Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, USA.
Interactive Commons, Case Western Reserve University, Cleveland, OH, USA.
Neuron. 2019 Dec 18;104(6):1056-1064.e3. doi: 10.1016/j.neuron.2019.09.030. Epub 2019 Nov 7.
Three-dimensional documentation of the axonal pathways connecting gray matter components of the human brain has wide-ranging scientific and clinical applications. Recent attempts to map human structural connectomes have concentrated on using tractography results derived from diffusion-weighted imaging data, but tractography is an indirect method with numerous limitations. Advances in holographic visualization platforms provide a new medium to integrate anatomical data, as well as a novel working environment for collaborative interaction between neuroanatomists and brain-imaging scientists. Therefore, we developed the first holographic interface for building axonal pathways, populated it with human histological and structural MRI data, and assembled world expert neuroanatomists to interactively define axonal trajectories of the cortical, basal ganglia, and cerebellar systems. This blending of advanced visualization hardware, software development, and neuroanatomy data enabled the translation of decades of amassed knowledge into a human axonal pathway atlas that can be applied to educational, scientific, or clinical investigations.
三维记录连接人脑灰质成分的轴突通路在科学和临床领域具有广泛的应用。最近,人们试图绘制人类结构连接组图谱,主要集中在使用基于扩散加权成像数据的轨迹追踪结果,但轨迹追踪是一种具有许多局限性的间接方法。全息可视化平台的进步为整合解剖数据提供了新的媒介,也为神经解剖学家和脑成像科学家之间的协作交互提供了新的工作环境。因此,我们开发了第一个用于构建轴突通路的全息接口,并用人类组织学和结构 MRI 数据对其进行填充,并召集世界专家神经解剖学家来交互定义皮质、基底神经节和小脑系统的轴突轨迹。这种先进的可视化硬件、软件开发和神经解剖学数据的融合,将数十年积累的知识转化为人类轴突通路图谱,可应用于教育、科学或临床研究。