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Learning, remembering, and relating sequences in the hippocampus.

机译:学习,记忆和关联海马序列。

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摘要

As a crossroads between sensory inputs and long term memories, the hippocampus turns a plethora of information into concise episodes for us to remember. The hippocampus can employ different strategies to achieve this transformation. By selecting only notable experiences to transfer to long term memory storage, we can remember important experiences while forgetting the mundane. By encoding common principles among several experiences, we can remember appropriate general responses and predict future similar experiences. We considered ways the hippocampus might achieve these two possibilities by examining hippocampal activity while rats executed sequences for rewards.;Given that we must remember the experiences that lead to reward in order to exploit these rewards in the future, we asked if memory processes are enhanced by reward. In particular we examined hippocampal sharp wave-ripples (SWRs) because reactivation of previous experiences during SWRs is thought to be essential for event memory storage. We found that SWR activity increases when animals receive reward. This reward related SWR activity is further enhanced when animals have to learn new path-reward associations. Additionally, SWR activity reactivates neural patterns that occur as animals run to or from the reward. Because SWRs are implicated in memory consolidation, this enhanced SWR reactivation could be a mechanism to preferentially remember experiences associated with reward.;Furthermore, when navigating environments with many repeated elements, generalizing across elements can be advantageous to efficiently encode appropriate responses. Simultaneously, each element must also be differentiated from the others. To study this, we then examined hippocampal activity as animals traversed environments with many repeated elements and had to distinguish between these elements to receive reward. We found that some hippocampal cells fire very similarly on multiple repeated elements, while other cells encode the elements differently. Cells that generalize across similar elements have correlated moment to moment activity, suggesting that they are part of functional ensembles. Furthermore, this generalizing/path equivalent activity increases as animals learn new relationships between repeated elements. This generalization across repeating elements could be a mechanism to extract general principles about related experiences.
机译:作为感觉输入和长期记忆之间的十字路口,海马将大量信息转化为简明的情节,让我们记住。海马可以采用不同的策略来实现这种转化。通过仅选择值得注意的体验以转移到长期内存存储中,我们可以在忘记平凡的同时记住重要的体验。通过在几种经验中编码共同的原则,我们可以记住适当的一般反应并预测未来的类似经验。我们考虑了通过在大鼠执行奖励序列时检查海马活动来检查海马活动可能实现这两种可能性的方法;鉴于我们必须记住导致奖励的经历以便将来利用这些奖励,我们询问记忆过程是否得到了增强通过奖励。特别是,我们检查了海马尖波波纹(SWR),因为在SWR期间重新激活以前的经历被认为对于事件记忆存储至关重要。我们发现,当动物获得奖励时,SWR活动就会增加。当动物必须学习新的路径-奖励关联时,与奖励有关的SWR活动将进一步增强。此外,SWR活动会重新激活在动物奔向奖励或从奖励中奔跑时出现的神经模式。由于SWR与内存整合有关,因此增强的SWR重新激活可能是一种优先记住与奖励相关的体验的机制。此外,当在具有许多重复元素的环境中导航时,跨元素进行归纳对于有效编码适当的响应可能是有利的。同时,每个元素也必须与其他元素区分开。为了研究这一点,我们随后研究了动物越过具有许多重复元素的环境时海马活动,并且必须区分这些元素以获得奖励。我们发现,某些海马细胞在多个重复元素上的​​发射非常相似,而其他细胞对元素的编码不同。遍及相似元素的细胞具有时刻相关的活动性,表明它们是功能性合奏的一部分。此外,随着动物学习重复元素之间的新关系,这种泛化/路径等效​​活动也会增加。跨重复元素的这种概括可能是一种提取有关经验的一般原则的机制。

著录项

  • 作者

    Singer, Annabelle.;

  • 作者单位

    University of California, San Francisco.;

  • 授予单位 University of California, San Francisco.;
  • 学科 Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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