可擦除海马神经信号预测记忆辨别。

Nathaniel R Kinsky, Daniel J Orlin, Evan A Ruesch, Brian Kim, Siria Coello, Kamran Diba, Steve Ramirez
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引用次数: 0

摘要

涉及海马体的记忆可能需要几天的时间才能巩固,这对揭示这一过程背后的神经元特征具有挑战性。使用自由运动小鼠的钙成像,我们在为期十天的情境恐惧条件反射(CFC)任务中跟踪了记忆形成背后的海马动力学。我们发现,即使在学习之前,调节室和中性场所之间的细胞周转也可以预测第二天后续记忆回忆的准确性。学习后,上下文特定的位置场重映射与记忆表现相关。为了测试这些海马动力学是否支持记忆巩固,我们通过在学习后立即阻断蛋白质合成,在一组小鼠中诱导健忘症。我们发现,学习后停止蛋白质合成矛盾地加速了细胞周转,也阻止了与学习相关的重映射,这与在表现出较差记忆表达的未经治疗的小鼠中观察到的缺乏重映射类似。最后,学习后出现的协调神经活动依赖于完整的蛋白质合成和预测的记忆相关冷冻行为。我们得出的结论是,特定于上下文的位置场重映射和协调整体活动的发展需要蛋白质合成,并且是上下文恐惧记忆巩固的基础。
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Erasable Hippocampal Neural Signatures Predict Memory Discrimination.

Memories involving the hippocampus can take several days to consolidate, challenging efforts to uncover the neuronal signatures underlying this process. Using calcium imaging in freely moving mice, we tracked the hippocampal dynamics underlying memory formation across a ten-day contextual fear conditioning (CFC) task. Following learning, context-specific place field remapping correlated with memory performance. To causally test whether these hippocampal dynamics support memory consolidation, we induced amnesia in a group of mice by pharmacologically blocking protein synthesis immediately following learning. We found that halting protein synthesis following learning paradoxically accelerated cell turnover and also arrested learning-related remapping, paralleling the absence of remapping observed in untreated mice that exhibited poor memory expression. Finally, coordinated neural activity that emerged following learning was dependent on intact protein synthesis and predicted memory-related freezing behavior. We conclude that context-specific place field remapping and the development of coordinated ensemble activity require protein synthesis and underlie contextual fear memory consolidation.

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