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关联白质束选择性地预测感觉运动学习。

Associative white matter tracts selectively predict sensorimotor learning.

机构信息

Department of Psychological and Brain Sciences, Program for Neuroscience, Indiana University, Bloomington, IN, USA.

Department of Psychology and Human Development, Vanderbilt University, Nashville, TN, USA.

出版信息

Commun Biol. 2024 Jun 22;7(1):762. doi: 10.1038/s42003-024-06420-1.

Abstract

Human learning varies greatly among individuals and is related to the microstructure of major white matter tracts in several learning domains, yet the impact of the existing microstructure of white matter tracts on future learning outcomes remains unclear. We employed a machine-learning model selection framework to evaluate whether existing microstructure might predict individual differences in learning a sensorimotor task, and further, if the mapping between tract microstructure and learning was selective for learning outcomes. We used diffusion tractography to measure the mean fractional anisotropy (FA) of white matter tracts in 60 adult participants who then practiced drawing a set of 40 unfamiliar symbols repeatedly using a digital writing tablet. We measured drawing learning as the slope of draw duration over the practice session and measured visual recognition learning for the symbols using an old/new 2-AFC task. Results demonstrated that tract microstructure selectively predicted learning outcomes, with left hemisphere pArc and SLF3 tracts predicting drawing learning and the left hemisphere MDLFspl predicting visual recognition learning. These results were replicated using repeat, held-out data and supported with complementary analyses. Results suggest that individual differences in the microstructure of human white matter tracts may be selectively related to future learning outcomes.

摘要

人类学习在个体之间存在很大差异,与几个学习领域的主要白质束的微观结构有关,但白质束的现有微观结构对未来学习成果的影响尚不清楚。我们采用了一种机器学习模型选择框架来评估现有微观结构是否可以预测学习感觉运动任务的个体差异,以及束微观结构与学习之间的映射是否对学习结果具有选择性。我们使用扩散张量成像来测量 60 名成年参与者的白质束的平均分数各向异性(FA),然后使用数字书写板反复练习绘制一组 40 个不熟悉的符号。我们将绘图学习测量为绘图持续时间在练习过程中的斜率,并使用旧/新 2-AFC 任务测量符号的视觉识别学习。结果表明,束微观结构选择性地预测了学习结果,左半球 pArc 和 SLF3 束预测了绘图学习,左半球 MDLFspl 预测了视觉识别学习。这些结果使用重复的、保留的数据进行了复制,并通过补充分析得到了支持。结果表明,人类白质束微观结构的个体差异可能与未来的学习成果选择性相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0cab/11193801/400a5af51338/42003_2024_6420_Fig1_HTML.jpg

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