Signaling of trans-saccadic prediction error by foveal neurons of the monkey superior colliculus

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Foveal superior colliculus neurons exhibit elevated post-saccadic visual responses when intra-saccadic target features change, indicating a potential prediction error signal for perceptual stability.

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The paper examined whether perceptual stability across eye saccades is supported by prediction-error signaling in post-saccadic visual responses of foveal neurons in the monkey superior colliculus. Using recordings from neurons with defined response fields, the authors delivered post-saccadic foveal visual images that overlapped the neurons’ receptive fields, while rapidly altering target features intra-saccadically without requiring the neurons to sample pre-saccadic extrafoveal features. They found that post-saccadic visual reafferent responses were elevated when intra-saccadic feature changes created discrepancies, and this elevation depended on the presence of saccades and scaled with the size of the introduced discrepancy. The study caveats that the inference about a perceptual stability mechanism is based on neural response patterns rather than direct perceptual measurements. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Across saccades, neurons in retinotopically organized visual representations experience drastically different images, but visual percepts remain stable. Here we investigated whether such stability can be mediated, in part, via prediction-error signaling by neurons processing post-saccadic visual images. We specifically recorded from foveal superior colliculus (SC) neurons when a visual image only overlapped with their response fields (RF’s) after foveating saccades but not pre-saccadically. When we rapidly changed the target features intra-saccadically, the foveal neurons’ post-saccadic visual reafferent responses were elevated, even though the neurons did not directly sample the pre-saccadic extrafoveal target features. This effect did not occur in the absence of saccades, and it also scaled with the extent of the introduced intra-saccadic image feature discrepancies. These results suggest that foveal SC neurons may signal a trans-saccadic prediction error when the foveated image stimulating them is inconsistent with that expected from pre-saccadic extrafoveal representations, a potential perceptual stability mechanism.
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Abstract Across saccades, neurons in retinotopically organized visual representations experience drastically different images, but visual percepts remain stable. Here we investigated whether such stability can be mediated, in part, via prediction-error signaling by neurons processing post-saccadic visual images. We specifically recorded from foveal superior colliculus (SC) neurons when a visual image only overlapped with their response fields (RF’s) after foveating saccades but not pre-saccadically. When we rapidly changed the target features intra-saccadically, the foveal neurons’ post-saccadic visual reafferent responses were elevated, even though the neurons did not directly sample the pre-saccadic extrafoveal target features. This effect did not occur in the absence of saccades, and it also scaled with the extent of the introduced intra-saccadic image feature discrepancies. These results suggest that foveal SC neurons may signal a trans-saccadic prediction error when the foveated image stimulating them is inconsistent with that expected from pre-saccadic extrafoveal representations, a potential perceptual stability mechanism. Competing Interest Statement The authors have declared no competing interest. Footnotes - Added neural analyses of the population temporal dynamics - Added behavioral analyses on eye speeds, post-saccadic drifts, and catch-up saccades

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