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首页> 外文期刊>Neuron >Temporal Interval Learning in Cortical Cultures Is Encoded in Intrinsic Network Dynamics
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Temporal Interval Learning in Cortical Cultures Is Encoded in Intrinsic Network Dynamics

机译:内在网络动力学编码皮质文化中的时间间隔学习。

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摘要

Telling time and anticipating when external events will happen is among the most important tasks the brain performs. Yet the neural mechanisms underlying timing remain elusive. One theory proposes that timing is a general and intrinsic computation of cortical circuits. We tested this hypothesis using electrical and optogenetic stimulation to determine if brain slices could "learn" temporal intervals. Presentation of intervals between 100 and 500 ms altered the temporal profile of evoked network activity in an interval and pathway-specific manner-suggesting that the network learned to anticipate an expected stimulus. Recordings performed during training revealed a progressive increase in evoked network activity, followed by subsequent refinement of temporal dynamics, which was related to a time-window-specific increase in the excitatory-inhibitory balance. These results support the hypothesis that subsecond timing is an intrinsic computation and that timing emerges from network-wide, yet pathway-specific, changes in evoked neural dynamics.
机译:告诉时间并预测何时将发生外部事件是大脑执行的最重要任务之一。然而,计时的神经机制仍然难以捉摸。一种理论认为,计时是皮质电路的一般性和内在性计算。我们使用电刺激和光遗传刺激测试了这一假设,以确定脑切片是否可以“学习”时间间隔。在100到500毫秒之间出现间隔,会以间隔和特定于路径的方式改变诱发的网络活动的时间分布,这表明网络学会了预期的预期刺激。训练期间进行的记录显示,诱发的网络活动逐渐增加,随后对时态动态进行了细化,这与时间窗特定的兴奋性抑制平衡增加有关。这些结果支持了以下假设:亚秒级计时是一种内在计算,并且计时是由网络范围内但特定于通路的诱发神经动力学变化产生的。

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