Overlapping functional micro-organization of orientation and spatial frequency maps in the visual cortex.

IF 1.7 4区 医学 Q4 NEUROSCIENCES
Neuroreport Pub Date : 2025-10-01 Epub Date: 2025-08-12 DOI:10.1097/WNR.0000000000002212
Samantha D Vilarino, Ekta Jain, Oliver Flouty, Stéphane Molotchnikoff, Vishal Bharmauria
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引用次数: 0

Abstract

Objective: The visual cortex plays a crucial role in integrating multiple stimulus features, such as orientation tuning and spatial frequency tuning , to form coherent perceptual representations of the visual environment. Although previous research has hinted at the presence of overlapping maps for orientation and spatial frequency tuning in the visual cortex, clear evidence demonstrating how these features are jointly organized functionally is scarce.

Methods: To address this, we performed multiunit electrophysiological recordings in the primary visual cortex (V1) of anesthetized cats. We presented visual stimuli consisting of drifting sine-wave gratings under two experimental conditions: varying the orientation while keeping spatial frequency constant and varying spatial frequency while maintaining fixed orientations at 0° or 90°. Neuronal responses were analyzed by fitting tuning curves to quantify preferred orientations and spatial frequencies. Functional connectivity between neurons was then assessed using cross-correlogram analysis.

Results: Our results showed that neurons with similar orientation and spatial frequency tuning, exhibited significantly stronger connectivity at 0° orientation, whereas this effect was not observed at 90°. These results indicate that the organization of neuronal networks in V1 is stimulus-dependent and that overlapping ensembles encode these features in a coordinated manner. These results are important for understanding how complex features are integrated within the visual system, and more broadly, how the brain processes and combines information.

Conclusion: Such feature-based connectivity likely enhances the visual cortex's ability to efficiently process complex stimuli, supporting the idea that perceptual integration relies on the dynamic interplay of neurons sharing similar tuning properties.

视觉皮层中定向和空间频率图的重叠功能微观组织。
目的:视觉皮层在整合定向调谐和空间频率调谐等多种刺激特征以形成视觉环境的连贯感知表征方面发挥着至关重要的作用。虽然先前的研究暗示了视觉皮层中存在方向和空间频率调节的重叠地图,但明确的证据表明这些特征是如何在功能上联合组织的却很少。方法:为了解决这个问题,我们在麻醉猫的初级视觉皮层(V1)进行了多单元电生理记录。我们在两种实验条件下提供了由漂移正弦波光栅组成的视觉刺激:在保持空间频率恒定的情况下改变方向和在保持0°或90°固定方向的情况下改变空间频率。通过拟合调谐曲线来分析神经元的反应,以量化首选方向和空间频率。然后使用交叉相关图分析评估神经元之间的功能连通性。结果:我们的研究结果表明,具有相似取向和空间频率调谐的神经元在0°取向时表现出明显更强的连通性,而在90°取向时则没有这种效应。这些结果表明V1神经元网络的组织是刺激依赖的,重叠的集合以协调的方式编码这些特征。这些结果对于理解复杂的特征是如何在视觉系统中整合的,以及更广泛地说,大脑是如何处理和组合信息的,都是很重要的。结论:这种基于特征的连接可能增强了视觉皮层有效处理复杂刺激的能力,支持了感知整合依赖于共享相似调谐特性的神经元的动态相互作用的观点。
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来源期刊
Neuroreport
Neuroreport 医学-神经科学
CiteScore
3.20
自引率
0.00%
发文量
150
审稿时长
1 months
期刊介绍: NeuroReport is a channel for rapid communication of new findings in neuroscience. It is a forum for the publication of short but complete reports of important studies that require very fast publication. Papers are accepted on the basis of the novelty of their finding, on their significance for neuroscience and on a clear need for rapid publication. Preliminary communications are not suitable for the Journal. Submitted articles undergo a preliminary review by the editor. Some articles may be returned to authors without further consideration. Those being considered for publication will undergo further assessment and peer-review by the editors and those invited to do so from a reviewer pool. The core interest of the Journal is on studies that cast light on how the brain (and the whole of the nervous system) works. We aim to give authors a decision on their submission within 2-5 weeks, and all accepted articles appear in the next issue to press.
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