逆行光遗传学揭示了非人类灵长类动物的皮质结构通路内的功能融合
Xuefei Yu1, Atul Gopal1, Ken-Ichi Inoue2,3
1Laboratory of Sensorimotor Research, National Eye Institute, National Institutes of Health, Bethesda, Maryland 20892, United States of America.
bioRxiv : the preprint server for biology
|August 6, 2025
概括
研究人员在身上使用逆向光遗传学来研究前视野 (FEF) 输出到上角眼球 (SC). 研究结果显示,FEF-SC通路携带混合的感觉运动信号,对于指导行为和行动至关重要.
科学领域:
- 神经科学是一个神经科学.
- 系统神经科学 系统神经科学
- 灵长类动物研究研究
背景情况:
- 了解大脑皮层-皮下沟通是解释行为的关键.
- 对前额叶皮层输出到运动区域的性质 (运动指令与感觉运动信号) 进行了辩论.
- 反向光遗传学对于电路查询具有强大作用,但在灵长类动物中未得到充分利用.
研究的目的:
- 在清醒的中,研究前视野 (FEF) 到上眼 (SC) 投射的功能组织.
- 为了确定FEF输出到SC是否主要是运动主导或代表感觉-运动的融合.
- 建立逆行光遗传学作为灵长类电路分析的工具.
主要方法:
- 逆向光遗传学在清醒的身上的应用.
- 在FEF-SC路径的光学激活.
- 对投射到SC的FEF神经元进行光遗传标记.
主要成果:
- FEF-SC路径的直接光学激活导致了对侧冲击和调制的反应时间,证实了它在冲击生成中的因果作用.
- 投射到SC的FEF神经元包括视觉,视觉运动和运动类型的异质混合物.
- 这种多样化的FEF输出主要针对SC内的运动相关神经元.
结论:
- 这些发现支持FEF-SC通信的视觉运动融合模型.
- 这项研究解决了关于FEF输出到皮层下运动区域的成分的问题.
- 逆行光遗传学被验证为剖析灵长类的投影定义电路和探测知觉-动作路径的方法.
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