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识别皮质基底神经节 - 丘脑回路内信息处理的控制集合。

Identifying control ensembles for information processing within the cortico-basal ganglia-thalamic circuit.

机构信息

Dept. de Matemàtiques i Informàtica, Universitat de les Illes Balears, Palma, Spain.

Institute of Applied Computing and Community Code, Palma, Spain.

出版信息

PLoS Comput Biol. 2022 Jun 23;18(6):e1010255. doi: 10.1371/journal.pcbi.1010255. eCollection 2022 Jun.

Abstract

In situations featuring uncertainty about action-reward contingencies, mammals can flexibly adopt strategies for decision-making that are tuned in response to environmental changes. Although the cortico-basal ganglia thalamic (CBGT) network has been identified as contributing to the decision-making process, it features a complex synaptic architecture, comprised of multiple feed-forward, reciprocal, and feedback pathways, that complicate efforts to elucidate the roles of specific CBGT populations in the process by which evidence is accumulated and influences behavior. In this paper we apply a strategic sampling approach, based on Latin hypercube sampling, to explore how variations in CBGT network properties, including subpopulation firing rates and synaptic weights, map to variability of parameters in a normative drift diffusion model (DDM), representing algorithmic aspects of information processing during decision-making. Through the application of canonical correlation analysis, we find that this relationship can be characterized in terms of three low-dimensional control ensembles within the CBGT network that impact specific qualities of the emergent decision policy: responsiveness (a measure of how quickly evidence evaluation gets underway, associated with overall activity in corticothalamic and direct pathways), pliancy (a measure of the standard of evidence needed to commit to a decision, associated largely with overall activity in components of the indirect pathway of the basal ganglia), and choice (a measure of commitment toward one available option, associated with differences in direct and indirect pathways across action channels). These analyses provide mechanistic predictions about the roles of specific CBGT network elements in tuning the way that information is accumulated and translated into decision-related behavior.

摘要

在行动-奖励关联不确定的情况下,哺乳动物可以灵活地采用决策策略,根据环境变化进行调整。尽管皮质基底节丘脑(CBGT)网络已被确定为决策过程的贡献者,但它具有复杂的突触结构,由多个前馈、互馈和反馈途径组成,这使得阐明特定 CBGT 群体在积累证据和影响行为的过程中的作用变得复杂。在本文中,我们应用基于拉丁超立方采样的策略性采样方法,来探索 CBGT 网络属性(包括亚群的发射率和突触权重)的变化如何映射到规范性漂移扩散模型(DDM)参数的变异性,该模型代表了决策过程中信息处理的算法方面。通过典型相关分析,我们发现这种关系可以用 CBGT 网络中的三个低维控制集合来描述,这三个集合影响了涌现决策策略的特定质量:响应性(衡量证据评估开始的速度,与皮质丘脑和直接途径的整体活动相关)、柔韧性(衡量做出决策所需的证据标准,与基底神经节间接途径的整体活动相关)和选择(衡量对一个可用选项的承诺程度,与动作通道中直接和间接途径的差异相关)。这些分析为特定 CBGT 网络元素在调整信息积累方式并将其转化为决策相关行为方面的作用提供了机制预测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9899/9258830/f4b6ce3c06ed/pcbi.1010255.g002.jpg

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