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白质查询语言:一种描述人类白质解剖结构的新方法。

The white matter query language: a novel approach for describing human white matter anatomy.

作者信息

Wassermann Demian, Makris Nikos, Rathi Yogesh, Shenton Martha, Kikinis Ron, Kubicki Marek, Westin Carl-Fredrik

机构信息

Laboratory of Mathematics in Imaging, Brigham and Women's Hospital, Harvard Medical School, 1249 Boylston, 02215, Boston, MA, USA.

Psychiatry Neuroimaging Laboratory, Brigham and Women's Hospital, Harvard Medical School, 1249 Boylston, 02215, Boston, MA, USA.

出版信息

Brain Struct Funct. 2016 Dec;221(9):4705-4721. doi: 10.1007/s00429-015-1179-4. Epub 2016 Jan 11.

Abstract

We have developed a novel method to describe human white matter anatomy using an approach that is both intuitive and simple to use, and which automatically extracts white matter tracts from diffusion MRI volumes. Further, our method simplifies the quantification and statistical analysis of white matter tracts on large diffusion MRI databases. This work reflects the careful syntactical definition of major white matter fiber tracts in the human brain based on a neuroanatomist's expert knowledge. The framework is based on a novel query language with a near-to-English textual syntax. This query language makes it possible to construct a dictionary of anatomical definitions that describe white matter tracts. The definitions include adjacent gray and white matter regions, and rules for spatial relations. This novel method makes it possible to automatically label white matter anatomy across subjects. After describing this method, we provide an example of its implementation where we encode anatomical knowledge in human white matter for ten association and 15 projection tracts per hemisphere, along with seven commissural tracts. Importantly, this novel method is comparable in accuracy to manual labeling. Finally, we present results applying this method to create a white matter atlas from 77 healthy subjects, and we use this atlas in a small proof-of-concept study to detect changes in association tracts that characterize schizophrenia.

摘要

我们开发了一种新颖的方法来描述人类白质解剖结构,该方法直观且易于使用,能够从扩散磁共振成像(MRI)数据中自动提取白质束。此外,我们的方法简化了对大型扩散MRI数据库中白质束的量化和统计分析。这项工作反映了基于神经解剖学家的专业知识对人类大脑主要白质纤维束进行的细致句法定义。该框架基于一种具有近似英语文本语法的新颖查询语言。这种查询语言使得构建描述白质束的解剖学定义词典成为可能。这些定义包括相邻的灰质和白质区域以及空间关系规则。这种新颖的方法使得能够在不同个体间自动标记白质解剖结构。在描述了这种方法之后,我们提供了一个其实现的示例,其中我们对每个半球的十条联合束和十五条投射束以及七条连合束的人类白质解剖学知识进行编码。重要的是,这种新颖的方法在准确性上与手动标记相当。最后,我们展示了将此方法应用于从77名健康受试者创建白质图谱的结果,并在一项小型概念验证研究中使用该图谱来检测表征精神分裂症的联合束变化。

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