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Standard Anatomical and Visual Space for the Mouse Retina: Computational Reconstruction and Transformation of Flattened Retinae with the Retistruct Package

机译:小鼠视网膜的标准解剖和视觉空间:扁平化视网膜与网状包装的计算重建和转化

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摘要

The concept of topographic mapping is central to the understanding of the visual system at many levels, from the developmental to the computational. It is important to be able to relate different coordinate systems, e.g. maps of the visual field and maps of the retina. Retinal maps are frequently based on flat-mount preparations. These use dissection and relaxing cuts to render the quasi-spherical retina into a 2D preparation. The variable nature of relaxing cuts and associated tears limits quantitative cross-animal comparisons. We present an algorithm, “Retistruct,” that reconstructs retinal flat-mounts by mapping them into a standard, spherical retinal space. This is achieved by: stitching the marked-up cuts of the flat-mount outline; dividing the stitched outline into a mesh whose vertices then are mapped onto a curtailed sphere; and finally moving the vertices so as to minimise a physically-inspired deformation energy function. Our validation studies indicate that the algorithm can estimate the position of a point on the intact adult retina to within 8° of arc (3.6% of nasotemporal axis). The coordinates in reconstructed retinae can be transformed to visuotopic coordinates. Retistruct is used to investigate the organisation of the adult mouse visual system. We orient the retina relative to the nictitating membrane and compare this to eye muscle insertions. To align the retinotopic and visuotopic coordinate systems in the mouse, we utilised the geometry of binocular vision. In standard retinal space, the composite decussation line for the uncrossed retinal projection is located 64° away from the retinal pole. Projecting anatomically defined uncrossed retinal projections into visual space gives binocular congruence if the optical axis of the mouse eye is oriented at 64° azimuth and 22° elevation, in concordance with previous results. Moreover, using these coordinates, the dorsoventral boundary for S-opsin expressing cones closely matches the horizontal meridian.
机译:地形图的概念对于从开发到计算的各个层次的视觉系统理解都是至关重要的。重要的是能够关联不同的坐标系,例如视野图和视网膜图。视网膜图通常基于平装准备。这些方法使用解剖和松弛切口将准球形视网膜渲染为2D准备。松弛的切口和相关的泪液的可变性质限制了定量的跨动物比较。我们提出了一种名为“ Retistruct”的算法,该算法通过将视网膜平面固定件映射到标准的球形视网膜空间中来对其进行重建。这可以通过以下方式实现:缝合平整轮廓的标记切口;将缝合的轮廓划分为网格,然后将其顶点映射到缩小的球体上;最后移动顶点,以最大程度地减少物理启发的变形能量函数。我们的验证研究表明,该算法可以估计完整成年视网膜上某个点的位置,该位置在弧线的8°以内(鼻颞轴的3.6%)。重建的视网膜中的坐标可以转换为视觉坐标。 Retistruct用于调查成年小鼠视觉系统的组织。我们将视网膜相对于膜定位,并将其与眼肌插入进行比较。为了对齐鼠标中的视网膜和视觉定位坐标系,我们利用了双目视觉的几何形状。在标准视网膜空间中,用于未交叉的视网膜投影的复合讨论线位于距视网膜极64°的位置。与先前的结果一致,如果将小鼠眼睛的光轴定向在64°方位角和22°仰角上,则将解剖学上定义的未交叉的视网膜投影投影到视觉空间中将产生双眼全等。此外,使用这些坐标,表达S-视蛋白的视锥细胞的背腹边界与水平子午线紧密匹配。

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