Nowinski Wieslaw L, Thirunavuukarasuu Arumugam
Biomedical Imaging Laboratory, Institute for Infocomm Research, Singapore.
Neurosurg Focus. 2003 Jul 15;15(1):E3. doi: 10.3171/foc.2003.15.1.3.
Functional imaging is an established neurosurgical modality for studying the brain in health and disease. Identifying numerous activation loci on many functional images and reading their underlying cortical and subcortical anatomy, coordinates, and anatomical and functional values is a tedious, time-consuming, and error-prone task. In this study the authors propose a novel approach to this problem by using an electronic brain atlas in conjunction with a locus-driven mechanism.
The Brain Atlas for Functional Imaging containing an enhanced and extended electronic version of the Talairach-Tournoux brain atlas was used for analysis. It enables loading of anatomical and functional data, correlation of these data, identification of activation loci, and their labeling with Brodmann areas, gyri, and subcortical structures by means of the atlas. The Talairach proportional grid system transformation is used to register the anatomical and functional data with the atlas. The availability of numerous tools supports this process. A locus-driven mechanism for analysis of activation loci is implemented. Locus placement within the activation region is supported by thresholding, and its location can be further edited in three dimensions on any orthogonal plane. Once all loci are identified and edited, their labels, coordinates, and anatomical/functional values are read automatically and saved in an external file. This mechanism enables the analysis to be performed in an automated, rapid, explicit, three-dimensionally consistent, and user-friendly way.
The electronic brain atlas with locus-driven mechanism is a useful tool for localization analysis of functional images.
功能成像作为一种成熟的神经外科手段,用于研究健康和患病状态下的大脑。在众多功能图像上识别大量激活位点,并解读其潜在的皮质和皮质下解剖结构、坐标以及解剖学和功能值,是一项繁琐、耗时且容易出错的任务。在本研究中,作者提出了一种通过结合使用电子脑图谱和位点驱动机制来解决该问题的新方法。
使用包含Talairach - Tournoux脑图谱增强扩展电子版的功能成像脑图谱进行分析。它能够加载解剖学和功能数据,关联这些数据,识别激活位点,并借助图谱用布罗德曼区、脑回和皮质下结构对其进行标记。Talairach比例网格系统变换用于将解剖学和功能数据与图谱进行配准。众多工具的可用性支持了这一过程。实现了一种用于分析激活位点的位点驱动机制。通过阈值处理支持在激活区域内放置位点,并且其位置可以在任何正交平面上进行三维进一步编辑。一旦所有位点都被识别和编辑,它们的标签、坐标以及解剖学/功能值会被自动读取并保存到外部文件中。这种机制使得分析能够以自动化、快速、明确、三维一致且用户友好的方式进行。
带有位点驱动机制的电子脑图谱是功能图像定位分析的有用工具。