平衡工作记忆和决策任务的准确性和灵活性的神经机制。

IF 3.5 2区 生物学 Q1 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Han Yan, Jin Wang
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引用次数: 0

摘要

生命系统遵循物理原理,但其独特的特征,如适应性,使其与传统系统区别开来。决策(DM)和工作记忆(WM)的认知功能对动物的适应至关重要,但其潜在机制尚不清楚。为了探索DM和WM功能的机制,我们将一般的非平衡景观和通量方法应用于一个基于生物物理的模型,该模型可以执行决策和工作记忆功能。我们的研究结果表明,在选择性抑制的电路结构中,更强的静息状态提高了DM的准确性。然而,工作记忆对干扰物的稳健性被削弱。为了解决这一问题,提出了在决策任务延迟期增加非选择性输入的机制,以最小的热力学成本增加干扰。这种时间门控机制与选择性抑制回路结构相结合,支持一种动态调节,根据认知任务需求,强调工作记忆任务对输入刺激的稳健性或灵活性。我们的方法提供了一个定量框架来揭示基于非平衡物理的认知功能的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neural mechanisms balancing accuracy and flexibility in working memory and decision tasks.

The living system follows the principles of physics, yet distinctive features, such as adaptability, differentiate it from conventional systems. The cognitive functions of decision-making (DM) and working memory (WM) are crucial for animal adaptation, but the underlying mechanisms are still unclear. To explore the mechanism underlying DM and WM functions, here we applied a general non-equilibrium landscape and flux approach to a biophysically based model that can perform decision-making and working memory functions. Our findings reveal that DM accuracy improved with stronger resting states in the circuit architecture with selective inhibition. However, the robustness of working memory against distractors was weakened. To address this, an additional non-selective input during the delay period of decision-making tasks was proposed as a mechanism to gate distractors with minimal increase in thermodynamic cost. This temporal gating mechanism, combined with the selective-inhibition circuit architecture, supports a dynamical modulation that emphasizes the robustness or flexibility to incoming stimuli in working memory tasks according to the cognitive task demands. Our approach offers a quantitative framework to uncover mechanisms underlying cognitive functions grounded in non-equilibrium physics.

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来源期刊
NPJ Systems Biology and Applications
NPJ Systems Biology and Applications Mathematics-Applied Mathematics
CiteScore
5.80
自引率
0.00%
发文量
46
审稿时长
8 weeks
期刊介绍: npj Systems Biology and Applications is an online Open Access journal dedicated to publishing the premier research that takes a systems-oriented approach. The journal aims to provide a forum for the presentation of articles that help define this nascent field, as well as those that apply the advances to wider fields. We encourage studies that integrate, or aid the integration of, data, analyses and insight from molecules to organisms and broader systems. Important areas of interest include not only fundamental biological systems and drug discovery, but also applications to health, medical practice and implementation, big data, biotechnology, food science, human behaviour, broader biological systems and industrial applications of systems biology. We encourage all approaches, including network biology, application of control theory to biological systems, computational modelling and analysis, comprehensive and/or high-content measurements, theoretical, analytical and computational studies of system-level properties of biological systems and computational/software/data platforms enabling such studies.
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