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小鼠初级视觉皮层对冲突双眼刺激的反应。

Responses to conflicting binocular stimuli in mouse primary visual cortex.

作者信息

Montgomery Daniel P, Bowen Daniel A, Wu Jin, Bear Mark F, Gaier Eric D

出版信息

bioRxiv. 2025 Sep 1:2024.12.31.630912. doi: 10.1101/2024.12.31.630912.

Abstract

UNLABELLED

Binocular vision requires that the brain integrate input from both eyes to form a unified percept. Small interocular differences support depth perception (stereopsis), while larger disparities can cause diplopia or binocular rivalry. The neural mechanisms by which early visual circuits process concordant versus conflicting binocular signals remain incompletely understood, particularly in the case of large disparities. Here, we used visually evoked potential (VEP) recordings, unit recordings, and 2-photon calcium imaging in the binocular region of mouse primary visual cortex (bV1) to examine how distinct forms of binocular disparity engage local circuits. Using a dichoptic display, we found that interocular phase disparities reduced VEP magnitude through decreased neuronal firing early in the response (40-80 ms after stimulus onset). In contrast, orientation disparities also decreased VEP magnitude, but via increased firing later in the response (100-200 ms). This late activity was enhanced in both regular-spiking (putative excitatory) and fast-spiking (putative parvalbumin-positive inhibitory) units. In contrast, calcium imaging revealed that somatostatin-positive interneurons were suppressed during orientation conflict. These findings suggest that phase differences suppress bV1 responses via feedforward mechanisms, while orientation disparities prolong activity through disinhibition mediated by somatostatin-positive interneurons. Our results identify distinct circuit pathways recruited by different forms of binocular conflict, clarify how early visual cortex contributes to binocular integration, and provide a foundation for investigating perceptual suppression and rivalry.

IMPACT STATEMENT

Distinct forms of binocular conflict engage separate circuit mechanisms in mouse primary visual cortex, revealing how interocular disparities shape population activity through feedforward and disinhibitory processes.

摘要

未标注

双眼视觉要求大脑整合来自双眼的输入以形成统一的感知。较小的眼间差异有助于深度感知(立体视觉),而较大的差异则可能导致复视或双眼竞争。早期视觉回路处理一致与冲突的双眼信号的神经机制仍未完全了解,尤其是在差异较大的情况下。在这里,我们使用视觉诱发电位(VEP)记录、单位记录和双光子钙成像技术,在小鼠初级视觉皮层(bV1)的双眼区域研究不同形式的双眼视差如何影响局部回路。使用双眼分视显示,我们发现眼间相位差异通过在反应早期(刺激开始后40 - 80毫秒)减少神经元放电来降低VEP幅度。相比之下,方向差异也会降低VEP幅度,但通过在反应后期(100 - 200毫秒)增加放电来实现。这种后期活动在规则放电(假定为兴奋性)和快速放电(假定为小白蛋白阳性抑制性)单位中均增强。相比之下,钙成像显示生长抑素阳性中间神经元在方向冲突期间受到抑制。这些发现表明,相位差异通过前馈机制抑制bV1反应,而方向差异则通过生长抑素阳性中间神经元介导的去抑制作用延长活动。我们的结果确定了不同形式的双眼冲突所招募的不同回路途径,阐明了早期视觉皮层如何促进双眼整合,并为研究感知抑制和竞争提供了基础。

影响声明

不同形式的双眼冲突在小鼠初级视觉皮层中采用不同的回路机制,揭示了眼间差异如何通过前馈和去抑制过程塑造群体活动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/14e3/12499175/2a4190c62ad3/nihpp-2024.12.31.630912v2-f0001.jpg

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