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行为相关的结构和功能网络的年龄特异性和泛化及其与行为领域的相关性。

Age-specificity and generalization of behavior-associated structural and functional networks and their relevance to behavioral domains.

机构信息

Psychology, School of Social Sciences, National Technological University, Singapore, Singapore.

Centre for Family and Population Research, Faculty of Arts and Social Sciences, National University of Singapore, Singapore, Singapore.

出版信息

Hum Brain Mapp. 2022 Jun 1;43(8):2405-2418. doi: 10.1002/hbm.25759. Epub 2022 Mar 11.

Abstract

Behavior-associated structural connectivity (SC) and resting-state functional connectivity (rsFC) networks undergo various changes in aging. To study these changes, we proposed a continuous dimension where at one end networks generalize well across age groups in terms of behavioral predictions (age-general) and at the other end, they predict behaviors well in a specific age group but fare poorly in another age group (age-specific). We examined how age generalizability/specificity of multimodal behavioral associated brain networks varies across behavioral domains and imaging modalities. Prediction models consisting of SC and/or rsFC networks were trained to predict a diverse range of 75 behavioral outcomes in a young adult sample (N = 92). These models were then used to predict behavioral outcomes in unseen young (N = 60) and old (N = 60) subjects. As expected, behavioral prediction models derived from the young age group, produced more accurate predictions in the unseen young than old subjects. These behavioral predictions also differed significantly across behavioral domains, but not imaging modalities. Networks associated with cognitive functions, except for a few mostly relating to semantic knowledge, fell toward the age-specific end of the spectrum (i.e., poor young-to-old generalizability). These findings suggest behavior-associated brain networks are malleable to different degrees in aging; such malleability is partly determined by the nature of the behavior.

摘要

行为相关的结构连接(SC)和静息状态功能连接(rsFC)网络在衰老过程中会发生各种变化。为了研究这些变化,我们提出了一个连续的维度,在这个维度的一端,网络在行为预测方面很好地概括了不同年龄组(年龄泛化),而在另一端,它们在特定年龄组中很好地预测行为,但在另一个年龄组中表现不佳(年龄特定)。我们研究了多模态行为相关脑网络的年龄泛化/特异性如何因行为领域和成像模态而异。包含 SC 和/或 rsFC 网络的预测模型被训练来预测年轻成年人样本中的 75 种不同行为结果(N=92)。然后,这些模型被用于预测未见过的年轻(N=60)和老年(N=60)受试者的行为结果。正如预期的那样,从年轻年龄组得出的行为预测模型在未见过的年轻受试者中比老年受试者产生更准确的预测。这些行为预测也因行为领域而异,但与成像模态无关。与认知功能相关的网络,除了少数与语义知识有关的网络外,都趋向于年龄特定的一端(即,对年轻到老年的泛化能力差)。这些发现表明,行为相关的大脑网络在衰老过程中的可塑性程度不同;这种可塑性在一定程度上取决于行为的性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d383/9057094/c076c18600c0/HBM-43-2405-g001.jpg

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