控制小脑中的可塑性储备的形态和功能原理:皮层-深层大脑核循环模型
Hiroshi Mitoma1, Shinji Kakei2, Hirokazu Tanaka3
1Department of Medical Education, Tokyo Medical University, Tokyo 160-0023, Japan.
Biology
|November 24, 2023
概括
小脑储备利用突触可塑性在损伤后的功能恢复. 这涉及小脑皮层的预测编码和小脑核的调整,以获得运动精度.
科学领域:
- 神经科学是一个神经科学.
- 大脑小叶的功能
- 发动机控制器的控制器
背景情况:
- 小脑储备补偿损伤,通过突触可塑性恢复丢失的功能.
- 小脑核的完整性对于功能补偿和恢复至关重要.
- 小脑的内部前向模型预测运动精度,促进学习和补偿.
研究的目的:
- 根据临床和生理学数据提出小脑储备模型.
- 阐明两种基本机制,是小脑储备的基础.
- 将小脑可塑性与功能补偿和运动控制联系起来.
主要方法:
- 关于小脑功能的临床和生理研究的综述和综合.
- 整合卡尔曼波器框架来解释小脑处理.
- 一个皮层深度小脑核循环模型的定理.
主要成果:
- 大脑小区储备包括两个机制:大脑皮层的预测更新和核中的预测调整.
- 小脑皮层病变会影响预测行为;核病变会影响神经元的指令调整.
- 在小脑皮层和细胞核中分布的可塑性使小脑储备功能成为可能.
结论:
- 提出的皮层深度小脑核循环模型解释了小脑储备.
- 两个互补的功能 - - 预测和调整 - - 是小脑储备的基础.
- 小脑中的突触可塑性是功能补偿和运动控制的神经元基础.
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