脑后皮层和脑顶皮层参与皮层网络,用于对物体形状和方向的横向歧视
B R Baltaretu1,2,3, W Dale Stevens4,5, E Freud4,5
1Centre for Vision Research and Vision: Science to Applications (VISTA) Program, York University, Toronto, ON, M3J 1P3, Canada. b.baltaretu@gmail.com.
Scientific reports
|July 19, 2023
概括
神经机制在眼睛运动 (摇摆) 期间保持连续的感知. 骨和上边 (SMG) 参与了跨的对象感知,在更新空间和身份信息方面发挥着不同的作用.
科学领域:
- 神经科学是一个神经科学.
- 认知神经科学 认知神经科学
- 视觉感知 视觉感知 视觉感知
背景情况:
- 跳动,快速的眼动,破坏视力,需要神经系统来持续感知物体.
- 神经成像表明,尾 () 和顶 (超边缘圈 - - SMG) 皮层在跨分层感知中具有互补的作用.
- Cuneus与空间频率有关,而SMG与对象方向变化有关.
研究的目的:
- 调查假设cuneus和SMG被招募用于同时监测跨saccades的对象身份和方向.
- 检查骨和SMG在跨的视觉感知中的作用.
主要方法:
- 合并了两个神经成像协议与21名参与者.
- 参与者观看一个二维物体,在固定或摇摆后,判断其形状或方向的变化.
- 对cuneus和SMG进行了双边兴趣区域分析.
主要成果:
- 库尼乌斯显示了与萨卡德和特征变化 (方向与形状) 相关的调制.
- 右上边缘 (SMG) 呈现出萨卡德特征相互作用.
- 状腺活动与其他视觉和状腺相关的皮质区域相关,表明一个功能网络.
结论:
- 证实了脑后皮层和脑顶皮层在跨眼视觉中的参与.
- 支持这些区域在更新空间属性与对象身份方面发挥互补作用.
- 建议在saccades中进行特征歧视的功能网络.
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