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记忆巩固背后的突触权重动力学:对学习规则、神经回路组织及神经回路功能的影响

Synaptic weight dynamics underlying memory consolidation: implications for learning rules, circuit organization, and circuit function.

作者信息

Bhasin Brandon J, Raymond Jennifer L, Goldman Mark S

出版信息

bioRxiv. 2024 Jul 24:2024.03.20.586036. doi: 10.1101/2024.03.20.586036.

Abstract

UNLABELLED

Systems consolidation is a common feature of learning and memory systems, in which a long-term memory initially stored in one brain region becomes persistently stored in another region. We studied the dynamics of systems consolidation in simple circuit architectures with two sites of plasticity, one in an early-learning and one in a late-learning brain area. We show that the synaptic dynamics of the circuit during consolidation of an analog memory can be understood as a temporal integration process, by which transient changes in activity driven by plasticity in the early-learning area are accumulated into persistent synaptic changes at the late-learning site. This simple principle naturally leads to a speed-accuracy tradeoff in systems consolidation and provides insight into how the circuit mitigates the stability-plasticity dilemma of storing new memories while preserving core features of older ones. Furthermore, it imposes two constraints on the circuit. First, the plasticity rule at the late-learning site must stably support a continuum of possible outputs for a given input. We show that this is readily achieved by heterosynaptic but not standard Hebbian rules. Second, to turn off the consolidation process and prevent erroneous changes at the late-learning site, neural activity in the early-learning area must be reset to its baseline activity. We propose two biologically plausible implementations for this reset that suggest novel roles for core elements of the cerebellar circuit.

SIGNIFICANCE STATEMENT

How are memories transformed over time? We propose a simple organizing principle for how long term memories are moved from an initial to a final site of storage. We show that successful transfer occurs when the late site of memory storage is endowed with synaptic plasticity rules that stably accumulate changes in activity occurring at the early site of memory storage. We instantiate this principle in a simple computational model that is representative of brain circuits underlying a variety of behaviors. The model suggests how a neural circuit can store new memories while preserving core features of older ones, and suggests novel roles for core elements of the cerebellar circuit.

摘要

未标记

系统巩固是学习和记忆系统的一个共同特征,其中最初存储在一个脑区的长期记忆会持久地存储到另一个区域。我们在具有两个可塑性位点的简单电路架构中研究了系统巩固的动态过程,一个位点在早期学习脑区,另一个在晚期学习脑区。我们表明,在模拟记忆巩固过程中,电路的突触动态可以理解为一个时间整合过程,通过这个过程,早期学习区可塑性驱动的活动瞬态变化会累积为晚期学习位点的持久突触变化。这个简单的原理自然地导致了系统巩固中的速度 - 准确性权衡,并为电路如何在保留旧记忆核心特征的同时减轻存储新记忆的稳定性 - 可塑性困境提供了见解。此外,它对电路施加了两个约束。首先,晚期学习位点的可塑性规则必须稳定地支持给定输入的一系列可能输出。我们表明,通过异突触规则而非标准赫布规则很容易实现这一点。其次,为了关闭巩固过程并防止晚期学习位点出现错误变化,早期学习区的神经活动必须重置为其基线活动。我们提出了两种生物学上合理的实现这种重置的方法,这暗示了小脑电路核心元件的新作用。

意义声明

记忆如何随时间转变?我们提出了一个关于长期记忆如何从初始存储位点转移到最终存储位点的简单组织原则。我们表明,当记忆存储的晚期位点具有能够稳定累积在记忆存储早期位点发生的活动变化的突触可塑性规则时,成功转移就会发生。我们在一个代表多种行为背后脑电路的简单计算模型中实例化了这个原则。该模型揭示了神经电路如何在保留旧记忆核心特征的同时存储新记忆,并暗示了小脑电路核心元件的新作用。

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