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研究个体人类参与者中精细颗粒状手指体感定位图的稳定性。

Investigating the Stability of Fine-Grain Digit Somatotopy in Individual Human Participants.

作者信息

Kolasinski James, Makin Tamar R, Jbabdi Saad, Clare Stuart, Stagg Charlotte J, Johansen-Berg Heidi

机构信息

Oxford Centre for fMRI of the Brain, Nuffield Department of Clinical Neurosciences, University of Oxford, Oxford OX3 9DU, United Kingdom, University College, Oxford OX1 4BH, United Kingdom, and

Oxford Centre for fMRI of the Brain, Nuffield Department of Clinical Neurosciences, University of Oxford, Oxford OX3 9DU, United Kingdom.

出版信息

J Neurosci. 2016 Jan 27;36(4):1113-27. doi: 10.1523/JNEUROSCI.1742-15.2016.

Abstract

UNLABELLED

Studies of human primary somatosensory cortex (S1) have placed a strong emphasis on the cortical representation of the hand and the propensity for plasticity therein. Despite many reports of group differences and experience-dependent changes in cortical digit somatotopy, relatively little work has considered the variability of these maps across individuals and to what extent this detailed functional architecture is dynamic over time. With the advent of 7 T fMRI, it is increasingly feasible to map such detailed organization noninvasively in individual human participants. Here, we extend the ability of ultra-high-field imaging beyond a technological proof of principle to investigate the intersubject variability of digit somatotopy across participants and the stability of this organization across a range of intervals. Using a well validated phase-encoding paradigm and an active task, we demonstrate the presence of highly reproducible maps of individual digits in S1, sharply contrasted by a striking degree of intersubject variability in the shape, extent, and relative position of individual digit representations. Our results demonstrate the presence of very stable fine-grain somatotopy of the digits in human S1 and raise the issue of population variability in such detailed functional architecture of the human brain. These findings have implications for the study of detailed sensorimotor plasticity in the context of both learning and pathological dysfunction. The simple task and 10 min scan required to derive these maps also raises the potential for this paradigm as a tool in the clinical setting.

SIGNIFICANCE STATEMENT

We applied ultra-high-resolution fMRI at 7 T to map sensory digit representations in the human primary somatosensory cortex (S1) at the level of individual participants across multiple time points. The resulting fine-grain maps of individual digits in S1 reveal the stability in this fine-grain functional organization over time, contrasted with the variability in these maps across individuals.

摘要

未标注

对人类初级体感皮层(S1)的研究一直非常强调手部的皮层表征及其可塑性倾向。尽管有许多关于皮层手指躯体定位的组间差异和经验依赖性变化的报道,但相对较少的研究考虑了这些图谱在个体间的变异性,以及这种详细的功能结构随时间的动态变化程度。随着7T功能磁共振成像(fMRI)的出现,在个体人类受试者中无创绘制这种详细组织图谱变得越来越可行。在这里,我们将超高场成像的能力从原理性技术验证扩展到研究参与者之间手指躯体定位的个体间变异性以及该组织在一系列时间间隔内的稳定性。使用经过充分验证的相位编码范式和主动任务,我们证明了S1中单个手指的高度可重复图谱的存在,与之形成鲜明对比的是,个体手指表征的形状、范围和相对位置存在显著的个体间变异性。我们的结果证明了人类S1中手指非常稳定的细粒度躯体定位的存在,并提出了人类大脑这种详细功能结构中群体变异性的问题。这些发现对学习和病理功能障碍背景下的详细感觉运动可塑性研究具有启示意义。推导这些图谱所需的简单任务和10分钟扫描也提高了这种范式作为临床工具的潜力。

意义声明

我们应用7T超高分辨率功能磁共振成像在多个时间点对个体参与者水平的人类初级体感皮层(S1)中的感觉手指表征进行图谱绘制。由此得到的S1中单个手指的细粒度图谱揭示了这种细粒度功能组织随时间的稳定性,与个体间这些图谱的变异性形成对比。

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