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Bidirectional Modulation of Intrinsic Excitability in Rat Prelimbic Cortex Neuronal Ensembles and Non-Ensembles after Operant Learning

机译:大鼠学习前皮层神经元整合体和非整合体内在兴奋性的双向调制。

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摘要

Learned associations between environmental stimuli and rewards drive goal-directed learning and motivated behavior. These memories are thought to be encoded by alterations within specific patterns of sparsely distributed neurons called neuronal ensembles that are activated selectively by reward-predictive stimuli. Here, we use the Fos promoter to identify strongly activated neuronal ensembles in rat prelimbic cortex (PLC) and assess altered intrinsic excitability after 10 d of operant food self-administration training (1 h/d). First, we used the Daun02 inactivation procedure in male FosLacZ-transgenic rats to ablate selectively Fos-expressing PLC neurons that were active during operant food self-administration. Selective ablation of these neurons decreased food seeking. We then used male FosGFP-transgenic rats to assess selective alterations of intrinsic excitability in Fos-expressing neuronal ensembles (FosGFP+) that were activated during food self-administration and compared these with alterations in less activated non-ensemble neurons (FosGFP). Using whole-cell recordings of layer V pyramidal neurons in an ex vivo brain slice preparation, we found that operant self-administration increased excitability of FosGFP+ neurons and decreased excitability of FosGFP neurons. Increased excitability of FosGFP+ neurons was driven by increased steady-state input resistance. Decreased excitability of FosGFP neurons was driven by increased contribution of small-conductance calcium-activated potassium (SK) channels. Injections of the specific SK channel antagonist apamin into PLC increased Fos expression but had no effect on food seeking. Overall, operant learning increased intrinsic excitability of PLC Fos-expressing neuronal ensembles that play a role in food seeking but decreased intrinsic excitability of Fos non-ensembles.>SIGNIFICANCE STATEMENT Prefrontal cortex activity plays a critical role in operant learning, but the underlying cellular mechanisms are unknown. Using the chemogenetic Daun02 inactivation procedure, we found that a small number of strongly activated Fos-expressing neuronal ensembles in rat PLC play an important role in learned operant food seeking. Using GFP expression to identify Fos-expressing layer V pyramidal neurons in prelimbic cortex (PLC) of FosGFP-transgenic rats, we found that operant food self-administration led to increased intrinsic excitability in the behaviorally relevant Fos-expressing neuronal ensembles, but decreased intrinsic excitability in Fos neurons using distinct cellular mechanisms.
机译:环境刺激与奖励之间的学习关联可以驱动目标导向的学习和积极的行为。这些记忆被认为是由稀疏分布的称为神经元合奏的神经元的特定模式内的变化编码的,这些特定模式被奖励预测性刺激选择性激活。在这里,我们使用Fos启动子来识别大鼠前肢皮层(PLC)中的强烈激活的神经元集成体,并在10 d常规操作性食物自我管理训练(1 h / d)后评估改变的内在兴奋性。首先,我们在雄性FosLacZ转基因大鼠中使用了Daun02灭活程序,选择性地消融了在食品自给过程中活跃的表达Fos的PLC神经元。这些神经元的选择性消融减少了对食物的寻求。然后,我们使用雄性FosGFP转基因大鼠评估了在食品自我管理过程中被激活的,表达Fos的神经元集成体(FosGFP + )中固有兴奋性的选择性变化,并将这些变化与激活程度较低的非自发性集合神经元(FosGFP -)。使用离体脑切片制备中V层锥体神经元的全细胞记录,我们发现操作性自我给药增加了FosGFP + 神经元的兴奋性并降低了FosGFP -神经元。稳态输入电阻的增加驱动了FosGFP + 神经元的兴奋性增加。 FosGFP -神经元的兴奋性降低是由小传导钙激活钾(SK)通道的贡献增加所致。向PLC中注射特定的SK通道拮抗剂apamin会增加Fos表达,但对寻找食物没有影响。总体而言,操作学习提高了表达PLC Fos的PLC神经元集成体的内在兴奋性,该神经元集成体在觅食中起作用,但降低了Fos -非集成体的内在兴奋性。>意义声明活动在操作学习中起着至关重要的作用,但潜在的细胞机制尚不清楚。使用化学成因的Daun02灭活程序,我们发现大鼠PLC中的少量强烈激活的表达Fos的神经元小体在寻求操作性食物中起重要作用。使用GFP表达鉴定FosGFP转基因大鼠前肢皮层(PLC)中的Fos表达V层锥体神经元,我们发现有效的食物自给导致行为相关的表达Fos的神经元集合的内在兴奋性增加,但内在的减少使用不同的细胞机制对Fos -神经元的兴奋性。

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