一次性环境地图可以在新环境中灵活导航
John H Wen1, Ben Sorscher2, Emily A Aery Jones1
1Department of Neurobiology, Stanford University School of Medicine, Stanford, CA, USA.
Nature
|October 9, 2024
概括
大脑网格细胞使用固定地标输入快速创建稳定的空间地图. 下游可塑性允许行为适应环境变化,平衡导航速度和准确性.
科学领域:
- 神经科学
- 计算神经科学
- 动物的行为
背景情况:
- 哺乳动物的导航依赖于介质内皮层的网格细胞来形成神经空间地图.
- 在行为相关的时间尺度上,电网电池的快速适应环境变化并未得到充分理解.
研究的目的:
- 调查电网电池发射模式如何实时适应新的或改变的环境特征.
- 了解视觉地标在稳定电网细胞网络活动中的作用.
- 探索行为适应是如何发生的,
主要方法:
- 记录来自超过15,000个鼠标网络细胞的神经活动,
- 操纵环境特征和实时观察电网电池发射的变化.
- 使用计算模型预测网格细胞网络响应.
- 采用一个中部内皮层依赖的行为任务.
主要成果:
- 视觉地标为电网电池网络提供固定的输入,使单次曝光后能够保持稳定的发射模式.
- 标志上的变化会导致电网电池发射模式的可预测扭曲.
- 行为适应地标变化通过下游可塑性发生,独立于直接的网格细胞地图扭曲.
结论:
- 通过将固定地标输入与下游的突触可塑性相结合,
- 标志和网格单元之间的固定连接可以快速生成新环境的空间地图.
- 下游地区的可塑性可以改进空间地图以准确地呈现环境,展示网络连接的更广泛的神经原则.
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