van den Heuvel Martijn P, Scholtens Lianne H, de Reus Marcel A
Department of Psychiatry, Brain Center Rudolf Magnus, University Medical Center Utrecht, Heidelberglaan 100, Room: A01.126, 3508 GA, PO Box 85500, Utrecht, The Netherlands.
Brain Struct Funct. 2016 Apr;221(3):1719-36. doi: 10.1007/s00429-015-0999-6. Epub 2015 Feb 20.
The mammalian brain is a complex network of anatomically interconnected regions. Animal studies allow for an invasive measurement of the connections of these networks at the macroscale level by means of neuronal tracing of axonal projections, providing a unique opportunity for the formation of detailed 'connectome maps'. Here we analyzed the macroscale connectome of the rat brain, including detailed information on the macroscale interregional pathways between 67 cortical and subcortical regions as provided by the high-quality, open-access BAMS-II database on rat brain anatomical projections, focusing in particular on the non-uniform distribution of projection strength across pathways. First, network analysis confirmed a small-world, modular and rich club organization of the rat connectome; findings in clear support of previous studies on connectome organization in other mammalian species. More importantly, analyzing network properties of different connection weight classes, we extend previous observations by showing that pathways with different topological roles have significantly different levels of connectivity strength. Among other findings, intramodular connections are shown to display a higher connectivity strength than intermodular connections and hub-to-hub rich club connections are shown to include significantly stronger pathways than connections spanning between peripheral nodes. Furthermore, we show evidence indicating that edges of different weight classes display different topological structures, potentially suggesting varying roles and origins of pathways in the mammalian brain network.
哺乳动物的大脑是一个由解剖学上相互连接的区域构成的复杂网络。动物研究能够通过轴突投射的神经元追踪,在宏观层面上对这些网络的连接进行侵入性测量,为形成详细的“连接组图谱”提供了独特的机会。在这里,我们分析了大鼠大脑的宏观连接组,包括由高质量、开放获取的大鼠脑解剖投射BAMS-II数据库提供的67个皮质和皮质下区域之间宏观区域间通路的详细信息,特别关注投射强度在各通路中的非均匀分布。首先,网络分析证实了大鼠连接组具有小世界、模块化和富俱乐部组织;这些发现明确支持了先前关于其他哺乳动物物种连接组组织的研究。更重要的是,通过分析不同连接权重类别的网络属性,我们扩展了先前的观察结果,表明具有不同拓扑角色的通路具有显著不同的连接强度水平。在其他发现中,模块内连接显示出比模块间连接更高的连接强度,并且富俱乐部的枢纽到枢纽连接显示出比跨越外围节点之间的连接包含明显更强的通路。此外,我们展示的证据表明不同权重类别的边显示出不同的拓扑结构,这可能暗示了哺乳动物脑网络中通路的不同作用和起源。