Mapping and modeling age-related changes in intrinsic neural timescales.

IF 5.1 1区 生物学 Q1 BIOLOGY Communications Biology Pub Date : 2025-02-03 DOI:10.1038/s42003-025-07517-x
Kaichao Wu, Leonardo L Gollo
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Abstract

Intrinsic timescales of brain regions exhibit heterogeneity, escalating with hierarchical levels, and are crucial for the temporal integration of external stimuli. Aging, often associated with cognitive decline, involves progressive neuronal and synaptic loss, reshaping brain structure and dynamics. However, the impact of these structural changes on temporal coding in the aging brain remains unclear. We mapped intrinsic timescales and gray matter volume (GMV) using magnetic resonance imaging (MRI) in young and elderly adults. We found shorter intrinsic timescales across multiple large-scale functional networks in the elderly cohort, and a significant positive association between intrinsic timescales and GMV. Additionally, age-related decline in performance on visual discrimination tasks was linked to a reduction in intrinsic timescales in the cuneus. To explain these age-related shifts, we developed an age-dependent spiking neuron network model. In younger subjects, brain regions were near a critical branching regime, while regions in elderly subjects had fewer neurons and synapses, pushing the dynamics toward a subcritical regime. The model accurately reproduced the empirical results, showing longer intrinsic timescales in young adults due to critical slowing down. Our findings reveal how age-related structural brain changes may drive alterations in brain dynamics, offering testable predictions and informing possible interventions targeting cognitive decline.

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内在神经时间尺度中与年龄相关的变化的映射和建模。
大脑区域的内在时间尺度表现出异质性,并随着层次的增加而不断升级,这对外部刺激的时间整合至关重要。衰老通常与认知能力下降有关,涉及神经元和突触的逐渐丧失,重塑大脑结构和动态。然而,这些结构变化对衰老大脑中时间编码的影响尚不清楚。我们使用磁共振成像(MRI)绘制了年轻人和老年人的内在时间尺度和灰质体积(GMV)。我们发现,在老年队列中,多个大型功能网络的内在时间尺度更短,内在时间尺度与GMV之间存在显著的正相关。此外,视觉辨别任务中与年龄相关的表现下降与楔骨内在时间尺度的减少有关。为了解释这些与年龄相关的变化,我们开发了一个与年龄相关的尖峰神经元网络模型。在年轻的受试者中,大脑区域接近临界分支状态,而在老年受试者中,大脑区域的神经元和突触较少,将动态推向亚临界状态。该模型准确地再现了经验结果,显示出由于临界减速,年轻人的内在时间尺度更长。我们的发现揭示了与年龄相关的大脑结构变化如何驱动大脑动力学的改变,提供了可测试的预测,并为针对认知衰退的可能干预提供了信息。
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来源期刊
Communications Biology
Communications Biology Medicine-Medicine (miscellaneous)
CiteScore
8.60
自引率
1.70%
发文量
1233
审稿时长
13 weeks
期刊介绍: Communications Biology is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the biological sciences. Research papers published by the journal represent significant advances bringing new biological insight to a specialized area of research.
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