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Negative blood oxygenation level dependent homunculus and somatotopic information in primary motor cortex and supplementary motor area

机译:初级运动皮层和辅助运动区的负氧合水平依赖的绒毛膜和体位信息

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摘要

A crucial attribute in movement encoding is an adequate balance between suppression of unwanted muscles and activation of required ones. We studied movement encoding across the primary motor cortex (M1) and supplementary motor area (SMA) by inspecting the positive and negative blood oxygenation level-dependent (BOLD) signals in these regions. Using periodic and event-related experiments incorporating the bilateral/axial movements of 20 body parts, we report detailed mototopic imaging maps in M1 and SMA. These maps were obtained using phase-locked analysis. In addition to the positive BOLD, significant negative BOLD was detected in M1 but not in the SMA. The negative BOLD spatial pattern was neither located at the ipsilateral somatotopic location nor randomly distributed. Rather, it was organized somatotopically across the entire homunculus and inversely to the positive BOLD, creating a negative BOLD homunculus. The neuronal source of negative BOLD is unclear. M1 provides a unique system to test whether the origin of negative BOLD is neuronal, because different arteries supply blood to different regions in the homunculus, ruling out blood-stealing explanations. Finally, multivoxel pattern analysis showed that positive BOLD in M1 and SMA and negative BOLD in M1 contain somatotopic information, enabling prediction of the moving body part from inside and outside its somatotopic location. We suggest that the neuronal processes underlying negative BOLD participate in somatotopic encoding in M1 but not in the SMA. This dissociation may emerge because of differences in the activity of these motor areas associated with movement suppression.
机译:运动编码中的关键属性是抑制不需要的肌肉和激活所需的肌肉之间的适当平衡。我们通过检查这些区域的正负血液氧合水平依赖性(BOLD)信号,研究了主运动皮层(M1)和辅助运动区域(SMA)的运动编码。使用定期和事件相关的实验,结合20个身体部位的双边/轴向运动,我们报告了M1和SMA中详细的运动位成像图。这些图是使用锁相分析获得的。除了阳性BOLD,在M1中检测到显着的阴性BOLD,但在SMA中未检测到。负大胆的空间格局既不位于同侧的体位,也不随机分布。而是,它在整个同小体上以体位方式组织,与正大胆相反,从而产生了负大胆同胞。阴性大胆的神经元来源尚不清楚。 M1提供了一个独特的系统来测试阴性BOLD的起源是否为神经元,因为不同的动脉向本体内的不同区域供应血液,从而排除了窃血的原因。最后,多体素模式分析显示,M1和SMA中的正BOLD和M1中的负BOLD包含体位信息,从而可以从其体位位置的内部和外部预测运动的身体部位。我们建议负BOLD的潜在神经元过程参与M1中的体位编码,但不参与SMA。这种分离可能是由于与运动抑制相关的这些运动区域的活动差异而出现的。

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  • 作者单位

    Department of Medical Neurobiology, Institute for Medical Research Israel-Canada, Faculty of Medicine, Hebrew University, Jerusalem 91220, Israel,lnterdisciplinary Center for Neural Computation, Hebrew University, Jerusalem 91220, Israel,Cognitive Sciences and The Edmond and Lily Safra Center for Brain Sciences (ELSC), Hebrew University, Jerusalem 91220, Israel;

    Department of Medical Neurobiology, Institute for Medical Research Israel-Canada, Faculty of Medicine, Hebrew University, Jerusalem 91220, Israel,lnterdisciplinary Center for Neural Computation, Hebrew University, Jerusalem 91220, Israel,Cognitive Sciences and The Edmond and Lily Safra Center for Brain Sciences (ELSC), Hebrew University, Jerusalem 91220, Israel;

    Weizmann Institute of Science, The Department of Computer Science and Applied Mathematics, The Faculty of Mathematics and Computer Science, Rehovot 76100, Israel;

    Department of Medical Neurobiology, Institute for Medical Research Israel-Canada, Faculty of Medicine, Hebrew University, Jerusalem 91220, Israel,lnterdisciplinary Center for Neural Computation, Hebrew University, Jerusalem 91220, Israel,Cognitive Sciences and The Edmond and Lily Safra Center for Brain Sciences (ELSC), Hebrew University, Jerusalem 91220, Israel;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    somatotopy; neural inhibition;

    机译:体型神经抑制;
  • 入库时间 2022-08-18 00:40:33

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