Temporal dynamics of white and gray matter plasticity during motor skill acquisition: a comparative diffusion tensor imaging and multiparametric mapping analysis.

IF 2.9 2区 医学 Q2 NEUROSCIENCES Cerebral cortex Pub Date : 2024-08-01 DOI:10.1093/cercor/bhae344
Tim Emmenegger, Gergely David, Siawoosh Mohammadi, Gabriel Ziegler, Martina F Callaghan, Alan Thompson, Karl J Friston, Nikolaus Weiskopf, Tim Killeen, Patrick Freund
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Abstract

Learning new motor skills relies on neural plasticity within motor and limbic systems. This study uniquely combined diffusion tensor imaging and multiparametric mapping MRI to detail these neuroplasticity processes. We recruited 18 healthy male participants who underwent 960 min of training on a computer-based motion game, while 14 were scanned without training. Diffusion tensor imaging, which quantifies tissue microstructure by measuring the capacity for, and directionality of, water diffusion, revealed mostly linear changes in white matter across the corticospinal-cerebellar-thalamo-hippocampal circuit. These changes related to performance and reflected different responses to upper- and lower-limb training in brain areas with known somatotopic representations. Conversely, quantitative MRI metrics, sensitive to myelination and iron content, demonstrated mostly quadratic changes in gray matter related to performance and reflecting somatotopic representations within the same brain areas. Furthermore, while myelin and iron-sensitive multiparametric mapping MRI was able to describe time lags between different cortical brain systems, diffusion tensor imaging detected time lags within the white matter of the motor systems. These findings suggest that motor skill learning involves distinct phases of white and gray matter plasticity across the sensorimotor network, with the unique combination of diffusion tensor imaging and multiparametric mapping MRI providing complementary insights into the underlying neuroplastic responses.

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运动技能习得过程中白质和灰质可塑性的时间动态:弥散张量成像和多参数绘图的比较分析。
学习新的运动技能有赖于运动系统和边缘系统的神经可塑性。本研究独特地将弥散张量成像和多参数映射核磁共振成像结合起来,详细描述了这些神经可塑性过程。我们招募了 18 名健康男性参与者,让他们在基于计算机的运动游戏中接受了 960 分钟的训练,另有 14 名参与者在未接受训练的情况下接受了扫描。通过测量水扩散的能力和方向性来量化组织微结构的扩散张量成像显示,皮质-小脑-丘脑-海马回路的白质大多发生了线性变化。这些变化与成绩有关,反映了已知躯体表征的大脑区域对上肢和下肢训练的不同反应。相反,对髓鞘化和铁含量敏感的定量核磁共振成像指标显示,灰质的变化大多与成绩有关,并反映了相同脑区的躯体定向表征。此外,对髓鞘和铁敏感的多参数磁共振成像能够描述不同大脑皮层系统之间的时滞,而扩散张量成像则能检测到运动系统白质内部的时滞。这些研究结果表明,运动技能的学习涉及整个感觉运动网络中白质和灰质可塑性的不同阶段,而弥散张量成像和多参数映射核磁共振成像的独特组合为了解潜在的神经可塑性反应提供了互补性。
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来源期刊
Cerebral cortex
Cerebral cortex 医学-神经科学
CiteScore
6.30
自引率
8.10%
发文量
510
审稿时长
2 months
期刊介绍: Cerebral Cortex publishes papers on the development, organization, plasticity, and function of the cerebral cortex, including the hippocampus. Studies with clear relevance to the cerebral cortex, such as the thalamocortical relationship or cortico-subcortical interactions, are also included. The journal is multidisciplinary and covers the large variety of modern neurobiological and neuropsychological techniques, including anatomy, biochemistry, molecular neurobiology, electrophysiology, behavior, artificial intelligence, and theoretical modeling. In addition to research articles, special features such as brief reviews, book reviews, and commentaries are included.
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