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Optical and neural anisotropy in peripheral vision

DOI:10.1167/16.5.1 期刊:Journal of Vision 出版年份:2016 更新时间:2025-09-11 14:15:04
摘要: Optical blur in the peripheral retina is known to be highly anisotropic due to nonrotationally symmetric wavefront aberrations such as astigmatism and coma. At the neural level, the visual system exhibits anisotropies in orientation sensitivity across the visual field. In the fovea, the visual system shows higher sensitivity for cardinal over diagonal orientations, which is referred to as the oblique effect. However, in the peripheral retina, the neural visual system becomes more sensitive to radially-oriented signals, a phenomenon known as the meridional effect. Here, we examined the relative contributions of optics and neural processing to the meridional effect in 10 participants at 08, 108, and 208 in the temporal retina. Optical anisotropy was quantified by measuring the eye’s habitual wavefront aberrations. Alternatively, neural anisotropy was evaluated by measuring contrast sensitivity (at 2 and 4 cyc/deg) while correcting the eye’s aberrations with an adaptive optics vision simulator, thus bypassing any optical factors. As eccentricity increased, optical and neural anisotropy increased in magnitude. The average ratio of horizontal to vertical optical MTF (at 2 and 4 cyc/deg) at 08, 108, and 208 was 0.96 6 0.14, 1.41 6 0.54 and 2.15 6 1.38, respectively. Similarly, the average ratio of horizontal to vertical contrast sensitivity with full optical correction at 08, 108, and 208 was 0.99 6 0.15, 1.28 6 0.28 and 1.75 6 0.80, respectively. These results indicate that the neural system’s orientation sensitivity coincides with habitual blur orientation. These findings support the neural origin of the meridional effect and raise important questions regarding the role of peripheral anisotropic optical quality in developing the meridional effect and emmetropization.
作者: Len Zheleznyak,Antoine Barbot,Atanu Ghosh,Geunyoung Yoon
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To examine the relative contributions of optics and neural processing to the meridional effect in peripheral vision.

The study found that as retinal eccentricity increased, the anisotropy in both optical quality and neural contrast sensitivity increased in magnitude. The orientation-specific sensitivity of the peripheral retina coincided with higher optical contrast orientations, suggesting a coupling between optical information at the retina and neural processing resources.

The study was limited to the temporal retina along the horizontal visual field, and the stimulus size was restricted by the field of view of the AOVS. The lack of cortical magnification correction may have influenced visual performance in the periphery.

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