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乘着慢波前行:探索低频受迫振荡在记忆形成中的作用。

Riding the slow wave: Exploring the role of entrained low-frequency oscillations in memory formation.

机构信息

Tufts University, 490 Boston Avenue, Medford, MA, 02155, USA.

Tufts University, 490 Boston Avenue, Medford, MA, 02155, USA.

出版信息

Neuropsychologia. 2021 Sep 17;160:107962. doi: 10.1016/j.neuropsychologia.2021.107962. Epub 2021 Jul 17.

Abstract

Neural oscillations are proposed to support a variety of behaviors, including long-term memory, yet their functional significance remains an active area of research. Here, we explore a potential functional role of low-frequency cortical oscillations in episodic memory formation. Recent theories suggest that low-frequency oscillations orchestrate rhythmic attentional sampling of the environment by dynamically modulating neural excitability across time. When these oscillations entrain to low-frequency rhythms present in the environment, such as speech or music, the brain can build temporal predictions about the onset of relevant events so that these events can be more efficiently processed. Building upon this literature, we propose that entrained low-frequency oscillations may similarly influence the temporal dynamics of episodic memory by rhythmically modulating encoding across time (mnemonic sampling). Central to this proposal is the phenomenon of cross-frequency phase-amplitude coupling, whereby the amplitudes of faster (higher frequency) rhythms, such as gamma oscillations, couple to the phase of slower (lower-frequency) rhythms entrained to environmental stimuli. By imposing temporal structure on higher-frequency oscillatory activity previously linked to memory formation, entrained low-frequency oscillations could dynamically orchestrate memory formation and optimize encoding at specific moments in time. We discuss prior experimental and theoretical work relevant to this proposal.

摘要

神经振荡被认为支持各种行为,包括长期记忆,但它们的功能意义仍然是一个活跃的研究领域。在这里,我们探索了低频皮质振荡在情景记忆形成中的潜在功能作用。最近的理论表明,低频振荡通过随时间动态调节神经元兴奋性来协调环境的节奏性注意采样。当这些振荡与环境中存在的低频节律(如语音或音乐)同步时,大脑可以对相关事件的开始建立时间预测,以便更有效地处理这些事件。基于这一文献,我们提出,同步的低频振荡可能通过随时间(记忆采样)有节奏地调节编码来类似地影响情景记忆的时间动态。这一建议的核心是跨频相位-振幅耦合现象,即更快(更高频率)的节律(如伽马振荡)的振幅与受环境刺激同步的较慢(较低频率)节律的相位耦合。通过对与记忆形成相关的先前与记忆形成相关的更高频率的振荡活动施加时间结构,同步的低频振荡可以动态地协调记忆形成,并在特定时间优化编码。我们讨论了与这一建议相关的先前的实验和理论工作。

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