丘脑底核
脑深部刺激
神经科学
基底神经节
苍白球
足前核
丘脑
病态的
局部场电位
抑制性突触后电位
疾病
刺激
医学
直接运动途径
帕金森病
反馈控制
电动机控制
运动症状
核心
肌张力障碍
计算机科学
β节律
心理学
丘脑切开术
抑制性控制
间接运动途径
光遗传学
作者
Ziyang Wang,Suyuan Huang,Yuan Chai,Jingjing Yang,Rui Zhu
出处
期刊:AIP Advances
[American Institute of Physics]
日期:2026-05-01
卷期号:16 (5)
摘要
The motor symptoms of Parkinson’s disease are closely associated with pathological neural oscillations within the cortico-basal ganglia circuit. Although deep brain stimulation (DBS) can alleviate symptoms by suppressing abnormal oscillatory activity, the efficacy of current treatment regimens remains suboptimal. Conventional understanding posited that the basal ganglia influence the cortex primarily via thalamic relay. However, recent studies have identified a direct inhibitory projection from the basal ganglia to the cortex, the subthalamic nucleus (STN)-cortical pathway, offering new possibilities for optimizing DBS strategies. Building upon the classic pedunculopontine nucleus–basal ganglia (PPN-BG) closed-loop model, this study developed a computational neural mass model of the cortex-basal ganglia-thalamus-pedunculopontine nucleus (Cor-BGTh-PPN) that incorporates the direct STN-to-cortex pathway. We systematically evaluated the suppressive effects of four delayed feedback stimulation strategies, two targeting the globus pallidus externa (GPe) and two targeting the STN, on pathological oscillations. Simulation results demonstrate that all delayed feedback strategies effectively suppress pathological oscillations and reduce energy consumption. Notably, GPe-targeted strategies outperform STN-targeted ones in both control efficacy and energy efficiency. These findings provide a theoretical foundation for developing more efficient closed-loop DBS systems and suggest promising directions for refining treatment strategy selection.
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