Savier Elise, Eglen Stephen J, Bathélémy Amélie, Perraut Martine, Pfrieger Frank W, Lemke Greg, Reber Michael
CNRS UPR3212 - Institute of Cellular and Integrative Neuroscience, University of Strasbourg, Strasbourg, France.
Department of Applied Mathematics and Theoretical Physics, Cambridge Computational Biology Institute, University of Cambridge, Cambridge, United Kingdom.
Elife. 2017 Mar 14;6:e20470. doi: 10.7554/eLife.20470.
Sensory processing requires proper alignment of neural maps throughout the brain. In the superficial layers of the superior colliculus of the midbrain, converging projections from retinal ganglion cells and neurons in visual cortex must be aligned to form a visuotopic map, but the basic mechanisms mediating this alignment remain elusive. In a new mouse model, ectopic expression of ephrin-A3 () in a subset of retinal ganglion cells, quantitatively altering the retinal EFNAs gradient, disrupts cortico-collicular map alignment onto the retino-collicular map, creating a visuotopic mismatch. Genetic inactivation of ectopic EFNA3 restores a wild-type cortico-collicular map. Theoretical analyses using a new mapping algorithm model both map formation and alignment, and recapitulate our experimental observations. The algorithm is based on an initial sensory map, the retino-collicular map, which carries intrinsic topographic information, the retinal EFNAs, to the superior colliculus. These EFNAs subsequently topographically align ingrowing visual cortical axons to the retino-collicular map.
感觉处理需要整个大脑中神经图谱的正确对齐。在中脑上丘的浅层,视网膜神经节细胞和视觉皮层神经元的汇聚投射必须对齐以形成视觉拓扑图,但介导这种对齐的基本机制仍然难以捉摸。在一种新的小鼠模型中,视网膜神经节细胞亚群中ephrin - A3()的异位表达定量改变了视网膜EFNAs梯度,破坏了皮质 - 上丘图谱与视网膜 - 上丘图谱的对齐,造成视觉拓扑不匹配。异位EFNA3的基因失活可恢复野生型皮质 - 上丘图谱。使用一种新的映射算法进行的理论分析对图谱形成和对齐进行了建模,并概括了我们的实验观察结果。该算法基于初始感觉图谱,即视网膜 - 上丘图谱,它将内在地形信息——视网膜EFNAs携带至上丘。这些EFNAs随后在地形上使生长中的视觉皮层轴突与视网膜 - 上丘图谱对齐。