首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Colloquium Paper: Ensemble codes involving hippocampal neurons are at risk during delayed performance tests
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Colloquium Paper: Ensemble codes involving hippocampal neurons are at risk during delayed performance tests

机译:座谈会论文:涉及海马神经元的集合密码在 延迟的性能测试

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摘要

Multielectrode recording techniques were used to record ensemble activity from 10 to 16 simultaneously active CA1 and CA3 neurons in the rat hippocampus during performance of a spatial delayed-nonmatch-to-sample task. Extracted sources of variance were used to assess the nature of two different types of errors that accounted for 30% of total trials. The two types of errors included ensemble “miscodes” of sample phase information and errors associated with delay-dependent corruption or disappearance of sample information at the time of the nonmatch response. Statistical assessment of trial sequences and associated “strength” of hippocampal ensemble codes revealed that miscoded error trials always followed delay-dependent error trials in which encoding was “weak,” indicating that the two types of errors were “linked.” It was determined that the occurrence of weakly encoded, delay-dependent error trials initiated an ensemble encoding “strategy” that increased the chances of being correct on the next trial and avoided the occurrence of further delay-dependent errors. Unexpectedly, the strategy involved “strongly” encoding response position information from the prior (delay-dependent) error trial and carrying it forward to the sample phase of the next trial. This produced a miscode type error on trials in which the “carried over” information obliterated encoding of the sample phase response on the next trial. Application of this strategy, irrespective of outcome, was sufficient to reorient the animal to the proper between trial sequence of response contingencies (nonmatch-to-sample) and boost performance to 73% correct on subsequent trials. The capacity for ensemble analyses of strength of information encoding combined with statistical assessment of trial sequences therefore provided unique insight into the “dynamic” nature of the role hippocampus plays in delay type memory tasks.
机译:在执行空间延迟不匹配样本任务期间,多电极记录技术用于记录大鼠海马中10至16个同时激活的CA1和CA3神经元的集合活动。提取出的方差源用于评估两种不同类型错误的性质,这些错误占总试验的30%。两种类型的错误包括样本相位信息的整体“错误代码”和在不匹配响应时与样本信息延迟相关的损坏或消失相关的错误。对海马合奏代码的试验序列和相关“强度”的统计评估表明,错误编码的错误试验总是紧随延迟依赖性错误试验之后进行,其中编码是“弱”的,表明两种类型的错误是“关联的”。可以确定,弱编码的,依赖于延迟的错误试验的出现启动了整体编码“策略”,从而增加了在下一次试验中正确的机会,并避免了进一步的依赖于延迟的试验的发生 错误。出乎意料的是,该策略涉及“强烈”编码 来自先前(与延迟有关)错误的响应位置信息 试用,并将其移至下一个试用的样本阶段。 这在试验中产生了错误代码类型错误,其中“ 超过”信息消除了样本相位响应的编码 在下一次审判中。应用此策略,无论 结果,足以使动物适应 突发事件的响应顺序(不匹配样本)和增强 在随后的试验中,性能提高了73%。容量 结合信息编码强度的综合分析。 因此,对试验序列的统计评估提供了独特的 洞察海马体发挥的“动态”性质 在延迟类型的内存任务中。

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