人类颞上回的多模态结构映射。

P Morosan, A Schleicher, K Amunts, K Zilles
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引用次数: 159

摘要

虽然人们普遍认为,人类的颞上回是由大量的听觉和语言任务激活的,但人们对位于颞上回侧凸的皮层区域的确切位置和范围知之甚少(例如,Brodmann's area 22)。然而,这些信息对于在正常志愿者和患有听觉和语言感知障碍的患者中进行结构-功能关系的严格测试是相关的。目前的细胞结构和受体结构联合研究通过使用基于算法的方法检测皮层边界,确定了颞上回外侧凸起的一个独特区域(Te3)。我们的制图数据显示,与Brodmann’s area (BA) 22相反,Te3只有一小部分到达脑回的背侧和腹侧。因此,我们将新定义的区域标记为“Te3”,而不是“BA 22”。Te3的细胞结构边界与几种经典神经递质受体结构的突变一致,表明Te3代表了人类颞上回的一个功能相关区域。由于Te3区域的位置和范围在受试者之间有很大的差异,因此我们创建了概率图,显示标准参考空间的每个体素,Te3在其中出现的频率。这些图与先前发表的初级听觉皮层图相结合,可以直接与功能成像数据进行比较,并可能为分析人类听觉和语言系统的结构-功能相关性开辟新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimodal architectonic mapping of human superior temporal gyrus.

Although it is generally accepted that human superior temporal gyrus is activated by a huge variety of auditory and linguistic tasks, little is known about the exact positions and extents of cortical areas that are located on the lateral convexity of the gyrus (e.g., Brodmann's area 22). Such information, however, is relevant for a rigorous testing of structural-functional relationships in both normal volunteers and patients suffering from disorders of auditory and language perception. The present combined cytoarchitectonic and receptorarchitectonic study identifies a distinct area (Te3) in the lateral bulge of the superior temporal gyrus by using an algorithm-based approach for the detection of cortical borders. Our mapping data show that, in contrast to Brodmann's area (BA) 22, only small portions of Te3 reach the dorsal and ventral banks of the gyrus. Therefore, we labelled the newly defined area as "Te3" and not as "BA 22". The cytoarchitectonically defined borders of Te3 coincide with abrupt changes in the receptorarchitecture of several classical neurotransmitters, suggesting that Te3 represents a functionally relevant area of the human superior temporal gyrus. Since position and extent of area Te3 varied considerably between subjects, probability maps were created that show for each voxel of the standard references space, the frequency with which Te3 was present in it. These maps, in combination with previously published maps of the primary auditory cortex, can directly be compared with functional imaging data, and may open new perspectives for the analysis of structural-functional correlations in the human auditory and language systems.

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