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猕猴纹状皮层和视野中眼优势条纹的完整模式。

The complete pattern of ocular dominance stripes in the striate cortex and visual field of the macaque monkey.

作者信息

LeVay S, Connolly M, Houde J, Van Essen D C

出版信息

J Neurosci. 1985 Feb;5(2):486-501. doi: 10.1523/JNEUROSCI.05-02-00486.1985.

Abstract

Ocular dominance stripes in the striate cortex of a macaque monkey were labeled by autoradiography after injection of [3H]proline into one eye. The stripes were reconstructed on a representation of the flattened cortical surface by two independent techniques: one used computer graphics, and the other was the manual unfolding procedure of Van Essen and Maunsell (VanEssen, D. C., and J. H. R. Maunsell (1980) J. Comp. Neurol. 191: 255-281). The two reconstructions differed in many details of the pattern but were in agreement on its general features. As described in earlier studies, the stripes formed a system of parallel bands, with numerous branches and islands. They were roughly orthogonal to the V1/V2 border throughout the binocular segment of the cortex. In the lateral part of the operculum, where the fovea is represented, the stripes were less orderly than elsewhere. In the calcarine fissure the stripes ran directly across the striate cortex from its dorsal to its ventral margin. In the far periphery the stripes for the ipsilateral eye became progressively narrower, eventually fragmenting into small islands at the edge of the monocular segment. The overall periodicity (width of a left- plus right-eye pair of stripes) averaged 0.88 mm but decreased by a factor of about 2 from center to periphery. This decrease was not accounted for solely by shrinkage of the ipsilateral eye stripes. The flattened cortical reconstruction was transformed back into visual field coordinates, using information about visual field topography obtained from the detailed mapping study of Van Essen et al. (Van Essen, D.C., W.T. Newsome, and J.H.R. Maunsell (1984) Vision Res. 24: 429-448), as well as from more limited mapping done in the same monkey that was used for the reconstruction. In the transformed map, the stripes increased in width about 40-fold from the fovea to the far periphery. As deduced previously (LeVay, S., D. H. Hubel, and T. N. Wiesel (1975) J. Comp. Neurol. 159: 559-576; Hubel, D. H., and D. C., Freeman (1977) Brain Res. 122: 336-343), there were portions of the map in which the stripes followed curves approximating isoeccentricity lines, but this relationship was not very exact or consistent. The pattern of stripes appears to be more meaningfully related to the geometry of the cortical surface. This has significant implications for understanding the developmental mechanisms involved in stripe formation.

摘要

将[3H]脯氨酸注入猕猴的一只眼睛后,通过放射自显影标记了其纹状皮层中的眼优势条纹。通过两种独立技术在扁平皮层表面的示意图上重建这些条纹:一种使用计算机图形学,另一种是Van Essen和Maunsell的手动展开程序(VanEssen, D. C., and J. H. R. Maunsell (1980) J. Comp. Neurol. 191: 255 - 281)。两种重建在图案的许多细节上有所不同,但在其总体特征上是一致的。如早期研究中所述,这些条纹形成了一个平行带系统,有许多分支和岛状结构。在皮层的双眼段,它们大致与V1/V2边界正交。在代表中央凹的脑盖外侧部分,条纹不如其他地方有序。在距状裂中,条纹从纹状皮层的背侧边缘直接延伸至腹侧边缘。在最外周,同侧眼的条纹逐渐变窄,最终在单眼段边缘分裂成小岛状。总体周期性(一对左眼和右眼条纹的宽度)平均为0.88毫米,但从中心到外周减少了约2倍。这种减少并非仅由同侧眼条纹的收缩所致。利用从Van Essen等人的详细映射研究(Van Essen, D.C., W.T. Newsome, and J.H.R. Maunsell (1984) Vision Res. 24: 429 - 448)以及在用于重建的同一只猴子中进行的更有限映射中获得的关于视野拓扑结构的信息,将扁平皮层重建转换回视野坐标。在转换后的地图中,条纹从中央凹到最外周宽度增加了约40倍。如先前推断的那样(LeVay, S., D. H. Hubel, and T. N. Wiesel (1975) J. Comp. Neurol. 159: 559 - 576; Hubel, D. H., and D. C., Freeman (1977) Brain Res. 122: 336 - 343),地图的某些部分中条纹遵循近似等偏心率线的曲线,但这种关系不是非常精确或一致。条纹图案似乎与皮层表面的几何形状更有意义地相关。这对于理解条纹形成所涉及的发育机制具有重要意义。

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