Nokia Miriam S, Waselius Tomi, Mikkonen Jarno E, Wikgren Jan, Penttonen Markku
Department of Psychology, University of Jyvaskyla, FI-40014 Jyväskylän, Finland
Department of Psychology, University of Jyvaskyla, FI-40014 Jyväskylän, Finland.
Learn Mem. 2015 May 15;22(6):307-17. doi: 10.1101/lm.038166.115. Print 2015 Jun.
Hippocampal θ (3-12 Hz) oscillations are implicated in learning and memory, but their functional role remains unclear. We studied the effect of the phase of local θ oscillation on hippocampal responses to a neutral conditioned stimulus (CS) and subsequent learning of classical trace eyeblink conditioning in adult rabbits. High-amplitude, regular hippocampal θ-band responses (that predict good learning) were elicited by the CS when it was timed to commence at the fissure θ trough (Trough group). Regardless, learning in this group was not enhanced compared with a yoked control group, possibly due to a ceiling effect. However, when the CS was consistently presented to the peak of θ (Peak group), hippocampal θ-band responding was less organized and learning was retarded. In well-trained animals, the hippocampal θ phase at CS onset no longer affected performance of the learned response, suggesting a time-limited role for hippocampal processing in learning. To our knowledge, this is the first study to demonstrate that timing a peripheral stimulus to a specific phase of the hippocampal θ cycle produces robust effects on the synchronization of neural responses and affects learning at the behavioral level. Our results support the notion that the phase of spontaneous hippocampal θ oscillation is a means of regulating the processing of information in the brain to a behaviorally relevant degree.
海马体θ(3 - 12赫兹)振荡与学习和记忆有关,但其功能作用仍不清楚。我们研究了局部θ振荡的相位对成年兔海马体对中性条件刺激(CS)的反应以及随后经典痕迹眨眼条件反射学习的影响。当CS被设定在裂隙θ波谷开始时(波谷组),会引发高振幅、规则的海马体θ波段反应(这预示着良好的学习效果)。尽管如此,与配对对照组相比,该组的学习并没有增强,这可能是由于天花板效应。然而,当CS持续出现在θ波峰时(波峰组),海马体θ波段反应的组织性较差,学习受到阻碍。在训练良好的动物中,CS开始时的海马体θ相位不再影响所学反应的表现,这表明海马体加工在学习中的作用是有时间限制的。据我们所知,这是第一项证明将外周刺激设定在海马体θ周期的特定相位会对神经反应同步产生强大影响并在行为水平上影响学习的研究。我们的结果支持这样一种观点,即自发海马体θ振荡的相位是一种将大脑中信息加工调节到行为相关程度的方式。