Yildirim Murat, Hu Ming, Le Nhat M, Sugihara Hiroki, So Peter T C, Sur Mriganka
Picower Institute for Learning and Memory, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Biomed Opt Express. 2020 Sep 16;11(10):5650-5673. doi: 10.1364/BOE.396962. eCollection 2020 Oct 1.
The structure of brain regions is assumed to correlate with their function, but there are very few instances in which the relationship has been demonstrated in the live brain. This is due to the difficulty of simultaneously measuring functional and structural properties of brain areas, particularly at cellular resolution. Here, we performed label-free, third-harmonic generation (THG) microscopy to obtain a key structural signature of cortical areas, their effective attenuation lengths (EAL), in the vertical columns of functionally defined primary visual cortex and five adjacent visual areas in awake mice. EALs measured by THG microscopy in the cortex and white matter showed remarkable correspondence with the functional retinotopic sign map of each area. Structural features such as cytoarchitecture, myeloarchitecture and blood vessel architecture were correlated with areal EAL values, suggesting that EAL is a function of these structural features as an optical property of these areas. These results demonstrate for the first time a strong relationship between structural substrates of visual cortical areas and their functional representation maps in vivo. This study may also help in understanding the coupling between structure and function in other animal models as well as in humans.
大脑区域的结构被认为与其功能相关,但在活体大脑中证明这种关系的情况非常少见。这是因为难以同时测量脑区的功能和结构特性,尤其是在细胞分辨率下。在这里,我们进行了无标记的三次谐波产生(THG)显微镜检查,以获取功能定义的初级视觉皮层垂直柱以及清醒小鼠五个相邻视觉区域中皮质区域的关键结构特征——它们的有效衰减长度(EAL)。通过THG显微镜在皮质和白质中测量的EAL与每个区域的功能视网膜拓扑符号图显示出显著的对应关系。细胞结构、髓鞘结构和血管结构等结构特征与区域EAL值相关,这表明EAL是这些结构特征作为这些区域光学特性的一种函数。这些结果首次证明了视觉皮质区域的结构基础与其在体内的功能表征图之间存在密切关系。这项研究也可能有助于理解其他动物模型以及人类中结构与功能之间的耦合。