Institut d'Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS), Barcelona 08036, Spain.
Wake Forest School of Medicine, Winston-Salem, North Carolina 27157.
J Neurosci. 2024 Jun 5;44(23):e1225232024. doi: 10.1523/JNEUROSCI.1225-23.2024.
The behavioral and neural effects of the endogenous release of acetylcholine following stimulation of the nucleus basalis (NB) of Meynert have been recently examined in two male monkeys (Qi et al., 2021). Counterintuitively, NB stimulation enhanced behavioral performance while broadening neural tuning in the prefrontal cortex (PFC). The mechanism by which a weaker mnemonic neural code could lead to better performance remains unclear. Here, we show that increased neural excitability in a simple continuous bump attractor model can induce broader neural tuning and decrease bump diffusion, provided neural rates are saturated. Increased memory precision in the model overrides memory accuracy, improving overall task performance. Moreover, we show that bump attractor dynamics can account for the nonuniform impact of neuromodulation on distractibility, depending on distractor distance from the target. Finally, we delve into the conditions under which bump attractor tuning and diffusion balance in biologically plausible heterogeneous network models. In these discrete bump attractor networks, we show that reducing spatial correlations or enhancing excitatory transmission can improve memory precision. Altogether, we provide a mechanistic understanding of how cholinergic neuromodulation controls spatial working memory through perturbed attractor dynamics in the PFC.
最近,在两只雄性猕猴中研究了刺激麦纳特核(Meynert 的基底核)后内源性释放乙酰胆碱的行为和神经效应(Qi 等人,2021 年)。反直觉的是,基底核刺激增强了行为表现,同时拓宽了前额叶皮层(PFC)的神经调谐。较弱的记忆神经编码如何导致更好的表现的机制尚不清楚。在这里,我们表明,在简单的连续凸起吸引子模型中增加神经兴奋性可以在饱和神经速率的情况下诱导更广泛的神经调谐并减少凸起扩散。模型中增加的记忆精度会忽略记忆准确性,从而提高整体任务性能。此外,我们表明,凸起吸引子动力学可以解释神经调节对分心的非均匀影响,具体取决于分心物与目标的距离。最后,我们深入研究了在具有生物学意义的异构网络模型中凸起吸引子调谐和扩散平衡的条件。在这些离散的凸起吸引子网络中,我们表明,降低空间相关性或增强兴奋性传递可以提高记忆精度。总的来说,我们提供了一种机制理解,即通过 PFC 中被扰乱的吸引子动力学,胆碱能神经调制如何控制空间工作记忆。