose transporter type 1. To assess the functional role for one of these genes in learning, we studied MCT1 deficient mice and found that they exhibit impaired memory in the inhibitory avoidance task. Together, these observations indicate that neuron-glia metabolic coupling undergoes metabolic adaptations following learning as indicated by the change in expression of key metabolic genes.
机译:我们检查了学习后与大脑海马代谢相关的基因的表达,尤其是那些编码神经胶质(星形胶质细胞)特定功能的基因的表达。使用逐步抑制回避(IA)范例在小鼠中测试了上下文相关的回避行为。训练后3、9、24或72小时或保留测试后3小时处死动物。 mRNA水平的定量测定揭示了学习诱导的基因表达的变化,这些基因被认为以时间依赖的方式参与星形胶质细胞-神经元代谢偶联。 IA训练后二十四小时,发现基因表达增强,特别是编码单羧酸盐转运蛋白1和4(MCT1,MCT4),Na / K-ATPase的alpha2亚基和1型葡萄糖转运蛋白的基因。在学习中的这些基因之一中,我们研究了MCT1缺陷小鼠,发现它们在抑制回避任务中的记忆力受损。总之,这些观察结果表明神经元-神经胶质代谢偶联在学习后经历了代谢适应,如关键代谢基因表达的变化所表明的。

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